WO2024106729A1 - 스탠드형 건조장치 - Google Patents
스탠드형 건조장치 Download PDFInfo
- Publication number
- WO2024106729A1 WO2024106729A1 PCT/KR2023/014156 KR2023014156W WO2024106729A1 WO 2024106729 A1 WO2024106729 A1 WO 2024106729A1 KR 2023014156 W KR2023014156 W KR 2023014156W WO 2024106729 A1 WO2024106729 A1 WO 2024106729A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- air
- column
- housing
- discharge column
- discharge
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
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- A—HUMAN NECESSITIES
- A47—FURNITURE; DOMESTIC ARTICLES OR APPLIANCES; COFFEE MILLS; SPICE MILLS; SUCTION CLEANERS IN GENERAL
- A47K—SANITARY EQUIPMENT; ACCESSORIES THEREFOR, e.g. TOILET ACCESSORIES
- A47K10/00—Body-drying implements; Toilet paper; Holders therefor
- A47K10/48—Drying by means of hot air
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F26—DRYING
- F26B—DRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
- F26B21/00—Arrangements for supplying or controlling air or other gases for drying solid materials or objects
- F26B21/001—Air generating units, e.g. movable or independent of drying enclosure
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F26—DRYING
- F26B—DRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
- F26B21/00—Arrangements for supplying or controlling air or other gases for drying solid materials or objects
- F26B21/30—Controlling, e.g. regulating, parameters of gas supply
- F26B21/37—Velocity of flow; Quantity of flow
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F26—DRYING
- F26B—DRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
- F26B21/00—Arrangements for supplying or controlling air or other gases for drying solid materials or objects
- F26B21/50—Ducting arrangements from the source of air or other gases to the materials or objects being dried
Definitions
- the present invention is a stand-type drying device that can be used while standing on the floor.
- a towel is used to remove moisture from the body. If the moisture in the body is not removed, there is a problem that it creates an environment where bacteria and mold can grow. Even though you generally use a towel to remove moisture remaining on the body, for example, moisture between the toes often remains without being removed, and moisture remains in areas such as the back that cannot be reached by human hands. There are a lot. And in the case of people with long hair, moisture cannot be removed properly even if thoroughly wiped with a towel, so a hair dryer must be used.
- Prior document 1 Korean Patent Publication No. 10-1996-0000145, discloses a drying device installed on one side of a shower room. This drying device has a platform for the user to stand on and is designed to spray air onto the user's head. In particular, there are multiple outlets on the front of the drying device so that air can be sprayed onto the user's body. Therefore, the size of the drying device is large and heavy, so once installed, it has no choice but to be left in place and used, and since the outlet is fixed, there are areas far from the outlet, especially areas in the width direction of the user's body, where air is not transmitted. There is a problem that arises.
- Prior document 2 Korean Patent Publication No. 10-2009-0092640, also discloses a drying device fixed to a wall.
- the drying device of Prior Literature 2 since there are devices such as a fan at the top of the body, the center of gravity is high, so it cannot be placed on the floor and has no choice but to be fixed to the wall. Therefore, the drying device of Prior Literature 2 has the inconvenience of being immovable and having to be used only in specific locations.
- the drying device in Prior Literature 2 has a problem in that the discharge port is located at a position corresponding to the width of the user's body in order to spray air across the entire width of the user's body, which increases the overall width of the drying device.
- Prior Document 3 Korean Patent Publication No. 10-2009-0109364, also discloses a drying device similar to Prior Document 2.
- Prior Document 3 also has a high center of gravity, so it cannot be moved and used in a standing form, and there is a problem in that the left and right width increases due to a problem with the placement of the discharge port.
- Prior document 4 Japanese Patent Publication No. 1995-0008412, discloses a drying device in which a discharge unit that sprays air moves up and down.
- drying is performed only by the discharge unit, so it takes a relatively long drying time, and air is discharged from the discharge unit whose width corresponds to the width of the user's body, so the width of the drying device is at least the same as the width of the user's body. There is a problem that needs to be addressed.
- Korean Patent No. 10-1353571 which is prior document 5, discloses a movable body dryer.
- the body dryer in Prior Literature 5 is designed to spray air toward the upper part of the user's body starting from the feet when the user stands up.
- the air sprayed from the body dryer is directed from the lower part of the user's body to the upper part, there is a problem in that the upper part of the user's body is not properly dried.
- Korean Patent No. 10-2420364 which is prior document 6, discloses a hair dryer that can be fixed vertically.
- a hair dryer is installed on the top of a support bar that stands upright on a support panel supported on the ground to dry the user's hair.
- Prior Document 6 has a problem in that it cannot dry the user's entire body but only the hair, and the structure for adjusting the angle of the hair dryer with respect to the support bar is complicated.
- the present invention is intended to solve the conventional problems described above, and the purpose of the present invention is to provide a stand-type drying device that can be placed on the floor while simultaneously spraying air from the front on the user's entire body.
- the purpose of the present invention is to ensure that the discharge port that sprays air to the user extends vertically to correspond to the user's entire body.
- the purpose of the present invention is to allow a discharge column with a discharge port that sprays air to the user to be rotated at a predetermined angle in the width direction of the user.
- the purpose of the present invention is to place an upper discharge column above the discharge column.
- the purpose of the present invention is to enable the upper discharge column located at the top of the discharge column to rotate at a predetermined angle in the vertical direction.
- the purpose of the present invention is to enable the air around the discharge column to be sprayed in addition to the air provided from the blowing unit.
- the purpose of the present invention is to ensure that air is uniformly sprayed through the discharge port regardless of the position of the discharge column.
- the purpose of the present invention is to enable the air around the upper discharge column to be sprayed together by the airflow formed by the blowing unit.
- the purpose of the present invention is to separate the air flow from the blower unit in proportion to the volume of the air duct's air path.
- the purpose of the present invention is to install a spray nozzle at the discharge port of the discharge column or the upper column discharge port of the upper discharge column so that air is sprayed to the user.
- the purpose of the present invention is to place an upper discharge column at the top of the discharge column that receives air from the discharge column side and discharges it.
- the purpose of the present invention is to automatically adjust the amount of air sprayed from the upper discharge column by adjusting the vertical angle of the upper discharge column at the top of the discharge column.
- the purpose of the present invention is to provide a joint mechanism that connects the discharge column and the upper discharge column, and to connect the upper air duct of the upper discharge column and the air duct of the discharge column with a connection duct through the joint mechanism.
- the purpose of the present invention is to install an upper discharge column detachably on top of the discharge column using a joint mechanism.
- the purpose of the present invention is to ensure that the upper discharge column is accurately rotated relative to the discharge column.
- the purpose of the present invention is to enable the upper discharge column to be separated from the discharge column and connected to a power source.
- the purpose of the present invention is to precisely rotate the upper discharge column relative to the discharge column.
- a discharge column with a long discharge port may be installed extending upward to a housing installed on a base seated on the ground.
- the discharge column may be extended upwardly to simultaneously spray air to the user's entire body.
- the discharge column can be rotated at a predetermined angle with respect to the base together with the housing installed on the base.
- the upper discharge column may be installed on the upper part of the discharge column to be rotatable at a predetermined angle by a joint mechanism.
- the upper discharge column can be rotated in the vertical direction with respect to the discharge column.
- a column suction port is formed in the discharge column of the present invention, so that surrounding air can be sucked into the discharge column by the air flow inside the discharge column.
- the flow cross-sectional area becomes narrower, so that the amount of discharged air can be uniform throughout.
- an upper column intake port that can suck in surrounding air can be formed in the upper discharge column.
- the amount of air separated from the air duct and flowing can be determined in proportion to the volume of the air passage in the direction in which the air flows.
- air can be sprayed to the user by installing a spray nozzle at the discharge port of the discharge column or the upper column discharge port of the upper discharge column.
- the upper discharge column installed above the discharge column can receive air from the discharge column and discharge it to the outside.
- connection duct of the present invention the amount of air flowing inside can be controlled depending on the degree of rotation of the upper discharge column with respect to the discharge column.
- the discharge column and the upper discharge column are connected by a joint mechanism, and the upper air duct of the upper discharge column and the air duct of the discharge column can be connected by a connection duct through the joint mechanism.
- the upper discharge column can be detachably installed on the upper part of the discharge column by a joint mechanism.
- the rotation of the upper discharge column can be guided by the connector of the joint mechanism. Therefore, the upper discharge column can be accurately rotated relative to the discharge column.
- the joint mechanism has a first electrode and a second electrode, so that electrical connection can be made between the discharge column and the upper discharge column.
- a friction pad is located between the female joint and the male joint of the joint mechanism, so that the degree of rotation of the upper discharge column with respect to the discharge column can be precisely controlled.
- the stand-type drying device of the present invention includes a base mounted on the floor, a housing located on the base and having an inlet, a blowing unit located in the housing to allow air to be sucked in and flow through the inlet, and a device coming out of the housing.
- An air passage through which air flows is located inside, an outlet through which air from the air passage is discharged to the outside extends in a vertical direction, and may include a discharge column extending upward from the housing.
- an upper discharge column may be further provided on one side of the discharge column.
- the upper discharge column is equipped with an upper blowing unit to suck in external air and allow it to flow through the upper discharge column and be discharged.
- the discharge column and the upper discharge column may be connected by a joint mechanism so that the upper discharge column can rotate at a predetermined angle with respect to the discharge column.
- the joint mechanism may include a groove-shaped female joint provided at a corresponding position of the discharge column and the upper discharge column and a hemispherical male joint inserted into the female joint.
- the blowing unit includes a fan duct installed in the housing to serve as a passage for air to pass through, a motor located inside the fan duct, and a fan located inside the fan duct and rotating by the motor to form an airflow.
- a fan duct installed in the housing to serve as a passage for air to pass through
- a motor located inside the fan duct
- a fan located inside the fan duct and rotating by the motor to form an airflow.
- An air guide is connected to the fan duct to guide air discharged from the fan duct.
- the air guide is installed in the housing and can guide air into the discharge column.
- An air duct may be installed inside the discharge column, with an air flow path through which the air flow formed by the blowing unit flows, and a flow discharge port may be formed in the longitudinal direction of the air duct to send air to the discharge port. there is.
- the base may include a disk-shaped base body and a rotation center that protrudes at the center of the base body and serves as the rotation center of the housing.
