WO2020163898A1 - Valve - Google Patents
Valve Download PDFInfo
- Publication number
- WO2020163898A1 WO2020163898A1 PCT/AU2020/000017 AU2020000017W WO2020163898A1 WO 2020163898 A1 WO2020163898 A1 WO 2020163898A1 AU 2020000017 W AU2020000017 W AU 2020000017W WO 2020163898 A1 WO2020163898 A1 WO 2020163898A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- valve
- arm
- piston
- float
- valve arm
- 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
Links
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K31/00—Actuating devices; Operating means; Releasing devices
- F16K31/12—Actuating devices; Operating means; Releasing devices actuated by fluid
- F16K31/18—Actuating devices; Operating means; Releasing devices actuated by fluid actuated by a float
- F16K31/20—Actuating devices; Operating means; Releasing devices actuated by fluid actuated by a float actuating a lift valve
- F16K31/24—Actuating devices; Operating means; Releasing devices actuated by fluid actuated by a float actuating a lift valve with a transmission with parts linked together from a single float to a single valve
- F16K31/26—Actuating devices; Operating means; Releasing devices actuated by fluid actuated by a float actuating a lift valve with a transmission with parts linked together from a single float to a single valve with the valve guided for rectilinear movement and the float attached to a pivoted arm
- F16K31/265—Actuating devices; Operating means; Releasing devices actuated by fluid actuated by a float actuating a lift valve with a transmission with parts linked together from a single float to a single valve with the valve guided for rectilinear movement and the float attached to a pivoted arm with a second lever or toggle between the pivoted arm and the valve
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K1/00—Lift valves or globe valves, i.e. cut-off apparatus with closure members having at least a component of their opening and closing motion perpendicular to the closing faces
- F16K1/32—Details
- F16K1/52—Means for additional adjustment of the rate of flow
- F16K1/523—Means for additional adjustment of the rate of flow for limiting the maximum flow rate, using a stop
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K31/00—Actuating devices; Operating means; Releasing devices
- F16K31/12—Actuating devices; Operating means; Releasing devices actuated by fluid
- F16K31/18—Actuating devices; Operating means; Releasing devices actuated by fluid actuated by a float
- F16K31/20—Actuating devices; Operating means; Releasing devices actuated by fluid actuated by a float actuating a lift valve
- F16K31/24—Actuating devices; Operating means; Releasing devices actuated by fluid actuated by a float actuating a lift valve with a transmission with parts linked together from a single float to a single valve
- F16K31/26—Actuating devices; Operating means; Releasing devices actuated by fluid actuated by a float actuating a lift valve with a transmission with parts linked together from a single float to a single valve with the valve guided for rectilinear movement and the float attached to a pivoted arm
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K33/00—Floats for actuation of valves or other apparatus
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05D—SYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
- G05D9/00—Level control, e.g. controlling quantity of material stored in vessel
- G05D9/02—Level control, e.g. controlling quantity of material stored in vessel without auxiliary power
Definitions
- This invention relates to a valve. More particularly, this invention relates to a float valve for controlling water levels in a water storage unit.
- Float valves have been described in which a float arm may be provided in a variety of linear curved and bent configurations to suit the spatial arrangements of a particular water storage unit. However, each described float am is not adapted for a variety of different structural configurations, but is adapted to suit on one particular configuration. Furthermore, float valves have been described in which a float valve body requires an additional hinge location of a valve arm and an additional split pin to stop movement of the valve arm. These features add to the cost of the valve and complexity of the valve assembly. Also, float valves have been described with a small diameter inlet to reduce the flow rate of water through the valve as a valve arm assembly could not handle higher flow rates. This reduction in flow rate of water is undesirable.
- An object of the present invention is to ameliorate one or more of the aforementioned disadvantages of the prior art or to at least provide a useful alternative thereto.
- a valve body including:
- valve arm hinge connecting the valve arm to the valve body, the valve arm being of a type having a remote first end adapted to attach to the float and a second end having a terminal portion adapted to extend beyond the valve arm hinge;
- valve piston adapted to move linearly in the valve piston channel
- the valve piston including a first valve piston end adapted to contact the valve arm and a second valve piston end adapted to form a seal over part of the valve channel to resist or stop flow of fluid through the valve channel
- the second valve piston end being adapted, in a closed position, to apply a sealing force against a pressurised fluid contacting the second valve piston end
- valve piston is adapted to move from an open position to the closed position upon force being applied to the first valve piston end by the valve arm moving from a lower valve arm position to a higher valve arm position thereby being adapted to restrict or stop fluid flow through the valve channel;
- valve arm hinge is positioned so that the second end terminal portion is adapted to abut the valve body contact surface in the open position to limit the rotational travel of the valve arm about the valve arm hinge;
- valve arm hinge mounting member does not include a detent means in the foim of an aperture or stop means that is offset from and parallel to an axis of the valve arm hinge.
- the valve arm may be made of a single piece or multiple pieces.
- the valve arm is made of a single piece.
- the valve arm may substantially or entirely be made of plastic, metal, wood or a composite of different materials.
- the valve arm is made of metal, most preferably stainless steel.
- the valve arm may include a solid cylindrical rod, a hollow cylindrical rod, a square bar, a rectangular bar, a beam with an I shaped cross section, a beam with a T shaped cross section or other supporting structures.
- the valve arm includes a solid cylindrical rod.
- the valve arm may include a bent section, such as cylindrical rod with a bend.
- the valve arm may include an angle section.
