Low leak pilot operated spool valve
09909671 ยท 2018-03-06
Assignee
Inventors
Cpc classification
F16K99/0001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K2099/009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K1/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A hybrid spool valve includes a body having a longitudinal bore. The bore has a fluid inlet chamber in fluid communication with a fluid inlet port and a fluid outlet chamber in fluid communication with a fluid outlet port. A spool is slidably mounted in the bore and is movable between a fully open position, a fully closed position, and a plurality of partially open positions. A pilot microvalve is mounted within the bore and is configured to control the sliding movement of the spool by varying the flow of fluid therethrough. A seal is disposed in a groove formed in an outside surface of the spool such that when the spool is in the fully closed position the seal engages a wall of the bore, and when the spool is the fully open position or one of the partially open positions the seal does not engage the bore.
Claims
1. A hybrid spool valve comprising: a body defining a longitudinally extending bore, the bore having a fluid inlet chamber in fluid communication with a fluid inlet port and a fluid outlet chamber in fluid communication with a fluid outlet port; a spool slidably mounted in the bore and having a first and a second end, the spool configured for sliding movement between a fully open position, which allows fluid flow from the fluid inlet chamber to the fluid outlet chamber, a fully closed position, which restricts fluid flow from the fluid inlet chamber to the fluid outlet chamber, and a plurality of partially open positions, which allows at least some fluid to flow from the fluid inlet chamber to the fluid outlet chamber, the spool including: a longitudinally extending spool bore formed therein; a radially extending feedback port extending between an outside surface of the spool and the spool bore, the feedback port in fluid communication between the bore of the body and the spool bore; a fluid flow groove formed in the outside surface of the spool, the fluid flow groove in fluid communication between the fluid inlet chamber and the fluid outlet chamber when the spool is in one of the fully open and partially open positions; and a plurality of longitudinally extending fluid flow slots formed in an outside surface thereof and extending from an axial end of the fluid flow groove; a pilot microvalve mounted within the bore adjacent the first end of the spool and configured to control the sliding movement of the spool by varying the flow of fluid therethrough; and a seal disposed in a groove formed in an outside surface of the spool, wherein when the spool is in the fully closed position, the seal engages a wall of the bore, and wherein when the spool is in one of the fully open and partially open positions, the seal does not engage the bore.
2. The hybrid spool valve according to claim 1, wherein the seal is a first seal disposed in a first groove, and wherein the leak path is a first leak path, the hybrid spool valve further including a second a seal disposed in a second groove formed in an outside surface of the spool, the second groove formed between the first end of the spool and the plurality of longitudinally extending fluid flow slots, wherein when the spool is in the fully closed position the second seal engages a wall of the bore and seals a second leak path defined between the fluid inlet chamber, a space between the spool and the bore of the body, the feedback port, the spool bore, and the fluid outlet chamber, and wherein when the spool is in one of the fully open and partially open positions the second seal does not engage the bore.
3. The hybrid spool valve according to claim 2, wherein when the spool is in the fully closed position and the first seal engages the wall of the bore, the first seal further seals a third leak path defined between the fluid inlet chamber, the plurality of longitudinally extending fluid flow slots, and the fluid outlet chamber.
4. The hybrid spool valve according to claim 3, wherein the bore of the body includes a first shoulder formed therein between a first diameter portion and a second diameter portion thereof, wherein the spool includes a second shoulder formed on an outside surface thereof between a first diameter portion and a second diameter portion, and wherein in the fully closed position, the second shoulder on the spool sealingly engages the first shoulder in the bore of the body, thereby defining a mechanical seal within the bore between the fluid inlet chamber and the fluid outlet chamber, such that when the spool is in the fully closed position the mechanical seal seals the leak path between the fluid inlet chamber and the fluid outlet chamber.
