1. Technical Field
Aspects of this document relate generally to pool cleaning system valve assemblies.
2. Background Art
In conventional pool cleaning system valve assemblies, rotation of the valve assembly is dependent upon water flow through the assembly. The water flow must continue in order to maintain rotation of the impeller and the gearing mechanism. Conventional pool valve assemblies include round pipe fittings connected to the valve. Overlap of the adjacent valve ports with the valve as it rotates is nearly constant. This overlap with adjacent ports reduces the power or pressure of the water flowing through each port because the water flow is split between two ports rather than just flowing directly through one. Furthermore, the footprint of the valve assembly is relatively large and becomes larger with each port added to the round array.
Pool valve assemblies are typically also very difficult to repair and/or remove. This is a result of the coupling of the valve housing, which houses all of the wear surfaces within the valve, directly to the plumbing. When the wear surfaces become damaged and/or broken, the wear parts must be cut off and an entirely new base glued to the plumbing.
In a first aspect, a pool valve assembly comprises a valve module comprising a conical outer plate comprising an inlet port proximate a narrow end of the conical outer plate, and a plurality of elongated outlet ports each extending through the outer plate and having a width dimension smaller than its length dimension, a conical slider plate rotatably positioned within the outer plate and comprising a slider plate outlet extending through the slider plate and a slider plate inlet proximate a narrow end of the conical slider plate, the slider plate inlet positioned adjacent to the inlet port of the outer plate such that the slider plate inlet and the outer plate inlet are in fluid communication, and an impeller rotatably coupled to the slider plate, the impeller rotatably responsive to water flowing into the slider plate inlet to rotate the slider plate from a first position that allows fluid communication between a first elongated outlet port of the plurality of elongated outlet ports and the slider plate outlet but prevents fluid communication between at least a second elongated outlet port of the plurality of elongated outlet port and the slider plate outlet, to a second position that allows fluid communication between the first and second elongated outlet ports and the slider plate outlet, and to at least a third position that allows fluid communication between the second elongated outlet port and the slider plate outlet but prevents fluid communication between the first elongated outlet port and the slider plate outlet.
Particular embodiments and implementations may comprise one or more of the following. The pool valve module may further comprise an impeller gear coupled to the impeller, a drive train coupled to the slider plate and comprising one or more gears, the one or more gears engaged with the impeller gear and rotatable responsive to rotation of the impeller, and a ring gear coupled to the outer plate and comprising a plurality of ridges that engage with the one or more gears of the drive train as the impeller rotates the one or more gears of the drive train, the ring gear rotating the slider plate responsive to rotation of the one or more gears engaged with the plurality of ridges of the ring gear. The length dimension of each of the plurality of elongated outlet ports may be at least two times greater than the width dimension of each of the plurality of elongated outlet ports, and the slider plate is in each of the first and third positions approximately three times longer than the second position when the impeller rotates at a substantially constant rate. A base may be removably coupled to the outer plate and a cover removably coupled to at least one of the base and the ring gear, the base comprising a conical body sized to allow the outer plate to nest at least partially within the conical body, an inlet pipe positioned proximate a narrow end of the conical body and aligned with the inlet port of the outer plate to allow fluid communication between the inlet pipe and the inlet port, and a plurality of outlet pipes equal in number to the plurality elongated outlet ports and aligned with the plurality of outlet pipes, each outlet pipe being in fluid communication with a different elongated outlet port of the plurality of outlet ports, wherein each outlet pipe comprises a circular area equal to or less than an area of the elongated outlet port to which it is aligned. A plurality of lips, each one of the plurality of lips extending from an outer surface of the outer plate and at least partially surrounding a different one of the plurality of elongated outlet ports, and a plurality of lip receivers, each one of the plurality of lip receivers positioned between the conical body and a different one of the outlet pipes of the base and shaped to receive a different one of the plurality of lips. An activation switch positioned on an exterior surface of the cover and operably coupled to the impeller to prevent rotation of the impeller when the switch is in a pause position. The impeller may comprise a variable pitch impeller comprising a plurality of impeller blades each adjustable between a full speed forward position, a feathered position, and a full speed reverse position responsive to actuation of an actuator positioned within a housing of the impeller by a pushrod extending outside the valve module. A bowl-shaped shroud may be positioned at least partially within the slider plate and coupled to the narrow end of the slider plate, the shroud comprising a shroud opening in fluid communication with the slider plate inlet, the shroud increasing a velocity of water flow into the impeller responsive to water flowing through the slider plate inlet and the shroud opening, and a pre-swirler apparatus mounted at least partially within the shroud, the pre-swirler comprising one or more pre-swirler blades extending from an outer surface of the pre-swirler, the pre-swirling blades directing water flow into the impeller responsive to water flowing through the slider plate inlet and the shroud opening.
