WO2017206127A1 - Soupape de buse télescopique multicanal pour impression 3d, et système de commande de soupape de buse - Google Patents

Soupape de buse télescopique multicanal pour impression 3d, et système de commande de soupape de buse Download PDF

Info

Publication number
WO2017206127A1
WO2017206127A1 PCT/CN2016/084392 CN2016084392W WO2017206127A1 WO 2017206127 A1 WO2017206127 A1 WO 2017206127A1 CN 2016084392 W CN2016084392 W CN 2016084392W WO 2017206127 A1 WO2017206127 A1 WO 2017206127A1
Authority
WO
WIPO (PCT)
Prior art keywords
valve
nozzle
cylinder
printing according
channel
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
Application number
PCT/CN2016/084392
Other languages
English (en)
Chinese (zh)
Inventor
陈名乔
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Shenzhen Wanwei Im Technology Co Ltd
Original Assignee
Shenzhen Wanwei Im Technology Co Ltd
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Shenzhen Wanwei Im Technology Co Ltd filed Critical Shenzhen Wanwei Im Technology Co Ltd
Priority to PCT/CN2016/084392 priority Critical patent/WO2017206127A1/fr
Publication of WO2017206127A1 publication Critical patent/WO2017206127A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C67/00Shaping techniques not covered by groups B29C39/00 - B29C65/00, B29C70/00 or B29C73/00
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B33ADDITIVE MANUFACTURING TECHNOLOGY
    • B33YADDITIVE MANUFACTURING, i.e. MANUFACTURING OF THREE-DIMENSIONAL [3D] OBJECTS BY ADDITIVE DEPOSITION, ADDITIVE AGGLOMERATION OR ADDITIVE LAYERING, e.g. BY 3D PRINTING, STEREOLITHOGRAPHY OR SELECTIVE LASER SINTERING
    • B33Y30/00Apparatus for additive manufacturing; Details thereof or accessories therefor
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K11/00Multiple-way valves, e.g. mixing valves; Pipe fittings incorporating such valves
    • F16K11/10Multiple-way valves, e.g. mixing valves; Pipe fittings incorporating such valves with two or more closure members not moving as a unit

