Jump Valve
20190353261 ยท 2019-11-21
Inventors
Cpc classification
F16K15/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/7929
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16K15/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to a mechanical valve assembly used in the control of a fluid (e.g. gas, liquid, etc.) to provide at least one of a check valve control feature and flow range control feature. When unwanted low flows are present, the valve remains closed and jumps open only at higher desired flow rates. The valve then closes when the forces at the input and output equalize and the process repeats. Such allows fluid delivered to a flow meter in larger segregated bursts, rather than steady low flows that cause metering error.
Claims
1. A flow control apparatus configured to prevent a predefined low flow rate for a fluid, said flow control apparatus comprising: a hollow cylindrical body comprising an inlet body axially disposed from an outlet body wherein said inlet body defines a releasable sealed association with said outlet body; an inlet plate defining a plurality of holes therethrough wherein the perimeter of said inlet plate is one of integral to or mechanically associated with said inlet body and wherein said inlet plate defines a plurality of radially extending ribs extending from its perimeter to an end point defining an upstream stabilizer portion receiver; an outlet plate defining a plurality of holes therethrough wherein the perimeter of said outlet plate is one of integral to or mechanically associated with said outlet body and wherein said outlet plate defines a plurality of radially extending ribs extending from its perimeter to an end point defining a downstream stabilizer portion receiver; a poppet element defining a circular perimeter defining a poppet diameter and wherein said poppet element further defines an upstream face and an opposing downstream resilient element receiver wherein at least a portion of said upstream face defines a poppet face seal zone and wherein at least a portion of said circular perimeter defines a poppet perimeter flow zone; a stabilizer element extending through the poppet element thereby defining an upstream stabilizer portion and a downstream stabilizer portion wherein said upstream stabilizer portion is axially movably associated with said upstream stabilizer portion receiver and said downstream stabilizer portion is axially movably associated with said downstream stabilizer portion receiver to allow axial movement of the poppet element while limiting radial movement of said poppet element; a circular sealing member defining a void therethrough thereby defining an outer sealing member diameter and an inner sealing member diameter and wherein said sealing member is disposed inside said inlet body so that the outer perimeter engages an inner surface of said inlet body to form a seal and wherein at least a portion of the downstream face of said sealing member provides a sealing engagement zone configured to provide a sealing engagement with said poppet face seal zone and wherein said inner sealing member diameter is less than said poppet diameter; a circular damping element defining a circular void therethrough thereby defining an outer damping element diameter and an inner damping element diameter wherein said damping element is disposed adjacent to and downstream of said sealing member and wherein at least a portion of the inner perimeter of said damping element defines a damping flow zone configured to be in fluid communication with said poppet perimeter flow zone to define a damping flow area; and a circular clamping element defining a circular void therethrough thereby defining a clamping element inner diameter and a clamping element outer diameter wherein said clamping element is disposed adjacent to and downstream of said damping element and wherein the outer perimeter of said clamping element defines a plurality of body interface elements configured to mechanically associate with an inner surface of said inlet body to hold said sealing member and said damping element in place inside said inlet body.
2. A flow control apparatus as in claim 1, wherein inlet plate defines four radially extending ribs and wherein said inlet plate is pressed into said inlet body.
3. A flow control apparatus as in claim 2, wherein said outlet plate defines four radially extending ribs.
4. A flow control apparatus as in claim 1, wherein said a sealing member defines at least a partially elastomeric seal that flexes.
5. A flow control apparatus as in claim 1, further comprising a resilient element disposed between said poppet element and said outlet plate configured to generate an upstream directed bias force on said poppet element.
6. A flow control apparatus as in claim 1, wherein the inner diameter of said damping element defines a lip.
7. A flow control apparatus configured to prevent a predefined low flow rate for a fluid, said flow control apparatus comprising: a hollow cylindrical body comprising an inlet body axially disposed from an outlet body wherein said inlet body defines a releasable sealed association with said outlet body; an inlet plate means disposed in said inlet body configured for providing an upstream stabilizer portion receiver; an outlet plate means disposed in said outlet body configured for providing a downstream stabilizer portion receiver; a poppet means disposed between said inlet plate and said outlet plate and movably associated with said hollow cylindrical body and configured for preventing and allowing fluid flow through said hollow cylindrical body; a stabilizer means configured to allow axial movement of said poppet means while limiting radial move of said poppet means; a circular sealing means disposed inside said inlet body adjacent to and downstream of said inlet plate means configured for providing a sealing engagement with said poppet means; a circular damping means disposed adjacent to and downstream of said circular sealing means configured for engaging a surface of said poppet means to provide a damping flow zone to define a damping flow area; and a circular clamping means disposed adjacent to and downstream of said circular damping means configured to hold said circular sealing means and said circular damping means in place inside said inlet body.