- connection curved surface having a predetermined radius of curvature is formed at a portion where the rotation center and the base body are connected to guide air toward the intake port in the housing.
- an internal space in which the blowing unit is located may be formed inside the housing, a column installation part where the lower part of the discharge column is located may be formed on one side of the housing, and the rotation center of the base A rotation center hole where the base is located may be provided in the lower part of the housing.
- the intake port through which external air is sucked in by the blowing unit may be formed in the housing adjacent to the edge of the rotation center hole.
- the stand-type drying apparatus of the present invention includes a base that is seated on the floor and has a protruding rotation center, a housing that has a rotation center hole into which the rotation center is inserted and an inlet is formed adjacent to an edge of the rotation center hole, and the housing includes: A blowing unit located inside and sucking air through the intake port, an air passage installed on one side of the housing through which air flows by the blowing unit are located inside, and the air in the air passage is discharged to the outside.
- the discharge port is provided to extend in a vertical direction and may include a discharge column extending upward from the housing.
- a drive source that provides driving force for rotation of the housing may be installed inside the rotation center of the base.
- the driving force of the drive source may be transmitted through a plurality of gears to a housing rotatably installed on the rotation center.
- the outer surface of the rotation center table may have a stepped portion for supporting the housing, and the lower portion of the rotation center band may have an outer diameter larger than the upper portion based on the step portion.
- a support wall surrounding the suction port formed adjacent to the rotation center hole of the housing is provided, and the blowing unit can be supported on the support wall.
- the intake port provided in the housing may be open toward the base, and the base may have a connecting curved surface facing the intake port formed as a curved surface with a predetermined radius of curvature to guide surrounding air to the intake port. can do.
- the rotation center may be formed at the center of the base body constituting the base, and a curved surface connecting the rotation center and the base body may be the connection curved surface.
- a driving window is formed on the rotation center to transmit power through the plurality of gears.
- the stand-type drying device of the present invention includes a base mounted on the floor, a housing located on the base and having an inlet, a fan and a motor to form an airflow, and a blowing unit installed inside the housing, and a blower unit installed inside the housing. It extends upward, is formed in a rod shape, has a long discharge port in the vertical direction, and may include a discharge column configured to spray air through the discharge port between the left and right width areas of the user's body by rotation of the housing.
- the cross-sectional flow area of the air flow path may become narrower as the distance from the blowing unit increases.
- the base may have a driving source, and the driving force of the driving source may be transmitted to a driven gear in the housing through a plurality of gears to rotate the housing.
- the stand-type drying device of the present invention includes a base mounted on the floor, a housing located on the base and having an inlet, a blowing unit located in the housing to allow air to be sucked in and flow through the inlet, and a device coming out of the housing.
- An air duct with an air flow path through which air flows is installed inside, a discharge port through which air discharged through the flow path outlet of the air duct is discharged to the outside is provided extending in the vertical direction, and a discharge column extends upward from the housing. It can be included.
- the cross-sectional flow area of the air flow path may become narrower as the distance from the blowing unit increases.
- the flow path discharge port of the air duct may be formed to be long in the longitudinal direction of the air duct to correspond to the discharge port of the discharge column.
- the discharge port may be formed on the front of the column body constituting the discharge column, and a column intake port through which air around the discharge column is sucked may be formed on the back, so that the column body constituting the discharge column exits the flow path discharge port of the air duct and the discharge port.
- the air that joins the air flowing through can be inhaled.
- the cross-sectional flow area when viewed in a cross section of the air duct, may gradually become narrower toward the flow path outlet of the air duct.
- the air duct may be inclined on both sides toward the flow path outlet, so that the front end of the cross section of the air duct may be sharp and the rear end of the cross section of the air duct may be curved.
- a filter may be further installed at the column inlet.
- a spray nozzle may be further installed at the discharge port of the discharge column.
- a spray passage through which air flows and is sprayed may be formed in the spray nozzle, and an expanded portion may be formed at the end of the spray passage to increase the flow cross-sectional area relatively.
- the stand-type drying device of the present invention includes a base mounted on the floor, a housing located on the base and having an inlet, a blowing unit located in the housing to allow air to be sucked in and flow through the inlet, and a device coming out of the housing.
- An air duct with an air flow path through which air is separated by a separation guide is installed inside, and an outlet through which air discharged through the flow path outlet of the air duct is discharged to the outside is provided to extend in the longitudinal direction, and is provided at the upper part of the housing. It may include a discharge column extending to, and the air flowing in the air passage can be divided into the upper and lower parts of the air duct by the separation guide.
- the separation guide may divide the air flowing in the air duct into a ratio of the volume of the air duct above the separation guide and the volume of the air duct below the separation guide.
- the separation guide has a sharply protruding central portion and is formed as a curved surface on the upper and lower sides to distribute the flow of air.
- the central portion is located on one side in the height direction of the connection where air enters the air duct by the blowing unit. It can be.
- the air that is separated by the separation guide and flows to the lower part of the air duct may be delivered to the lower part of the air flow path of the air duct and sprayed to the user's feet through the discharge port of the discharge column.
- the discharge column is provided with a column body having a longitudinally long discharge port on the front, a flow path discharge port installed inside the column body to deliver air to the discharge port, and receiving air from the blowing unit. It may include an air duct having a connection.
- the cross-sectional flow area of the air passage inside the air duct may become narrower as the distance from the connection part increases.
- the air duct may be inclined on both sides toward the flow path outlet, so that the front end of the cross section of the air duct may be sharp and the rear end of the cross section of the air duct may be curved.
- a column suction port through which air surrounding the discharge column is sucked may be further formed on the column body opposite to the discharge port.
- the column inlet may be provided with a filter that filters out foreign substances in the air passing through.
- the upper discharge column may be provided at the upper part of the discharge column to be rotated at a predetermined angle with respect to the discharge column by a joint mechanism.
- the upper discharge column may include an upper column body, an upper blowing unit installed inside the upper column main body, and an upper air duct through which an airflow formed by the upper blowing unit flows.
- the cross-sectional flow area of the upper air duct may become narrower as the distance from the upper blowing unit increases.
- the upper discharge column can be used separately from the discharge column.
- the stand-type drying device of the present invention includes a base mounted on the floor, a housing located on the base and having an inlet, a blower unit located in the housing to suck air and flow through the inlet, and the housing.
- a discharge column that is installed and extends upward and has a discharge port extending longitudinally on the front; an upper discharge column that is rotatable at a predetermined angle at the top of the discharge column and discharges the air transmitted through the discharge column as it flows; , It may include a joint mechanism connecting the upper discharge column to the discharge column.
- the joint mechanism may include a groove-shaped female joint provided at a corresponding position of the discharge column and the upper discharge column and a hemispherical male joint inserted into the female joint.
- a first through hole may be formed in the female joint
- a second through hole may be formed in the water joint
- a connection duct may be installed through the first through hole and the second through hole to discharge the discharge.
- the air duct of the column can be connected to the upper air duct of the upper discharge column.
- the first through hole and the second through hole may be formed at different positions so that the communication area varies depending on the relative rotation of the female joint and the male joint.
- the connecting duct may be made of a flexible material, and as the communication area between the first through hole and the second through hole is different, the degree of tightening the connecting duct is varied to control the flow of air through the connecting duct. can do.
- the discharge column includes a cylindrical column body with an inner column space formed inside and a long discharge port formed on the front in the longitudinal direction, and a flow path outlet installed in the column inner space to deliver air to the discharge port. It may include an air duct that receives air from the blowing unit.
- the cross-sectional flow area of the air passage inside the air duct may become narrower as the distance from the blowing unit increases.
- the air duct is inclined on both sides toward the flow path outlet, so that the front end of the cross section of the air duct can be sharp and the rear end of the cross section of the air duct can be curved.
- a column suction port through which air surrounding the discharge column is sucked may be further formed on the column body opposite to the discharge port.
- the column inlet may be provided with a filter that filters out foreign substances in the air passing through.
- the upper discharge column includes a cylindrical upper column body with an upper column inner space formed inside and a longitudinal upper column discharge port formed on the front, and a cylindrical upper column body installed in the upper column inner space and the upper column discharge port. It may include an upper air duct that is provided with a flow path discharge port for delivering air to the blower unit and receives air from the blowing unit through a connection duct passing through the air duct of the discharge column and the joint mechanism.
- the flow cross-sectional area of the upper air duct may become narrower as the distance from the blowing unit increases.
- the stand-type drying device of the present invention includes a base mounted on the floor, a housing located on the base and having an inlet, a blower unit located in the housing to suck air and flow through the inlet, and installed in the housing.
- a discharge column that extends upward and has a discharge port that discharges air at the front extending longitudinally, and is installed at the top of the discharge column to be rotatable at a predetermined angle so that the air delivered through the discharge column flows through the upper column discharge port.
- It may include an upper discharge column that is discharged through, and the upper discharge column is rotatable between a state in which the upper discharge column is installed in a straight line with respect to the discharge column and a state in which it is rotated to have a predetermined angle, and the upper discharge column is configured to discharge the discharge column. As the inclination angle with respect to the column increases, the amount of air discharged through the upper column discharge port of the upper discharge column may increase.
- air transfer between the discharge column and the upper discharge column can be achieved through a connecting duct made of a flexible material.
- a female joint and a male joint may be formed at corresponding positions in the column body of the discharge column and the upper column body of the upper discharge column, a first through hole may be formed in the female joint, and the male A second through hole may be formed in the joint, and the area where the first through hole communicates with the second through hole varies depending on the angle at which the upper discharge column is rotated with respect to the discharge column, thereby controlling the air flow through the connection duct. can do.
- the first through hole may be formed toward one side while including the center of the female joint, and the second through hole may be formed toward the other side while including the center of the male joint.
- a first stop surface and a second stop surface may be formed on the column body of the discharge column and the upper column body of the upper discharge column, so that a range in which the upper discharge column rotates with respect to the discharge column can be set. there is.
- the first stop surface may include a flat part orthogonal to the longitudinal direction of the column body at an end of the column body and a predetermined inclined inclined part in the longitudinal direction of the column body
- the second stop surface may include a flat portion at an end of the upper column body perpendicular to the longitudinal direction of the upper column body and a predetermined inclined inclined portion in the longitudinal direction of the column body, and the flat portions are in contact with each other and the inclined portion is
- the upper discharge column may be operated while the parts are in contact with each other.