Definitions

  • the present invention relates to the field of 3D printing technology, and more particularly to a multi-channel telescopic nozzle valve for 3D printing, and to a nozzle valve control system.
  • 3D printing is a technique for manufacturing a three-dimensional product by layer-by-layer addition of materials by a 3D printing device according to a designed 3D model.
  • This layer-by-layer stack forming technique is also referred to as additive manufacturing.
  • 3D printing combines cutting-edge technologies in digital modeling technology, electromechanical control technology, information technology, materials science and chemistry, etc. It is a kind of rapid prototyping technology and is known as the core technology of the "third industrial revolution”.
  • 3D printing does not need to make molds in advance, it does not have to remove a large amount of materials in the manufacturing process, and the final product can be obtained without complicated forging process. Therefore, structural optimization and material saving can be achieved in production. save energy.
  • 3D printing technology is suitable for new product bursts, rapid single and small batch parts manufacturing, complex shape parts manufacturing, mold design and manufacturing, etc. It is also suitable for the manufacture of difficult materials, shape design inspection, assembly inspection and fast Reverse engineering and so on. Therefore, the 3D printing industry has received more and more attention at home and abroad, and will become the next sunrise industry with broad development prospects.
  • 3D printing has been applied in the fields of product prototyping, mold making, artistic creative products, jewelry making, etc., and can replace the traditional fine processing technology that these fields rely on.
  • the introduction of 3D printing technology has also opened up a broader space for development.
  • a nozzle device is required in a fused deposition (FDM) type 3D printing technology system, however, the existing nozzle device has the following problems:
  • the nozzle diameter is not switchable, and the printing outer contour uses the same nozzle as the printing inner filling, and the high precision requirement of the outer contour cannot be satisfied with the low precision high speed printing requirement of the inner filling;
  • the object of the present invention is to provide a multi-channel telescopic nozzle valve for 3D printing by overcoming the above-mentioned deficiencies of the prior art.
  • the nozzle diameter can be switched, and the fine outer contour is printed, and the switch is switched to Small-caliber nozzles, when printing internal fill flaws without precision requirements, use large-diameter nozzles that are much larger than small-caliber nozzles to increase the printing speed by several times; when printing proceeds to the blank area, the printed material will be from the end of the nozzle hole The mechanical force between the valve needle and the nozzle cuts the material and keeps the internal pressure from changing due to material leakage.
  • the present invention provides a multi-channel telescopic nozzle valve for 3D printing, comprising:
  • a mounting seat the upper portion of the mounting seat is provided with a feeding channel, the lower portion of the mounting seat is axially distributed with one or a plurality of inner holes, and the feeding channel is provided with a discharging manifold, The discharge manifolds respectively communicate with the upper end of each inner hole, and the lower end of the inner hole is a cornice;
  • a cylinder the cylinder is movably mounted in an inner hole of each of the mounts, the cylinder protrudes from a mouth end of the inner hole of the mount, and a top end of the cylinder is provided a cylinder inlet; the cylinder is a hollow valve chamber;
  • valve needle the valve needle is assembled on the mounting seat through a valve cavity of each of the barrels;
  • a nozzle the nozzle is disposed at an end of each of the barrel extending from one end of the mounting seat, and the nozzle tail is provided with a nozzle hole;
  • the gap between the valve needle and the valve cavity forms a discharge passage
  • the discharge passage communicates with a discharge manifold
  • the nozzle hole communicates with the discharge passage
  • the diameter of each of the nozzle holes is different.
  • the apertures of the nozzle holes are arranged from small to large.
  • the cylinder body is axially moved in the inner hole of the mounting seat by a fluid force transmission method.
  • the upper and lower sections of the inner hole of the mounting seat are respectively provided with an upper sealing member and a lower sealing member in contact with the outer peripheral edge of the upper portion of the upper portion of the cylinder and the outer peripheral edge of the lower portion.
  • the cylinder is provided with a cylindrical cylinder with an enlarged diameter in a middle portion between the upper seal and the lower seal.
  • At least one annular groove is disposed on the cylindrical side wall of the cylinder.
  • the mounting seat is segmented, and each segment is locked and fixed by a fastening bolt.
  • the fastening bolts can be located inside the mount to lock the sections from the inside.
  • the annular groove is filled with a sliding sealing material, and the cylinder is sealed and slidably connected with the inner hole of the mounting seat.
  • the sliding sealing material is a solid sliding sealing material.
  • the solid sliding sealing material is expanded graphite.
  • first fluid chamber between the cylinder cylinder and the upper seal
  • second fluid chamber between the cylinder cylinder and the lower seal
  • the first fluid chamber is connected to the first fluid valve through the first fluid through hole.
  • the second fluid chamber is connected to the second fluid valve through the second fluid through hole.
  • At least one positioning bolt is connected to the top or one side of the valve needle, and the positioning bolt fixes the valve needle to the upper end surface of the inner hole of the mounting seat.
  • other positioning means can be used to secure the valve needle to the mounting seat, or the upper section of the valve needle can form a unitary structure directly with the mounting seat.
  • the positioning screw extends from the outside of the mounting seat into the mounting seat and is locked with the top of the valve needle.
