Valve connected to a feed circuit, a feed circuit comprising such a valve and a feeding method operating such a feed circuit
10337640 · 2019-07-02
Assignee
Inventors
- Alain Cler (Romans sur Isere, FR)
- Yves Lamirand (Bourg de Péage, FR)
- Matthieu Bardin (Chatuzangue le Goubet, FR)
- Christophe BONDRAN (SAINT UZE, FR)
Cpc classification
F01N2610/1473
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K15/1823
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/144
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02A50/20
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
F16K1/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/776
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
F01N2610/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/27
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
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
F01N2610/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/30515
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/7771
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
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/1262
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/1493
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/208
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/1266
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/7876
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
F15B11/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K31/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B13/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K15/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
This valve includes a first chamber, a second chamber, a seat with a liquid passage, a plug movable between i) an open position and ii) a closed position, and a biasing member for urging the plug toward the closed position. The valve includes an actuating member having a face which sustains an actuating pressure. The actuating member is movable between i) an actuation position for opening the plug and ii) a rest position. The valve operates, selectively: in a feed mode, where the plug is open and the actuating member is at rest, the liquid flowing in one direction throughout the second chamber, or in a latch mode, where the plug is closed and the actuating member is at rest, no liquid flowing in the valve, or in a drain mode, where the plug is open, the liquid flowing in the reverse direction throughout the second chamber.
Claims
1. A feed circuit, configured for the flow of a liquid in a motor vehicle, the feed circuit comprising at least: a liquid tank, a liquid-user device which is configured to use the liquid, a pump which is configured to make the liquid circulate between the liquid tank and the liquid-user device, and a valve, the valve being arranged between the pump and the liquid-user device, the valve operating, selectively, in a feed mode, in a latch mode or in a drain mode; wherein the valve comprises: a first port configured for being connected to the pump and the liquid tank, a second port configured for being connected to the at least one liquid-user device, a first chamber connected to the first port, a second chamber connected to the second port, a seat presenting a passage arranged so that the liquid can flow between the first port and the second port, a plug movable between i) an open position, in which the plug is away from the seat so that liquid can flow through the passage, and ii) a closed position, in which the plug bears against the seat so as to block the liquid flow through the passage, and a biasing member which is configured to generate a biasing force so as to urge the plug toward the closed position, an actuating member having: a first face which is configured to sustain a pressure of the liquid that is present in the first chamber, and a second face which is configured to sustain an actuating pressure which is exerted by an actuating fluid so that the actuating member is at least in partially movable between i) an actuation position, in which the actuating member allows placing the plug in the open position, and ii) a rest position, in which the actuating member allows placing the plug in the closed position, the plug, the biasing member and the actuating member being configured so that the valve operates consecutively: in the feed mode, the plug is in the open position and the actuating member is in the rest position, so that the liquid flows from the first port toward the second port, or in the latch mode, the plug is in the closed position and the actuating member is in the rest position, so that no liquid does flow between the first port and the second port, or in the drain mode, the plug is in the open position and the actuating member is in the actuation position, so that the liquid flows from the at least one liquid-user device into the second port of the valve and out of the first port of the value in order to reach the pump and the liquid tank, the pump being configured to be arranged between the first port of the valve and the liquid tank, wherein the valve is configured such that the liquid in flowing from the at least one liquid-user device to the liquid tank passes into and out of the valve and the pump a single time; wherein the feed circuit further comprises: an accumulator which is configured to contain a variable volume of the liquid at a variable pressure, and a pressure sensor which is arranged for measuring the pressure of the liquid that is present in the accumulator, the pressure sensor being configured to transmit, to a control unit, signals which are representative of the pressure of the liquid that is present in the accumulator.
2. The feed circuit according to claim 1, wherein the control unit is configured to control the pump, selectively, so as: to increase the pressure of the liquid in the first chamber so that the valve operates in the feed mode, or to stop the pump so that the valve operates in the latch mode, or to decrease the pressure of the liquid in the first chamber so that the valve operates in the drain mode.
3. The feed circuit according to claim 1, wherein the actuating fluid is air that surrounds the valve and which is substantially at the atmospheric pressure.
4. The feed circuit according to claim 1, wherein the feed circuit is an additive injection circuit, the liquid being an aqueous urea solution.