5. The hybrid spool valve according to claim 1, wherein the bore of the body includes a first shoulder formed therein between a first diameter portion and a second diameter portion thereof, wherein the spool includes a second shoulder formed on an outside surface thereof between a first diameter portion and a second diameter portion, and wherein in the fully closed position, the second shoulder on the spool sealingly engages the first shoulder in the bore of the body, thereby defining a mechanical seal within the bore between the fluid inlet chamber and the fluid outlet chamber, such that when the spool is in the fully closed position the mechanical seal seals the leak path between the fluid inlet chamber and the fluid outlet chamber.
6. The hybrid spool valve according to claim 1, wherein the spool further includes: a generally cylindrical first portion disposed near the pilot microvalve; a generally cylindrical second portion, wherein the second portion has a longitudinally extending bore formed therein, and wherein the first portion of the spool is attached within the bore of the second portion; and a generally cylindrical feedback piston slidably mounted in the bore of the second portion.
7. The hybrid spool valve according to claim 6, wherein the first portion of the spool further includes: a longitudinally extending spool bore formed therein; a radially extending feedback port extending between an outside surface of the first portion and the spool bore, the feedback port in fluid communication between the bore of the body and the spool bore; a fluid flow groove formed in the outside surface of the first portion, the fluid flow groove in fluid communication between the fluid inlet chamber and the fluid outlet chamber when the spool is in one of the fully open and partially open positions; and a plurality of longitudinally extending fluid flow slots formed in an outside surface thereof and extending from an axial end of the fluid flow groove.
8. The hybrid spool valve according to claim 7, wherein first portion includes a plurality of feedback ports.
9. The hybrid spool valve according to claim 1, wherein the fluid flow groove has a first axial end and a second axial end, and wherein the plurality of longitudinally extending fluid flow slots are formed at the second axial end.
10. A hybrid spool valve comprising: a body defining a longitudinally extending bore, the bore having a fluid inlet chamber in fluid communication with a fluid inlet port and a fluid outlet chamber in fluid communication with a fluid outlet port; a spool slidably mounted in the bore and having a first and a second end, the spool configured for sliding movement between a fully open position, which allows fluid flow from the fluid inlet chamber to the fluid outlet chamber, a fully closed position, which restricts fluid flow from the fluid inlet chamber to the fluid outlet chamber, and a plurality of partially open positions, which allows at least some fluid to flow from the fluid inlet chamber to the fluid outlet chamber, the spool including: a longitudinally extending spool bore formed therein; a radially extending feedback port extending between an outside surface of the spool and the spool bore, the feedback port in fluid communication between the bore of the body and the spool bore; a fluid flow groove formed in the outside surface of the spool, the fluid flow groove in fluid communication between the fluid inlet chamber and the fluid outlet chamber when the spool is in one of the fully open and partially open positions; and a plurality of longitudinally extending fluid flow slots formed in an outside surface thereof and extending from an axial end of the fluid flow groove; a pilot microvalve mounted within the bore adjacent the first end of the spool and configured to control the sliding movement of the spool by varying the flow of fluid therethrough; a first shoulder formed in the bore of the body between a first diameter portion and a second diameter portion of the bore; and a second shoulder formed on an outside surface of the spool between a first diameter portion and a second diameter portion of the spool, wherein in the fully closed position, the second shoulder on the spool sealingly engages the first shoulder in the bore of the body, thereby defining a mechanical seal within the bore of the body between the fluid inlet chamber and the fluid outlet chamber, such that when the spool is in the fully closed position the mechanical seal seals a leak path between the fluid inlet chamber and the fluid outlet chamber.
11. The hybrid spool valve according to claim 10, wherein the spool further includes: a generally cylindrical first portion disposed near the pilot microvalve; a generally cylindrical second portion, wherein the second portion has a longitudinally extending bore formed therein, and wherein the first portion of the spool is attached within the bore of the second portion; and a generally cylindrical feedback piston slidably mounted in the bore of the second portion.