  • the upper portion of the cylinder is provided with a limiting through slot, and the limiting through slot is slidingly engaged with the limit button on the top side of the valve needle to align the inlet of the cylinder with the discharge opening .
  • the outer periphery of the mounting seat is provided with a heating device.
  • the heating device is an electric heating device.
  • the upper portion of the mounting seat is further provided with a feeding channel; the feeding channel is further provided with a screw The lower end of the feed channel is sequentially connected to the discharge manifold and the cylinder feed port.
  • the tail cone of the valve needle is enlarged to block the nozzle hole, and the enlarged diameter thereof is adapted to the nozzle aperture.
  • the nozzle is provided with a stepped surface or a tapered surface.
  • the stepped surface or the tapered surface is in contact with the tapered surface of the valve needle; and the nozzle is disengaged when the nozzle is snaking.
  • the effective flow area of the nozzle hole is continuously changed, and the flow rate of the nozzle hole can be adjusted from zero to the maximum value.
  • the cylinder is fixedly mounted on the mounting seat, and the valve needle moves up and down in a valve cavity of the cylinder, and blocks the lower limit position of the valve needle moving stroke.
  • the nozzle hole can adjust the flow rate of the nozzle hole from zero to the maximum during the moving stroke.
  • the cylinder is provided with four, and the valve needle matched with the cylinder is also provided with four.
  • the method further includes a pressurized gas passage, and further comprising a surrounding air chamber surrounding the outer wall of the cylinder and disposed on the inner side wall of the inner hole of the mounting seat, wherein one end of the pressure gas passage communicates with the outside The other end communicates with the surrounding air chamber, and continuously presses the pressure gas into the surrounding air chamber through the pressure gas passage, and the pressure of the pressure gas is greater than or equal to the pressure of the molten material in the discharge passage, so that the molten material cannot be printed from the molten material.
  • the outer wall of the cylinder and the inner hole of the mounting seat flow out.
  • a plurality of pressure gas passages and a surrounding air chamber may be disposed along the axial direction of the cylinder.
  • a plurality of gas seal rings are formed on the outer wall of the cylinder. Solve the problem that the pressure of a single surrounding air chamber is too fast, and the stability and reliability are better.
  • the present invention also provides a nozzle valve control system, including:
  • a fluid source under the control of the control circuit, a controlled pressure fluid is introduced into the second fluid chamber and the first fluid chamber to drive the cylinder up and down to achieve the closing of the nozzle.
  • the fluid source supplies a gas such as nitrogen, air or other inert gas.
  • the nozzle diameter can be switched, the fine outer contour ⁇ is printed, and the small-caliber nozzle is switched.
  • the use is larger than the small-caliber nozzle.
  • the caliber nozzle increases the printing speed several times.
  • the printing material cuts the material from the end of the nozzle hole by the mechanical force between the valve needle and the nozzle, and maintains the internal pressure so as not to change due to material leakage.
  • the blank area is reprinted, and there is no need to rebuild the pressure to make the print more stable.
  • the invention adopts fluid force transmission control, and the fluid can be gas, liquid, liquid metal, flowable powder, flowable particles, etc., and the fluid valve can remotely control multiple nozzles away from the printed high temperature zone. Closed.
  • a plurality of channels can be simultaneously ejected for 3D printing materials, which can greatly improve the printing speed; There are several modes, two adjacent channels are discharged simultaneously to accelerate the filling; the adjacent three channels are discharged simultaneously to accelerate the filling; two or three channels of the interval are simultaneously discharged to accelerate Filling; All channels are discharged simultaneously to accelerate the filling; After accelerating the filling, the nozzles can be controlled to be slammed and closed, such as near the end of filling, and the nozzles with larger diameters are successively closed.
  • the mounting seat of the invention adopts a segmented arrangement to facilitate installation of expanded graphite, and the use of expanded graphite as a sliding sealing material is very reliable, the telescopic nozzle valve is operated at a high temperature, and the common sealing material is difficult to be at a high temperature. Stable presence, the pre-expansion expansion of expanded graphite produces a constant pressure on the sealing part, and can act as a solid lubricant to reduce the friction. When the sealing surface wears, the expansion of the expanded graphite will automatically compensate the sealing surface. Expanded graphite can achieve a reliable seal for a long time.
  • the invention has good stability, good reliability, convenient operation and use, novel design, strong practicability and easy application.
  • FIG. 1 is a cross-sectional view showing a multi-channel telescopic nozzle valve according to an embodiment of the present invention
  • Figure 2 is a bottom plan view of Figure 1;
  • Figure 3 is a partial cross-sectional view of the portion A of Figure 1;
  • mount 10 feed channel 11; discharge manifold 111; screw 112;
  • valve needle 30 positioning bolt 31; limit button 32;
  • a discharge passage 40 a discharge passage 40; a cylinder inlet port 401; a limit through slot 402;
  • a first fluid chamber 51 a first fluid through hole 511; a second fluid chamber 52; a second fluid through hole 521;
  • Heating device 80 [0070] Heating device 80.
  • the terms “installation”, “connected”, “connected”, “fixed” and the like are to be understood broadly, and may be, for example, a fixed connection or a Removable connection, or integral connection; can be mechanical connection or electrical connection; it can be directly connected or indirectly connected through an intermediate medium, which can be the internal communication between the two components.
