Bypass valve
09599244 ยท 2017-03-21
Assignee
Inventors
Cpc classification
F16K31/0634
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01F7/121
ELECTRICITY
F16K11/0743
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/87772
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
F16K31/0624
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0603
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/87708
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
International classification
F16K11/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01F7/121
ELECTRICITY
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/074
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A bypass valve and a valve assembly including a bypass valve are disclosed. The bypass valve includes a manifold having 4 ports and a valve stem including two sealing elements disposed along the valve stem length. The valve stem may be displaced to a first valve position and a second valve position to selectably place combinations of ports in fluid communication with each other.
Claims
1. A bypass valve comprising: a manifold comprising: a first port configured as a first fluid input port and a second port coupled together in fluid communication and configured as a first fluid output port; a third port in selectable fluid communication with the first port and the second port and configured as a second fluid output port; and a fourth port in selectable fluid communication with the third port and configured as a second fluid input port; a valve stem supported for linear displacement between a first valve position and a second valve position; a first sealing element fixed linearly along a length of the valve stem; and a second sealing element fixed linearly along the length of the valve stem, spaced apart from the first sealing element; wherein a central axis crossing an opening of the third port is non-parallel to and between central axes of the first and second ports each crossing respective openings of the first and second ports; the first valve position disposes the first sealing element to close the third port from fluid communication with the first and second ports and disposes the second sealing element to open the third port to fluid communication with the fourth port such that the direction of fluid flow through the bypass valve in the first valve position: begins with fluid flow into the first port, followed by fluid flow out of a second port, re-entry into the bypass valve through the fourth port then into the third port, the fluid exiting from the third port where it no longer re-circulates through the bypass valve; and the second valve position disposes the first sealing element to open the third port to fluid communication with the first and second ports and disposes the second sealing element to close the third port from fluid communication with the fourth port such that the direction of the fluid flow through the bypass valve in the second position: begins with fluid flow into the first port, followed by fluid flow out of the second port, re-entry into the bypass valve through the fourth port, wherein fluid flow is prevented from accessing the third port following re-entry of a fluid into the bypass valve, fluid flow re-entry into the bypass valve eventually ceasing, and fluid flow from entry into the first port is directed directly to the third port, the fluid exiting from the third port where it no longer re-circulates through the bypass valve.
2. The bypass valve of claim 1, wherein the first port and the second port are in selectable fluid communication via a first conduit.
3. The bypass valve of claim 1, wherein the fourth port is in selectable fluid communication with the third port via a second conduit.
4. The bypass valve of claim 1, wherein the first port and the second port are in fluid communication when the valve stem is in the first position and in the second position.
5. The bypass valve of claim 1, wherein one of the first or second sealing elements is a poppet valve.
6. The bypass valve of claim 1, wherein an axis of the first port and an axis of the second port are collinear and aligned with an axis of the first conduit.
7. The bypass valve of claim 6, wherein an axis of the fourth port is collinear with an axis of the second conduit and parallel to the axes of the first and second ports.
8. The bypass valve of claim 7, wherein an axis of the third port is disposed between the axis of the first conduit and the axis of the second conduit.
9. The bypass valve of claim 8, wherein the axis of the third port is perpendicular to the plane formed by the axes of the first conduit and the second conduit.