8. A flow control apparatus as in claim 7, wherein inlet plate means defines a plurality of voids therethrough separated by four radially extending ribs and wherein said inlet plate is pressed into said inlet body.
9. A flow control apparatus as in claim 7, wherein said outlet plate means defines a plurality of voids therethrough separated by four radially extending ribs.
10. A flow control apparatus as in claim 7, wherein said circular sealing means defines at least a partially elastomeric seal that flexes.
11. A flow control apparatus as in claim 7, further comprising a resilient element disposed between said poppet means and said outlet plate means configured to generate an upstream directed bias force on said poppet means.
12. A flow control apparatus as in claim 7, wherein the inner diameter of said circular damping means defines a lip.
13. A flow control apparatus configured to prevent a predefined low flow rate for a fluid, said flow control apparatus comprising: a hollow cylindrical body comprising an inlet body axially disposed from an outlet body wherein said inlet body defines a releasable sealed association with said outlet body; an inlet plate defining a plurality of holes therethrough wherein the perimeter of said inlet plate is one of integral to or mechanically associated with said inlet body and wherein said inlet plate defines a plurality of radially extending ribs extending from its perimeter to an end point defining an upstream stabilizer portion receiver; an outlet plate defining a plurality of holes therethrough wherein the perimeter of said outlet plate is one of integral to or mechanically associated with said outlet body and wherein said outlet plate defines a plurality of radially extending ribs extending from its perimeter to an end point defining a downstream stabilizer portion receiver; a poppet element defining a circular perimeter defining a poppet diameter and wherein said poppet element further defines an upstream face wherein at least a portion of said upstream face defines a poppet face seal zone and wherein at least a portion of said circular perimeter defines a poppet perimeter flow zone; a stabilizer element extending through the poppet element thereby defining an upstream stabilizer portion and a downstream stabilizer portion wherein said upstream stabilizer portion is axially movably associated with said upstream stabilizer portion receiver and said downstream stabilizer portion is axially movably associated with said downstream stabilizer portion receiver to allow axial movement of the poppet element while limiting radial movement of said poppet element; a circular sealing member defining a void therethrough thereby defining an outer sealing member diameter and an inner sealing member diameter and wherein said sealing member is disposed inside said inlet body so that the outer perimeter engages an inner surface of said inlet body to form a seal and wherein at least a portion of the downstream face of said sealing member provides a sealing engagement zone configured to provide a sealing engagement with said poppet face seal zone and wherein said inner sealing member diameter is less than said poppet diameter; a circular damping element defining a circular void therethrough thereby defining an outer damping element diameter and an inner damping element dimeter wherein the inner perimeter of said damping element defines a lip and wherein said damping element is disposed adjacent to and downstream of said sealing member and wherein said inner damping element diameter is less than said poppet diameter and wherein at least a portion of the inner perimeter of said damping element defines a damping flow zone configured to be in fluid communication with said poppet perimeter flow zone to define a damping flow area; and a circular clamping element defining a circular void therethrough thereby defining a clamping element inner diameter and a clamping element outer diameter wherein said clamping element is disposed adjacent to and downstream of said damping element configured to mechanically associate with an inner surface of said inlet body to hold said sealing member and said damping element in place inside said inlet body.
14. A flow control apparatus as in claim 13, wherein poppet element defines resilient element receiver at the downstream side of said poppet element.
15. A flow control apparatus as in claim 14, further comprising a resilient element disposed between said poppet element and said outlet plate configured to generate an upstream directed bias force on said poppet element.
16. A flow control apparatus as in claim 15, and wherein the outer perimeter of said clamping element defines a plurality of body interface elements.
