Differential Pressure Actuated Valve

20190154162 ยท 2019-05-23

    Inventors

    Cpc classification

    International classification

    Abstract

    This specification discloses a Valve designed to be used in systems wherein it is desirable to activate and close the valve in response-to changes in pressure inside a pipeline downstream of the valve, without any dependency on electronic communications or external power, relying solely on the energy within the pipeline for sensing the differences and for closing the valve. The present invention is specifically targeted to petroleum pipelines, but is applicable to fluid pipelines and piping systems for any fluid, liquid or gaseous. The Valve functions by utilizing a lowered pressure downstream of the Valve in opposition to the full pipeline pressure on the upstream side of the Valve. The pressure downstream is typically lowered by providing a flow restrictor on the downstream side of the Valve, or incorporated into the downstream side of the Valve, in a system with a pump on the downstream side of the section of the pipeline it is intended to protect. A flapper, or hinged gate, is held in the open position by exposing said gate to the full line pressure on the side where the line pressure enters the Valve, while the side of the flapper opposite the flow is exposed to the lowered pressure or the pipeline downstream of the restrictor through a connection with the downstream pipeline. The differential pressure holds the hinged gate in the open position so long as the required differential is maintained. When a pre-determined compromise of the differential pressure occurs, the magnitude of which is designed into the Valve for each application or installation, and/or adjusted in the field by means provided, the hinged gate is freed from the open position and moves into sealing contact with the closed position seat.

    Claims

    1. A Valve that is designed to automatically close upon the loss of relative negative pressure or reduced relative negative pressure in a pipeline downstream of the Valve, without the need for any external energy source or signal.

    2. A Valve as in claim 1 which may be installed and utilized to prevent spills and contamination resulting from pipeline breaks or breaches.

    3. A valve as in claim 1 with a Valve Housing constructed so as to be easily attachable to new or existing pipelines securely on both the upstream and downstream sides of the Valve, using whatever attachment method necessary for the specific installation.

    4. A Valve in which the Valve Gate is maintained in the open position by the differential, or relative negative pressure differential between the pressure in the upstream pipeline and the pipeline downstream of the Valve and a flow Restrictor.

    5. A Valve as in claim 4 which utilizes a pump on the downstream side of the protected section of pipeline, or crossing, to pull transported material over the crossing, and through the restrictor on the upstream side of the crossing, to provide a reduced or negative pressure in the protected pipeline section, or crossing.

    6. A Valve as in claim 1 in which the relative negative pressure required to hold the Valve in the open positon, and the change required to release the valve gate and close the Valve may be optimized for the specific application by various methods, including but not limited to adjusting the projected area of the hinged Gate exposed to the relative negative pressure, springs or other means.

    7. A Valve as in claim 1 in which the relative negative pressure is communicated to the Valve by a pipe or tube, comprising a connecting loop, connecting a port into the pipeline downstream of the Valve and Restrictor, or into an elongated Restrictor, with the Valve.

    8. A Valve as in claim 1 which may use any of several means to tune the sensitivity of the valve to the differential pressures in order to optimize the valve operation for various applications and hydro-mechanical environments.

    9. A Valve as in claim 1, utilizing a low pressure loop as in claim 7 to provide the low pressure holding the valve gate in the open position, which loop and connection may be arranged so as to adjust the sensitivity of the valve, as in claim 8, to changes in the differential pressures.

    10. A Valve as in claim 1, the sensitivity of which may be adjusted by using an externally adjustable orifice connecting the upstream pressure chamber and the downstream pressure chamber.

    11. A valve as in claim 1 which may be provided a reset mechanism consisting of having the primary gate hinge pin protrude through a bearing and seal mounted on the housing said hinge pin terminating in a spline, square, hex or other shape allowing a wrench to be used to turn the main gate back into the open position after deployment to the closed position.

    12. A reset mechanism as in claim 7 which may be motorized, fully enclosed, and operable either onsite or remotely.

    13. A Valve as in claim 1 in which the Port supplying relative negative pressure for holding the hinged valve Gate in the open position is equipped with a mechanism for closing the Port in the event the Valve is deployed to the closed position, said mechanism preventing the materials being transported from bypassing the closed Valve and continuing downstream.

    14. A valve as in claim 1 which may be equipped with a remotely activated powered

    10. g mechanism other than that provided for in claim 10 and claim 11, that can be controlled from outside the valve Housing.

    15. A Valve as in claim 1 which may be operated by the application of power, in response to changes in downstream pressure, as well as being operated by pressure alone.

    16. A Valve as in claim 1 which may be constructed in any size and of any material needed to be compatible with any pipeline or fluid transmission system.