12. The hybrid spool valve according to claim 11, wherein the first portion of the spool further includes: a longitudinally extending spool bore formed therein; a radially extending feedback port extending between an outside surface of the first portion and the spool bore, the feedback port in fluid communication between the bore of the body and the spool bore; a fluid flow groove formed in the outside surface of the first portion, the fluid flow groove in fluid communication between the fluid inlet chamber and the fluid outlet chamber when the spool is in one of the fully open and partially open positions; and a plurality of longitudinally extending fluid flow slots formed in an outside surface thereof and extending from an axial end of the fluid flow groove.
13. The hybrid spool valve according to claim 10, further including: a first seal disposed in a first groove formed in an outside surface of the spool, wherein when the spool is in the fully closed position the seal engages a wall of the bore and seals a first leak path defined between the fluid inlet chamber and the fluid outlet chamber, and wherein when the spool is in one of the fully open and partially open positions the seal does not engage the bore; and a second a seal disposed in a second groove formed in an outside surface of the spool, the second groove formed between the second end of the spool and the plurality of longitudinally extending fluid flow slots, wherein when the spool is in the fully closed position the second seal engages a wall of the bore and seals a second leak path defined between the fluid inlet chamber, a space between the spool and the bore of the body, the feedback port, the spool bore, and the fluid outlet chamber, and wherein when the spool is in one of the fully open and partially open positions the second seal does not engage the bore; wherein when the spool is in the fully closed position and the second seal engages the wall of the bore, the second seal further seals a third leak path defined between the fluid inlet chamber, the plurality of longitudinally extending fluid flow slots, and the fluid outlet chamber.
14. A hybrid spool valve comprising: a body defining a longitudinally extending bore, the bore having a fluid inlet chamber in fluid communication with a fluid inlet port and a fluid outlet chamber in fluid communication with a fluid outlet port; a spool slidably mounted in the bore and configured for sliding movement between a fully open position, which allows fluid flow from the fluid inlet chamber to the fluid outlet chamber, a fully closed position, which restricts fluid flow from the fluid inlet chamber to the fluid outlet chamber, and a plurality of partially open positions, which allows at least some fluid to flow from the fluid inlet chamber to the fluid outlet chamber, the spool having: first and second ends; a longitudinally extending spool bore formed therein; a radially extending feedback port extending between an outside surface of the spool and the spool bore, the feedback port in fluid communication between the bore of the body and the spool bore; a fluid flow groove formed in the outside surface of the spool, the fluid flow groove in fluid communication between the fluid inlet chamber and the fluid outlet chamber when the spool is in one of the fully open and partially open positions; and a plurality of longitudinally extending fluid flow slots formed in an outside surface thereof and extending from an axial end of the fluid flow groove; a pilot microvalve mounted within the bore adjacent the first end of the spool and configured to control the sliding movement of the spool by varying the flow of fluid therethrough; a first seal disposed in a first groove formed in an outside surface of the spool, wherein when the spool is in the fully closed position the first seal engages a wall of the bore and seals a first leak path between the fluid inlet chamber and the fluid outlet chamber, and wherein when the spool is in one of the fully open and partially open positions the seal does not engage the bore; and a second seal disposed in a second groove formed in an outside surface of the spool, the second groove formed between the second end of the spool and the plurality of longitudinally extending fluid flow slots, wherein when the spool is in the fully closed position the second seal engages a wall of the bore and seals a second leak path defined between the fluid inlet chamber, a space between the spool and the bore of the body, the feedback port, the spool bore, and the fluid outlet chamber, wherein when the spool is in one of the fully open and partially open positions the second seal does not engage the bore, and wherein when the spool is in the fully closed position and the second seal engages the wall of the bore, the second seal further seals a third leak path defined between the fluid inlet chamber, the plurality of longitudinally extending fluid flow slots, and the fluid outlet chamber.
15. The hybrid spool valve according to claim 14, wherein the bore of the body includes a first shoulder formed therein between a first diameter portion and a second diameter portion thereof, wherein the spool includes a second shoulder formed on an outside surface thereof between a first diameter portion and a second diameter portion, and wherein in the fully closed position, the second shoulder on the spool sealingly engages the first shoulder in the bore of the body, thereby defining a mechanical seal within the bore between the fluid inlet chamber and the fluid outlet chamber, such that when the spool is in the fully closed position the mechanical seal seals the leak path between the fluid inlet chamber and the fluid outlet chamber.