- the stand-type drying device of the present invention includes a base mounted on the floor, a housing located on the base and having an inlet, a blower unit located in the housing to suck air and flow through the inlet, and installed in the housing.
- the discharge port When extended upward, the discharge port extends longitudinally on the front to discharge air, and the upper discharge column is detachably installed on the discharge column and generates air flow by an upper blower unit installed inside to discharge air.
- the upper discharge column is formed by an upper column body having an upper column internal space formed therein and an upper column discharge port in the longitudinal direction on the front, and an upper blowing unit installed in the upper column internal space. It may include an upper air duct in which airflow flows along an upper air flow path formed therein, and the flow path discharge port is formed at a position corresponding to the upper column discharge port.
- an upper column inlet may be formed in the upper column body on the opposite side of the upper column discharge port, and air that exits the flow path discharge port and joins the air delivered to the upper column discharge port is sucked in. It can be.
- a filter may be installed at the upper column intake port.
- the cross-sectional flow area of the upper air passage may become narrower as the distance from the upper blowing unit increases.
- the discharge column is provided with a column body having a longitudinally long discharge port on the front, a flow path discharge port installed inside the column body to deliver air to the discharge port, and receiving air from the blowing unit. May include air ducts.
- the cross-sectional flow area of the air passage inside the air duct may become narrower as the distance from the blowing unit increases.
- the air duct is inclined on both sides toward the flow path outlet, so that the front end of the cross section of the air duct is sharp, the rear end of the cross section of the air duct is curved, and the flow cross-sectional area becomes narrower as the distance from the blowing unit increases. You can lose.
- a column suction port through which air surrounding the discharge column is sucked may be further formed on the column body opposite to the discharge port.
- the column inlet may be provided with a filter that filters out foreign substances in the air passing through.
- a first stop surface and a second stop surface may be formed on the column body of the discharge column and the upper column body of the upper discharge column, so that a range in which the upper discharge column rotates with respect to the discharge column can be set. there is.
- the first stop surface may include a flat part orthogonal to the longitudinal direction of the column body at an end of the column body and a predetermined inclined inclined part in the longitudinal direction of the column body
- the second stop surface may include a flat portion at an end of the upper column body perpendicular to the longitudinal direction of the upper column body and a predetermined inclined inclined portion in the longitudinal direction of the upper column body, and the flat portions are in contact with each other and the inclined portion is
- the upper discharge column may be operated while the parts are in contact with each other.
- the stand-type drying device of the present invention includes a base mounted on the floor, a housing located on the base and having an inlet, a blower unit located in the housing to suck air and flow through the inlet, and installed in the housing.
- a discharge column that extends upward and has a discharge port extending longitudinally on the front to discharge air, and an upper discharge column that is detachably installed on the discharge column and discharges air by generating air flow by an upper blowing unit installed inside. It may include a column and a joint mechanism that connects the discharge column and the upper discharge column to be relatively rotatable and detachable.
- the joint mechanism may include a groove-shaped female joint and a hemispherical male joint provided at corresponding positions of the discharge column and the upper discharge column.
- a first connection through hole may be formed through the female joint, and a second connection through hole may be formed through the male joint at a position corresponding to the first connection through hole, and the first and The connector installed in the female joint through the second connector hole can be hung on the male joint.
- the connector includes a connector body, a button provided on one side of the connector body and exposed to one side of the discharge column, and a button provided on the other side of the connector body and hung on one side of the water joint and connected to the upper discharge column. It may include a hanging jaw that becomes the center of rotation.
- the button of the connector may be supported by an elastic member supported on one side by the female joint.
- a portion of the outer surface of the hanging ledge may have a guide curved surface, and a guide curved surface through which the guide curved surface of the hanging ledge is guided may be formed at a hanging guide end formed on one inner side of the water joint.
- a friction pad may be provided between the inner surface of the female joint and the outer surface of the male joint to provide frictional force during relative rotation between the female joint and the male joint.
- a first electrode may be installed in the female joint, and a second electrode electrically connected to the first electrode may be positioned in the electrode slot formed in the male joint.
- the electrode slot is formed to extend long in the water joint so that the arc-shaped second electrode can be positioned, and the first electrode has a protrusion shape that contacts while moving relative to the second electrode. It can be.
- the stand-type drying apparatus according to the present invention can have at least one of the following effects.
- the stand-type drying device of the present invention has a housing on a base that is seated on the ground, and a rod-shaped discharge column extends upward from the housing. Therefore, when placed in a desired location, moisture can be removed by spraying air onto the user's entire body through the discharge column.
- the discharge column has a height corresponding to the user's height, and long discharge openings are formed in the vertical direction of the discharge column, so that moisture can be removed by simultaneously spraying air over the entire user's body.
- the housing where the discharge column is installed can rotate by a predetermined angle with respect to the base seated on the ground. Therefore, the discharge column can spray air while drawing a circumferential trajectory with a predetermined radius of curvature according to the rotation of the housing, so that drying can be performed smoothly over the entire width direction of the user's body.
- an upper discharge column may be further provided at the top of the discharge column to be rotated vertically at a predetermined angle. As air is discharged from the upper discharge column, it is possible to dry the entire body of a user who is taller than average, and the head of a general user can be dried more reliably.
- the upper discharge column can be rotated at a predetermined angle in the vertical direction with respect to the discharge column.
- air is sprayed from the upper discharge column at a predetermined angle, the upper part of the user's head located below it is dried more reliably. can do.
- the flow of the sprayed air causes air flow along the outer surface of the air duct, and the air around the discharge duct is sucked in and sprayed from the air duct. It can be combined with the air and discharged through the discharge port of the discharge column. Therefore, the volume of air discharged through the discharge port of the discharge column can be relatively increased.
- the internal flow cross-sectional area of the air duct inside the discharge column becomes narrower as the distance from the blowing unit increases. Accordingly, the amount of air discharged through the flow path discharge port of the air duct can be made uniform throughout the entire flow path discharge port. This has the effect of allowing air to be discharged uniformly from the entire discharge port area of the discharge column.
- the flow of this sprayed air when the airflow formed by the upper blowing unit is sprayed from the upper air duct even in the upper discharge column connected to the upper part of the discharge column, the flow of this sprayed air generates air flow along the outer surface of the upper air duct, thereby forming the upper airflow.
- the air around the discharge duct is sucked in, combined with the air sprayed from the upper air duct, and can be sprayed from the upper column discharge port of the upper discharge column. Therefore, the volume of air discharged through the upper column discharge port of the upper discharge column can be relatively increased.
- a spray nozzle can be installed at the discharge port of the discharge column or the upper column discharge port of the upper discharge column.
- the spray nozzle allows the air sprayed from the discharge port or the upper column discharge port to travel farther and at the same time prevents external air from mixing with the air sprayed from the spray nozzle.
- an upper discharge column may be further placed above the discharge column.
- the upper discharge column can receive air through the discharge column and spray it. That is, there is no driving source for air flow inside the upper discharge column, and only the blowing unit in the housing can be used to allow air to flow. Therefore, there is an effect that air can be sprayed to more areas and no additional driving source is used.
- a connecting duct made of a flexible material between the discharge column and the upper discharge column.
- the connecting duct transmits air between the discharge column and the upper discharge column, and the amount of air transmitted can be adjusted depending on the rotational position of the upper discharge column with respect to the discharge column. Therefore, drying can be performed by varying the amount of air sprayed while adjusting the installation angle of the upper discharge column.
- the discharge column and the upper discharge column can be connected to be relatively rotatable using a joint mechanism.
- the joint mechanism includes a female joint in which a first through hole is formed and a male joint in which a second through hole is formed, and a connection duct may be installed simultaneously penetrating the first through hole and the second through hole.
- the connection duct may be pressed by the female joint and the male joint differently depending on the area where the first through hole communicates with the second through hole, thereby changing the amount of air flow flowing through the inside.
- the upper discharge column is detachably installed on the discharge column by a joint mechanism.
- the female joint and the water joint at the corresponding positions of the discharge column and the upper discharge column are combined, and at the same time, the hook of the connector on the female joint side is hung on one side of the water joint, making the upper discharge column more secure to the discharge column.
- a connector can be further used to combine the female joint and the male joint.
- the hanging jaw in the connector is hung on the side of the water joint, and since the guide curve of the hanging jaw is guided to the guide curve of the hanging jaw guide end on the water joint side, rotation of the water joint side can occur more smoothly and accurately.
- the female joint and the male joint have a first electrode and a second electrode, and the second electrode may be moved relative to the first electrode and always be in contact with each other. Therefore, when the female joint and the male joint are combined, power is connected through the first electrode and the second electrode, and power can be smoothly supplied to the upper discharge column.
- a friction pad may be installed between the female joint and the male joint that constitute the joint mechanism. Frictional force is generated during relative movement between the female joint and the male joint by the friction pad. Accordingly, the relative movement between the female joint and the male joint does not occur arbitrarily, but occurs by a force exceeding a certain level, and relative rotation can be performed more precisely.
- FIG. 1 is a perspective view showing the appearance of a preferred embodiment of a stand-type drying apparatus according to the present invention.
- Figure 2 is a side view showing the configuration of the upper discharge column in an inclined state in the embodiment shown in Figure 1.
- Figure 3 is a cross-sectional view seen from the direction of Figure 2.
- Figure 4 is a perspective view showing the lower part of the base, housing, and discharge column constituting an embodiment of the present invention.
- Figure 5 is a cross-sectional perspective view showing the internal structure of the base and housing constituting an embodiment of the present invention.
- Figure 6 is a cross-sectional perspective view showing a configuration for rotating the housing and discharge column in an embodiment of the present invention.
- Figure 7 is a cross-sectional view taken along line 7-7' of Figure 2.
- Figure 8 is a perspective view showing the configuration of a base constituting an embodiment of the present invention.
- Figure 9 is a cross-sectional perspective view showing a housing constituting an embodiment of the present invention.
- Figure 10 is a perspective view showing an air guide constituting an embodiment of the present invention.
- Figure 11 is a perspective view showing a discharge column and an upper discharge column constituting an embodiment of the present invention.
- Figures 12 (a), (b), and (c) are cross-sectional views taken along lines a-a', b-b', and c-c' of Figure 3, respectively.
- Figure 13 is a perspective view of an air passage installed inside a discharge column constituting an embodiment of the present invention.