In an aspect, a pool cleaning system may comprise a pump, a plurality of cleaning valves, a base comprising a conical body, an inlet pipe positioned proximate a narrow end of the conical body and in fluid communication with the pump through a pump pipe, and a plurality of outlet pipes in fluid communication with the plurality of cleaning valves through a plurality of cleaning pipes, and a pool valve modulea conical outer plate positioned at least partially within the conical body of the base and comprising a plurality of elongated outlet ports each extending through the outer plate and in fluid communication with a different one of the plurality of outlet pipes and the inlet pipe, each one of the plurality of elongated outlet ports comprising an area greater than or substantially equal to a circular area of the outlet pipe with which it is in fluid communication, a conical slider plate rotatably positioned within the outer plate and comprising a slider plate outlet extending through the slider plate and a slider plate inlet proximate a narrow end of the slider plate, the slider plate inlet positioned adjacent to the inlet port such that the slider plate outlet is in fluid communication with the inlet port through the slider plate inlet, and an impeller rotatably coupled to the slider plate and rotatably responsive to water flow from the pump entering the valve module through the inlet port to rotate the slide plate within the outer plate from a first position to a second position.
Particular implementations and embodiments may comprise one or more of the following. The pool valve module may further comprise an impeller gear coupled to the impeller, a drive train coupled to the slider plate and comprising one or more gears engaged with the impeller gear such that the one or more gears rotate responsive to rotation of the impeller, a ring gear coupled to the outer plate and comprising a plurality of ridges that engage with the one or more gears of the gear train as the impeller rotates the one or more gears of the drive train, the ring gear rotating the slider plate responsive to rotation of the one or more gears engaged with the plurality of ridges of the ring gear, and a cover removably coupled to at least one of the base and the ring gear. A length dimension of each of the plurality of elongated outlet ports is at least two times greater than a width dimension of each of the plurality of elongated outlet ports, and the slider plate is in each of the first and third positions approximately three times longer than the first position when the impeller rotates responsive to water flow from the pump entering the valve module through the valve port. A plurality of lips, each one of the plurality of lips extending from an outer surface of the outer plate and at least partially surrounding a different one of the plurality of elongated outlet ports, and a plurality of lip receivers, each one of the plurality of lip receivers positioned between the conical body and a different one of the outlet pipes of the base and shaped to receive a different one of the plurality of lips. A switch positioned on an exterior surface of the cover and operably coupled to the impeller to prevent rotation of the impeller when the switch is in a pause position. The impeller may comprise a variable pitch impeller comprising a plurality of impeller blades each adjustable between a full speed forward position, a feathered position, and a full speed reverse position responsive to actuation of an actuator positioned within a housing of the impeller by a push rod extending outside the valve module. A bowl-shaped shroud may be positioned at least partially within the slider plate and coupled to the narrow end of the slider plate, the shroud comprising a shroud opening in fluid communication with the slider plate inlet, the shroud increasing a velocity of water flow into the impeller responsive to water flowing through the slider plate inlet and the shroud opening, and a pre-swirler apparatus mounted at least partially within the shroud, the pre-swirler comprising one or more pre-swirler blades extending from an outer surface of the pre-swirler, the pre-swirling blades directing water flow into the impeller responsive to water flowing through the slider plate inlet and the shroud opening.