  • the specific meanings of the above terms in the present invention can be understood on a case-by-case basis.
  • the present invention provides a multi-channel telescopic nozzle valve for 3D printing, which solves the problem that the nozzle 60 can not be switched during printing, and includes a mounting seat 10, a cylinder 20, and a valve needle.
  • a nozzle 60 wherein the mounting seat 10 has one or a plurality of inner holes distributed along the axial direction thereof, and a top portion or a side surface of each of the inner holes has a discharge port 111;
  • the moving body is installed in each inner hole of the mounting base 10, the cylindrical body 20 protrudes from the mounting end 10, and the top end of each of the cylindrical bodies 20 is opposite to the discharging opening 111.
  • each of the cylinders 20 is provided with a valve chamber disposed along an axial direction thereof; each of the valve needles 30 passes through a corresponding valve cavity of the cylinder 20 and is fixed Mounted on the mounting base 10, a gap between the valve needle 30 and the valve cavity forms a discharge passage 40 that is electrically connected to the cylinder inlet 401; the nozzle 60 is disposed in each of the cylinders
  • the body 20 extends beyond the end of the mounting end 10, and the nozzle 60 is provided with a nozzle hole 601 at the end.
  • the various components of the present invention may be formed from a metal such as iron or other alloy material.
  • the nozzle 60 is screwed to the barrel 20. In order to increase the capacity of the feed passage 11, the diameter of the middle portion of the valve needle 30 is reduced, and of course, the inner diameter of the middle portion of the inner wall of the cylinder can be increased to achieve the same function.
  • the present invention is suitable for 3D printers.
  • the material supply mechanism can also be used in other spray equipment.
  • the present invention can be used in combination with a material extruder, and the use of the existing 3D printing extruder in combination with the telescopic nozzle 60 of the present invention is within the scope of the present invention.
  • the diameter of each of the nozzle holes 601 is different.
  • the small-diameter nozzle 60 has a high printing precision, and the large-diameter nozzle 60 has a high discharging speed.
  • the apertures of the nozzle holes 601 are arranged from small to large.
  • the apertures of the plurality of nozzle holes 601 are arranged in a sequence of equal or a series in the direction of the right or the reverse or the direction of the straight line.
  • nozzles 60 may be arranged in a linear direction; they may also be arranged in a ring shape, or three may be distributed on the circumference and another nozzle 60 may be distributed at the dots; four nozzles 60
  • the caliber can be 2mm, 4mm, 6mm, 8mm; it can also be 2mm, 4mm, 8mm, 16mm.
  • the arrangement of the four nozzles 60 is arranged in the order of 2mm, 4mm, 6mm, 8mm or 2mm, 4mm, 8mm, 16mm; if the four nozzles 60 are generally arranged in a ring shape, the needles or the reverse needles are In the direction, the apertures of the four nozzles 60 are arranged in the order of 2mm, 4mm, 6mm, 8mm or 2mm, 4mm, 8mm, 16mm; if three are distributed on the circumference and the other nozzle 60 is distributed at the circle, the circumference The three nozzles 60 are arranged in the order of 2mm, 4mm, 6mm or 2mm, 4mm, 8mm according to the direction of the needle or the reverse needle, and the dot is 8mm or 16mm.
  • nozzle holes 601 of the four nozzles 60 are respectively named as nozzle holes 601 caliber A
  • nozzle hole 601 caliber B nozzle hole 601 caliber B
  • nozzle hole 601 caliber C nozzle hole 601 caliber D
  • diameter of the four nozzles 60 may be:
  • nozzle hole 601 caliber A nozzle hole 601 caliber B ⁇ nozzle hole 601 caliber C ⁇ nozzle hole 601 caliber D;
  • the diameter of the nozzle 60 may be 2 mm, 4 mm, 8 mm, 16 mm, 32 mm or 2 mm, 4 mm, 6 mm, 8 mm, 10 mm.
  • nozzles 60 are provided and divided into two groups, each group including four nozzles 60 having the second change in diameter.
  • another group may be used. Instead, it is used to achieve redundancy.
  • the number of small-diameter nozzles 60 that are easily blocked can be set to a plurality of, increasing the reliability of the operation of the device.
  • the same diameter can be activated. The nozzle 60 keeps the printing process continuous.
  • the five nozzles 60 is provided, which is a diameter of the other points 1 J 2mm, 2mm, 4mm, 6mm, 8mm or 2mm, 2mm, 4mm, 8mm, 16m m. It is within the scope of the present invention to provide a plurality of sets of nozzles 60 on the nozzles of the nozzles 60 for enhancing redundancy and enhancing the reliability of the apparatus.
  • the movement mode of the cylinder 20 is further limited: the cylinder 20 is axially moved in the inner hole of the mounting seat 10 by pneumatic or hydraulic means. Further, the inner hole The cross section is circular.
  • the hydraulic mode can be hydraulic oil or liquid metal or flowable powder or flowable particles. Pneumatic method is the most preferred method. At high temperatures, the gas is not easily decomposed and deteriorated by heat; if air is used.
  • the telescopic nozzle 60 of the present invention realizes the switching of the nozzle 60 diameter, and can simultaneously realize the concurrent multi-channel material supply. .
  • the upper and lower sections of the inner hole of the mounting seat 10 are respectively provided with an upper sealing member 201 and a lower sealing member 202 in contact with the outer peripheral edge of the upper portion of the upper portion of the cylindrical body 20 and the outer peripheral edge of the lower portion.
  • the cylinder 20 has a cylindrical cylinder 21 of enlarged diameter in the middle between the upper seal member 201 and the lower seal member 202 (the concrete tube is a piston). At least one annular groove 211 is defined in the side wall of the cylinder cylinder 21.
  • the upper seal member 201 and the lower seal member 202 are grooves filled with a solid sliding sealing material, such as filled expanded graphite.
  • the number of the cylindrical cylinders 21 can also be set to several.