- Figure 14 is a cross-sectional view showing the relative position between the separation guide and the connection portion of the air passage in an embodiment of the present invention.
- Figure 15 (a) is a cross-sectional view showing the inside of the upper discharge column constituting an embodiment of the present invention, and (b) is a perspective view showing the upper air passage and upper blowing unit inside the upper discharge column.
- Figure 16 is a perspective view showing a joint mechanism for connection and angle adjustment between the discharge column and the upper discharge column in an embodiment of the present invention.
- Figure 17 is a cross-sectional perspective view showing the joint mechanism constituting an embodiment of the present invention and its surrounding structure.
- Figure 18 is a cross-sectional view showing that a dispersion nozzle is further installed at the discharge port of the discharge column in an embodiment of the present invention.
- Figure 19 is a cross-sectional view showing a joint mechanism and a connection duct connecting a discharge column and an upper discharge column in another embodiment of the present invention.
- Figure 20 is an exploded perspective view mainly showing the discharge column side with the joint mechanism constituting the embodiment shown in Figure 19 separated.
- Figure 21 is an exploded perspective view mainly showing the upper discharge column side with the joint mechanism constituting the embodiment shown in Figure 19 separated.
- Figure 22 is a perspective view showing the configuration of a connection duct used in the embodiment shown in Figure 19.
- Figure 23 is a perspective view showing that in the embodiment shown in Figure 19, the upper discharge column is rotated obliquely with respect to the discharge column and air is transferred from the discharge column side to the upper discharge column side through the connection duct.
- Figure 24 is a partial perspective view showing a joint mechanism connecting a discharge column and an upper discharge column in another embodiment of the present invention.
- Figure 25 is a cross-sectional perspective view showing the internal structure of the embodiment shown in Figure 24.
- Figure 26 is an exploded perspective view showing the configuration of the embodiment shown in Figure 24.
- Figure 27 is a front cross-sectional view showing the configuration of the embodiment shown in Figure 24.
- Figure 28 is an exploded perspective view mainly showing the female joint in the joint mechanism constituting the embodiment shown in Figure 24.
- Figure 29 is an exploded perspective view mainly showing the male joint in the joint mechanism constituting the embodiment shown in Figure 24.
- Figure 30 is a cross-sectional perspective view showing the internal structure of the water joint of the example shown in Figure 24.
- Figure 31 is a perspective view showing a connector used in the embodiment shown in Figure 24.
- Figure 32 is an operating state diagram showing that the direction of air sprayed from the discharge port of the discharge column changes as the housing rotates at a predetermined angle with respect to the base in an embodiment of the present invention.
- Figure 33 is an operating state diagram showing air flowing by the operation of the blowing unit in an embodiment of the present invention.
- Figure 34 is an operation state diagram showing that the air sucked by the blower unit and the air sucked from the column inlet are combined and discharged from the discharge port in an embodiment of the present invention.
- Figure 35 is an operating state diagram showing air being sprayed through a discharge nozzle in an embodiment of the present invention.
- FIG. 1 and 2 show the overall appearance of an embodiment of the present invention.
- a base 10 to be seated on the floor, and the housing 20 can be installed on the base 10.
- the housing 20 can be installed on the base 10.
- a blowing unit 30 see FIG. 3
- the discharge column 40 may be rod-shaped and have a long discharge port 418 (see FIG. 12) in the longitudinal direction.
- the upper discharge column 50 may be in the state of FIG. 1, which is in a straight line with respect to the discharge column 40, and the state of FIG. 2, which is at a predetermined angle.
- the upper discharge column 50 is not necessarily present.
- the upper discharge column 50 may be omitted.
- the upper discharge column 50 can adjust its installation angle, it is relatively convenient to dry the upper part of the user's head.
- the base 10 may serve to support the entire device on the ground.
- the base 10 directly supports the housing 20. Since the discharge column 40 is fixed to the housing 20, the discharge column 40 can be viewed as indirectly supported by the base 10.
- the blowing unit 30 is located inside the housing 20, and the blowing unit 30 is also indirectly supported by the base 10.
- the base body 110 forms the skeleton of the base 10.
- the base body 110 may be approximately disk-shaped.
- There may be a rotation center 112 at the center of the base body 110.
- the rotation center 112 may protrude upward from the upper surface of the base body 110.
- the rotation center 112 may be composed of a disk-shaped top plate 114 and a side wall 116 surrounding the edge of the top plate 114 in a ring shape.
- the rotation center 112 may be the rotation center of the housing 20.
- the rotation center 112 may have a hollow cylindrical shape.
- the side wall 116 has a step 118. Due to the step portion 118, the outer diameter of the lower part of the rotation center table 112 becomes larger than the outer diameter of the upper part.
- the housing 20 may be rotatably supported on the stepped portion 118.
- the driving window 120 may be a driving window 120 on one side of the side wall 116.
- the driving window 120 is designed to transmit the driving force of the driving source 230, which will be described below, to the housing 20.
- the driving window 120 is formed through the side wall 116.
- the driving window 120 may be formed on a side of the side wall 116 with a relatively smaller outer diameter.
- the interior of the rotation center 112 is a drive source space 122.
- the drive source space 122 may have a groove shape when viewed from the bottom of the base 10.
- a drive source 230 may be installed within the drive source space 122.
- connection curved surface 124 is a curved surface having a predetermined radius of curvature.
- the connecting curved surface 124 can guide air entering the intake port 222 of the housing 20, which will be described below.
- the housing 20 may be installed to rotate around the rotation center 112 of the base 10.
- the housing 20 has a cylindrical shape, as shown in FIGS. 5 and 9.
- the housing 20 has a cylindrical shape and can be rotatably installed on the base 10 in an upright state.
- the housing body 210 may form the skeleton of the housing 20.
- the housing body 210 has a cylindrical shape, has a disk-shaped end plate 212 at the top, and has a cylindrical side wall 214 on its outer surface. Inside the housing body 210, there is an internal space 216.
- the blowing unit 30 may be installed in the internal space 216.
- a column installation portion 218 may be formed on one side of the side wall 214 of the housing body 210. In this embodiment, the column installation portion 218 penetrates the side wall 214. However, the column installation portion 218 may be formed to be recessed into the side wall 214.
- the discharge column 40 is installed in the column installation part 218. Approximately half of the cross section of the discharge column 40 may be inserted and positioned in the column installation portion 218.
- the lower part of the housing body 210 is open.
- the open portion of the housing body 210 is the rotation center hole 219.
- the rotation center 112 of the base 10 may be located in the rotation center hole 219.
- a support wall 220 may be in a ring shape surrounding a position at a predetermined distance from the edge of the rotation center hole 219.
- the drive unit 30 may be supported on the support wall 220.
- the intake port 222 is an intake port 222 at a position adjacent to the edge of the rotation center hole 219, which is inside the support wall 220.
- the intake port 222 may be a path through which external air is sucked into the blowing unit 30.
- the intake port 222 may be partitioned by a plurality of partition walls 224.
- the driven gear 226 is located at the edge of the rotation center hole 219.
- the driven gear 226 has a ring shape and has gear teeth formed on its inner surface, so it is a type of internal gear.
- the suction port 222 is formed between the partition walls 224.
- the suction port 222 may be formed adjacent to the rotation center 112 of the base 10.
- the intake port 222 is made in the shape of a narrow slit. This is to prevent foreign substances from the outside from entering the interior through the intake port 222.
- the driving force that causes the housing 20 to rotate with respect to the base 10 may be provided by the driving source 230.
- the driving source 230 may be within the driving source space 122 of the base 20. In the illustrated embodiment, the drive source 230 is simply located within the drive source space 122. However, the drive source 230 may be fixed to the base 10 by a bracket, etc., not shown.
- the driving gear 232 and the interlocking gear 234 may be installed on the base 10.
- the interlocking gear 234 may be coupled to the driven gear 226 to transmit the driving force of the driving source 230.
- the driving force of the driving source 230 may be directly transmitted to the driven gear 226 through the driving gear 232 without the interlocking gear 234.
- a plurality of gears may be used to reduce speed and transmit the driving force to the housing 20.
- the blowing unit 30 draws air from the outside of the housing 20 and forms an airflow to discharge it through the discharge port 418 of the discharge column 40.
- the blowing unit 30 may be located within the internal space 216 of the housing 20.
- a fan duct 310 may form the exterior of the blowing unit 30.
- the fan duct 310 may be installed while being supported on the support wall 220.
- the fan duct 310 may have a cylindrical shape.
- a motor 312 and a fan 314 may be installed inside the fan duct 310. As the fan 314 rotates due to the driving force of the motor 312, an airflow passing through the fan duct 310 may be formed. Although the structure for fixing the motor 312 is not shown in the drawing, the motor 312 may be supported by a separate bracket or a structure formed in the fan duct 310. The fan 314 is rotated by the motor 312 to form an airflow.
- FIG. 10 There is an air guide 320 to connect the fan duct 310 with the air duct 420 of the discharge column 40, which will be described below.
- the configuration of the air guide 320 is clearly shown in Figure 10.
- the fan duct 310 may be connected to the fan duct connection part 322.
- the connection pipe 434 of the air duct 420 which will be described below, may be connected to the duct connection part 324.
- a guide passage 326 is formed inside the air guide 320 to guide the flow of air.
- the flow cross-sectional area of the guide passage 326 may gradually become narrower as it moves from the fan duct 310 side to the air duct 420 side.
- the discharge column 40 is coupled to the housing 20 and may extend long upward.
- the height of the discharge column 40 is about the same as the height of an average user.
- the discharge column 40 is rod-shaped. By making the discharge column 40 rod-shaped, the width-wise size of the entire device can be greatly reduced.
- the width of the discharge column 40 is relatively narrow compared to the housing 20.
- the width of the discharge column 40 is less than approximately 1/4 of the width of the housing 20. Accordingly, the space occupied by the discharge column 40 is much smaller than the space occupied by the housing 20.
- the column body 410 can form the exterior and framework of the discharge column 40.
- the column body 410 may have an overall cylindrical shape.
- a column internal space 412 may be formed inside the column body 410.
- the column internal space 412 may have the same cross-sectional area throughout the entire section of the column body 410.
- a column inlet 414 may be formed in the column body 410.
- the column suction port 414 may be formed in a section corresponding to the discharge port 418, which will be described below. Air around the discharge column 40 can be sucked into the column internal space 412 through the column inlet 414.