16. The hybrid spool valve according to claim 14, wherein the spool further includes: a generally cylindrical first portion disposed near the pilot microvalve; a generally cylindrical second portion, wherein the second portion has a longitudinally extending bore formed therein, and wherein the first portion of the spool is attached within the bore of the second portion; and a generally cylindrical feedback piston slidably mounted in the bore of the second portion.
17. The hybrid spool valve according to claim 16, wherein the longitudinally extending spool bore and the radially extending feedback port are formed in the first portion of the spool.
18. The hybrid spool valve according to claim 17, wherein the first portion of the spool includes a plurality of radially extending feedback ports.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(9)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(10) Referring now to the drawings,
(11) As shown in
(12) The second portion 18b of the bore 18 includes a circumferentially extending first groove defining a fluid inlet chamber 34. The fluid inlet chamber 34 is in fluid communication with a source of fluid, such as a refrigeration system condenser (not shown) via a fluid inlet port 36. The third portion 18c of the bore 18 also defines a circumferentially extending fluid outlet chamber. The third portion 18c is in fluid communication with a fluid outlet port 40. The fluid outlet port 40 may be connected to a refrigeration system evaporator (not shown) in a conventional manner. Thus, fluid flows through the improved hybrid spool valve 10 in the direction of the arrows A1. A circumferentially extending second groove 42 is formed in the second portion 18b of the bore between the fluid inlet chamber 34 and the first portion 18a of the bore 18.
(13) A first fluid passageway 44 is formed in the body 16 and extends longitudinally between the fluid inlet port 36 and the microvalve 12 via fluid flow conduits (not shown) formed in the first plug 24. Similarly, a second fluid passageway 46 is formed in the body 16 and extends longitudinally between the fluid outlet port 40 and the microvalve 12 via fluid flow conduits (not shown) formed in the first plug 24. A radially extending passageway 46a is also formed in the body 16 and is in fluid communication between the fluid pressure passageway 46 and the second groove 42. The first and second fluid passageways 44 and 46 supply fluid to the pilot microvalve 12.
(14) The generally cylindrical spool 14 is a movable valve element that is slidably mounted in the second portion 18b of the longitudinally extending bore 18. The spool 14 has a first portion 14a disposed near the pilot microvalve 12 and a second portion 14b disposed near the second plug 26 at the second open end 22. The first portion 14a of the spool 14 includes a circumferentially extending fluid flow groove 50 formed in an outer surface thereof, and a longitudinally extending bore 52 formed therein. The fluid flow groove 50 includes a first axial end 50a (the upper end when viewing
(15) A plurality of longitudinally extending fluid flow slots 56 are also formed in the outside surface of the spool 14 at the second axial end 50b of the fluid flow groove 50. In the illustrated embodiment, the fluid flow slots 56 have a width of about 1.5 mm, although the slots 56 may have any desired width.
(16) In the illustrated embodiment, the first portion 14a of the spool 14 is slidably movable between a fully closed position, as shown in
(17) In the fully closed position as shown in
(18) A radially extending second shoulder is formed at a first end of the second portion 14b of the spool 14 (the upper end of the second portion 14b when viewing
(19) The illustrated spool 14 is formed in the two portions 14a and 14b for ease of manufacture. Alternatively, and if desired, the spool 14 may be formed as a single piece. Further, the spool 14 may be formed without the grooves 62 and the associated O-rings 60, with only one groove 62 and one O-ring 60, or with more than two grooves 62 and the associated O-rings 60.