In an aspect, a pool valve assembly may comprise a valve module comprising an outer plate comprising a central inlet port and a plurality of elongated outlet ports each extending through the outer plate and having a width dimension smaller than its length dimension, a slider plate rotatably positioned adjacent the outer plate and comprising a slider plate outlet extending through the slider plate and a slider plate inlet positioned adjacent to the inlet port of the outer plate such that the slider plate inlet and the outer plate inlet are in fluid communication, and an impeller rotatably coupled to the slider plate, the impeller rotatably responsive to water flowing into the slider plate inlet to rotate the slider plate from a first position that allows fluid communication between a first elongated outlet port of the plurality of elongated outlet ports and the slider plate outlet but prevents fluid communication between at least a second elongated outlet port of the plurality of elongated outlet port and the slider plate outlet, to a second position that allows fluid communication between the first and second elongated outlet ports and the slider plate outlet, and to at least a third position that allows fluid communication between the second elongated outlet port and the slider plate outlet but prevents fluid communication between the first elongated outlet port and the slider plate outlet.
Particular embodiments and implementations may comprise one or more of the following. An impeller gear coupled to the impeller, a drive train coupled to the slider plate and comprising one or more gears, the one or more gears engaged with the impeller gear and rotatable responsive to rotation of the impeller, and a ring gear coupled to the outer plate and comprising a plurality of ridges that engage with the one or more gears of the drive train as the impeller rotates the one or more gears of the drive train, the ring gear rotating the slider plate responsive to rotation of the one or more gears engaged with the plurality of ridges of the ring gear. The length dimension of each of the plurality of elongated outlet ports may be at least two times greater than the width dimension of each of the plurality of elongated outlet ports, and the slider plate is in each of the first and third positions approximately three times longer than the second position when the impeller rotates at a substantially constant rate. A base may be removably coupled to the outer plate and a cover removably coupled to at least one of the base and the ring gear, the base comprising a body positioned adjacent the outer plate, an inlet pipe aligned with the inlet port of the outer plate to allow fluid communication between the inlet pipe and the inlet port, and a plurality of outlet pipes equal in number to the plurality elongated outlet ports and aligned with the plurality of outlet pipes, each outlet pipe being in fluid communication with a different elongated outlet port of the plurality of outlet ports, wherein each outlet pipe comprises a circular area equal to or less than an area of the elongated outlet port to which it is aligned. A plurality of lips, each one of the plurality of lips extending from an outer surface of the outer plate and at least partially surrounding a different one of the plurality of elongated outlet ports, and a plurality of lip receivers, each one of the plurality of lip receivers positioned between the body of the base and a different one of the outlet pipes of the base and shaped to receive a different one of the plurality of lips. An activation switch positioned on an exterior surface of the cover and operably coupled to the impeller to prevent rotation of the impeller when the switch is in a pause position, and wherein body of the base comprises a frustoconical body, the outer plate comprises a frustoconical outer plate at least partially nesting within the body of the base, and the slider plate comprises a frustoconical slider plate at least partially nesting within the outer plate. The impeller may comprise a variable pitch impeller comprising a plurality of impeller blades each adjustable between a full speed forward position, a feathered position, and a full speed reverse position responsive to actuation of an actuator positioned within a housing of the impeller by a pushrod extending outside the valve module. A bowl-shaped shroud positioned at least partially within the slider plate and coupled to a narrow end of the slider plate, the shroud comprising a shroud opening in fluid communication with the slider plate inlet, the shroud increasing a velocity of water flow into the impeller responsive to water flowing through the slider plate inlet and the shroud opening, and a pre-swirler apparatus mounted at least partially within the shroud, the pre-swirler comprising one or more pre-swirler blades extending from an outer surface of the pre-swirler, the pre-swirling blades directing water flow into the impeller responsive to water flowing through the slider plate inlet and the shroud opening.