- the column inlet 414 may have a predetermined width.
- the column inlet 414 is in a position that is not visible when the user stands in front of the discharge column 40. That is, the column suction port 414 may be formed on the rear surface of the discharge column 40.
- a filter 416 may be installed at the column inlet 414. The filter 416 prevents foreign substances from entering the column internal space 412 through the column inlet 414.
- the discharge port 418 may be formed to be long in the vertical direction of the column body 410.
- the air discharged through the discharge port 418 may be delivered to the user's body.
- the discharge port 418 may have a narrow slit shape.
- the width of the discharge port 418 may be very narrow compared to the column suction port 414. As a result, air can be discharged through the discharge port 418 at a relatively high speed.
- the air delivered through the air duct 420 which will be described below, and the air sucked through the column intake port 414 may be combined and discharged.
- An air duct 420 may be installed in the column inner space 412.
- the air duct 420 is a part through which air delivered through the air guide 320 by the blowing unit 30 flows. Inside the air duct 420, there is an air passage 422. The air flowing through the air passage 422 may be sprayed onto the user's body through the discharge port 418 of the discharge column 40.
- the air flow path 422 may have a relatively wide flow cross-sectional area on the side closer to the blowing unit 30, and the flow cross-sectional area may gradually become narrower as it moves away from the blowing unit 30. This is to ensure that the amount of air discharged through the outlet 418 is uniform throughout the entire section of the outlet 418.
- Figures 12 (a), (b), and (c) show the cross-sectional shape of the discharge column 40 at each position. As can be seen here, the flow cross-sectional area of the air passage 422 becomes narrower toward the upper part of the air duct 420, that is, farther away from the blowing unit 30.
- the air duct 420 has a flow path outlet 424.
- the flow path outlet 424 is a part of the air duct 420 through which air is discharged.
- the flow path outlet 424 may be located in a position corresponding to the outlet 418. That is, the flow path outlet 424 may be formed in a long slit shape in the longitudinal direction of the air duct 420. Therefore, the air coming out of the flow path outlet 424 can directly enter the outlet 418.
- the flow path outlet 424 is formed in most sections of the air duct 420 in the longitudinal direction.
- the portion of the air duct 420 where the flow path discharge port 424 is formed is called the tip portion 426.
- the width of the air duct 420 becomes narrower toward the distal end 426. That is, when the air duct 420 is viewed from the outside, the portion where the flow path outlet 424 is formed is sharp to allow air to be guided through the outer surface of the air duct 420 more smoothly.
- the rear end 428 forms a curved surface. The curved surface of the rear end 428 allows the air sucked through the column inlet 414 to be smoothly distributed to both sides. This configuration can be seen in Figure 12.
- the air flowing along the outer surface of the air duct 420 gathers on both sides of the air discharged from the flow path outlet 424 by the Coanda effect to prevent the discharged air from scattering, and these airs are It may be sprayed through the discharge port 418 of the column duct 40 and delivered to the user.
- the air Air may be supplied using only the duct 420.
- the air duct 420 may have a separation guide 430.
- the separation guide 430 may protrude into the air passage 422.
- the separation guide 430 allows the air delivered to the air duct 420 to separate and flow.
- the separation guide 430 separates the air flowing into the air passage 422 through the duct connection part 324 of the air guide 320 and allows it to flow.
- the separation guide 430 protrudes toward the duct connection portion 324 and may have curved surfaces extending in opposite directions to guide air toward the upper and lower portions of the air passage 422.
- the position of the tip of the separation guide 430 may be at 1/4 of the height direction of the duct connection part 324. That is, in FIG. 14, a:b may have a ratio of 3:1.
- the air duct 420 may have a connection pipe 434.
- the connection pipe 434 is a part connected to the duct connection part 324 of the air guide 320. Accordingly, the airflow formed by the blowing unit 30 may pass through the air guide 320 and flow into the air passage 422 inside the air duct 420.
- the upper discharge column 50 may be located at the top of the discharge column 40.
- the configuration of the upper discharge column 50 is clearly shown in Figures 15(a) and (b).
- the upper column body 510 may form the exterior and framework of the upper discharge column 50.
- the upper column body 510 may have a cylindrical shape.
- An upper column internal space 512 may be formed inside the upper column body 510.
- An upper column inlet 514 may be formed in the upper column body 510. Air around the upper discharge column 50 can be sucked in through the upper column inlet 514. A filter 516 is installed at the upper column inlet 514 to filter out foreign substances in the air.
- the upper column body 510 has a discharge port 518. Air may be discharged through the discharge port 518. The air coming out of the discharge port 518 can be sprayed on the user to perform a drying effect. The air coming out of the discharge port 518 may be mainly sprayed onto the user's head.
- the discharge port 518 may be formed in a long slit shape in the longitudinal direction of the upper column body 510.
- An upper air duct 520 may be installed in the upper column internal space 512 of the upper column body 510.
- the upper air duct 520 may have a similar configuration to the air duct 420.
- the upper air duct 520 is much shorter in length than the air duct 420.
- the flow cross-sectional area of the upper air passage 522 inside the upper air duct 520 may gradually become narrower as it moves in one direction. That is, the flow cross-sectional area may become narrower as you move away from the upper blowing unit 530, which will be explained below.
- the upper air duct 520 may have a flow path outlet 524 formed long in the longitudinal direction of the upper air duct 520. This is well shown in Figure 15. The external shape of the upper air duct 520 is almost the same as that of the air duct 420. The air discharged through the flow path outlet 524 may be discharged to the outside through the outlet 518 of the upper column body 510.
- the upper blowing unit 530 may be an upper blowing unit 530 on one side of the upper air duct 520.
- the upper blowing unit 530 has a fan and a motor inside to suck in external air and cause it to flow into the upper air duct 520.
- the upper blowing unit 530 is equipped with a battery (not shown) and can be operated using charged power.
- the battery can be charged by connecting power through the discharge column 40, the upper discharge column 50, and the joint mechanism 60.
- the drawing does not show a configuration in which air can be sucked in from the outside into the upper blowing unit 530.
- a through hole is formed at one end of the upper column body 510 so that external air can be sucked into the upper blowing unit 530.
- the upper discharge column 50 can be attached to or detached from the discharge column 40.
- the discharge column 40 and the upper discharge column 50 may be connected by a joint mechanism 60.
- the joint mechanism 60 is best shown in FIGS. 16 and 17.
- the female joint 610 on the discharge column 40 side and the male joint 620 on the upper discharge column 50 side can be coupled to each other so as to be rotatable relative to each other.
- the female joint 610 may be formed in a groove shape in the column body 410.
- the male joint 620 may be inserted into the female joint 610.
- the water joint 620 may be configured to protrude in a hemispherical shape.
- the male joint 620 is inserted into the female joint 610 and is capable of relative rotation.
- the water joint 620 may have a second stop surface 622.
- the second stop surface 622 may be formed at the end of the upper column body 510.
- the second stop surface 622 may have a flat portion 624 and an inclined portion 626.
- the flat portion 624 is a portion formed perpendicular to the longitudinal direction of the upper column body 510
- the inclined portion 626 is a portion formed at a predetermined angle with respect to the longitudinal direction of the upper column body 510. .
- the flat portion 614 of the first stop surface 612 faces the flat portion 624 of the second stop surface 622, and the inclined portion 616 of the first stop surface 612 faces the second stop surface. It can face the inclined portion 626 of 622.
- the discharge column 40 and the upper discharge column 50 are arranged in a straight line, the flat portion 614 of the first stop surface 612 and the flat portion 624 of the second stop surface 622 are in contact with each other. There is (see Figure 17).
- the positions of the female joint 610 and the male joint 620 may be reversed from those in the illustrated embodiment.
- the female joint 610 and the male joint 620 may have structures such as the first electrode 850, the second electrode 860, and the friction pad 870 of the embodiment described below.
- Figure 18 shows an example in which a spray nozzle 440 is added to the discharge port 418 of the discharge column 40.
- the spray nozzle 440 allows air passing through the discharge port 418 to be sprayed to the user.
- the expanded portion 444 is a portion whose flow cross-sectional area is formed to rapidly increase.
- the expansion portion 444 is located at the tip of the spray nozzle 440, so that the air around the discharge port 418 of the discharge column 40 flows through the spray nozzle 440. It can be prevented from mixing with the air discharged through it. This is because the expansion portion 444 guides the air around the discharge port 418 of the discharge column 40 to move away from the spray passage 422.
- FIG 19 shows another embodiment of the present invention.
- the upper discharge column 50 located above the discharge column 40 receives the airflow formed in the blowing unit 30 through the air duct 420. Therefore, in this embodiment, there is no need for a separate upper blowing unit 530 in the upper discharge column 50, and power supply is not required.
- the discharge column 40 and the upper discharge column 50 can be connected to each other so that the joint mechanism 70 can rotate relative to them.
- the joint mechanism 70 has a similar configuration to the joint mechanism 60 described in the above embodiment, but the connection duct 730 extends through the joint mechanism 70 to connect the discharge column 40.
- the air duct 420 and the upper air duct 520 of the upper discharge column 50 are communicated to allow air flow.
- the female joint 710 on the discharge column 40 side and the male joint 720 on the upper discharge column 50 side can be coupled to each other so as to be rotatable relative to each other.
- the female joint 710 may be formed in a groove shape in the column body 410.
- the male joint 720 may be inserted into the female joint 710.
- the female joint 710 may be composed of a hemispherical groove.
- the female joint 710 may have a first stop surface 712.
- the first stop surface 712 is the end of the column body 410.
- the first stop surface 712 may have a flat portion 714 and an inclined portion 716.
- the flat portion 714 is a portion formed perpendicular to the longitudinal direction of the column body 410
- the inclined portion 716 is a portion formed at a predetermined angle with respect to the longitudinal direction of the column body 410.
- a first through hole 718 may be formed on one side of the female joint 710.
- the first through hole 718 is formed through the female joint 710. Accordingly, the column inner space 412 and the interior of the female joint 710 may be communicated through the first through hole 718.
- a connection duct 730 which will be described below, can pass through the first through hole 718.
- the first through hole 718 may be formed to be biased to one side including the center of the female joint 710. This is to allow the communication area with the second through hole 728, which will be explained below, to be varied depending on the degree to which the upper discharge column 50 is rotated with respect to the discharge column 40.
- the water joint 720 may protrude in a hemispherical shape.