    17. A Valve as in claim 1 in which the sealing interface may be provided an elastomeric seal.

    18. A Valve as in claim 1 in which the hinged valve Gate is attached with a hinge or flexible joint on one side to allow smooth movement between the open and closed positions.

    19. A Valve as in claim 1 in which a latching mechanism may be employed in addition to or instead of relative negative pressure only to hold the hinged valve Gate in the open position.

    20. A Latching Mechanism as in claim 19 which may be operated electrically or by other means in response to changes in the relative negative pressure (increase in pressure) downstream of the Restrictor and Valve.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0013] FIG. 1 is a cross-sectional view of the valve shown in a rectangular configuration, as it would appear while closed (stopping flow of the transported material).

    [0014] FIG. 2 is a cross-sectional view identical to FIG. 1 except for showing optional methods for adjusting the sensitivity of the valve to the differential pressures.

    [0015] FIG. 3 is a cross-sectional view identical to FIG. 1 except for showing another option for adjusting the sensitivity of the valve to the differential pressures.

    [0016] FIG. 4 is a stripped-down cutaway isometric view of the valve as it would appear in the open configuration, allowing the flow of the transported material.

    [0017] FIG. 5 is a different stripped-down cutaway isometric view of the valve as it would appear while in the open configuration.

    [0018] FIG. 6 is an isometric view showing the provision for resetting the valve, in the form of the main gate pivot pin protruding through a bearing and seal in the wall of the housing and into a sealable and securable reset housing.

    WRITTEN DESCRIPTION

    [0019] As required, detailed embodiments of the present invention are disclosed herein. However, it is to be understood that the disclosed embodiments are merely exemplary of the invention, which may be embodied in various and alternative forms. For instance, the embodiments shown, for ease of interpretation and understanding, are of a rectangular configuration. The valve may very well in many if not most applications be shaped as an expanded section of the pipeline in which it is to be installed. The accompanying drawings are not necessarily to scale, and some features may be exaggerated or minimized to show details of various components or features. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for teaching one skilled in the art to variously employ the present invention.

    [0020] Referring now to the drawings, wherein the numerals refer to like of corresponding parts throughout several views, the present invention is generally characterized as a valve actuated by changes in differential pressures in a pipeline upstream of the valve as opposed to downstream of the valve, comprised of a housing, pipeline-like extensions entering the housing, and two hinged gates providing valving action, along with the mating seals and pivot pins.

    [0021] As disclosed in the patent application, the housing of such a differential-pressure actuated valve is comprised of an upstream wall accepting an entry or connection of the pipeline, an downstream wall which accommodates the exit and connection to the downstream portion of the pipeline, a rear wall which provides both a rear closure of the housing and a mounting for one end of two hinge pins, a front wall which provides a front closure and the mounting for the other end of two hinge pins, and a partition separating two compartments of the valve, the line pressure compartment (generally on the bottom of the valve) and a low-pressure compartment (generally on the top of the valve, and a top wall and bottom wall completing the closure of the valve housing. This housing may be of any compatible shape, including a shape that appears as a larger diameter pipe, tapered to connect with the pipeline on either end.

    [0022] As disclosed in this patent application, the hinged gates, or flappers, move between an open and a closed position. Both will be open simultaneously, the main gate permitting flow of the transported material, and the secondary gate permitting the communication with the low-pressure portion of the pipeline downstream of the valve. When the valve is in the open condition, the main gate is held against the seal provided on the high-pressure side of the partition by the differential pressure, which creates lift on the upper, or low-pressure side of the gate. When the pressure communicated to the low-pressure chamber rises, as a result of leakage in the pipeline between the valve and restrictor and the pump on the downstream side of the crossing, the rising pressure no longer holds the main gate in the open position seated against the partition seal, and it is allowed to fall into the flow and is pushed into sealing contact with the seal provided on the face of pipe or pipe extension on the outlet side (downstream side) of the valve. The cam on the upstream side of the main gate which holds the low-pressure gate in the open position is no longer contacting the low-pressure gate, and it is allowed to fall into position sealing the low-pressure tube, preventing the transported material from by-passing the valve through this low-pressure tube. Upon reset, the cam on the main gate pushes the low-pressure gate back into the open position, allowing the low pressure to again hold the main gate in the open position. Resetting of the valve may be by any of several means, including manual, as shown in FIG. 6, or by adding a motor that may be manually or remotely activated. By using a motor, the system can be fully enclosed, with no potential for any leakage during reset.