- tire valve arm includes a bent section, preferably a bend between 70 degrees and 110 degrees, more preferably between 85 - 95 degrees, and most preferably a bend of 90 - 92 degrees.
- the float level adjuster may be made of a single piece or multiple pieces. Preferably, the float level adjuster is made of a single piece.
- the float level adjuster may be made of materials including metal, plastic, wood or a composite of different materials, Preferably, the float level adjuster is made of metal, most preferably stainless steel.
- the float may be made of a single piece or multiple pieces. Preferably, the float is made of a single piece.
- the float may be made of materials including metal, plastic, wood, rubber, polystyrene or a composite of different materials.
- the float is made of plastic.
- the float may have one or more sealed air cavities inside the float. Preferably, the float has a sealed air cavity inside the float.
- the float may attach to the float level adjuster or the valve arm through a threaded connection, a hole and a pin connection, a cylindrical hole with grub screws, or other interlocking features, Preferably, the float is attached to the float adjuster or valve arm through a threaded connection.
- the valve body may be made of a single piece or multiple pieces.
- the valve body is made of a single piece.
- the valve body may be made of materials including metal, plastic, wood, or a composite of different materials.
- the valve body is made of metal, most preferably stainless steel.
- the valve inlet and outlet may include threads or other connecting features.
- the valve inlet includes a thread.
- the valve outlet doesn’t include any threads or other connecting features.
- the valve channel may include bends such as a 90° bend.
- the valve channel includes a 90° bend.
- the valve chamiel may include smoothed comers and edges to reduce pressure loss through the valve channel.
- the valve channel doesn’t include smoothed comers and edges.
- the valve piston channel may include a cylindrical channel, square shaped channel or a rectangular shaped channel.
- the valve piston channel may include slots to receive features on the valve piston.
- the valve piston chamiel includes a cylindrical channel and does not include slots.
- the valve piston chamiel may form part of the valve channel.
- the valve piston channel forms part of the valve channel.
- the valve arm hinge may include a pin or shaft through holes in the valve arm and in the valve body or a ball or other type of bearing.
- the valve arm hinge includes a pin through holes in the valve body and in the valve am.
- the pin may be a split pin or other types of pins.
- the pin is a split pin.
- the valve body may include features to limit movement of the valve arm along the longitudinal axis of the valve am hinge pin or shaft.
- the valve body includes features to limit movement of the valve am along the longitudinal axis of the valve arm hinge pin.
- the valve piston may be made of one or more pieces. Preferably, the valve piston is made of three pieces.
- the valve piston may be made of materials including metal, plastic, rubber or wood. Preferably, two parts of the valve piston are made of metal, most preferably stainless steel. Preferably, another part of the valve piston is made of rubber.
- the valve piston may include one or more cylindrical portions, square shaped portions, rectangular shaped portions or other features which slide in the valve piston chamiel
- the valve piston may include one or more cylindrical pieces, square shaped pieces, rectangular pieces or other shaped pieces which slide in the valve piston channel. Preferably, the valve piston includes two cylindrical pieces which slide in the valve piston channel.
- the valve body may include other cylindrical channels or slots to receive cylindrical portions or other features on the valve piston.
- the valve body includes other cylindrical channels to receive cylindrical pieces of the valve piston.
- the valve piston may include none, one or more valve piston seals to stop flow through the valve channel.
- the valve piston includes one valve piston seal to stop flow through the valve channel.
- the valve piston seal may be contained within the valve body or the valve piston.
- the valve piston seal is contained within the valve piston.
- the valve piston may form a seal over the valve inlet, valve outlet or part way through the valve channel.
- the valve piston forms a seal part way through the valve channel.
- the valve piston seal may contact a sealing ring surface or other sealing surfaces on the valve body.
- the valve piston seal contacts a sealing ring surface on the valve body.
- the valve piston seal may be made of rubber, silicone, elastic plastic or other elastic materials. Preferably, the valve piston seal is made of rubber.
- the valve piston seal may be attached to other components of the valve piston with a press fit, screw or other attachment methods. Preferably, the valve piston seal is attached to other components of the valve piston with a press fit.
- the valve piston may stop flow of fluid through the valve channel when the valve piston is in the closed position.
- the valve piston may limit the flow of fluid through the valve channel when the valve piston is in the closed position.
- the valve piston stops the flow of fluid through the valve channel when the valve piston is in the closed position.
- the fluid may be water, or other fluids.
- the fluid is water.
- the fluid may have a high pressure or a low pressure.
- the fluid has a high pressure, such as typical mains water pressure.“Pressurised fluid” includes fluid pressurised by natural forces, including gravity.
- the valve arm is adapted to move from a first valve arm position corresponding to the closed position of the valve to a second valve am position corresponding to the open position of the valve.
- the first valve arm position may be an angle of the valve arm wherein the float is above the valve body.
- the first valve arm position may be an angle of the valve am wherein the float is vertically level with the valve body.
- the first valve am position may be an angle of the valve arm wherein the float is below the valve body.
- the first valve arm position is at an angle of the valve arm wherein the float is vertically level with the valve body.
- the second valve am position may be an angle of the valve am wherein the float is above the valve body.
- the second valve am position may be an angle of the valve am wherein the float is vertically level with the valve body.
- the second valve am position may be an angle of the valve am wherein the float is below the valve body.
- the second valve am position is an angle of the valve am wherein the float is below the valve body.
- the second valve arm position may be a range of positions, such as below an angle of the valve arm.
- the second valve arm position is a range of positions below an angle of the valve arm.