  • annular grooves 211 may be disposed on the cylindrical cylinder 21, and the depth and width of each annular groove 211 are not particularly limited, and the shape of the annular groove 211 It can also be unregulated 1J.
  • the annular groove 211 has a circular arc shape, a V shape or the like.
  • two annular grooves 211 are disposed on the side wall of the cylinder cylinder 21 at intervals. Further, the shapes of the two annular grooves 211 are identical.
  • the annular groove 211 is filled with a sliding sealing material to seal and slidably connect the cylindrical body 20 with the inner hole of the mounting seat 10.
  • the sliding sealing material is a solid sliding sealing material.
  • the solid sliding seal material is expanded graphite.
  • a first fluid chamber 51 is disposed between the cylinder cylinder 21 and the upper seal 201, and a second fluid chamber 52 is disposed between the cylinder cylinder 21 and the lower seal 202. More specifically, the pressure value in the first fluid chamber 51 is always greater than or equal to the pressure value of the discharge passage 40. Therefore, the printing material in the discharge passage 40 does not leak along the outside of the cylinder 20, and acts as a pressure seal. Function, first fluid chamber 51, second flow The body chamber 52 is a sealed space. When the valve of the telescopic nozzle 60 is operated, the first fluid chamber 51 is always filled with fluid to maintain the sealing performance. Since the fluid pressure of the first fluid chamber 51 is higher than the pressure of the discharge passage 40, the material in the discharge passage 40 does not leak. Achieve the effect of a gas seal or a liquid seal.
  • the second fluid chamber 52 is connected to the fluid source through the second fluid through hole 521, the second fluid chamber 52 has two air pressure states, and the first state is the second fluid chamber.
  • the pressure value of 52 is higher than the pressure value of the first fluid chamber 51.
  • the barrel 20 is in an upward movement state, the nozzle 60 is closed to the valve needle 30 discharge passage 40; the second state is the second fluid
  • the pressure value of the chamber 52 is lower than the pressure value of the first fluid chamber 51.
  • the cylinder 20 is in an extended state, and the discharge passage 40 is opened.
  • the first fluid chamber 51 and the second fluid chamber 52 may be interchanged in position, but the control method thereof is adjusted accordingly.
  • the first fluid chamber 51 is connected to the first fluid valve through the first fluid through hole 511.
  • the second fluid chamber 52 is connected to the second fluid valve through the second fluid through hole 521, and the first fluid through hole 511 and the second fluid through hole 521 are controlled by providing the first fluid valve and the second fluid valve. Closed.
  • At least one positioning bolt 31 (preferably two) is connected to the top or one side of the valve needle 30, and the positioning bolt 31 fixes the valve needle 30 to the The upper end surface of the inner hole of the mount 10.
  • the set screw extends into the mount 10 from the outside of the mount 10 and is locked with the top of the valve needle 30.
  • the upper portion of the cylinder 20 is provided with a limiting through slot 402, and the limiting through slot 4
  • valve needle 30 is slidably engaged with the limit button 32 on the top side of the valve needle 30 for aligning the barrel inlet 401 with the discharge port 111, wherein the valve needle 30 has an inverted L shape as a whole, and the horizontal bend is Limit button 32.
  • the barrel inlet 401 can also be aligned with the guide trough.
  • a heating device 80 is disposed on an outer side of the mount 10.
  • the heating device 80 is an electric heating device 80.
  • a heating device 80 is disposed outside the mounting base 10 for holding the material in the discharge passage 40.
  • the upper portion of the mounting base 10 is further provided with a feeding passage 11; the feeding passage 11 is further provided with a screw 112; the lower end of the feeding passage 11 and the discharging The manifold 111 and the cylinder inlet 401 are sequentially turned on.
  • the tail portion of the valve needle 30 is swollen (eg, in the shape of a spindle) for blocking the nozzle hole 601, and the expanded diameter is adapted to the diameter of the nozzle hole 601, and the enlarged tail portion also has a cone.
  • the end of the valve needle 30 has a tip end.
  • the nozzle 60 is provided with a stepped surface or a tapered surface, and the stepped surface is in line contact or surface contact with the tapered surface of the tail portion of the valve needle 30.
  • the hot material and the nozzle 60 are less likely to stick, preventing the nozzle 60 from being clogged, and the stability of the nozzle 60 is enhanced.
  • the cylinder 20 is provided with four, and the valve needle 30 matched with the cylinder 20 is also provided with four.
  • the cylinders 20 are parallel to each other, but the spacing between the cylinders 20 is not necessarily the same.
  • the mounting seat 10 is arranged in sections, and the adjacent two sections are fixedly connected. That is, the mounting base 10 is disposed in a lamination manner, and a fastening bolt is further disposed inside the mounting base 10 for fixing the mounting base 10. Further, a spacer or a gasket or the like is provided between the respective laminations of the mount 10. In addition, in order to fix the mounting seat 10, the following manners may be adopted: welding between adjacent two segments; or; the mounting seat 10 is arranged in sections, and the adjacent two segments are bolted.
  • the material is dispersed from the discharge manifold 111 to the four discharge passages 40, which substantially realizes a five
  • the function of the valve is one (into four-out).
  • the object of the present invention can also be achieved if the internal structure of the present invention is modified into a five-way valve, which is a conventional modification of the present invention.
  • the present invention also discloses a nozzle 60 valve control system including a control circuit; a fluid source, the fluid source is under the control of the control circuit
  • the two fluid chambers 52 and the first fluid chamber 51 are supplied with a gas for driving the cylinder 20 to move up and down to achieve the closing of the nozzle 60.