In an aspect, a method of sequentially distributing water from an inlet pipe to a plurality of outlet pipes in a pool valve assembly, comprising receiving water from a pump into a pool valve module, the water entering the pool valve module through an inlet port of a conical outer plate of the pool valve module and a slider plate inlet of a slider conical slider plate of the pool valve module, rotating an impeller positioned within the pool valve module responsive to water entering the pool valve module, rotating the conical slider plate responsive to rotation of the impeller to a first position wherein a first outlet pipe of the plurality of outlet pipes receives water from the inlet pipe through a slider plate outlet extending through the conical slider plate and a first of a plurality of elongated outlet ports extending through the conical outer plate, the slider plate preventing water from entering at least a second outlet pipe of the plurality of outlet pipes, rotating the conical slider plate responsive to rotation of the impeller to a second position wherein the first outlet pipe receives water from the inlet pipe through the slider plate outlet and the first elongated outlet port and the second outlet pipe receives water from the inlet pipe through the slider plate outlet and a second elongated port of the plurality of elongated outlet ports; and rotating the conical slider plate responsive to rotations of the impeller to a third position wherein the second outlet pipe receives water from the inlet pipe through the slider plate outlet and the second elongated outlet port, the slide plate preventing water from entering the first outlet pipe.
Particular implementations and embodiments may comprise one or more of the following. Adjusting the impeller with an impeller pushrod that extends at least partially outside the pool valve module, the impeller being adjustable between a full speed forward position, a feathered position, and a full speed reverse position. Preventing rotation of the impeller by actuating a pause switch positioned on a cover of the pool valve module. The slider plate may be in the first and third positions for approximately three times longer than the second position. The slider plate is in the first and third positions for approximately 45 seconds and the second position for approximately 15 seconds.
The foregoing and other aspects, features, and advantages will be apparent to those artisans of ordinary skill in the art from the DESCRIPTION and DRAWINGS, and from the CLAIMS.
The disclosure will hereinafter be described in conjunction with the appended drawings, where like designations denote like elements, and:
This disclosure, its aspects and implementations, are not limited to the specific components or assembly procedures disclosed herein. Many additional components and assembly procedures known in the art consistent with the intended pool valve assembly and/or assembly procedures for a pool valve will become apparent for use with implementations of pool valve assemblies from this disclosure. Accordingly, for example, although particular pool valve assemblies and modules are disclosed, such a pool valve assemblies, modules, and implementing components may comprise any shape, size, style, type, model, version, measurement, concentration, material, quantity, and/or the like as is known in the art for such pool valve assemblies, modules, and implementing components, consistent with the intended operation of a pool valve assembly.
Implementations and embodiments of a water valve assembly described throughout this document may be utilized for a variety of purposes, including but not limited to pools, sprinklers, irrigation, and the like. Although specific descriptions relating to pools are described herein, use in a variety of water flow-related settings is contemplated by the applicants. Implementations disclosed herein are advantageous over prior valve assemblies for a variety of reasons that shall be noted throughout this document. In a particular aspect, an embodiment of the valve assemblies contemplated comprises a modular construction that couples to the pool plumbing. As such, the wear parts of the valve assembly are confined to an easily removable valve module 2, 102 (
In contrast, existing valve assemblies comprise housing coupled directly to the plumbing, including the wear surfaces of the valve assembly. When the wear surfaces of the valve assembly become damaged or wear out, because the wear surfaces are integral with the base, the entire base must be removed and a new base glued to the plumbing. Replacement of the prior valve assemblies is, therefore, costly, difficult, and time consuming.
Various embodiments of a valve module 2, 102 and method of use may be utilized in a pool cleaning system.