- the float is preferably adapted to have enough buoyancy in the fluid to li ft itself and the valve arm.
- the float is preferably operable to be positioned inside a tank.
- the float may have more or less than half the density of the fluid.
- the float has less than half the density of the fluid.
- the float may be attached directly to the first end of the valve arm.
- the float is preferably attached to a float level adjuster.
- the float level adjuster is preferably attached to the second end of the valve arm.
- the float level adjuster preferably includes one or more mounting surfaces, wherein the mounting surfaces connect the float level adjuster to the valve arm.
- the float level adjuster may be oriented parallel with the valve arm.
- the float level adjuster may be orientated perpendicular to the valve arm.
- the float level adjuster may be orientated at other angles to the valve arm.
- the float level adjuster may be able to be orientated at multiple angles to the valve arm.
- the float level adjuster is able to be orientated perpendicular, parallel and at 45 degrees to the valve arm.
- the float level adjuster may include one mounting surface to the valve arm.
- the float level adjuster may include more than one mounting surface to the valve arm.
- the float level adjuster includes three mounting surfaces to the valve arm. The mounting surfaces may be located at multiple locations along the length of the float level adjuster.
- the mounting surfaces may be located at one location on the length of the float level adjuster. Preferably, the mounting surfaces are located at multiple locations along the length of the float level adjuster.
- the float level adjuster may have threads at each end of the float level adjuster. Preferably, the float level adjuster has a single thread at one end of the float level adjuster. Male and female threads at each end of the float level adjuster may fit into each other in series to form a chain of float level adjuster pieces between the valve arm and the float. Matching holes and shafts at each end of the float level adjust may fit into each other in series to form a chain of float level adjuster pieces between the valve arm and the float.
- the valve arm hinge mounting member does not include a detent means in the form of an aperture or stop means that is offset from and parallel to an axis of the valve arm hinge.
- the valve body includes a wall aligned substantially parallel to the axis of the valve arm that impedes the rotation of the terminal portion when the valve arm reaches the open position.
- the second end of the valve arm includes the terminal portion.
- the terminal portion is preferably relative short and is defined as the portion of the second end that is on the other side of the valve hinge 14, being the portion between the valve hinge and the very end of the second end.
- the length of the terminal portion may be defined by a distance B.
- the dimension of B 0.7X.
- the dimension of A 0.7X.
- the ratio of dimension A to dimension B is preferably 1 :1.
- the ratios of (1) the diameter of the valve arm 20 to (2) dimension A to (3) dimension B is advantageously 10:7:7.
- the second end of the valve arm may be adapted to contact the valve body at a valve arm angle.
- the valve arm angle Q is an angle between the valve arm in the open position and the valve arm in the closed position and provides an expression of the extent of rotation of the valve arm between the open and closed positions.
- the valve arm cannot go below the second open valve arm position.
- the second end of the valve arm may contact the valve body at a valve arm angle so that the movement of the valve arm cannot go beyond the valve arm angle relative to its orientation in the closed position.
- the valve arm angle may be greater, less than or equal to 30° below the horizontal.
- the valve arm angle is between 20° and 40° below the horizontal.
- the valve outlet may be on the top, sides and/or base of the valve body.
- the valve outlet is on the base of the valve body.
- the valve channel is covered by a shroud unitarily formed into the valve body, around the whole valve channel accept the base to stop water exiting the valve channel upwards or to the side.
- FIG. 1 is a perspective view of the valve with the valve arm in a first valve arm position
- FIG. 2 is a front view of the valve with the valve arm in the first valve arm position
- FIG. 3 is a cross section view of the front of the valve with the valve arm in the first valve arm position
- FIG. 4 is a cross section view of the front of the valve with the valve arm in a second valve arm position
- FIG. 5 is a cross section view of the front of the valve inside a tank with the valve arm in the first valve arm position and the fluid at the critical tank fluid level;
- FIG. 6 is a side sectional view of an adjuster according to one aspect
- FIGS. 7a - 7b are perspective view of a prior art valve body and its shroud
- FIGS. 8a, c and d are perspective views of a valve body according to an aspect of the invention
- FIG. 8b is a bottom plan view of the valve body shown in Fig. 8a;
- FIG. 8e is a n axial sectional view of the central cylinder.
- FIG. 8f is side sectional view of the valve body shown in Fig. 8a.
- FIG. 9 is a cross section front view of the valve with the valve arm in the first position.
- a valve 1 that includes a valve device 10, a valve arm 20, a float level adjuster 30 and a float 32,
- the valve 1 includes a valve device 10, a valve arm 20 and a float 32.
- the valve device 10 includes:
- valve body 11 including a valve inlet 13a, a valve outlet 13b, valve channel 15 and a valve piston channel 16a;
- a pivoting connection including a valve arm hinge 14 connecting the valve arm 20 to the valve body 11 ;
- valve piston 12 which moves linearly in the valve piston channel 16a, the valve piston 12 including a second valve piston end 17b adapted to form a seal over part of the valve channel 15 to restrict or stop flow of fluid through the valve channel 15,
- the valve device 10 further includes a first valve piston end 17a which contacts the valve arm 20.
- the valve piston 12 is adapted to move on application of a force by a pressurised fluid to the second valve piston end 17b.
- the movement of the valve arm 20 from a first closed position (Fig. 3) to a second open position (Fig. 4) allows the valve piston 12 to move, under the force applied to the second valve piston end 17b, allowing fluid to flow through the valve channel 15.
- a second end 26 of the valve arm 20 contacts the valve body 11 at a valve arm 20 angle Q so that the valve arm 20 cannot go below the valve arm angle Q.