  • a pressure measuring device for measuring gas pressure of the second fluid chamber 52 and the first fluid chamber 51; the pressure measuring device is connected to a control circuit, and the control circuit is based on a pressure measuring device The returned parameter feedback controls the pressure values of the second fluid chamber 52 and the first fluid chamber 51, thereby achieving the jacking or retracting state of the barrel 20 and the nozzle 60.
  • the present invention further provides a technical solution: the fluid source is a hydraulic system, and the hydraulic system is controlled by the control circuit to the second fluid chamber 52 and the first fluid chamber 51.
  • the hydraulic oil controls the movement state of the cylinder 20 and the nozzle 60 by controlling the oil pressure values in the second fluid chamber 52 and the first fluid chamber 51.
  • An embodiment of the present invention further includes a signal triggering module, wherein the signal triggering module sends a trigger signal to the control circuit under the trigger of the 3D printing program; the control circuit sends the trigger signal to the first fluid valve and the Or the second fluid valve sends a control signal to specifically control the opening or closing of the first fluid through hole 511 and/or the second fluid through hole 521.
  • the first fluid through hole 511 is maintained in a normally closed state, and the fluid source continuously supplies gas to the first fluid chamber 51 under the control of the control circuit.
  • the pressure value of the first fluid chamber 51 is higher than the actual pressure of the discharge material of the discharge passage 40. More specifically, the pressure value of the first fluid chamber 51 is higher than the upper limit threshold at which the discharge passage 40 can reach the pressure.
  • the cylinder 20 is fixedly mounted on the mounting seat 10, and the valve needle 30 moves up and down in the valve cavity of the cylinder 20, and the valve needle 30
  • the lower limit position of the moving stroke blocks the nozzle hole 601, and the flow rate of the nozzle hole 601 can be adjusted from zero to the maximum during the moving stroke.
  • the cylinder 20 can also be driven by electromagnetic force, and the cylinder 20 can be moved up and down under the driving of electromagnetic force.
  • the tubular body 20 can also be driven by mechanical force, for example, a connecting rod is connected to the side of the cylindrical body 20, and the tubular body 20 is driven up and down by the connecting rod. It is also possible to adopt a transmission method such as a chain, a gear, a screw, or the like, or to apply a simple deformation of a mechanism for reciprocating an engine-driven piston in the prior art to the present invention, and the deformation and transformation of the reciprocating motion of the driving cylinder 20 All are within the scope of protection of the present invention.
  • the present invention provides a technical solution: the pressure gas passage 531 is further included, and the outer wall of the cylinder 20 is disposed on the outer wall of the cylinder 20 and is disposed on the outer wall of the cylinder 20 The inner side wall of the inner hole of the mounting seat 10 surrounds the air chamber 53, one end of the pressure gas passage 531 communicates with the outside, and the other end communicates with the surrounding air chamber 53, and continues to the surrounding air chamber 53 through the pressure gas passage 531.
  • the pressure gas is introduced, and the pressure of the pressure gas is greater than or equal to the pressure of the molten material in the discharge passage 40, so that the molten material cannot flow out from the outer side wall of the cylinder 20 and the inner hole of the mounting seat 10.
  • the chamber 53 is a ring groove that is disposed around the inner side wall of the inner hole of the mount 10. Since the gap between the inner hole of the mounting seat 10 and the outer side wall of the cylinder 20 is small, the gas has a pressure loss through the narrow gap. Therefore, it is assumed that only one pressurized gas passage 531 is provided, and the gas cannot be equalized circumferentially around the outer side wall of the cylindrical body 20. , in turn, can not achieve the ring leakage prevention function.
  • the surrounding gas chamber 53 features are removed and only a pressurized gas passage 531 is provided for gas sealing, as a deterioration scheme of the present invention: increasing the pressure value of the gas introduced from the pressure gas passage 531,
  • the gas pressure in the circumferential direction of the outer wall of the body 20 can be greater than the pressure of the printing material in the molten state of the feed channel 11, and is also within the protection scope of the present invention.
  • the gap between the inner hole of the mount 10 and the outer side wall of the cylinder 20 is increased, the enlarged gap corresponds to the surrounding air chamber 53 as described above, which is a conventional variation and transformation of the present invention, and is also within the scope of the present invention. within.
  • an inert gas or nitrogen may be introduced to prevent the properties of the printed material from changing.
  • a plurality of pressure gas passages 531 and surrounding air chambers 5 3 may be disposed along the axial direction of the cylindrical body 20.
  • the outer side wall of the cylinder 20 is formed with a plurality of gas seal rings.
  • the above description is merely based on the example of air pressure control, and other fluids (such as hydraulic oil, liquid metal, fluid powder, fluid particles, etc.) can be used in the present invention.
  • other fluids such as hydraulic oil, liquid metal, fluid powder, fluid particles, etc.
  • four nozzles 60 are used in the present invention, and the diameter of each nozzle 60 can be set as needed (generally, the series of diameters of the four nozzles 60 are changed)
  • the operating state of a certain cylinder 20 can be controlled by controlling the fluid source, thereby controlling the closing of a certain cylinder 20.
  • the present invention also supports multiple channels and Issue material for higher functionality. Since one of the nozzles 60 extends beyond the other nozzles 60 in the retracted state, the other inoperative nozzles 60 do not interfere with the extruded material, the product to be processed.