(20) The second portion 14b of the spool 14 is generally cylindrical, has a longitudinally extending bore 64 therein, and is disposed within the third portion 18b of the bore 18. The first portion 14a is attached within the bore 64 at a first end of the second portion 14b (the upper end of the second portion 14b when viewing
(21) Referring now to
(22) In operation, the main spool valve 112 follows the movement of the pilot microvalve 114, i.e., a change in the open-closed position of the pilot microvalve 114 is matched by a linearly equivalent change in the open-closed position of the spool valve 112. For example, if the pilot microvalve 114 is half-open, the spool valve 112 will be half-open. This is true regardless of pressure and flow conditions under which the known spool valve assembly 110 is operating.
(23) The known main spool valve 112 is a normally closed valve. Alternatively, the main spool valve 112 may be a normally open valve, or a valve normally positioned intermediate a fully closed position and a fully open position. In
(24) The known main spool valve 112 is disposed in a valve body 116. The valve body 116 includes a variety of passageways and ports for connecting different portions of the known main spool valve assembly 110 to other portions of a fluid circuit (not shown) or with each other.
(25) The valve body 116 includes a longitudinally extending bore 118 having a first open end 120 (the upper end when viewing
(26) The first open end 120 may be closed by a suitable first plug 124, and the second open end 122 may be closed by a suitable second plug 126. The first and second plugs 124 and 126 are each sealingly fixed in their respective open ends 120 and 122 by a threaded connection. The first plug 124 may be made leak-tight by one or more seals or O-rings 128a and 128b. An electrical connector 130 extends outwardly from an outside axial end of the first plug 124 and connects the microvalve 114 to a source of electrical power (not shown).
(27) A cup shaped cap 132 is attached to an inside axial end of the first plug 124 and defines a fluid cavity 134. At least one fluid port 136 (see
(28) The third portion 118c of the bore 118 includes a circumferentially extending first groove defining a fluid inlet chamber 140. The fluid inlet chamber 140 is connected to a source of fluid, such as a refrigeration system condenser (not shown) via an inlet port 142. The third portion 118c of the bore 118 also includes a circumferentially extending second groove defining a fluid outlet chamber 144. The fluid outlet chamber 144 is connected to an outlet port 146. The outlet port 146 may be connected to a refrigeration system evaporator (not shown) in a conventional manner. Thus, fluid flows through the spool valve assembly 110 in the direction of the arrows A2.
(29) The generally cylindrical spool 112 is a movable valve element that is disposed in the third portion 118c of the longitudinally extending bore 118. The spool 112 includes a circumferentially extending fluid flow groove 150 formed in an outer surface thereof, and a longitudinally extending bore 152 formed therein. The fluid flow groove 150 includes a first axial end 150a (the upper end when viewing
(30) A circumferentially extending pressure groove 156 is formed in the outside surface of the spool 112 between a first axial end 112a of the spool 112 and the fluid flow groove 150 and includes a radially extending passageway 157 (see
(31) Capillary tubes 160 extend between the inlet and outlet ports 142 and 146, respectively, and fluid flow conduits (not shown) formed in the first plug 124. These fluid flow conduits supply fluid to the pilot microvalve 114.
(32) In operation, the known spool valve assembly 110 may experience fluid leakage even when in a closed or power off condition. For example, pressurized fluid in the fluid inlet chamber 140 may travel along a first leak path LP1 between the spool 112 and the third portion 118c of the bore 118 and into the fluid outlet chamber 144 through one of feedback ports 154 (the uppermost feedback port when viewing
(33) Referring back to
(34) The hybrid spool valve 10 operates in a manner similar to the known spool valve assembly 110 shown in
(35) It is desirable to reduce or prevent fluid leakage between the fluid inlet port 36 and the fluid outlet port 40 when the hybrid spool valve 10 is in the fully closed position shown in
(36) Additionally, in the fully closed position shown in
(37) When the hybrid spool valve 10 is in the open position as shown in
(38) The principle and mode of operation of this invention have been explained and illustrated in its preferred embodiment. However, it must be understood that this invention may be practiced otherwise than as specifically explained and illustrated without departing from its spirit or scope.