With reference to
As depicted in
Specifically, the area of elongated outlet port 10 is substantially equal to or slightly greater than a circular area of the inside of the associated outlet pipe 40 in one or more embodiments, the circular area being measured at a point within the outlet pipe 40 wherein the diameter 141 of the outlet pipe 40 is substantially constant (see
In one or more embodiments, the ratio of the length dimension 28 and the width dimension 30 is correlated to the angle of the outer plate 4. For example, in embodiments comprising an outer plate 4 having a steeper angle, the length dimension 28 may be greater than a length dimension 28 of embodiments comprising a flatter angle. In such embodiments, then, the width dimension 30 may be smaller, resulting in a more elongated outlet port 10. Alternatively, in embodiments comprising an outer plate 4 having a flatter angle, the length dimension 28 of the elongated outlet port 10 is limited. If the area of the elongated outlet port 10 is less than the circular area of the outlet pipe, then potential back pressure or head loss in the valve module 2 is increased.
The size and shape of the elongated outlet ports 10 may vary in differing embodiments. Generally, the shape and area of the elongated outlet ports 10 affects the potential pressure head loss in the valve module 2, the amount of down force between the slider plate 12 and the outer plate 4, and the port-to-port timing (the time required to rotate from full exposure of one elongated outlet port 10 to full exposures of the adjacent elongated outlet port 10) of the valve module 2. Typically, if the open area of the open elongated outlet port 10 approximates the open area of the inlet port 6, any pressure loss through the valve module 2 will be minimal and satisfactory for a swimming pool application. Elongated outlet ports 10 may also narrow from one end of the elongated outlet port 10 to the opposite end of the elongated outlet port 10, or vice versa.
In one, non-limiting example, configuration of the valve module 2 is associated with the desired number of elongated outlet ports 10 (or cleaning pipes 99).
In one or more embodiments, the shape of the elongated outlet ports 10 may be determined as follows. In an embodiment comprising eight elongated outlet ports 10 and outlet pipes 99, symmetrical positioning of the eight elongated outlet ports 10 is determined by the exemplary equation: 360°/8 ports=45° between the center of each elongated outlet port 10. As demonstrated in
In one or more embodiments, the elongated outlet ports 10 widen outward. The widening of the elongated outlet ports 10 is determined by the number of elongated outlet ports 10 and the desired full pressure and transition pressure times. By way of non-limiting example, a user may desire a total cycle time of one minute per elongated outlet port, with a full pressure time of 75% (or 45 seconds) and a transition time of 25% (or 15 seconds). Referring now to
Once the desired configuration of the elongated outlet ports 10 is determined by calculating the transition degrees 138, the angle of the slider plate 12 and outer plate 4 may be calculated by determining the angle necessary to transition the horizontal elongated outlet ports 135 to the angle elongated outlet ports 134 diagrammed in
One or more embodiments of an outer plate 4 further comprise a plurality of lips 44, or a surrounding ridge, extending from an outer surface 46 of the outer plate 4 around the shape of each of the outlet ports 10. Generally, a different one of the plurality of lips 44 surrounds a different one of the plurality of elongated outlet ports 10. The lips 44 are typically shape, sized, or otherwise configured to complement the lip receivers 48 of a base 32 (
One or more embodiments of an outer plate 4 further comprise a ridge 11 on an inner surface 13 of the outer plate 4 surrounding each elongated outlet port 10. The ridges 11 are configured to reduce friction between the inner surface 13 of the outer plate 4 and the slider plate 12 when the slider plate 12 rotates within the outer plate 4, and minimize the gap between the slider plate 12 and the outer plate 4 at each outlet port 10 for water flow. In particular embodiments, the ridge 11 comprises a portion of the inner surface 13 surrounding the outlet port 10 being sloped towards the outlet port 10.
Various embodiments of the outer plate 4 comprise a plurality of tab receivers 75 on a rim or wide end 15 of the outer plate 4, the plurality of tab receivers 75 being configured to receive a plurality of tabs 77 extending from the ring gear 24 (
As previously referenced, embodiments of a valve module 2 include a slider plate 12 that is slidable or otherwise rotatable within the outer plate 4.