- the float 32 is adapted, in the first closed position (Fig. 3), to be above the second open position of the float 32 when in the second valve arm position.
- the float 32 is positioned inside a tank 40 and has enough buoyancy in the fluid to lift itself and the valve arm 20;
- valve device 10 is such that, if fluid in the tank 40 goes below a critical tank fluid level, the valve arm 20 is adapted to move from the first valve arm position to the second valve arm position.
- the float 32 may be attached directly to a first end 24 of the valve ann 20 or the float 32 may be attached to the float level adjuster 30.
- the float level adjuster 30 is preferably attached to the second end 26 of the valve arm 20.
- the float level adjuster 30 includes one or more mounting surfaces. The mounting surfaces connect the float level adjuster 30 to the valve arm
- the valve arm hinge 14 connects the valve arm 20 to the valve body 11 through a pivoting connection.
- valve piston 12 moves linearly in the valve piston channel 16a and includes the second valve piston end 17b, which can form a seal over part of the valve channel 15 to stop flow of fluid 52 through the valve channel 15.
- a pressurised fluid may contact and apply a force to the second valve piston end 17b.
- valve arm 20 Movement of the valve arm 20 from the first closed valve arm position (as seen in FIG. 1 - 3 and FIG. 5 where the float 32 is elevated) to a second open valve arm position (as seen in FIG. 4 where the float 32 is lowered with the low level of fluid) allows the valve piston 12 to move. Under the force applied to the second valve piston end 17b, the valve piston 12 is adapted to move from the first closed position (FIGS. 1 - 3 and 5) to the second open position (FIG. 4) and allows fluid 52 to flow through the valve channel 15.
- the float 32 in the first closed valve arm position (Fig.5) is above the position of the float 32 when in the second valve arm position (Fig. 4)‘.
- the adjuster 30 is optionally fixed relative to the float 32 in one desired configuration of the many possibilities. This enables the float 32 to be positioned, relative to the valve body 11, at any one of a multiple of different orientations.
- the float 32 has enough buoyancy in the fluid 52 to lift itself, the float level adjuster 30, and the valve arm 20 through an arc within its range of positions inside a water storage unit, such as a tank 40. If fluid 52 in the tank 40 goes below a critical tank fluid level 54, the valve arm 20 is adapted to move from the first valve arm position to the second valve arm position.
- the adjuster 30 can be inserted between components at either of two or more alternative locations, so that the elevation or positioning of the float 32 relative to the valve 11 can be changed to suit a particular in situ application.
- the adjuster 30 can be attached between the float 32 and another float level adjuster 30, or between the valve ann 20 and the float 32. Alternatively, the float 32 is attached directly to the valve arm 20.
- the valve 1 is placed inside a tank 40 when in use as seen in FIG. 5.
- a hose or other water pipe fitting is connected to the valve inlet 13a through a valve body thread 4.
- the valve body thread 4 may be made in a range of sizes, for example 2 inch, 1 1 ⁇ 2 inch, 1 1 ⁇ 4 inch, 1 inch, and , 3 ⁇ 4 inch.
- This supplies pressurised water to the valve inlet 13a.
- This pressurised water applies pressure to the valve piston 12 but the valve piston 12 does not move from the closed position (seen in FIG. 1-3 and FIG. 5) when the valve arm 20 is in the first valve arm position. This is because a valve arm contact surface 22 is contacting the first valve piston end 17a when the valve arm 20 is in the first valve arm position.
- a valve piston seal 5a makes a seal over the valve channel sealing surface 2. This stops any water coming through the valve channel 15 when the valve piston 12 is in the closed position.
- the valve piston 12 is made of 3 parts, the valve piston seal 5a, a valve piston body 5b and a valve piston insert 5c.
- the valve piston seal 5a is attached to the valve piston body 5b through a press fit and the valve piston body 5b is not attached to the valve piston insert 5c (they only contact each other).
- the valve piston insert 5c keeps the valve piston body 5b inside the valve body 11 due to a spigot 8 on the valve piston body 5b.
- the spigot 8 is kept inside a hole 9 in the valve piston insert 5c.
- the valve piston insert 5c is kept inside the valve piston secondary channel 16b because the valve arm contact surface 22 blocks the path of the valve piston insert 5c that would otherwise tend toward exiting the valve piston secondary channel 16b.
- the valve arm 20 is adapted not to go below the valve arm angle Q.
- the valve arm 20 is adapted not to go above the horizontal so that the valve arm contact surface 22 is adapted to stop the valve piston insert 5c exiting the valve piston secondary channel 16b.
- the valve arm 20 angle Q is in a range of between 20° and 40° below the horizontal.
- the second end 26 has a short terminal portion 25 on the other side of the valve hinge 14.
- the length of the terminal portion 25 is defined by a distance B, If the diameter of the valve arm 20 is X, the distance B (dimension B in Fig 9) from a centreline extending coaxially through a pair of aligned holes 28b in the valve body 11 (the axis of the holes 28b) to the second hinged end 26 of the valve arm 20 is advantageously 0.7 X.
- the distance (dimension A) from the centreline through the two holes 28b in the valve body 11 to the valve body contact surface 7 is advantageously 0.7X.
- the ratio of dimension A to dimension B is advantageously 1:1.
- the ratios of (1) the diameter of the valve arm 20 to (2) dimension A to (3) dimension B is advantageously 10:7:7.
