Hydraulic Pressure Regulator and Method of Use
20210003151 ยท 2021-01-07
Inventors
Cpc classification
E21B33/06
FIXED CONSTRUCTIONS
F15B1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G05D16/109
PHYSICS
E21B33/0355
FIXED CONSTRUCTIONS
International classification
F15B13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B33/035
FIXED CONSTRUCTIONS
Abstract
A hydraulic pressure regular having a vessel, a body with a difference in diameters along the body, the body including a stem, at least one piston to provide a force on the stem.
Claims
1. A valve, comprising: a vessel having a bore and at least two ports connected to the bore; a body positioned inside the bore, the body having at least one stem and dual sealing mechanisms against the body, and wherein the body has different diameters along the body to regulate a hydraulic pressure; at least, one piston configured to act on a hydraulic pressure, the piston connected to the at least one stem; and an arrangement configured to force the body against the hydraulic pressure.
2. The valve according to claim 1, wherein the bore is a central bore.
3. The valve according to claim 1, wherein the body has at least two parts.
4. The valve according to claim 2, wherein a first part of the body provides hydraulic pressure into a chamber and a section part of the body is configured to allow pressure to exit the chamber.
5. The valve according to claim 1, further comprising a screw thread configured to provide a distance traveled before the stem reaches an open position.
6. The valve according to claim 1, wherein the arrangement is configured as a coil staging.
7. The valve according to claim 6, wherein the arrangement includes a washer.
8. The valve according to claim 1, wherein the arrangement is configured to provide a variable force.
9. The valve according to claim 8, wherein the arrangement produces the variable force through a gas contained in at least one of a liquid, an elastomer, a rigid pressure vessel and a semi-rigid pressure vessel.
10. A method of modulating a pressure within a hydraulic pressure regulator, comprising: accepting a first pressure into a chamber the hydraulic pressure regulator, the hydraulic pressure regulator having a supply adjustment portion and a relieve adjustment portion; accepting a second pressure into the chamber; moving a carrier against a spring when the second pressure is greater than the first pressure, thereby closing a supply to the hydraulic pressure regulator and thereby opening a vent, thereby venting the second pressure to an exterior environment; and moving a carrier when the second pressure is lesser than the first pressure, thereby opening a supply to the hydraulic pressure regulator, supplying the regulator with a fluid pressure back to the first pressure.
11. The method according to claim 10, wherein at least one piston is moved during the moving of the carrier.
12. The method according to claim 11, wherein the et least one piston is two pistons.
13. An arrangement, comprising: a valve comprising a relief adjustment portion and a supply adjustment portion, the valve located in a pressure vessel; a bias spring connected between the pressure vessel and the relief adjustment portion, such that a force placed upon the spring from, a chamber will trigger a venting of a pressure through a pressure vent when the pressure is larger than a set point value; and at least two pistons within the valve, wherein the relief adjustment portion has one piston and the supply adjustment portion has one piston and wherein the piston in the relief adjustment moves to a relief position when pressure within the pressure vessel exceeds the set point value and wherein the piston in the supply adjustment portion moves to a supply position when pressure in the pressure vessel is below a second set point value.
14. The arrangement according to claim 13, further comprising: a control system to operate the valve.
15. The arrangement according to claim 14, wherein the control system uses one of air or pneumatics.
16. The arrangement according to claim 14, wherein the control system uses hydraulic force.
17. The arrangement according to claim 14, wherein the control system uses grease.
18. The arrangement according to claim 14, wherein the control system uses least, one electric solenoid.
19. The arrangement according to claim 14, wherein the control system uses at least one electric motor.
20. The arrangement according to claim 14, wherein the control system uses one of a drive shaft, a mechanical rotary system and at least one lever.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In the following detailed description an example embodiment, reference is made to the accompanying drawings, which form a part hereof and in which are shown by way of illustration examples of an example embodiment with which the invention may be practiced. In the drawings and descriptions, like or corresponding parts are marked throughout the specification and drawings with the same reference numerals. The drawings are not necessarily to scale. Certain features of the disclosure may be shown exaggerated in scale or in somewhat symbolic or schematic form and some details of conventional elements may not be shown in the interest of clarity and conciseness.
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024] To facilitate understanding, identical reference numerals have been used, where possible, to designate identical elements that are common to the figures (FIGS). It is contemplated that elements disclosed, in one embodiment may be beneficially utilized on, other embodiments without specific recitation.