- the male joint 720 is inserted into the female joint 710 and can be relatively rotated.
- the water joint 720 may have a second stop surface 722.
- the second stop surface 722 is the end of the upper column body 510.
- the second stop surface 722 may have a flat portion 724 and an inclined portion 726.
- the flat portion 724 is a portion formed perpendicular to the longitudinal direction of the upper column body 510
- the inclined portion 726 is a portion formed at a predetermined slope with respect to the longitudinal direction of the upper column body 510. .
- the flat portion 714 of the first stop surface 712 faces the flat portion 724 of the second stop surface 722, and the inclined portion 716 of the first stop surface 712 faces the second stop surface. It can face the inclined portion 726 of 722.
- the flat portion 714 of the first stop surface 712 and the flat portion 724 of the second stop surface 722 are in contact with each other. There is (see Figure 19).
- a second through hole 728 may be formed on one side of the water joint 720.
- the upper column inner space 512 and the outside may be communicated through the second through hole 728.
- the connection duct 30 may extend through the second through hole 728.
- the location where the second through hole 728 is formed is biased toward the other side, including the center of the water joint 720. That is, when the discharge column 40 and the upper discharge column 50 are arranged in a straight line, the first through hole 718 and the second through hole 728 overlap and the communicating area becomes the narrowest (see Figure 19). ), when the upper discharge column 50 is rotated and disposed inclined with respect to the discharge column 40, the first through hole 718 and the second through hole 728 overlap, so that the communication area can be maximized. (See Figure 23)
- connection duct 730 the air flowing in the air duct 420 may be delivered to the upper air duct 520 through the connecting duct 730.
- the connection duct 730 may be made of a flexible material. The connection duct 730 can be freely bent, and the internal flow cross-sectional area can be adjusted by being pressed by an external force.
- connection duct 730 The configuration of the connection duct 730 is well shown in Figure 22, where the connection duct body 732 can form the exterior and framework.
- the connection duct body 732 is made of a flexible material, and a connection passage 734 is formed penetrating the inside. Air may flow through the connection passage 734.
- At one end of the connection duct body 732 there is an air duct connection part 736 connected to the air duct 420, and at the other end there is an upper air duct connection part 738 connected to the upper air duct 520.
- the air duct connection part 736 may have a shape corresponding to the shape of the air duct 420 to be coupled, and the upper air duct connection part 738 may have a shape corresponding to the shape of the upper air duct 520 to be coupled. You can have
- connection duct 730 may be pressed by the edge of the through hole 728, thereby narrowing or closing the internal flow cross-sectional area. In this state, no air or a small amount of air may be transmitted to the upper air duct 520 through the connection duct 730.
- the amount of air flowing through the connection duct 730 may be determined depending on the size of the overlapping area of the first through hole 718 and the second through hole 728.
- the upper discharge column 50 is detachably connected to the discharge column 40 by a joint mechanism 80.
- the joint mechanism 80 can be connected to a power source, so that power can be supplied to the upper blowing unit 530 inside the upper discharge column 50. It is also possible to charge a battery (not shown) in the upper blowing unit 530, and the upper discharge column 50 can be used separately from the discharge column 40. In this case, the upper discharge column 50 can be held by the user's hand and used to dry various parts of the body.
- the upper discharge column 50 is detachable from the discharge column 40.
- the joint mechanism 80 has a connector 830, and the upper discharge column 50 is connected to the discharge column by pressing the button 834 of the connector 830 to adjust the position of the connector 830. It can be mounted and removed at (40).
- the female joint 810 (see Fig. 28) on the discharge column 40 side and the water joint 820 (see Fig. 29) on the upper discharge column 50 side are relative to each other.
- the female joint 810 may be formed in a groove shape in the column body 410.
- the male joint 820 may be inserted into the female joint 810.
- the female joint 810 may be composed of a hemispherical groove.
- the female joint 810 may have a first stop surface 812.
- the first stop surface 812 is the end of the column body 410.
- the first stop surface 812 may have a flat portion 814 and an inclined portion 816.
- the flat portion 814 is a portion formed perpendicular to the longitudinal direction of the column body 410
- the inclined portion 816 is a portion formed at a predetermined angle with respect to the longitudinal direction of the column body 410.
- First connection holes 817 may be formed through the female joint 810 on both sides.
- a button hole 410' is formed at a position of the column body 410 corresponding to the first connection hole 817.
- the connector 830 may be installed through the first connector hole 817.
- the support plate 818 is a portion that supports one side of the elastic member 840, which will be described below.
- the support plate 818 may face the button hole 410'.
- the water joint 820 may be configured to protrude in a hemispherical shape.
- the male joint 820 is inserted into the female joint 810 and is capable of relative rotation.
- the water joint 820 may have a second stop surface 822.
- the second stop surface 822 is the end of the upper column body 510.
- the second stop surface 822 may have a flat portion 824 and an inclined portion 826.
- the flat portion 824 is a portion formed perpendicular to the longitudinal direction of the upper column body 510
- the inclined portion 826 is a portion formed at a predetermined slope with respect to the longitudinal direction of the upper column body 510. .
- the flat part 814 of the first stop surface 812 faces the flat part 824 of the second stop surface 822, and the inclined part 816 of the first stop surface 812 faces the second stop surface 822. It can face the inclined portion 826 of 822.
- the flat portion 814 of the first stop surface 812 and the flat portion 824 of the second stop surface 822 are in contact with each other. there is.
- second connection holes 827 are formed to penetrate the water joint 820 on both sides.
- the second connection hole 827 may be formed at a position corresponding to the first connection hole 817.
- the second connection hole 827 may be formed to be relatively longer in one direction than the first connection hole 817. This is to prevent the connector 830 and the water joint 820 from interfering when the upper discharge column 50 is rotated relative to the discharge column 40.
- the hanging jaw guide end 828 is well shown in FIGS. 29 and 30.
- the hanging guide end 828 is a part where the hanging jaw 838 of the connector 830 is hung.
- a guide curved surface 828' may be formed on the hook guide end 828 to have a predetermined radius of curvature.
- the outer surface of the hook 838 of the connector 830 is in contact with the guide curved surface 828', and the hook 838 can be the rotation center of the upper discharge column 50.
- An electrode slot 829 may be formed along the central position in the width direction of the water joint 820.
- the electrode slot 829 extends long in the rotation direction of the upper discharge column 50.
- two electrode slots 829 are formed side by side. Electrical contact can be made between the first electrode 850 and the second electrode 860, which will be described below, through the electrode slot 829.
- the connector 830 allows the upper discharge column 50 to be rotatably mounted with respect to the discharge column 40.
- the connector 830 rotatably hangs the male joint 820 when installed on the female joint 810 side.
- the connector body 832 may form the skeleton of the connector 830.
- the connector body 832 may have an elastic member support end 836.
- the elastic member support end 836 may be located on the opposite side of the outer surface of the button 834.
- the elastic member support end 836 may be configured so that one side of the elastic member 840 can be inserted and supported therein.
- the elastic member support end 836 may be formed in a cylindrical shape, and there may be a guide pin 837 inside it to guide the elastic deformation of the elastic member 840.
- the guide pin 837 may be inserted into the elastic member 840.
- the hook 838 may be a hook 838 on the other side of the connector body 832.
- the hook 838 is formed on the other side of the connector body 832 at a predetermined distance from the position where the button 834 is formed.
- a portion of the hook 838 may have a disk shape.
- a guide curved surface 838' is formed on a portion of the outer surface of the hanging ledge 838.
- the guide curved surface 838' is a portion guided by the guide curved surface 828' of the hanging jaw guide end 828.
- buttons 834 of each of the connectors 830 may be located within button holes 410' opened on both sides of the column body 410 of the discharge column 40.
- the elastic force of the elastic member 840 causes the button 834 to tend to protrude out of the button hole 410'.
- the elastic member 840 uses a cylindrical coil spring, and one end is inserted and supported within the elastic member support end 836 of the connector 830. The other end of the elastic member 840 may be supported on the support plate 818 of the female joint 810. Accordingly, when the user presses the button 834, the connector 830 moves while compressing the elastic member 840, allowing the button 834 to move a predetermined distance inside the button hole 410'.
- the elastic member 840 may provide elastic force to the connector 830.
- the connector 830 may be installed in the female joint 810 while being supported by the elastic member 840, and the connector 830 may be connected to the hanging jaw guide end 828 on the male joint 810 side.
- the upper discharge column 50 can be maintained in a rotatably hung state on the discharge column 40.
- the button 834 of the connector 830 When the user presses the button 834 of the connector 830, the button 834 enters the inside of the button hole 410', and the hook 838 comes out of the hook guide 828. do. In this state, the upper discharge column 50 can be separated from the discharge column 40 side.
- a first electrode 850 may be installed in the female joint 810.
- the first electrode 850 can be connected to the power supplied to the drying device of the present invention.
- the first electrode 850 has a protrusion shape and can contact the second electrode 860 inside the electrode slot 829.
- a second electrode 860 may be installed in the water joint 820.
- the second electrode 860 is configured to extend long to correspond to the shape of the electrode slot 829.
- the second electrode 860 may have an arch shape with a predetermined radius of curvature. The position where the first electrode 850 contacts the second electrode 860 varies depending on the degree to which the upper discharge column 50 is rotated.
- the first electrode 850 When the upper discharge column 50 rotates with respect to the discharge column 40, the first electrode 850 is in contact with the second electrode 860 and the contact position with the second electrode 860 is changed. It becomes different. In reality, the first electrode 850 is fixed, and the second electrode 860 can be moved while rotating with the rotation of the water joint 820.
- the friction pad 870 may provide friction to prevent arbitrary relative movement between the male joint 820 and the female joint 810.
- the friction pad 870 is fixed to the female joint 810 or male joint 820 and provides friction to the male joint 820 or female joint 810, which is the counterpart.
- the stand-type drying apparatus of the present invention has a blowing unit 30 located in a housing 20 rotatably supported on a base 10, and a blower unit 30 is located in the housing 20.
- a rod-shaped discharge column 40 extending upward. Air is sprayed to the user through the discharge port 418 of the discharge column 40.
- the discharge column 40 is rotated at a predetermined angle, thereby discharging the user's body. Drying is performed by spraying air over a predetermined range in the width direction.
- the discharge column 40 rotates left and right with respect to the user and sprays air in the width direction of the user's body to perform drying.