5. A feeding method, for the flow of a liquid in a motor vehicle, the feeding method comprising the consecutive steps of: providing a feed circuit according to claim 1, increasing the pressure of the liquid in the first chamber so that the valve operates in the feed mode, or stopping the pump so that the valve operates in the latch mode, or decreasing the pressure of the liquid in the first chamber so that the valve operates in the drain mode.
6. The feed circuit according to claim 1, wherein the valve further comprises a guide arranged in the second chamber and configured to guide the plug between the closed position and the open position.
7. The feed circuit according to claim 1, wherein the plug, the biasing member and the actuating member are sized so that, when in the feed mode, the force that is exerted on the plug and which results from the pressure of the liquid in the first chamber is higher than the sum of i) the force that is exerted on the plug and which results from the pressure of the liquid in the second chamber and ii) the biasing force that is exerted on the plug; and so that, when in the feed mode, the force that is exerted on the actuating member and which results from the pressure of the liquid in the first chamber is higher than the force that is exerted on the actuating member and which results from the actuating pressure.
8. The feed circuit according to claim 1, wherein the plug, the biasing member and the actuating member are sized so that, when in the latch mode, the force that is exerted on the plug and which results from the pressure of the liquid in the first chamber is lower than the sum of i) the force that is exerted on the plug and which results from the pressure of the liquid in the second chamber and ii) the biasing force that is exerted on the plug; and so that, when in the latch mode, the force that is exerted on the actuating member and which results from the pressure of the liquid in the first chamber is higher than or equal to the force that is exerted on the actuating member and which results from the actuating pressure.
9. The feed circuit according to claim 1, wherein the plug, the biasing member and the actuating member are sized so that, when in the drain mode, the force that is exerted on the plug and which results from the pressure of the liquid in the first chamber is lower than the force that is exerted on the plug and which results from the pressure of the liquid in the second chamber; and so that, when in the drain mode, the force that is exerted on the actuating member and which results from the actuating pressure is higher than the force resulting from i) the force that is exerted on the actuating member and which results from the pressure of the liquid in the first chamber, ii) the biasing force that is exerted on the plug, iii) the force that is exerted on the plug and which results from the pressure of the liquid in the first chamber, and iv) the force that is exerted on the plug and which results from the pressure of the liquid in the second chamber.
10. The feed circuit according to claim 1, wherein the actuating member comprises a membrane which is elastically deformable.
11. The feed circuit according to claim 1, wherein the valve comprises biasing means which are configured to urge the actuating member in the rest position.
12. The feed circuit according to claim 1, wherein the actuating member is disposed inside the first chamber, and wherein the first chamber presents a hole configured for conveying the actuating fluid toward the second face.
13. The feed circuit according to claim 1, wherein the valve further comprises an opening member disposed between the plug and the actuating member so as to transmit, to the plug, a force which results from the actuating pressure.
14. The feed circuit according to claim 13, wherein the opening member is generally in the form of a rod extending along an actuation direction, the opening member presenting, when viewed in section in a plane transverse to the actuation direction, recesses which are configured for the flow of the liquid substantially parallel to the actuation direction.
15. The feed circuit according to claim 1, wherein the first port is connected to the passage via a channel, and wherein the first chamber is connected to the first port via a connection port.
Description
(1) The present invention will be better understood and its advantages will also appear in the light of the description that follows, given only but as a non-limiting example and with reference to the appended drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11) The valve 1 has a first port 6 and a second port 8. The valve 1 comprises a first chamber 2 and a second chamber 4. The first chamber 2 is connected to the first port 6. The first port 6 is connected, via a first conduit 61, to a pump 56 which belongs to the feed circuit 51. The second chamber 4 is connected to the second port 8. The second port 8 is connected, via a second conduit 62, to a liquid-user device 54 which belongs to the feed circuit 51.
(12) In the example of
(13) Depending on the direction of the liquid L flow, the first port 6 acts as an inlet or as an outlet of the liquid L, respectively, into or out of the first chamber 2. Depending on the direction of the liquid L flow, the second port 8 acts as an inlet or as an outlet of the liquid L, respectively, into or out of the second chamber 4. The second port serves alternately as an inlet and as an outlet of the liquid into and out of the second chamber.