The slider plate 12 comprises a slider plate inlet 16 on a narrow end 17 of the slider plate 12. The slider plate inlet 16 is typically a hole or an opening extending through at least a portion of the narrow end 17 of the slider plate 12. When assembled, the slider plate inlet is adjacent to and in fluid communication with the inlet port 6 of the outer plate 4. In particular embodiments, the slider plate inlet 16 surrounds a raised rim 7 that surrounds the inlet port 6 of the outer plate 4 when slider plate 12 is mounted within the valve module 2.
The slider plate 12 further comprises a slider plate outlet 14 extending therethrough. A width dimension of the slider plate outlet 14 is wider that the width dimension 30 of the elongated outlet port 10, and typically at least two times greater than the width dimension 30 of the elongated outlet port 10. In particular embodiments, a length dimension of the slider plate outlet 14 is substantially equal to a length dimension 28 of the of the elongated outlet ports 10. In other embodiments, the length dimension of the slider plate outlet 14 is greater than the length dimension 28 of the elongated outlet port 10 to mitigate internal friction between the slider plate 12 and the outer plate 4. In most embodiments, the slider plate outlet 14 is sized with a width such that when the slider plate outlet 14 is adjacent a first elongated outlet 10 of the plurality of elongated outlets 10 so that all of the first elongated outlet 10 is exposed, none of the other elongated outlet ports of the plurality of outlet ports 10 are exposed through the slider plate outlet 14. This provides the longest time during which the slider plate outlet 14 is dedicated to only one elongated outlet 10 at a time, and minimizes the time during which the slider plate outlet 14 is split across two adjacent elongated outlets 10. As described above, in a particular, non-limiting example, the slider plate outlet 14 widens outward at an angle substantially equal to the opening angle 136 of the particular embodiment. In a particular, non-limiting embodiment, the slider plate outlet 14 widens at an angle of 45° and the space from the beginning of a first elongated outlet 10 to the beginning of the next adjacent elongated outlet 10 is likewise 45° (see also
In one or more embodiments, as illustrated in
Various embodiments of a slider plate 12 may further comprise one or more director walls 86 adjacent the first opening 92. The one or more director walls 86 typically extend from the support member 88 to either the slider plate 12 or the slider plate outlet 14. The support member 88 may further comprise a notch or channel sized to receive a tab that extends from the housing 56 of the impeller (
One or more embodiments of a slider plate 12 further comprise a gear mounting platform 90 extending from the slider plate 12. In the particular embodiment depicted in
One or more embodiments of the valve module 2 further comprise an impeller 18 mounted and rotatable within the chamber formed by the slider plate 12 (
In the particular embodiment depicted in
In one or more embodiments, the impeller 18 comprises a variable pitch impeller 18. The variable pitch impeller 18 is configured to change the rate of rotation and/or direction of rotation of the slider plate 12 within the outer plate 4. In particular embodiments, the variable pitch impeller 18 allows a user to change rate or direction of rotation of the slider plate 12 without having to stop and/or dissemble the valve module 2. This configuration allows for fine-tuning of water delivery to the elongated outlet ports 10 without requiring an individual to guess at adjusting a flow-impeding duct to adjust speed. Although shown in use with the valve module 2 described throughout this document, use of the variable pitch impellers disclosed herein with other valve modules or sequencing valves is also contemplated.
The impeller adjustment rod 76 may be implemented as a screw, pushrod or any of a variety of other tools to adjust the variable pitch impeller 18.
According to one aspect, the impeller adjustment rod 76 and actuator 54 is configured so that the actuator 54 incrementally adjusts the impeller blades 52 by one small incremental setting each time the impeller adjustment rod 76 linearly presses against the actuator 54, and then adjusts them back one setting each time the impeller adjustment rod 76 linearly presses against the actuator 54 once an end of the rotational cycle for the impeller blades 52 is reached. In such an embodiment, the impeller blade 52 may alternatively return automatically back to a default position, such as the full-speed forward position, when the impeller blades 52 cannot be pivoted any further in its rotational cycle. According to another aspect, the further the impeller adjustment rod 76 is extended into the impeller housing 56, the more the impeller blades 52 pivot. In such an embodiment, the impeller adjustment rod 76 may comprise a threaded screw that maintains the impeller blades in the desired position by threaded engagement with a portion of the passage leading from the cover to the impeller 18.