10. A valve assembly comprising: a bypass valve; and an actuator linked to the bypass valve, the actuator including a movable armature supported for linear displacement between a first position and a second position, wherein the movable armature is aligned with the valve stem such that the valve stem is displaced in response to displacement of the movable armature, wherein the bypass valve comprises: a manifold comprising: a first port configured as a first fluid input port and a second port coupled together in fluid communication and configured as a first fluid output port; a third port in selectable fluid communication with the first port and the second port and configured as a second fluid output port; and a fourth port in selectable fluid communication with the third port and configured as a second fluid input port; a valve stem supported for linear displacement between a first valve position and a second valve position; a first sealing element fixed linearly along a length of the valve stem; and a second sealing element fixed linearly along the length of the valve stem, spaced apart from the first sealing element; wherein a central axis crossing an opening of the third port is non-parallel to and between central axes of the first and second ports each crossing respective openings of the first and second ports; the first valve position disposes the first sealing element to close the third port from fluid communication with the first and second ports and disposes the second sealing element to open the third port to fluid communication with the fourth port such that the direction of fluid flow through the bypass valve in the first valve position: begins with fluid flow into the first port, followed by fluid flow out of a second port, re-entry into the bypass valve through the fourth port then into the third port, the fluid exiting from the third port where it no longer re-circulates through the bypass valve; and the second valve position disposes the first sealing element to open the third port to fluid communication with the first and second ports and disposes the second sealing element to close the third port from fluid communication with the fourth port such that the direction of the fluid flow through the bypass valve in the second position: begins with fluid flow into the first port, followed by fluid flow out of the second port, re-entry into the bypass valve through the fourth port, wherein fluid flow is prevented from accessing the third port following re-entry of a fluid into the bypass valve, fluid flow re-entry into the bypass valve eventually ceasing, and fluid flow from entry into the first port is directed directly to the third port, the fluid exiting from the third port where it no longer re-circulates through the bypass valve.
11. The valve assembly of claim 10, wherein the actuator is an electromechanical solenoid and the movable armature is movable in response to a first electrical signal and a second electrical signal applied to the electromechanical solenoid.
12. The valve assembly of claim 11, wherein the solenoid comprises a coil, and further comprising a power source controlled by a controller for providing the first electrical signal and the second electrical signal to the coil.
13. The valve assembly of claim 11, wherein the first position of the movable armature corresponds to the first valve position and the second position of the movable armature corresponds with the second valve position.
14. The valve assembly of claim 11, wherein the first electrical signal corresponds to a de-energized solenoid condition and the second electrical signal corresponds to an energized solenoid condition.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the present invention, briefly summarized above and discussed in greater detail below, can be understood by reference to the illustrative embodiments of the invention depicted in the appended drawings. It is to be noted, however, that the appended drawings illustrate only typical embodiments of this invention and are therefore not to be considered limiting of its scope, for the invention may admit to other equally effective embodiments.
(2)
(3)
(4)
(5)
(6) To facilitate understanding, identical reference numerals have been used, where possible, to designate identical elements that are common in the figures. The figures are not drawn to scale and may be simplified for clarity. It is contemplated that elements and features of one embodiment may be beneficially incorporated in other embodiments without further recitation.
(7) While described in reference to a thermal bypass valve for an automotive thermal control system, the present invention may be modified for a variety of applications while remaining within the spirit and scope of the claimed invention, since the range of the potential applications is great, and because it is intended that the present invention be adaptable to many such variations.
DETAILED DESCRIPTION
(8)
(9) The manifold 102 includes a third port 110 offset from the first and second ports 104, 106 and in selectable fluid communication (to be discussed below) with the first port 104 and the second port 106 via the conduits 118b and 108. In embodiments in which the first and second ports 104, 106 are in direct fluid communication, the third port 110 is in direct fluid communication with the first port 104 and the second port 106 at a point between the two ports. The third port 110 is illustrated in a dashed line to signify the axis of the port is perpendicular to the page as drawn and perpendicular to the axis 112. The orientation of the third port 110 as drawn is for clarity and ease of illustration only. The third port 110 may be oriented at other angular orientations to the axis 112 and to the page.
(10) A fourth port 114 is included in the manifold 102 offset from the first port 104, the second port 106, and the third port 110, and in selectable fluid communication with the third port 110 (to be discussed below) via conduits 117 and 118a. The axis 116 of the fourth port 114 is parallel with the axis 112 and perpendicular to the third port 110 as illustrated in
(11) Conduits 118a and 118b are aligned along axis 128 in the manifold 102 and may collectively be conduit 118. Conduit 118a terminates at a first end 120 with a first sealing surface 122. Conduit 118b terminates at a second end 124 with a second sealing surface 126.
(12) A valve stem 119 is disposed within the manifold 102 aligned with axis 128 and supported for linear displacement along the axis 128 between at least a first valve position shown in
(13) A second sealing element 132 is fixed linearly along the length of the valve stem 119 at a second location spaced apart from the first sealing element 130 such that the second sealing element 132 is disposed in the conduit 117 adjacent to the first end 120 of conduit 118a.