17. A flow control apparatus as in claim 13, wherein inlet plate defines four radially extending ribs and wherein said inlet plate is pressed into said inlet body.
18. A flow control apparatus as in claim 17, wherein said outlet plate defines four radially extending ribs.
19. A flow control apparatus as in claim 18, wherein said a sealing member defines at least a partially elastomeric seal that flexes.
20. A flow control apparatus as in claim 1, wherein the inner diameter of said damping element defines a lip.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] A full and enabling description of the present subject matter, including the best mode thereof, directed to one of ordinary skill in the art, is set forth in the specification, which makes reference to the appended figures, in which:
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DISCLOSURE OF THE INVENTION
Detailed Description
[0030] Reference now will be made in detail to the embodiments of the invention, one or more examples of which are set forth below. Each example is provided by way of explanation of the invention, not limitation of the invention. In fact, it will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the scope or spirit of the invention. For instance, features illustrated or described as part of one embodiment can be used on another embodiment to yield a still further embodiment. Thus, it is intended that the present invention covers such modifications and variations as come within the scope of the appended claims and their equivalents. Other objects, features, and aspects of the present invention are disclosed in or may be determined from the following detailed description. Repeat use of reference characters is intended to represent same or analogous features, elements or steps. It is to be understood by one of ordinary skill in the art that the present discussion is a description of exemplary embodiments only and is not intended as limiting the broader aspects of the present invention.
Construction Aids
[0031] For the purposes of this document two or more items are mechanically associated by bringing them together or into relationship with each other in any number of ways including a direct or indirect physical releasable connections snaps, screws, Velcro, bolts, etc.generally connections designed to be easily and frequently released and reconnected, hard-connections welds, glue, rivets, macular bonds, generally connections that one does not anticipate disconnecting very often if at all and that are broken to separate, and/or moveable connections rotating, pivoting, oscillating, etc.
[0032] As used herein, unless stated otherwise, the terms first, second, and third may be used interchangeably to distinguish one component from another and are not intended to signify location or importance of the individual components.
[0033] As used herein, the terms upstream and downstream refer to the relative location of components in a fluid pathway. For example, component A is upstream of component B if a fluid flows from component A to component B. Conversely, component B is downstream of component A if component B receives a fluid flow from component A.
[0034] The actuation of the valve is controlled by forward and reverse opposing forces. Forward forces may include upstream pressure, seat opposing forces, and flow forces when flow is present. Opposing forces may include downstream pressure, inertia forces, and spring forces when a spring is present.
[0035] As used herein, the term axial refers to a direction of flow through an object; the term radial refers to a direction extending away from the center of an object or normal to the axial direction, and the term circumferential refers to a direction extending around the circumference or perimeter of an object.
[0036] For the purposes of this document, unless otherwise stated, the phrase at least one of A, B, and C means there is at least one of A, or at least one of B, or at least one of C or any combination thereof not one of A, and one of B, and one of C.
[0037] This document includes headers that are used for place markers only. Such headers are not meant to affect the construction of this document, do not in any way related to the meaning of this document nor should such headers be used for such purposes.
[0038] While the examples herein may be directed to a water delivery system comprising a meter measuring water consumption, the disclose technology may be used to control the flow of any type of fluid delivery system.
DESCRIPTION
[0039] As noted previously, a check valve is a type of valve designed to allow a fluid (liquid or gas) to flow in a forward direction only. In reverse flow conditions, the valve closes to prevent flow. Inline prior art mechanical check valves are generally self-contained and have an inlet and an outlet port where the actuation of the valve is controlled by forward and reverse opposing forces. Forward forces include upstream pressure, seat opposing forces, and flow forces when flow is present. Opposing forces include downstream pressure, inertia forces, and spring forces when a spring is present. When upstream forces overcome downstream forces, the valve opens, and fluid flows through the valve. For example, a utility may supply water to a home via a pipeline comprising a meter to measure consumption. Such utility is upstream from the home as the utility supplies fluid to the home. A check valve may also be placed into the pipeline so that fluid can only flow from the utility pipeline to the home.