With reference back to
As depicted in
Embodiments of the base 32 further comprise a plurality of outlet pipes 40. According to one aspect, the plurality of outlet pipes 40 extend from the conical body 34 of the base 32 and may be positioned to at least partially surround the inlet pipe 36. Due to the angled nature of the conical body 34 of the base 32, the openings of the outlet pipes 40 adjacent the conical body 34 are also angled. In one or more embodiments, the base 32 comprises a number of outlet pipes 40 equal to the number of elongated outlet ports 10 of the outer plate 4. For example, in
Particular embodiments of a base 32 further comprise a plurality of lip receivers 48. In such embodiments, a different lip receiver 48 surrounds a different one of the plurality of outlet pipes 40 on an inner surface of the conical body 34. Each lip receiver 48 is configured to receive a lip 44 surrounding an elongated outlet port 10. The lip receiver 48 may comprise a slot, notch, channel, or any other configuration that allows the lip 44 to seat or rest at least partially within the lip receiver 48.
The base 32 typically comprises a conical or otherwise angled body 34. The conical body 34 is sized to at least partially hold the outer plate 4 therein. Accordingly, the conical body 34 may be configured to complement the shape of the outer plate 4. In one or more embodiments, the base further comprises an annular head 78 on a wide end of the conical body 34 opposite the narrow end. The annular head 78 extends from the conical body 34 and is sized to hold the ring gear 24 and drive train 20 therein. The annular head 78 may further comprise a lip that allows a band clamp 82 (
One or more embodiments of a valve module 2 further comprise a cover 42. The cover 42 may comprise any cover previously known in the art for valve modules or sequencing valves. In the particular embodiment depicted in
As depicted in
When viewed as a whole, various aspects of the various embodiments of a valve module 2 provide significant advantages over conventional valve modules. As described throughout this document, a valve base 32, outer plate 4, and slider plate may each comprise angled walls from a horizontal plane, such as in a conical configuration. This configuration allows for interaction between elongated outlet ports 10 and outlet pipes 40, and between a slider plate outlet 14 and elongated outlet ports 10 within a smaller footprint or overall area. In other words, the angled or conical nature of the components of a valve module 2 with that configuration reduces the overall diameter of the valve module 2 relative to other valve modules.
This angled configuration of aspect of a valve module 2 also improves efficiency of the valve module in a pool cleaning system. As previously described, the outlet ports 10 of the outer plate 4 may be elongated in shape. When used in cooperation with an appropriately configured slider plate 12 and slider plate outlet 14 extending therethrough, the amount of time that the slider plate outlet 14 overlaps two (rather than one) elongated outlet port 10 is significantly decreased. This, in turn, provides a full power of water supply to each outlet pipe 40 and ultimately each cleaning head 127 for a greater period of time than a conventional valve module. It is advantageous that the fluid flow (head loss) be kept low.
In
As water continues to flow into the valve module 2, the rotation of the impeller 18 continuously rotates the slider plate 12 in a clockwise direction (in the exemplary embodiment) to a position shown in
As the slider plate 12 rotates to completely cover the first elongated outlet port 10A, the second elongated outlet port 10B is completely uncovered, as shown in
A full pressure head of water passing through each elongated outlet port 10 to cleaning head 127 or other device is advantageous and desirable. In particular embodiments disclosed herein, the amount or percentage of time with a full pressure head flowing through each elongated outlet port 10 is maximized. In particular embodiments, the amount of time each elongated outlet port 10 receives a full pressure head is approximately three times greater than the amount of time each elongated outlet port 10 receives less than a full pressure head of water. More particularly, in one embodiment, the cycle time from elongated outlet port 10 to adjacent outlet port 10 is approximately one minute. In such embodiments, the transition time between elongated outlet ports 10 wherein the ports receive less than a full pressure head of water does not exceed approximately fifteen seconds, while the time each elongated outlet port 10 receives a full pressure head is approximately forty-five seconds.