(14) In the first valve position, the valve stem 119 is disposed to the right as drawn in
(15) In the first valve position, the second sealing element 132 is disposed such that the third port 110 is open to fluid communication with the fourth port 114 and conduit 117. In the non-limiting embodiment illustrated in
(16) The valve stem 119 may be urged into the first valve position by a resilient element, such as spring 134, captured between a portion of the manifold 102 and a cap 136 disposed on an end of the valve stem 119. The resilient member 134 exerts a resilient force against the cap 136 to maintain the valve stem 119 in the first valve position.
(17) In the second valve position, as illustrated in
(18) In both the first valve position of
(19) The first and second sealing elements 130, 132 are illustrated as generally flat disks for ease of illustration only. The sealing elements 130, 132 may be any configuration, including size, shape, and material, suitable to open or close the third port 110 for selectable fluid communication with the first and second ports 104, 106, or with the fourth port 114.
(20)
(21) A coil 206 in the solenoid 202 is electrically coupled to a power source 208 controlled by a controller 210 through an electrical coupling for providing a selectable electrical signal, such as a current, to the coil 206. The armature 204 is movable in response to a current applied to the coil 212. The controller 210 may provide at least a first electrical signal and a second electrical signal to the coil 212 corresponding to a first energy condition and a second energy condition, respectively. For example, the first electrical signal may be a 0 ampere current corresponding to a de-energized solenoid condition and the second electrical signal may correspond to a greater, or non-zero ampere, current corresponding to an energized solenoid condition. The first energy condition moves the armature to a first position corresponding to the first valve position and the second energy condition moves the armature to a second position corresponding to the second valve position.
(22) The first port 104 of the bypass valve assembly of
(23) The second port 106 may be fluidly coupled to an input of a thermal transfer device and the fourth port 114 may be fluidly coupled to an output of the thermal transfer device. The third port 110 may be fluidly coupled to holding location, for example an automotive transmission sump configured to provide transmission fluid to the transmission.
(24) In an embodiment, the thermal transfer device is a cooler, for example a transmission cooler, configured to remove heat from a transmission fluid flowing through heat transfer elements of the cooler.
(25) As described above, in the first valve position of
(26) Configured as described above in the first position, a fluid flowing flow into the first port 104 (as indicated by arrow 212) continues to flow out of second port 106 (as indicated by arrow 214) and into a transmission cooler (not shown). The flow returns to the bypass valve through fourth port 114 (as indicated by arrow 216) into conduit 117 which terminates at an end opposite port third 114. Flow continues into conduit 118a and out third port 110 (as indicated by the tail of arrow 218) to an automotive transmission sump. This condition may be associated with a non-energized actuator, for example solenoid 202, and represents the default, or fail-safe, condition. The first valve position may correspond with the normal operating condition for an automotive transmission. Following initial warm-up, flow through the cooler removes excess heat from the transmission fluid to beneficially maintain the fluid at a desired or operational temperature or range of temperatures.
(27) The second valve position of
(28) Fluid flow 212 into first port 104 may initially flow 214 out of second port 106, into a thermal transfer device (not shown). A flow 216 may continue from the thermal transfer device into fourth port 114 and conduit 117. However, the flow 216 cannot exit conduit 117, resulting in cessation of flows 216 and 214. The flow 212 is directed into conduit 118b and out third port 110 (as indicated by the tail of arrow 218) an automotive transmission sump. This condition may be associated with an energized actuator, for example solenoid 202. The second valve position may correspond with the initial start-up condition for an automotive transmission. By blocking the transmission fluid flow to the transmission cooler, heat is not removed from the transmission fluid and the transmission may attain operational temperature more quickly. Improved transmission function and performance may be associated with attaining operational temperature in an automotive transmission.
(29) Thus a bypass valve and a bypass valve assembly are provided herein. The inventive bypass valve and a bypass valve assembly may advantageously improve the accuracy, reliability, and reaction speed of bypass valve in an automotive thermal control system.
(30) Those of ordinary skill in the art may recognize that many modification and variations of the above may be implemented without departing from the spirit or scope of the following claims. For example, although reference to an automotive transmission is made, other mechanical systems sensitive to thermal conditions for optimum performance may benefit from the disclosed fluid control valve and valve system.