DETAILED DESCRIPTION
[0025] In the following, reference is made to embodiments of the disclosure. It should be understood, however, that the disclosure is not limited to specific described embodiments. Instead, any combination of the following features and elements, whether related to different embodiments or not, is contemplated to implement and practice the disclosure. Furthermore, although embodiments of the disclosure may achieve advantages over other possible solutions and/or over the prior art, whether or not a particular advantage is achieved by a given embodiment is not limiting of the disclosure, Thus, the following aspects, features, embodiments and advantages are merely illustrative and are not considered elements or limitations of the claims except where explicitly recited in a claim. Likewise, reference to the disclosure shall not be construed as a generalization of inventive subject matter disclosed herein and shall not be considered to be an element or limitation of the claims except where explicitly recited in a claim.
[0026] Although the terms first, second, third, etc., may be used herein to describe various elements, components, regions, layers, and/or sections, these elements, components, regions, layers and/or sections should not be limited by these terms. These terms may be only used to distinguish one element, components, region, layer or section from another region, layer or section. Terms such as first, second, and other numerical terms when used herein do not imply a sequence or order unless clearly indicated by the context. Thus, a first element, component, region, layer, or section discussed herein could be termed a second element, component, region, layer, or section without departing from the teachings of the example embodiments.
[0027] When an element or layer is referred to as being on, engaged to, connected to, or coupled to another element or layer, it may be directly on, engaged, connected, coupled to the other element or layer, or interleaving elements or layers may be present. In contrast, when an element is referred to as being directly on, directly engaged, to, directly connected to, or directly coupled to another element or layer, there may be no interleaving elements or layers present. Other words used to describe the relationship between elements should be interpreted in a like fashion. As used herein, the term and/or includes any and all combinations of one or more of the associated listed terms.
[0028] Some embodiments will now be described with reference to the figures. Like elements in the various figures will be referenced with like numbers for consistency. In the following description, numerous details are set forth to provide an understanding of various embodiments and/or features. It will be understood, however, by those skilled in the art, that some embodiments may be practiced without many of these details, and that numerous variations or modifications from the described embodiments are possible. As used herein, the terms above and below, up and down, upper and lower upwardly and downwardly, and other like terms indicating relative positions above or below a given point are used in this description to more clearly describe certain embodiments.
[0029] Referring to
[0030] Referring to
[0031] The valve 200 has two working portions; a supply valve 400 and a relief valve 500. The supply valve 400 is presented in
[0032] The other working portion, the relief valve 500, the relief function, is pressure balanced on its outer diameter. This provides nearly zero resistance to movement as the pressure increases. A communication hole 502 is drilled through the core to allow the pressure to act on both sides of the valve 500. In the present configuration, the bias spring is contacting one side of the carrier and the supply carrier is contacting the other side. A feature is provided to allow fluid flow from between the supply and relief carriers. This is the regulated output of the valve 500.
[0033] In both functions, there is a central sealing element. The stem has the ability to seal in both directions. This is important as the valve may experience pressure from any direction when in use. The stem is given a bias force hydraulically depending on its intended sealing direction.
[0034] There is, a bias piston screwed onto the stem of both functions. The bias piston has a sealing diameter which closely matches the sealing diameter of the stem. If the piston diameter is slightly smaller, the stem will open when exposed to internal pressure and close when exposed to external pressure. The same is true if the diameter is slightly larger than the stem diameter. The stem will close when presented internal pressure and open when exposed to external pressure.
[0035] When hydraulic pressure is provided, the pressure tends to close the supply stem. The entire valve 200 is biased due to the spring 304 however to strike the supply stem open. Thus, the valve flows hydraulic fluid through the supply stem and into the common regulated port. When this port increases in pressure, the resultant force on the supply carrier pushes the spring 304 and compresses it. By compressing the spring 304, the supply stem is allowed to close slightly. By continuing to compress the spring 304, eventually, the supply stem is allowed to fully seat and by internal bias, continues to seal against incoming pressure. The system now is at a set point. If the system connected to the regulated port exceeds the set point, the pressure continues to shift the carriers against the spring 304 and compresses. At a certain pressure, the relief stem is triggered open. By releasing pressure through the relief stem, the system pressure will reduce which in turn releases some force on the spring 304. With less force on the spring 304, the carriers will return to a central position where no stems are triggered. The relief stem has a slight bias to remain closed with external pressure all around it.
[0036] The distance traveled by the carriers and relationship to the spring force determine the adjustability of the valve 200. Typically, a regulator type valve has a fixed distance traveled before the two functions occur. This distance is determined by features internal to the regulator and sealing surfaces, seal carriers, etc. Manufacturing tolerances and variability in the spring 304 can greatly affect this distance, specifically when dealing with high pressures and forces. The distance is very slight and is desired to be as short as possible to enable a fast reacting valve. Therefore, it is desirable to have an adjustment for each one independent of one another for maximum precision. Typically, a valve 200 has one setting adjustment for the spring compression. The valve 200 acts in much the same way where hydraulic pressure forces the carrier against the spring 304. Once traveled, the valve 200 closes supply and then eventually opens a relief. An increase in friction can affect the setting by as much as 20%.