- the user stands in front of the discharge column 40 and performs the drying process while receiving the sprayed air.
- the user can turn around and dry the back of the user's body so that the back of the user's body faces the discharge column 40.
- the housing 20 is rotated (in the direction of arrow A) with respect to the base 10, and the position of the discharge column 40 is thereby moved. (Arrow B direction) is shown.
- air is shown being sprayed from the discharge port 418 of the discharge column 40 (arrow C).
- the discharge port 418 formed in the discharge column 40 extends to a position corresponding to the lower part of the housing 20, so that the user's feet can be dried at the same time.
- the air sprayed from the upper discharge column 50 can dry the user's head.
- the upper discharge column 50 is inclined at a predetermined angle with respect to the discharge column 40, air can be sprayed from the top of the user's head, thereby improving drying of the head.
- the housing 20 and the blowing unit 30 are on a base 10 seated on the floor, and the discharge column 40 extending from the housing 20 is relatively small. It extends upward in the shape of a rod with a diameter, so that the overall center of gravity of the device can be located adjacent to the base 10. Therefore, the stand-type drying device of the present invention can be stably placed on the floor, and its overall weight is light, so the user can easily move it and perform drying at a desired location.
- the stand-type drying device of the present invention can be more easily moved. You can do it.
- the stand-type drying device can be moved to perform more detailed drying in a living room, etc.
- the head can be dried by tilting the upper discharge column 50 while sitting on a chair, and the feet can be dried through the discharge port 418 corresponding to the lower air passage 432. It can be performed with the air coming out.
- the flow of air in the stand-type drying apparatus of the present invention will be described with reference to FIG. 33.
- the blowing unit 30 is driven.
- the motor 312 of the blowing unit 30 operates to rotate the fan 314 to create an airflow flowing within the fan duct 310.
- external air is sucked in through the intake port 222.
- Air around the base 10 is sucked into the intake port 222, and the connecting curved surface 124 can serve to allow air to flow more smoothly into the intake port 222.
- the air sucked through the intake port 222 enters the inside of the fan duct 310, passes through the fan duct 310 by driving the fan 314, and enters the guide passage inside the air guide 320. Go to (326). Air flows into the air duct 420 of the discharge column 40 through the connection pipe 434 connected to the duct connection part 324, which is the outlet of the guide passage 326.
- the flowing air is divided by the separation guide 430. Some of the air flows into the lower part of the air passage 432 by the separation guide 430, and the remaining air flows into the air passage 422 of the air duct 420 on the upper side of the discharge column 40. do.
- the air duct 420 has a flow cross-sectional area that narrows starting from the separation guide 430 and moving away from the separation guide 430. Accordingly, a uniform amount of air can be discharged from the entire section of the discharge port 418.
- the air around the air duct 420 is They can be combined by the Wanda effect and discharged through the discharge port 418.
- air around the discharge column 40 can be sucked in through the column suction port 414 in the column body 410 and sucked into the column internal space 412.
- such air flow is indicated by arrows.
- the air sucked into the column inner space 412 is combined with the air flowing from the flow path outlet 424 to the outlet 418 and is sprayed through the outlet 418 and delivered to the user.
- the air around the discharge port 418 may be combined according to Bernoulli's principle. However, this air is not purified, so if the spray nozzle 440 is used as shown in FIG. 35, mixing of the air around the discharge column 40 can be prevented, and the air sprayed by the spray nozzle 440 can be prevented. can be sent farther.
- Air can also be sprayed through the upper discharge column 50 to dry the user's body, face, head, etc.
- the air discharged from the upper discharge column 50 is sucked in from the outside by the upper blowing unit 530 and delivered to the upper air passage 522 of the upper air duct 520.
- the cross-sectional flow area of the upper air passage 522 becomes narrower. Accordingly, the air discharged through the discharge port 518 of the upper discharge column 50 can be uniform throughout the entire section of the discharge port 528 of the upper discharge column 50.
- the air discharged through the discharge port 518 is the air sucked by the upper blowing unit 530 and the air around the upper discharge column 50 sucked through the upper column suction port 514.
- the installation angle of the upper discharge column 50 can be adjusted with respect to the discharge column 40. That is, when a user stands in front of the discharge column 40, the upper discharge column 50 may be operated to tilt toward the user.
- the operation of the upper discharge column 50 may be performed in a predetermined direction with respect to the discharge column 40. That is, the operating direction of the upper discharge column 50 is determined by the first stop surface 612 and the second stop surface 622 of the joint mechanism 60.
- the upper discharge column 50 may be separated from the discharge column 40. This can be achieved by the male joint 610 being removed from the female joint 610. In this case, the upper discharge column 50 can be separated from the discharge column 40 and used by the user by holding it by hand. At this time, air may be sprayed from the upper discharge column 50 by driving the upper blowing unit 530.
- the power source for driving the upper blowing unit 530 may be provided by a battery (not shown) located in the upper discharge column 50, and the battery may be charged using an electrode located in the joint mechanism 60. Power may be supplied by (not shown) (refer to electrodes 850 and 860 shown in FIG. 26).
- the air discharged from the discharge port 518 of the upper discharge column 50 is adjusted according to the angle at which the upper discharge column 50 is inclined with respect to the discharge column 40.
- the amount can be adjusted.
- the connection duct 730 is connected by the edges of the first through hole 718 and the second through hole 728. As it is pressed, the flow cross-sectional area of the connection passage 734 at the corresponding position is reduced, so air may not flow. In this case, air is not discharged through the upper discharge column (50).
- connection passage 734 increases and air can flow.
- Figure 23 there is a state in which the flow cross-sectional area is recovered because the connection passage 734 is not pressed. In this way, a relatively large amount of air can be sprayed through the discharge port 518 of the upper discharge column 50.
- the flow of air through the discharge column 40 is the same as in the previously described embodiment.
- the upper discharge column 50 does not receive air from the discharge column 40 side.
- the upper discharge column 50 can discharge air by driving the upper blowing unit 530 therein.
- the upper discharge column 50 can be more firmly mounted on the discharge column 40. This is because the connector 830 is used.
- the connector 830 is supported and installed on the column body 410 of the discharge column 40 by an elastic member 840, so that the upper discharge column 40 can be more easily attached to and detached from the discharge column 40. and the installed state can be maintained firmly. Also, when the upper discharge column 50 rotates with respect to the discharge column 40, it can rotate around the hook 838 of the connector 830.
- Figure 36 shows a state in which the upper discharge column 50 is mounted on the discharge column 40.
- the user presses the button 834 in the direction of arrow A.
- the connectors 830 each move in the direction of arrow A. Due to this movement, the hook 838 of the connector 830 also moves in the direction of arrow B and deviates from the hook guide end 828 of the water joint 820. In this way, the upper discharge column 50 can be moved in the direction of arrow C and removed from the discharge column 40.
- the connector 830 moves to its original position by the restoring force of the elastic member 840.
- the male joint 820 can be inserted into the female joint 810. That is, when the upper discharge column 50 is moved in the direction opposite to arrow C in FIG. 36, the hook guide end 828 is guided to the inclined surface of the top of the hook 838 of the connector 830, and the elastic member While elastically deforming (840), the connector (830) is moved in the direction of arrow A.
- the connector 830 moves as an arrow due to the restoring force of the elastic member 840. It moves in the opposite direction to A and returns to its original state.
- the upper discharge column 50 is mounted on the discharge column 40.
- the upper discharge column 50 when the upper discharge column 50 is mounted on the discharge column 40, the first electrode 850 and the second electrode 860 come into contact. Therefore, when the power is connected, it can be supplied to the upper blowing unit 530 in the upper discharge column 50, and the battery can be charged.
- the female joints 610, 710, and 810 are located on the discharge column 40 side, and the male joints 620, 720, and 820 are located on the upper discharge column 50 side.
- the female joints (610, 710, 810) may be located on the upper discharge column (50) side, and the male joints (620, 720, 820) may be located on the discharge column (40) side.
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- Engineering & Computer Science (AREA)
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- General Engineering & Computer Science (AREA)
- Health & Medical Sciences (AREA)
- Public Health (AREA)
- Drying Of Solid Materials (AREA)
Abstract
Description
Claims (24)
- 바닥에 안착되는 베이스와,상기 베이스에 위치되고 흡입구가 있는 하우징과,상기 하우징 내에 위치되어 상기 흡입구를 통해 공기가 흡입되어 유동되게 하는 송풍유니트와,상기 하우징에서 나온 공기가 유동되는 공기유로가 내부에 있고, 상기 공기유로에서 나온 공기가 외부로 토출되는 토출구가 상하방향으로 연장되어 구비되며 상기 하우징에서 상부로 연장되는 토출컬럼을 포함하는 스탠드형 건조장치.
- 제 1 항에 있어서, 상기 토출컬럼의 일측에는 상부토출컬럼이 더 구비되는 스탠드형 건조장치.
- 제 2 항에 있어서, 상기 상부토출컬럼에는 상부송풍유니트가 구비되어 외부의 공기를 흡입하여 상부토출컬럼 내를 유동하여 토출되도록 하는 스탠드형 건조장치.
- 제 2 항에 있어서, 상기 토출컬럼과 상부토출컬럼 사이는 조인트기구에 의해 상기 상부토출컬럼이 상기 토출컬럼에 대해 소정 각도 회전가능하게 연결되는 스탠드형 건조장치.
- 제 4 항에 있어서, 상기 조인트기구는 상기 토출컬럼과 상기 상부토출컬럼의 서로 대응되는 위치에 구비되는 홈형상의 암조인트와 상기 암조인트 내에 삽입되는 반구형상의 수조인트를 포함하는 스탠드형 건조장치.
- 제 1 항에 있어서, 상기 송풍유니트는 상기 하우징 내에 설치되어 공기가 통과하는 통로가 되는 팬덕트와, 상기 팬덕트의 내부에 위치되는 모터와, 상기 팬덕트의 내부에 위치되어 상기 모터에 의해 회전되면서 기류를 형성하는 팬을 포함하는 스탠드형 건조장치.
- 제 6 항에 있어서, 상기 팬덕트에는 공기가이드가 연결되어 팬덕트에서 토출되는 공기를 안내하는데, 상기 공기가이드는 상기 하우징 내에 설치되고 상기 토출컬럼 내부로 공기를 안내하는 스탠드형 건조장치.