(14) In the example of
(15) The valve 1 further comprises a seat 12 which presents a passage 14. The passage 14 is arranged so that the liquid L could flow between the first port 6 and the second port 8, in one direction or in the reverse direction. In the example of
(16) In addition, the valve 1 comprises a plug 16 which is movable between i) an open position (
(17) The valve 1 further comprises a biasing member 18 which is configured to generate a biasing force F18 so as to urge the plug 16 toward the closed position (
(18) The valve 1 further comprises an actuating member 20 which is configured to actuate the plug 16. The actuating member 20 has a first face 21 and a second face 22. The first face 21 is configured to sustain a pressure P2 of the liquid L that is present in the first chamber 2. The second face 22 is configured to sustain an actuating pressure P22 which is exerted by an actuating fluid. In this instance, the first face 21 and the second face 22 have surface areas which are approximately equal to each other.
(19) In the example of
(20) In this instance, the actuating member 20 is disposed inside the first chamber 2. As is shown in
(21) In the example of
(22) When in the actuation position, the actuating member 20 allows placing the plug 16 in the open position. When in the rest position (
(23) The valve 1 further comprises biasing means which are configured to place the actuating member 20 in the rest position (
(24) The valve 1 further comprises an opening member 25 which is disposed between the plug 16 and the actuating member 20 so as to transmit, to the plug 16, the force that results from the actuating pressure P22. The opening member 25 is in flat contact with the actuating member 20. In the example of
(25) As is shown in
(26) The plug 16, the biasing member 18 and the actuating member 20 are configured so that the valve 1 operates consecutively: in a feed mode (
(27) Hence, the valve 1 operates selectively in the feed mode (
(28) In particular, the plug 16, the biasing member 18 and the actuating member 20 are sized so that, when in the feed mode (
(29) In the example of
(30) In addition, the plug 16, the biasing member 18 and the actuating member 20 are sized so that, when in the latch mode (
(31) Similarly, the plug 16, the biasing member 18 and the actuating member 20 are sized so that, when in the drain mode (
(32) i) the force that is exerted on the plug 16 by the pressure P2 of the liquid L in the first chamber 2,
(33) ii) the force that is exerted on the plug 16 by the pressure P4 of the liquid L in the second chamber 4,
(34) iii) the force that is exerted on the plug 16 by the biasing member 18,
(35) iv) the force that is exerted on the first face 21 by the pressure P2 of the liquid L in the first chamber 2, and
(36) v) the elastic biasing force that is generated by the elasticity of the elastic membrane.
(37) The feed circuit 51 is intended to make a liquid L circulate in a motor vehicle. As is shown in
(38) The liquid-user device 54 is configured to use the liquid L. The pump 56 is configured to make the liquid L circulate between the liquid tank 52 and the liquid-user device 54. The pump 56 is a bidirectional pump, that is to say a pump that allows the flow of the liquid L in both directions: not only from the pump 56 toward the liquid-user device 54, but also from the liquid-user device 54 toward the pump 56.
(39) In the example of
(40) The feed circuit 51 further comprises a control unit 64 which is configured to control the pump 56. In this instance, the control unit 64 controls an electric motor 65 which belongs to the pump 56. The control unit 64 allows placing the feed circuit 51, selectively, in the feed mode, in the latch mode or in the drain mode.
(41) When in the feed mode (
(42) The control unit 64 can control the pump 56 so as to obtain a determined pressure in the first chamber 2, thereby allowing selecting the operation mode of the feed circuit 51.
(43) To this end, the control unit 64 is configured, for example by means of a specific algorithm, to control the pump 56, selectively, so as: to increase the pressure P2 of the liquid in the first chamber 2 so that the valve 1 operates in the feed mode (
(44) The feed circuit 51 further comprises an accumulator 66 which is configured to contain a variable volume of the liquid L at a variable pressure. In addition, the feed circuit 51 comprises a pressure sensor 68 which is arranged for measuring the pressure of the liquid L that is present in the accumulator 66.
(45) In the example of
(46) The accumulator 66 allows storing the liquid L under pressure, thereby avoiding the need for continuously operating the pump 56. In fact, when the valve 1 is in the latch mode (
(47) When the pressure of the liquid L falls below a predetermined threshold, the control unit 64 can reactivate the pump 56, in order to raise again the pressure of the liquid L. The pressure sensor 68 provides the control unit 64 with the value of the pressure of the liquid L that is present in the second chamber 4, which chamber is connected to the accumulator 66.