- valve arm 20 When the water level in the tank 40 is above the critical tank fluid level 54, the valve arm 20 is in the first valve arm position. This is due to the buoyancy of the float 32 pushing the valve arm 20 upwards. The valve arm 20 doesn’t go above the first valve arm position due to the valve arm contact surface 22 contacting the first valve piston end 17a
- valve arm 20 moves downwards to the second valve arm position (which is any position of the valve arm 20 below the first valve arm position).
- the valve arm 20 pivots about the valve arm hinge 14 as it moves.
- the valve arm hinge 14 includes a valve body pin 18 inserted through two holes 28b in the valve body 11 and one hole 28b in the valve arm 20. Motion of the valve arm 20 along the longitudinal axis of the valve body pin 18 is contained through the agency of a first and second valve body plates 19a, 19b that, as can be determined by considering the structure and shape of the valve body 11,111 shown in Figs.
- valve arm 20 is shown in the form of a rod including the second valve arm end 26.
- the valve arm 20 does not fall below 45 degrees below the horizontal even when the water level is below the valve 1 This is because the terminal portion 25 at the very end of the rod 6 contacts the valve body contact surface 7 when the valve arm 20 reaches the valve arm angle Q from or relative to the valve arm 20 in the closed position, which may correspond to the main linear section 21 being aligned horizontally.
- the valve arm 20 advantageously does not fall below the valve arm angle Q during operation because, otherwise, the valve piston insert 5c will fall out. That is the extent of rotation of the valve arm 20 is limited to retain the valve piston 12 with the valve piston secondary channel 16b.
- the valve arm 20 comprises a main linear section 21 extending between the float level adjuster 30 and a bend 23 transitioning the valve arm 20 through from the linear section 21 and the second 26.
- the linear section 21 and the second end 26 are set at a substantially normal angle relative to each other, and particularly are preferably set at an angle of about 90 - 90°.
- the lengths of the straight sections of the valve arm 20 either side of the 90 - 92° bend 23 are configured and dimensioned such that the vertical force applied by the float 32 onto the valve arm 20 is enough to hold up to 1000 kPa of water pressure in the valve inlet 13a.
- the force applied to the valve piston 12 from the valve arm 20 is dependant on the lengths of the straight sections of the valve arm 20 either side of the 90 - 92° bend 23 as well as the depth of water in the tank 40.
- the relative length of the main linear section 21 and a leverage distance L between the valve ann contact surface and the valve arm hinge 14 determines the leverage applied through the second end 26 that is derivable from the float’s 32 force applied to the first end 24.
- Having a long main linear section 21 and a short leverage distance L means that a corresponding large force can be applied through the valve ann 20 to the valve piston insert 5c whilst accommodating only a short range of axial travel of the valve piston 12.
- 1000 kPa is the industry standard maximum pressure for use with valve devices of the type embodying the invention, as exemplified in the form of the valve device 10.
- the prior art solution to the problem of dealing with high pressures is to reduce the relative diameter of the inlet to deal with high pressures in the valve inlet. However, this reduces the potential flow rate through the valve body.
- the current valve device 10 delivers a flow rate of 4 litres per second at 200 kPa.
- the current valve device 10 has an inlet 13a internal diameter approximately 2 - 3 times the corresponding prior art inlet diameter the current valve device 10 has an inlet 13a internal diameter of approximately 25mm compared to prior art internal inlet diameters as low as 8mm.
- the hinged second end 26 of the valve arm 20 moves through an arc in a vertical plane.
- the arc is very small, such that, in effect, the main linear section 21 of the valve arm 20 moves substantially horizontally.
- the 90 - 92° bend 23 in the valve arm 20 joins the second end 26 of the valve arm 20 to the main linear section 21. Therefore, as the valve arm 20 moves downwards from the first valve arm position to the second valve arm position, the valve arm contact surface 22 (which is on the second hinged end 26 of the valve arm 20) moves away from the valve piston 12 (in rotational direction D2).
- the plates 19a,b form a pair of spaced and parallel flanges that extend rearwardly of the valve body 11.
- the plates 19a, b form a channel or corridor within which the hinged second end 26 of the valve arm 20 reciprocates through a limited rotational arc.
- the reciprocation of the hinged second end 26 is governed by the valve piston end 17a and its action on the contact surface 22,
- the contact surface may be cam-shaped or ramped to provide a smooth and curved surface over which the first valve piston end 17a rides.
- the outward curve in the bend 23 terminates at the valve arm contact surface 22.
- the bend 23 has an outward radius R.
- the outward curve of the bend 23 can be used as a cam surface to vary the relationship between the extent of rotation of the second end 26 about the valve arm hinge 14 relative to the extent of travel of the valve piston 12, thereby enabling the relationship to be varied from a proportionally linear relationship.
- the valve arm contact surface 22 is in the region of a linear portion of the second arm 26.
- the valve arm 20 In the first closed position, the valve arm 20 may be oriented in situ substantially horizontally.
- the linear portion of the second end 26 may be inclined away or offset from the vertical away from valve piston insert 5c.
- the first valve piston end 17a is rounded at its end, preferably in a hemispherical shape. Accordingly, as the valve ann contact surface 22 rotates away from the valve inlet 13a, the lower half of first valve piston end 17a bears continually on the valve arm contact surface 22.
- valve piston 12 Since the valve piston 12 is under pressure from pressurized water in the valve inlet 13a, as the valve arm contact surface 22 moves in the rotational direction D2, the valve piston 12 correspondingly moves in a linear direction D1.