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Manufacturing & Machinery (AREA)
  • Materials Engineering (AREA)
  • Coating Apparatus (AREA)

Abstract

L'invention concerne une soupape de buse télescopique multicanal pour une impression 3D, qui comprend des bases de montage (10), des cylindres (20), des aiguilles de soupape (30) et des buses (60). Une section supérieure de chaque base de montage (10) comporte un canal d'alimentation (11), et un ou plusieurs trous internes sont répartis axialement dans une section inférieure de chaque base de montage (10). Une ouverture de ramification d'évacuation (111) est formée dans chaque canal d'alimentation (11) et communique avec l'extrémité supérieure de chaque trou interne, et l'extrémité inférieure de chaque trou interne est ouverte. Les cylindres (20) sont montés de manière correspondante dans les trous internes des bases de montage (10) et s'étendent hors des extrémités d'ouverture des trous internes des bases de montage (10). Les extrémités supérieures des cylindres (20) comportent des orifices d'alimentation de cylindre (401). Des cavités de soupape creuses sont formées dans les cylindres (20). Les aiguilles de soupape (30) pénètrent à travers les cavités de soupape des cylindres (20) à assembler sur les bases de montage (10). Les buses (60) sont disposées au niveau des parties extrémités des extrémités des cylindres (20) s'étendant hors des bases de montage (10), et les parties arrière des buses (60) comportent des trous de buse (601). Un canal d'évacuation (40) est formé par un espace entre chaque aiguille de soupape (30) et la cavité de soupape correspondante, le canal d'évacuation (40) communique avec l'ouverture de ramification d'évacuation correspondante (111). Chaque trou de buse (601) communique avec le canal d'évacuation correspondant (40). Au moyen de la soupape de buse télescopique, les matériaux sont peu susceptibles de fuir ou d'être bloqués, la stabilité est bonne, la fiabilité est bonne, l'utilisation est commode, et l'efficacité de conception d'impression 3D est améliorée.
PCT/CN2016/084392 2016-06-01 2016-06-01 Soupape de buse télescopique multicanal pour impression 3d, et système de commande de soupape de buse Ceased WO2017206127A1 (fr)

Priority Applications (1)

Application Number Priority Date Filing Date Title
PCT/CN2016/084392 WO2017206127A1 (fr) 2016-06-01 2016-06-01 Soupape de buse télescopique multicanal pour impression 3d, et système de commande de soupape de buse

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/CN2016/084392 WO2017206127A1 (fr) 2016-06-01 2016-06-01 Soupape de buse télescopique multicanal pour impression 3d, et système de commande de soupape de buse

Publications (1)

Publication Number Publication Date
WO2017206127A1 true WO2017206127A1 (fr) 2017-12-07

Family

ID=60479428

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2016/084392 Ceased WO2017206127A1 (fr) 2016-06-01 2016-06-01 Soupape de buse télescopique multicanal pour impression 3d, et système de commande de soupape de buse

Country Status (1)

Country Link
WO (1) WO2017206127A1 (fr)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2021017415A1 (fr) * 2019-07-29 2021-02-04 华南理工大学 Tête d'impression de matériau liquide pour imprimante 3d
WO2022063837A1 (fr) * 2020-09-23 2022-03-31 Kraussmaffei Technologies Gmbh Procédé et appareil de fabrication additive d'un produit

Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104924612A (zh) * 2015-05-22 2015-09-23 浙江大学 一种针阀调节喷嘴
CN204773631U (zh) * 2015-07-14 2015-11-18 成都思维智造科技有限公司 一种3d打印机喷头结构
CN205058623U (zh) * 2015-09-09 2016-03-02 马良杰 一种针阀漏嘴3d打印喷头
JP2016068410A (ja) * 2014-09-30 2016-05-09 合同会社Genkei 3dプリンタ用射出ヘッド
CN205238594U (zh) * 2015-12-24 2016-05-18 芜湖市爱三迪电子科技有限公司 一种高速高精度的3d打印机喷嘴
CN105889571A (zh) * 2016-06-01 2016-08-24 深圳万为智能制造科技有限公司 3d打印用多通道伸缩喷嘴阀及喷嘴阀控制系统
CN105922590A (zh) * 2016-06-01 2016-09-07 深圳万为智能制造科技有限公司 3d打印用风嘴及具有风嘴的多通道伸缩喷嘴阀
CN205674492U (zh) * 2016-06-01 2016-11-09 深圳万为智能制造科技有限公司 新型3d打印用风嘴及具有风嘴的多通道伸缩喷嘴阀
CN106079434A (zh) * 2016-06-01 2016-11-09 深圳万为智能制造科技有限公司 3d打印用打印头、控制系统、3d打印机及打印方法
CN205781082U (zh) * 2016-06-01 2016-12-07 深圳万为智能制造科技有限公司 新型3d打印用多通道伸缩喷嘴阀及喷嘴阀控制系统
CN205800202U (zh) * 2016-06-01 2016-12-14 深圳万为智能制造科技有限公司 3d打印用打印头、控制系统及3d打印机