(48) Moreover, the feed circuit 51 comprises two filters 70 which are respectively disposed in the tank 52 and between the accumulator 66 and the user device 54. The filters 70 serve to filter the solid particles in the liquid L.
(49) During operation, the feed circuit 51 operates according to a feeding method comprising the consecutive steps of: (
(50) When in the feed mode, the pump 56 increases the pressure P2 of the liquid L in the first chamber 2, so that the pressure of the liquid P2 becomes higher than the sum of the biasing force F18 and the pressure P4 of the liquid L in the second chamber 4. The plug 16 can switch in the open position so as to let the liquid L pass toward the user device 54.
(51) When in the latch mode, the pump 56 is stopped, so that the pressure P2 of the liquid L in the first chamber 2 and in the pump 56 could fall down to the atmospheric pressure. Depending on the construction of the valve 1, it is possible that a low residual pressure P2 remains in the first conduit 61 and in the first chamber 2, which residual pressure depends on the pressure drops that are generated by the different hydraulic components that are involved. The pressure P4 of the liquid L in the second chamber 4 then holds the plug 16 in the closed position, thereby sealing the portion of the feed circuit 51 that is located between the valve 1 and the user device 54. In this portion, the accumulator 66 can deliver pressurized liquid L toward the user device 54.
(52) When in the drain mode, the pump 56 rotates in the reverse direction, so that the vacuum that is created by the pump 56 in the first chamber 2 pulls the opening member 25 against the plug 16, thereby displacing the plug 16 in the open position against the biasing force F18. At the end of the drain mode, the vacuum that is created by the pump 56 decreases when the pump 56 rotates in partially idle conditions. Then, the plug 16 switches again in the closed position by the effect of the biasing member 18.
(53)
(54) A component of the valve 101 that is identical or corresponding, either because of its structure or because of its function, to a component of the valve 1 carries the same reference numeral incremented by 100. Thus, there are defined a first port 106, a second port 108, a first chamber 102, a second chamber 104, a body 110, a seat 112 presenting a passage 114, a plug 116, a biasing member 118, an actuating member 120 with a first face 121 and a second face 122 and an opening member 125.
(55) The valve 101 differs from the valve 1, since the valve 101 further presents a channel 107 and a connection port 102.7. The channel 107 is arranged for connecting together the first port 106 and the passage 114. When in the feed mode (
(56) On the contrary, when the valve 1 operates in the feed mode, the liquid L enters via the first port 6, and then, it flows throughout the first chamber 2 before passing through the passage 14.
(57) Nonetheless, the liquid L fills the first chamber 102 by passing via the connection port 102.7 from the channel 107. Thus, the pressure P102 of the liquid L in the first chamber 102 is equal to the pressure of the liquid L in the channel 107.
(58) In addition, the valve 101 differs from the valve 1, since the valve 101 further comprises a biasing element 127 which is arranged for urging the actuating member 120 in the rest position (
(59) Because of the biasing force that is exerted by the biasing element 127, the plug 116, the biasing member 118, the actuating member 120 and the biasing element 127 are sized so that, when in the drain mode (
(60) Furthermore, the valve 101 differs from the valve 1, since the plug 116 comprises two components: a plugging member 116.1 and a guide member 116.2. The plugging member 116.1 serves to plug the passage 114 and the guide member 116.2 serves to guide the plugging member 116.1 substantially in translation between the open position and the closed position (
(61) The opening member 125 has a general shape of a rod extending along an actuation direction D125. The valve 101 further differs from the valve 1, since the opening member 125 presents, when viewed in section in a plane transverse to the actuation direction D125, at least one recess 125.1.
(62) The recess 125.1 is configured for the flow of the liquid substantially parallel to the actuation direction D125, between the passage 114 and the channel 107. Thus, the opening member 125 allows the liquid to flow between the first port 106 and the second port 108.
(63) Moreover, in the feed mode (
(64) Of course, the present invention is not limited to the particular embodiments that have been described in the present Patent Application, nor is it limited to embodiments that are within the reach of those skilled in the art. Other embodiments may be considered without departing from the scope of the invention, from any element equivalent to an element that has been indicated in the present Patent Application.