Coupled to the slider plate 112 within the conical body of the slider plate 112 of one more embodiments is a shroud 58. The shroud 58 in this embodiment is bowl shaped and configured to mount to the slider plate 112 adjacent to the slider plate inlet 16. The shroud 58 comprises a shroud opening 60 adjacent to and in fluid communication with the slider plate inlet 16 and is mounted within the slider plate 112. The shroud is configured such that, upon reception of a pressure head of water, the shroud 58 increases the velocity of the flow through the valve module 102.
One or more embodiments of a pre-swirler 62 further comprise one or more blades 64 extending from an outer surface 66 of the pre-swirler 62. In a particular embodiment, the blades 64 of the pre-swirler 62 are arced or angled such that the flow of water through the shroud 58 is likewise arced or re-directed in a direction substantially perpendicular to at least a portion of the blades 72 of the impeller 68. This is advantageous because the result is more efficient rotation of the impeller 68 with the same amount of water flow.
One or more embodiments of a valve module 102 further comprises an impeller 68 rotatably mounted at least partially within the shroud 58. Typically, a pre-swirler 62 is positioned within the shroud 58 between the impeller 68 and the pointed base 63 of the shroud 58. In a particular embodiment, the impeller 68 comprises a circular or cylindrical body 70 and one or more impeller blades 72 extending outward from the body 70 of the impeller 68. The impeller blades 72 are typically angled and/or arced such that the force or pressure of water flowing into the shroud 58 rotates the impeller 68. As previously described, the valve module 102 may comprise a pre-swirler that directs the flow of water more perpendicularly to the positioning of the impeller blades 72 to rotate the impeller 68 more efficiently.
Similar to the valve module 2, the rotation of the impeller 68 rotates the one or more gears 22 of the drive train 20, which in turn rotates the slider plate 112 within the outer plate 4. In a particular embodiment, the valve module 102 comprises a rod 69 (
One or more embodiments of a valve module 102 further comprise a gear mounting platform 71. The gear mounting platform 71 is typically coupled to or mounted at least partially within the slider plate 112 and is configured to hold and support the drive train 20. Typically, the drive train 20 is coupled to the gear mounting platform 71 such that the drive train 20 rotates simultaneous to rotation of the gear mounting platform 71. The gear mounting platform 71 may further comprise a funnel-like center portion with the rod 69 extending therethrough.
It will be understood that implementations are not limited to the specific components disclosed herein, as virtually any components consistent with the intended operation of a method and/or system implementation for valve assemblies may be utilized. Accordingly, for example, although particular valve assemblies may be disclosed, such components may comprise any shape, size, style, type, model, version, class, grade, measurement, concentration, material, weight, quantity, and/or the like consistent with the intended operation of a method and/or system implementation for a valve assembly may be used.
In places where the description above refers to particular implementations of a valve assembly or module, it should be readily apparent that a number of modifications may be made without departing from the spirit thereof and that these implementations may be applied to other valve assemblies and modules. The accompanying claims are intended to cover such modifications as would fall within the true spirit and scope of the disclosure set forth in this document. The presently disclosed implementations are, therefore, to be considered in all respects as illustrative and not restrictive, the scope of the disclosure being indicated by the appended claims rather than the foregoing description. All changes that come within the meaning of and range of equivalency of the claims are intended to be embraced therein.
This document claims the benefit of the filing date of U.S. Provisional Patent Application 61/697,258, entitled “Angled Pool Valve Assembly” to Goettl that was filed on Sep. 5, 2012, the contents of which are hereby incorporated by reference.
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