    [0023] With reference now being made to FIG. 1, wherein the housing, 1, is shown in cross section, allowing the internal components to be viewed as they appear when the valve is in the closed position, preventing flow of the transported material. The partition, 2, is shown separating the upstream line pressure chamber of the valve, 15, from the downstream pressure chamber, 16, and including the opening between the chambers, 17, and the seal, 13, attached in this view to the partition near the opening, 17, between the chambers. Transported material is delivered to the upstream pressure chamber, 15, through the upstream pipeline adaptor, 3. In this illustration, the main gate, 7, is shown deployed, having pivoted on its hinge pin, 11, and into sealing contact with the seal, 6, at the end of the downstream pipeline adaptor, 4, and the restrictor insert, 5, closing the flow of transported material downstream of the valve. The cam, 8, that projects from the upstream side of the main gate, 7, is shown disengaged from the low pressure access tube gate, 14, allowing the gate, 14, to move into sealing contact with the seal, 10, located on the upstream end of the low pressure access tube, 9, closing the passage to any transported material being allowed to pass downstream when the valve in is the closed position. The gate, 14, pivots on its hinge pin, 12, to allow movement between the open position and the closed position shown in this view. The downstream pipeline adaptor, 4, is shown protruding into the lower, or upstream pressure chamber, 15, and terminating with an angled end. The restrictor insert, 5, is shown terminating with an angle identical with the angle at the upstream termination of the downstream pipeline adaptor, but short of the termination of the downstream pipe adaptor, 4, thereby providing a surface for retaining the seal, 6. This restrictor insert, 5, terminates on the downstream end with an angle such that the short end of the angle, 19, is just upstream of the opening, 18, of the low pressure access tube, 9, into the downstream pipeline adaptor, 4, providing an expanded flow cross section and enhancing the low or negative pressure being communicated to the upper, or downstream pressure chamber, 16. The opening, 18, of the low pressure access tube, 9, is placed at an angle to the downstream pipeline adaptor in a way designed to realize somewhat of a venturi effect to enhance the negativity of the pressure being communicated through it.

    [0024] Now referring to FIG. 2, a second low pressure access tube, 9A, is shown, communicating with the downstream pipeline adaptor, 4, downstream of the primary low pressure access tube, 9, and with its opening, 18A, tilted upstream, as opposed to the downstream angle of the opening, 18, of the primary low pressure access tube, 9. It will therefore, communicate a somewhat higher pressure toward the low pressure or downstream pressure chamber, 16, than will the primary access tube, 9, whose opening is angled downstream. By adjusting the needle valves, 22, in each of the access tubes, 9 and 9A, the differential can be tuned to achieve a more desirable sensitivity, taking into consideration the specifics of the installation. Another needle valve, 21, is shown protruding through the rear wall of the housing, 1, and including an orifice, 20, through the partition, 2, between the upstream pressure chamber, 15 and the downstream pressure chamber, 16. This needle valve may be adjusted to allow none, more or less of the high pressure in the lower, or upstream pressure chamber, 15, to enter the upper, or downstream pressure chamber, 16, thereby providing another method of tuning the valves sensitivity. Yet another feature, not shown, is the provision of a gate valve upstream of the differential pressure actuated valve, which can provide yet another method for tuning the sensitivity as well as providing an aid in resetting the valve after deployment, or closure.

    [0025] Now referring to FIG. 3, yet another method of tuning the valve sensitivity is shown, wherein the seal, 13, is shown further from the opening, 17 in the partition, 2, thereby increasing the area of the primary gate, 7, that is exposed to the lower pressure communicated through the low pressure access tube, 9, to the low pressure of downstream pressure chamber, 16. The area of the primary gate, 7, to be exposed to the low pressure will be determined for each valve depending on the variables of the specific application.

    Referring now to FIG. 4, the valve is shown as it would appear in the open position, with the primary gate, 7, having been pivoted on the hinge pin, 11, to the open position, held against the seal (not shown) on the underneath side of the partition, 2, with the cam, 8, having rotated the low pressure access tube gate, 14, to the open position, holding it in the open position. This is the normal set condition of the valve, from which it deploys to the closed condition in response to a rise in downstream pressure.
    Referring now to FIG. 5, again the valve is shown in the open position, as in FIG. 4, but from a different perspective, with the main gate, 7, having been pivoted on its hinge pin, 11, so that its upstream side is held against the seal (not shown) on the underneath side of the partition, 2, and its cam, 8, having lifted the low pressure access tube gate, 14, into the open position.
    Now referring to FIG. 6, the valve is shown in an isometric view that allows the viewer to see the reset provision. The primary pivot pin, 11, is shown inside a bearing and seal housing, 23, which is contained in an access box, 24. The end of the pivot pin, 11, is terminated with a spline, square, hex or other drive permitting a wrench to be utilized to turn the pivot pin and the primary gate, 7 (not shown) into the open position. This reset provision may be modified in numerous ways, including providing a fully enclosed motor that can be activated either manually or remotely to reset the valve without direct access to the pivot pin, 11.