[0037] Another benefit of this design is that the working portions are fairly low mass. They can react quickly and have a high natural frequency. They are resistant to entering an oscillation accordingly. In larger regulators, there is a high amount of mass in both the working seals as well as the spring. In addition, the forces acting on the spring are very large. This is due to unbalanced areas. When a regulator of that type gets into an oscillation, the sealing mechanisms dictate that it will experience widely varying amounts of seal friction. Recall that seal friction makes up a large portion of the force within that type of regulator and if it is varying, the regular will have a hard time reaching a stable condition. This instability can cause issues with the downstream hydraulic system as well as internal to the regulator. Premature failure can occur very quickly if an oscillation begins.
[0038] Referring to
[0039] Referring further to
[0040] As will be understood, a control system may also be used to control actions of the valve 200. The control system may include air or pneumatics, hydraulic pressure, grease, an electrical solenoid and electric motor, a driveshaft or levers.
[0041] In one-nonlimiting embodiment, a valve is disclosed comprising: a vessel having a bore and at least two ports connected to the bore, a body positioned inside the bore, the body having at least one stem and dual sealing mechanisms against the body, and wherein the body has different diameters along the body to regulate a hydraulic pressure, at least one piston configured to act on a hydraulic pressure, the piston connected to the at least one stem and an arrangement configured to force the body against the hydraulic pressure.
[0042] In one non-limiting embodiment, the valve may be configured wherein the bore is a central bore.
[0043] In another non-limiting embodiment, the valve may be configured wherein the body has at least two parts.
[0044] In another non-limiting embodiment, the valve may be configured wherein, a first part of the body provides hydraulic pressure into a chamber and a section part of the body is configured to allow pressure to exit the chamber.
[0045] In another non-limiting embodiment, the valve may further comprise a screw thread configured to provide a distance traveled before the stem reaches an open position.
[0046] In another non-limiting embodiment, the valve may be configured wherein the arrangement is configured as a coil spring.
[0047] In another non-limiting embodiment, the valve may be configured wherein the arrangement includes a washer.
[0048] In another non-limiting embodiment, the valve may be configured wherein the arrangement is configured to provide a variable force.
[0049] In another non-limiting embodiment, the valve may be configured wherein the arrangement produces the variable force through a gas contained in at least one of a liquid, an elastomer, a rigid pressure vessel and a semi-rigid pressure vessel.
[0050] In one-non-limiting embodiment, a method of modulating a pressure within a hydraulic pressure regulator is disclosed comprising: accepting a first pressure into a chamber the hydraulic pressure regulator, the hydraulic pressure regulator having a supply adjustment portion and a relieve adjustment portion, accepting a second pressure into the chamber, moving a carrier against a spring when the second pressure is greater than the first pressure, thereby closing a supply to the hydraulic pressure regulator and thereby opening a vent, thereby venting the second pressure to an exterior environment, and moving a carrier when the second pressure is lesser than the first pressure, thereby opening a supply to the hydraulic pressure regulator, supplying the regulator with a fluid pressure back to the first pressure.
[0051] In another non-limiting embodiment, an arrangement is disclosed comprising a valve comprising a relief adjustment portion and a supply adjustment portion, the valve located in a pressure vessel, a bias spring connected between the pressure vessel and the relief adjustment portion, such that a force placed upon the spring from a chamber will trigger a venting of a pressure through a pressure vent when the pressure is larger than a set point value and at least two pistons within the valve, wherein the relief adjustment portion has one piston and the supply adjustment portion has one piston and wherein the piston in the relief adjustment moves to a relief position when pressure within the pressure vessel exceeds the set point value and wherein the piston in the supply adjustment portion moves to a supply position when pressure in the pressure vessel is below a second set point value.
[0052] In another non-limiting embodiment, the arrangement may further comprise a control system to operate the valve.
[0053] In another non-limiting embodiment, the arrangement may be configured wherein the control system uses one of air or pneumatics.
[0054] In another non-limiting embodiment, the arrangement may be configured wherein the control system uses hydraulic force.
[0055] In another non-limiting embodiment, the arrangement may be configured wherein the control system uses grease.
[0056] In another non-limiting embodiment, the arrangement may be configured wherein the control system uses at least one electric solenoid.
[0057] In another nonlimiting embodiment, the arrangement may be configured wherein the control system uses at least one electric motor.
[0058] In another non-limiting embodiment, the arrangement may be configured wherein the control system uses one of a drive shaft, a mechanical rotary system and at least one lever.
[0059] While embodiments have been described herein, those skilled in the art, having benefit of this disclosure, will appreciate that other embodiments are envisioned that do not depart from the inventive scope. Accordingly, the scope of the present claims or any subsequent claims shall not be unduly limited by the description of the embodiments described herein.