- the motion of the valve piston 12 is limited to the longitudinal axis of the valve piston 12 through the valve piston channel 16a and the valve piston secondary channel 16b. As the valve piston 12 moves in linear direction Dl, water can flow through the valve channel 15.
- valve arm 20 is back to the first valve arm position (see Fig. 5) since the float 32 and the water level in the tank 40 determine the position of the valve arm 20.
- the valve piston 12 has moved back into the closed position and stops the flow of water through the valve channel 15 again. Therefore, the valve 1 is adapted to maintain the water level in the tank 40 at the critical tank fluid level 54.
- the float level adjuster 30 includes one or more mounting surfaces 31.
- the mounting surfaces 31 may be in the form of mounting surfaces 31a, 31b, 31c. Referring to Fig. 6, in this embodiment the mounting surfaces of a float level adjustor 30 are in the form of bores 131 a-c.
- the mounting surfaces 31a, 31b, 31c connect the float level adjuster 30 to the valve arm 20 at the remote first end 24 of the valve arm 20.
- the float level adjuster 30 has a male thread 38 at an upper end extending coaxially with the main body portion 130 of the adjustor 30.
- the male thread 38 is attached to the float 32 by a female thread 39 in or of the float 32 that engages with the adjuster’s male thread 38.
- the float 32 can be positioned higher or lower relative to the valve arm 20 by mounting the valve arm 20 to the float level adjuster 30 at the first mounting surface 31a, the second mounting surface 3 lb or the third mounting surface 31c (or by mounting the float 32 directly to the valve arm 20, whereby the remote first end is male threaded or otherwise presents a spigot receivable in a bore in the float 32).
- the various mounting surface 31 a-c options enable a change of the position of the float 32 relative to the position of the valve arm 20 and enable a consistent positioning of the valve body 11 relative to the tank 40 for ease of installation.
- the float level adjuster 30 may include multiple pieces (i.e. multiple adjuster modules).
- the multiple adjusters 30 can be mounted in series.
- the multiple adjusters 30 can form a chain or branched array of like adjusters 30.. These can be used to raise or lower the float 32 to a desired position relative to the valve arm 20 or the valve body 11.
- the valve arm 20 at its first remote end 24 is attached to the float level adjuster 30 through a float level adjuster pin 34.
- the pin 34 may be in the form of a split pin.
- the pin 34 can be inserted through float level adjuster arm holes 36a, 36b and a first valve arm hole 28a in the first end 24 of the valve arm 20.
- the float level adjuster 30 is kept from rotating relative to the valve arm 20.
- the first, second or third mounting surface 31a, 31b, 31- c may be threadably or otherwise fixedly mounted to the first end 24 of the valve arm 20.
- the mounting surfaces 31 are in the form of a series of bores 131 formed in or through the adjuster body 130 of the adjuster 30.
- the adjuster body 130 comprises a substantially cylindrical shaft 133 having a longitudinal axis E,
- the shaft 133 is threaded at an engagement end 138 to form the threaded spigot 38 that may be used to connect to the float 32 or to another like piece in the form of a duplicate of the adjuster 30.
- the first end 24 of the valve arm 20 has a longitudinal axis B.
- the shaft 133 is substantially hollow and each of the bores 131 are formed in the cylindrical wall 135 of the shaft 133.
- the bores 131 each comprise a bore axis A 1-2 , E,
- the first end 24 of the valve arm 20 is advantageously a snug fit within any one of the bores 131a-c. Insertion of the first end 24 of the valve arm 20 into to one of the bores 131 enables the float’s 32 female engagement recess or member 39 to extend at either an obtuse, acute, right angle or parallel relative to the main linear section 21 of the valve arm 20.
- the bore axis Ai is aligned at approximately 30 - 60°, still more preferably at 40 - 50°, and most preferably at about 45°, relative to a longitudinal axis E of the adjuster 30.
- the bore axis A2 is preferably aligned substantially normal to the longitudinal axis E
- the float 32 is attached to the float level adjuster 30 with the male float level adjuster threaded spigot 38 by attaching the spigot 38 to the female float thread 39.
- Prior art floats have been described as being mounted directly to a male valve arm thread on a first remote end of a valve arm.
- the adjuster 30 according to a preferred aspect of the invention utilises these traditional threaded engagement means to be interposed in fixed engagement between the valve arm 20 and the float 32.
- valve body V included an inlet T at the front f of the valve body V, and left u and a right hand side 1 valve outlets in an intermediate section B of the valve body V.
- the valve outlets u, 1 are ostensibly side openings formed in the sides of the solid valve body V of the intermediate section B.
- the prior valve body V required three apertures a to provide for a hinge pin, and a pair of alternative locations for a stop pin, depending on whether the valve V was to be set in situ for a high pressure or a low pressure application.
- the present valve body 1 1 of an embodiment of the invention includes a single pair of opposed apertures through which hinge pin 18 extends and is located.
- the hinge pin 18 provides the hinge about which the second end 26 of the valve arm 20 rotates.
- the contact surface 22 of the hinged end 26 transitions through the bend or elbow 23 to the main linear section 21 of the valve arm 20.
- the contact surface 22 is positioned below the elbow 23 on the second end 26 of the valve arm 20.
- valve body 11 in the valve body 1 1 made according to an embodiment of the invention, the valve body 11 is installed in the orientation shown in Fig, 2.
- the valve body 11 includes a central cylinder 1 1 1 that provides an upper cover and inner deflection surface to deflect upward flow and spray and redirect it downwardly through the outlet 13b.
- the valve body 11 therefore has a single, downwardly facing outlet 13 b.