[0040] Further, most flow meters depend on the inertial energy of the fluid flowing through the meter to activate the meter's flow measurement elements. During some low flow conditions such fluid does not have enough inertial energy to start the flow measurement elements, and thus, such flow is not measured. Embodiments of the present invention may be referred to herein as a jump valve and is preferably configured to prevent undesired low flow rates for a fluid and may further provide a check valve feature.
[0041] Referring now to
[0042] As depicted in
[0043] As best seen in
[0044] Preferably all the fluid flowing through the flow control apparatus 10 flows through the plurality of holes defined by the inlet plate 20 and outlet plate 22. Ideally, the total area of such plurality of holes (for each plate) is greater than the inner diameter of the supply pipe to be associated with the inlet body 14 and/or the outlet body 16.
[0045] A core element 24 is now considered in more detail. One embodiment of a core element is poppet element 24 which defines a circular perimeter defining a poppet diameter and wherein the poppet element 24 further defines an upstream face 42 and (for some embodiments) an opposing downstream resilient element receiver 44. At least a portion of the upstream face defines a poppet face seal zone 46 and at least a portion of the perimeter defines a circumferential poppet perimeter flow zone 48.
[0046] As best seen in
[0047] For the purposes of this invention, the delta force is defined as the inlet side forces minus the outlet side forces. When the delta forces are positive, the poppet element 24 moves in the downstream direction until it reaches a fully open limit. When the delta forces are negative the poppet element 24 moves in the upstream direction until it reaches a fully closed limit.
[0048] As best seen in
[0049] For one embodiment, the sealing member 28 is flexible and resilient to allow small backflow amounts in response to sudden pressure changes such as pressure changes caused by water hammer. Such a configuration helps to limit damage to components in the fluid deliver system and associated meter that would otherwise be caused by water hammer. For one alternative embodiment, the sealing member 28 is more ridged and prevents backflow providing a traditional backflow check valve feature.
[0050] Similarly, as best seen in
[0051] Similar to the sealing member 28 and damping element 30, as best seen in
[0052] Based on the above disclosure, one of ordinary skill in the art will appreciate that when the poppet face seal zone 46 is engaging the sealing engagement zone 60 the fluid delta forces have reached a predefined first value (basically they cancel and there is no delta). In this state the flow control apparatus 10 is in the full closed position an there should be no fluid flow through the hollow body 12. When the fluid delta forces increase to a second predefined value (as a result of a very low flow downstream the outlet body) the poppet element 24 moves slightly in the downstream direction and small amount of fluid flows through the damping zone but not through the inlet body 14. Eventually the pressure delta will reach a third predefined value and the poppet face seal zone 46 disengages with said sealing element zone 60 allowing a pulse of fluid flow through the meter until the delta forces equalize again and the valve closes preventing flow out of the outlet body. This is an example of an undesired low flow condition being converted to a higher pulse flow. The poppet element 24 will move even further in the downstream direction so that the damping flow zone disengages with said poppet perimeter flow zone 48 when the fluid delta forces exceed a predefined third value thereby allowing fluid flow through said hollow cylindrical body.
[0053] Stated differently, suppose a water utility supplies water to a customer through a water meter associated with the disclosed flow control apparatus 10. Suppose the customer has a shower that leaks a drip at a time resulting in a low flow rate that cannot be measured by the water meter. As the pressure on the output side slowly drops as water is drained from damping flow area due to the drip leak, the poppet element moves slightly in the downstream direction. Eventually the low flow will cause the pressure on the output side of the flow control apparatus to drop so much that the poppet element will disengage from the damping element allowing fluid flow out the flow control apparatus to jump to a predefined value that can be measured by the meter. Such jump flow will replenish the fluid lost due to the leak and input and output pressure will equalize and the valve will close, and the process will start all over again. If the customer should turn on the shower, for example, the resulting high flow rate will cause the flow control apparatus to fully open and stay open until the shower is turned off.
Valve Operation Charts
[0054] Referring now to
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[0056] Referring now to
[0057] While the foregoing written description of the invention enables one of ordinary skill to make and use what is considered presently to be the best mode thereof, those of ordinary skill will understand and appreciate the existence of variations, combinations, and equivalents of the specific embodiment, method, and examples herein. The invention should therefore not be limited by the above described embodiment, method, and examples, but by all embodiments and methods within the scope and spirit of the invention as claimed.