Patent Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2016068410A (ja) * 2014-09-30 2016-05-09 合同会社Genkei 3dプリンタ用射出ヘッド
CN104924612A (zh) * 2015-05-22 2015-09-23 浙江大学 一种针阀调节喷嘴
CN204773631U (zh) * 2015-07-14 2015-11-18 成都思维智造科技有限公司 一种3d打印机喷头结构
CN205058623U (zh) * 2015-09-09 2016-03-02 马良杰 一种针阀漏嘴3d打印喷头
CN205238594U (zh) * 2015-12-24 2016-05-18 芜湖市爱三迪电子科技有限公司 一种高速高精度的3d打印机喷嘴
CN105889571A (zh) * 2016-06-01 2016-08-24 深圳万为智能制造科技有限公司 3d打印用多通道伸缩喷嘴阀及喷嘴阀控制系统
CN105922590A (zh) * 2016-06-01 2016-09-07 深圳万为智能制造科技有限公司 3d打印用风嘴及具有风嘴的多通道伸缩喷嘴阀
CN205674492U (zh) * 2016-06-01 2016-11-09 深圳万为智能制造科技有限公司 新型3d打印用风嘴及具有风嘴的多通道伸缩喷嘴阀
CN106079434A (zh) * 2016-06-01 2016-11-09 深圳万为智能制造科技有限公司 3d打印用打印头、控制系统、3d打印机及打印方法
CN205781082U (zh) * 2016-06-01 2016-12-07 深圳万为智能制造科技有限公司 新型3d打印用多通道伸缩喷嘴阀及喷嘴阀控制系统
CN205800202U (zh) * 2016-06-01 2016-12-14 深圳万为智能制造科技有限公司 3d打印用打印头、控制系统及3d打印机

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2021017415A1 (fr) * 2019-07-29 2021-02-04 华南理工大学 Tête d'impression de matériau liquide pour imprimante 3d
WO2022063837A1 (fr) * 2020-09-23 2022-03-31 Kraussmaffei Technologies Gmbh Procédé et appareil de fabrication additive d'un produit
CN116056872A (zh) * 2020-09-23 2023-05-02 克劳斯玛菲科技有限公司 用于增材制造产品的方法和设备

Similar Documents

Publication Publication Date Title
CN106079434A (zh) 3d打印用打印头、控制系统、3d打印机及打印方法
WO2017206128A1 (fr) Tête d'impression pour impression 3d, système de commande, imprimante 3d et procédé d'impression
CN105922590A (zh) 3d打印用风嘴及具有风嘴的多通道伸缩喷嘴阀
US7803303B2 (en) Methods and apparatus for plugging honeycomb structures
US20200269466A1 (en) Apparatus for extruding honeycomb bodies, methods of assembling apparatus, and methods of manufacturing honeycomb bodies
CN108654935A (zh) 对制品进行加皮的方法
CN205291591U (zh) 一种新型多喷嘴3d打印头及应用该打印头的3d打印机
WO2017206127A1 (fr) Soupape de buse télescopique multicanal pour impression 3d, et système de commande de soupape de buse
CN205674492U (zh) 新型3d打印用风嘴及具有风嘴的多通道伸缩喷嘴阀
CN103817308B (zh) 一种高真空压铸用冲头及用于该冲头的润滑装置
CN205781082U (zh) 新型3d打印用多通道伸缩喷嘴阀及喷嘴阀控制系统
CN105889571B (zh) 3d打印用多通道伸缩喷嘴阀及喷嘴阀控制系统
US6866809B2 (en) Production of moulded articles and apparatus for producing moulded articles
CN114905697B (zh) 注射成型机
CN215849702U (zh) 具有可变尺寸的挤出口的3d打印装置
WO2026045629A1 (fr) Dispositif de coulée sous pression et procédé de coulée sous pression
CN117282943B (zh) 一种低压铸造设备
CN207808398U (zh) 具有内外双冷却系统的薄壁深筒注塑模具
CN107160689B (zh) 金属粉末增材堆积的变流量式立体成型打印机
CN206663463U (zh) 彩色陶瓷3d打印机喷头
WO2017206129A1 (fr) Buse d'air pour impression 3d, et obturateur de buse télescopique à canaux multiples pourvu d'une buse d'air
CN107263854A (zh) 一种双口径、变流量式3d打印机的打印方法
CN111895115A (zh) 一种带有冷却结构的高温锥阀
CN105751457B (zh) 内螺槽螺杆与柱塞同轴式注射成型机
CN205173117U (zh) 中空塑料吹塑成型机口模装置用的油缸结构

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 16903512

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

32PN Ep: public notification in the ep bulletin as address of the adressee cannot be established

Free format text: NOTING OF LOSS OF RIGHTS PURSUANT TO RULE 112(1) EPC (EPO FORM 1205A DATED 28/03/2019)

122 Ep: pct application non-entry in european phase

Ref document number: 16903512

Country of ref document: EP

Kind code of ref document: A1