- the location of the valve outlet 13b on the base of the valve body 11 directs the flow towards the water in the tank 40 in the case where the valve body is above the water level in the tank 40. This keeps the water from spraying outside the tank 40.
- valve body V included thicker walls surrounding the valve piston channel 16a.
- the walls surrounding the valve piston channel 16a on the present valve body 11 are thinner.
- the thickness of the wall 112 of the central cylinder 111 is in the range of between 3 and 10% of the outer diameter of the cylinder 111. More preferably, the wall 112 has a thickness of between 5 - 7.5% of the outer diameter of the cylinder 111.
- the plates 19a,b may have a thickness similar to that of the wall 112. The reduced thickness of the walls or plates 112,19a,b is counterintuitive as it was thought to diminish the capacity of the valve 1 to accommodate high water flow and high pressures and lead to greater failure rates.
- valve body 1 1 is reduced costs, while structural integrity of the valve body 1 1 is enhanced by the addition of the of the central cylinder 1 11.
- This surprising saving in materials in the walls and plates 112, 19a, b can be achieved because the extra material used to form the central cylinder 111 strengthens and gives rigidity to the overall valve body 111.
- the central cylinder 11 1 includes an upper semi-cylindrical shroud that covers between about 70 - 80%, and more particularly 74 - 76%, of the top portion of the valve body 1 1 central region defining the outlet 13b, as shown best in Fig 8f
- the shroud forms a or the wall of the valve channel 15.
- the plates 19a,b are tapered inwardly and downwardly towards the hinge 14 along a rear wall 119 extending from an upper protruding nose 116.
- the upper surface of the nose 1 16 is substantially coplanar with the upper surface of the central cylinder 111.
- the inner surfaces of plates 19a,b include a substantially horizontal pair of opposed grooves 115a that are axially parallel and extend in a direction substantially parallel to a longitudinal axis of the second piston channel 16b.
- the inner surfaces of plates 19a,b further include a substantially vertical pair of opposed grooves 115b located frontward, preferably immediately frontward, of the hinge 14.
- the grooves 1 15a,b act as over centre cam surfaces whereby to register the elbow or bend 23 or an adjacent portion of the valve arm 20 at extreme ends of the rotational range of the valve arm 20.
- the inlet 13a may be varied in diameter to fit a range of standard coupling sizes.
- the inlet 13a may be varied by manufacturing a range of otherwise identical valve bodies 11, distinguished only by the inlet 13a diameter.
- object terms such as“apparatus”,“means”,“device” and “member”, or similar terms, may refer to singular or plural items and are terms intended to refer to a set of properties, functions or characteristics performed by one or more items or components having one or more parts. It is envisaged that where the object term is described as being a unitary object, then a functionally equivalent object having multiple components is considered to fall within the scope of the object term, and similarly, where the object term is described as having multiple components, a functionally equivalent but unitary object is also considered to fall within the scope of the object term, unless the contrary is expressly stated or the context requires otherwise. Where the word“for” is used to qualify a use or application of an object term, the word“for” is only limiting in the sense that the device or component should be“suitable for” that use or application.
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- Float Valves (AREA)
Abstract
Description
Claims
Priority Applications (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US17/427,732 US20220112964A1 (en) | 2019-02-15 | 2020-02-17 | Valve |
| AU2020222394A AU2020222394B2 (en) | 2019-02-15 | 2020-02-17 | Valve |
| CN202080014149.9A CN113423986B (en) | 2019-02-15 | 2020-02-17 | Valve |
| EP20754860.3A EP3924656A4 (en) | 2019-02-15 | 2020-02-17 | VALVE |
| BR112021016105A BR112021016105A2 (en) | 2019-02-15 | 2020-02-17 | Valve |
| CA3128742A CA3128742A1 (en) | 2019-02-15 | 2020-02-17 | Valve |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2019900495 | 2019-02-15 | ||
| AU2019900495A AU2019900495A0 (en) | 2019-02-15 | Valve |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2020163898A1 true WO2020163898A1 (en) | 2020-08-20 |
Family
ID=72043745
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/AU2020/000017 Ceased WO2020163898A1 (en) | 2019-02-15 | 2020-02-17 | Valve |
Country Status (7)
| Country | Link |
|---|---|
| US (1) | US20220112964A1 (en) |
| EP (1) | EP3924656A4 (en) |
| CN (1) | CN113423986B (en) |
| AU (1) | AU2020222394B2 (en) |
| BR (1) | BR112021016105A2 (en) |
| CA (1) | CA3128742A1 (en) |
| WO (1) | WO2020163898A1 (en) |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CA210698S (en) * | 2021-08-31 | 2024-01-24 | Magenta Haze Pty Ltd T/A Cocky Valve | Valve |