- 제 1 항에 있어서, 상기 토출컬럼의 내부에는 상기 송풍유니트에 의해 형성된 기류가 유동되는 공기유로가 내부에 있는 공기덕트가 설치되고, 상기 공기덕트에는 그 길이방향으로 유로토출구가 형성되어 상기 토출구로 공기를 보내는 스탠드형 건조장치.
- 제 1 항에 있어서, 상기 베이스는 원판형상의 베이스본체와, 상기 베이스본체의 중앙에 돌출되어 상기 하우징의 회전중심이 되는 회전중심대를 포함하는 스탠드형 건조장치.
- 제 9 항에 있어서, 상기 회전중심대와 상기 베이스본체가 연결되는 부분에는 소정의 곡률반경을 가지는 연결곡면이 형성되어 상기 하우징에 있는 흡입구를 향해 공기를 안내하는 스탠드형 건조장치.
- 제 1 항에 있어서, 상기 하우징의 내부에는 상기 송풍유니트가 위치되는 내부공간이 형성되고, 상기 하우징의 일측면에는 상기 토출컬럼의 하부가 위치되는 컬럼설치부가 형성되며, 상기 베이스의 회전중심대가 위치되는 회전중심공이 상기 하우징의 하부에 구비되는 스탠드형 건조장치.
- 제 11 항에 있어서, 상기 회전중심공의 가장자리에 인접한 상기 하우징에는 외부의 공기가 송풍유니트에 의해 흡입되는 상기 흡입구가 형성되는 스탠드형 건조장치.
- 바닥에 안착되고 회전중심대가 돌출되어 있는 베이스와,상기 회전중심대가 삽입되는 회전중심공이 있고 상기 회전중심공의 가장자리에 인접하여 흡입구가 형성되는 하우징과,상기 하우징의 내부에 위치되어 상기 흡입구를 통해 공기가 흡입되게 하는 송풍유니트와,상기 하우징의 일측면에 설치되어 상기 송풍유니트에 의해 공기가 유동되는 공기유로가 내부에 있고 상기 공기유로의 공기가 외부로 토출되는 토출구가 상하방향으로 연장되어 구비되며 상기 하우징에서 상부로 연장되는 토출컬럼을 포함하는 스탠드형 건조장치.
- 제 13 항에 있어서, 상기 베이스의 회전중심대 내부에는 상기 하우징의 회전을 위한 구동력을 제공하는 구동원이 설치되는 스탠드형 건조장치.
- 제 14 항에 있어서, 상기 구동원의 구동력은 상기 회전중심대에 회전가능하게 설치된 하우징으로 다수개의 기어를 통해 전달되는 스탠드형 건조장치.
- 제 13 항에 있어서, 상기 회전중심대의 외면에는 상기 하우징이 지지되는 단차부가 있고, 상기 회전중심대는 상기 단차부를 기준으로 상부보다 하부가 외경이 큰 스탠드형 건조장치.
- 제 16 항에 있어서, 상기 하우징의 회전중심공에 인접하여 형성된 상기 흡입구를 둘러서는 지지벽이 구비되고, 상기 지지벽에는 상기 송풍유니트가 지지되는 스탠드형 건조장치.
- 제 17 항에 있어서, 상기 하우징에 구비되는 흡입구는 상기 베이스를 향해 개방되고, 상기 베이스에는 상기 흡입구를 향해 연결곡면이 소정의 곡률반경을 가지는 곡면으로 형성되어 주변의 공기를 상기 흡입구로 안내하는 스탠드형 건조장치.
- 제 18 항에 있어서, 상기 회전중심대는 상기 베이스를 구성하는 베이스본체의 중앙에 형성되는데, 상기 회전중심대와 베이스본체를 연결하는 곡면이 상기 연결곡면인 스탠드형 건조장치.
- 제 15 항에 있어서, 상기 회전중심대에는 구동윈도우가 형성되어 상기 다수개의 기어를 통한 동력전달을 수행하는 스탠드형 건조장치.
- 바닥에 안착되는 베이스와,상기 베이스에 위치되고 흡입구가 있는 하우징과,팬과 모터를 구비하여 기류를 형성하고 상기 하우징의 내부에 설치되는 송풍유니트와,상기 하우징에서 상부로 연장되고 봉형상으로 형성되며 상하방향으로 토출구가 길게 형성되며 상기 하우징의 회전에 의해 사용자의 신체 좌우폭 영역 사이로 공기를 상기 토출구를 통해 분사하도록 구성되는 토출컬럼을 포함하는 스탠드형 건조장치.
- 제 21 항에 있어서, 상기 토출컬럼의 내부에는 상기 송풍유니트에 의해 형성된 기류가 유동하는 공기유로가 형성된 공기덕트가 있고, 상기 공기덕트의 길이방향으로 유로토출구가 상기 토출구와 대응되게 형성되는 스탠드형 건조장치.
- 제 22 항에 있어서, 상기 공기유로의 유동단면적은 상기 송풍유니트에서 멀어질 수록 좁아지는 스탠드형 건조장치.
- 제 21 항에 있어서, 상기 베이스에는 구동원이 있고, 상기 구동원의 구동력은 다수개의 기어를 통해 상기 하우징에 있는 종동기어로 전달되어 상기 하우징을 회전시키는 스탠드형 건조장치.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP23891798.3A EP4595847A4 (en) | 2022-11-14 | 2023-09-19 | FLOOR-MOUNTED DRYING DEVICE |
Applications Claiming Priority (8)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| KR1020220151596A KR20240070134A (ko) | 2022-11-14 | 2022-11-14 | 스탠드형 건조장치 |
| KR10-2022-0151596 | 2022-11-14 | ||
| KR10-2022-0151598 | 2022-11-14 | ||
| KR1020220151595A KR20240070133A (ko) | 2022-11-14 | 2022-11-14 | 스탠드형 건조장치 |
| KR10-2022-0151597 | 2022-11-14 | ||
| KR1020220151598A KR20240070136A (ko) | 2022-11-14 | 2022-11-14 | 스탠드형 건조장치 |
| KR10-2022-0151595 | 2022-11-14 | ||
| KR1020220151597A KR20240070135A (ko) | 2022-11-14 | 2022-11-14 | 스탠드형 건조장치 |
Related Child Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US18/387,735 Continuation US20240098397A1 (en) | 2022-09-16 | 2023-11-07 | Electronic device including speaker module |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2024106729A1 true WO2024106729A1 (ko) | 2024-05-23 |
Family
ID=91084872
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/KR2023/014156 Ceased WO2024106729A1 (ko) | 2022-11-14 | 2023-09-19 | 스탠드형 건조장치 |
Country Status (2)
| Country | Link |
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| EP (1) | EP4595847A4 (ko) |
| WO (1) | WO2024106729A1 (ko) |
Citations (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| KR960000145B1 (ko) | 1993-05-31 | 1996-01-03 | 삼성전자주식회사 | 대역확산 통신 시스템의 송수신장치 및 통신로 설정방법 |
| US5651189A (en) * | 1995-02-10 | 1997-07-29 | Bodi-Blo, Inc. | Portable drying system |
| US20040213559A1 (en) * | 2003-04-28 | 2004-10-28 | Neil Schafer | Body drier |
| KR20080001550U (ko) * | 2006-11-30 | 2008-06-04 | 편준범 | 살균 건조용 전신 드라이어 |
| KR20090092640A (ko) | 2008-02-27 | 2009-09-01 | 김정환 | 모발 및 신체 건조 장치 |
| KR20090109364A (ko) | 2008-04-15 | 2009-10-20 | 한국생명공학연구원 | 갯벌 메타게놈 유래 신규 에스터라제 및 이의 제조방법 |
| KR101353571B1 (ko) | 2013-06-27 | 2014-01-23 | 아이앤비에어 주식회사 | 신체 건조기 |
| KR20200033106A (ko) * | 2018-09-19 | 2020-03-27 | 엘지전자 주식회사 | 드라이어 거치대의 제어방법 |
| CN215820722U (zh) * | 2020-12-30 | 2022-02-15 | 追觅科技(上海)有限公司 | 干手器 |
| KR102420364B1 (ko) | 2020-09-29 | 2022-07-13 | (주)샤플 | 수직으로 기립 고정이 가능한 헤어 드라이어 |
Family Cites Families (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN113180525A (zh) * | 2021-03-24 | 2021-07-30 | 追觅科技(上海)有限公司 | 吹风设备 |
-
2023
- 2023-09-19 WO PCT/KR2023/014156 patent/WO2024106729A1/ko not_active Ceased
- 2023-09-19 EP EP23891798.3A patent/EP4595847A4/en active Pending
Patent Citations (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| KR960000145B1 (ko) | 1993-05-31 | 1996-01-03 | 삼성전자주식회사 | 대역확산 통신 시스템의 송수신장치 및 통신로 설정방법 |
| US5651189A (en) * | 1995-02-10 | 1997-07-29 | Bodi-Blo, Inc. | Portable drying system |
| US20040213559A1 (en) * | 2003-04-28 | 2004-10-28 | Neil Schafer | Body drier |
| KR20080001550U (ko) * | 2006-11-30 | 2008-06-04 | 편준범 | 살균 건조용 전신 드라이어 |
| KR20090092640A (ko) | 2008-02-27 | 2009-09-01 | 김정환 | 모발 및 신체 건조 장치 |
| KR20090109364A (ko) | 2008-04-15 | 2009-10-20 | 한국생명공학연구원 | 갯벌 메타게놈 유래 신규 에스터라제 및 이의 제조방법 |
| KR101353571B1 (ko) | 2013-06-27 | 2014-01-23 | 아이앤비에어 주식회사 | 신체 건조기 |
| KR20200033106A (ko) * | 2018-09-19 | 2020-03-27 | 엘지전자 주식회사 | 드라이어 거치대의 제어방법 |
| KR102420364B1 (ko) | 2020-09-29 | 2022-07-13 | (주)샤플 | 수직으로 기립 고정이 가능한 헤어 드라이어 |
| CN215820722U (zh) * | 2020-12-30 | 2022-02-15 | 追觅科技(上海)有限公司 | 干手器 |
Non-Patent Citations (1)
| Title |
|---|
| See also references of EP4595847A4 |
Also Published As
| Publication number | Publication date |
|---|---|
| EP4595847A4 (en) | 2026-01-21 |
| EP4595847A1 (en) | 2025-08-06 |
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