Citations (11)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE200384C (en) | 1907-04-28 | 1908-07-16 | Wellmann Carl | Float valve with a lever consisting of two parts that move against each other |
| US906832A (en) * | 1907-12-21 | 1908-12-15 | Charles E Bowers | Ball-cock. |
| GB280340A (en) * | 1926-10-11 | 1927-11-17 | Arthur Parks | Improvements in ball and float valves |
| US1962991A (en) | 1930-12-01 | 1934-06-12 | Frank W Laux | Humidifier valve |
| US2439282A (en) * | 1944-04-10 | 1948-04-06 | Thomas G Beckett | Float valve |
| US2724403A (en) * | 1952-06-27 | 1955-11-22 | Floyd J Connors | Float control device |
| US2827917A (en) | 1955-03-04 | 1958-03-25 | Owen C Cripe | Swivel top float valve |
| US4013092A (en) * | 1972-04-12 | 1977-03-22 | Abraham Isadore Reitman | Twist-lock valve improvement |
| US4631760A (en) | 1984-07-25 | 1986-12-30 | Leishman Graham W | Automatic flushing system |
| US5141405A (en) | 1991-11-20 | 1992-08-25 | Francart Jr Armand | Leak proof, preloaded, high-biasing force float-operated over-center valve actuating mechanism |
| US6142175A (en) * | 1999-06-09 | 2000-11-07 | Ku; Chin-Kuang | Structure of a floating-ball valve |
Family Cites Families (16)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US1677687A (en) * | 1927-03-29 | 1928-07-17 | Reed Dudley | Float valve |
| US2629397A (en) * | 1950-03-03 | 1953-02-24 | Norman F Toadvine | Automatic water valve |
| US2693817A (en) * | 1951-10-13 | 1954-11-09 | Mcdonnell & Miller Inc | Feeder valve |
| US2766770A (en) * | 1952-07-17 | 1956-10-16 | Dickinson Ormond Andrew | Cistern float valves |
| US2722231A (en) * | 1953-03-16 | 1955-11-01 | Arthur D Hansen | Automatic control valve |
| JPS61180080A (en) * | 1984-12-12 | 1986-08-12 | パーク ヒー ヒュン | Float valve |
| GB2176873A (en) * | 1985-06-07 | 1987-01-07 | Barber Eduard & Co Ltd | Float operated valves |
| US4796650A (en) * | 1987-12-01 | 1989-01-10 | Hwang Biing Yih | Structure for a float valve assembly |
| US5205319A (en) * | 1992-03-09 | 1993-04-27 | Chiang Wen Chun | Float-operated valve assembly |
| US5857483A (en) * | 1996-12-19 | 1999-01-12 | Stone, Iii; Harley E. | Plastic float valve |
| US6308729B2 (en) * | 1997-09-08 | 2001-10-30 | K.C. Technologies Ltd. | Filling valve for a pressurized fluid container |
| US6138709A (en) * | 1998-01-27 | 2000-10-31 | Home; William | Overfill protection device |
| KR100459333B1 (en) * | 2001-11-07 | 2004-12-23 | 조진식 | contant water level control valve by difference fluid pressure |
| CN201100420Y (en) * | 2007-08-14 | 2008-08-13 | 孙光锋 | Floating ball valve |
| US8430119B2 (en) * | 2010-04-29 | 2013-04-30 | Nelson Manufacturing Company | Water valve for animal waterer permitting assembly without tools |
| JP5938602B2 (en) * | 2014-05-09 | 2016-06-22 | 株式会社フクハラ | Float type drain trap and drain water discharge method |
-
2020
- 2020-02-17 CN CN202080014149.9A patent/CN113423986B/en active Active
- 2020-02-17 EP EP20754860.3A patent/EP3924656A4/en active Pending
- 2020-02-17 BR BR112021016105A patent/BR112021016105A2/en active Search and Examination
- 2020-02-17 CA CA3128742A patent/CA3128742A1/en active Pending
- 2020-02-17 US US17/427,732 patent/US20220112964A1/en active Pending
- 2020-02-17 WO PCT/AU2020/000017 patent/WO2020163898A1/en not_active Ceased
- 2020-02-17 AU AU2020222394A patent/AU2020222394B2/en active Active
Patent Citations (11)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE200384C (en) | 1907-04-28 | 1908-07-16 | Wellmann Carl | Float valve with a lever consisting of two parts that move against each other |
| US906832A (en) * | 1907-12-21 | 1908-12-15 | Charles E Bowers | Ball-cock. |
| GB280340A (en) * | 1926-10-11 | 1927-11-17 | Arthur Parks | Improvements in ball and float valves |
| US1962991A (en) | 1930-12-01 | 1934-06-12 | Frank W Laux | Humidifier valve |
| US2439282A (en) * | 1944-04-10 | 1948-04-06 | Thomas G Beckett | Float valve |
| US2724403A (en) * | 1952-06-27 | 1955-11-22 | Floyd J Connors | Float control device |
| US2827917A (en) | 1955-03-04 | 1958-03-25 | Owen C Cripe | Swivel top float valve |
| US4013092A (en) * | 1972-04-12 | 1977-03-22 | Abraham Isadore Reitman | Twist-lock valve improvement |
| US4631760A (en) | 1984-07-25 | 1986-12-30 | Leishman Graham W | Automatic flushing system |
| US5141405A (en) | 1991-11-20 | 1992-08-25 | Francart Jr Armand | Leak proof, preloaded, high-biasing force float-operated over-center valve actuating mechanism |
| US6142175A (en) * | 1999-06-09 | 2000-11-07 | Ku; Chin-Kuang | Structure of a floating-ball valve |
Non-Patent Citations (1)
| Title |
|---|
| See also references of EP3924656A4 |
Also Published As
| Publication number | Publication date |
|---|---|
| CN113423986B (en) | 2024-06-07 |
| EP3924656A4 (en) | 2022-11-23 |
| AU2020222394A1 (en) | 2021-10-07 |
| BR112021016105A2 (en) | 2022-01-04 |
| US20220112964A1 (en) | 2022-04-14 |
| CA3128742A1 (en) | 2020-08-20 |
| CN113423986A (en) | 2021-09-21 |
| EP3924656A1 (en) | 2021-12-22 |
| AU2020222394B2 (en) | 2026-01-08 |
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