The field to which the disclosure generally relates to includes multifunction valves, engine breathing systems including multifunctional valves and methods of making and using multifunctional valves.
Control of vehicle exhaust emissions is a mandatory requirement in most countries. Oxides of Nitrogen (NOx) and particulate matter are two components of the engine exhaust emissions that must be controlled.
Formation of NOx will occur at higher engine combustion temperatures and particulates will form at lower combustion temperatures. A system, referred to as the exhaust gas recirculation (EGR) system, has been developed to control combustion temperatures and control NOx and particulate emissions. A schematic of a typical system is shown in
Referring to
The required EGR flow rate is dependent upon several factors that include the displacement of the engine and the pressure differential between the exhaust and the intake system.
Referring to
A number of electric actuators such as linear solenoids, D.C. motors, torque motors, and stepper motors may be used to actuate the EGR valve. Valve position sensing can also be achieved by alternate methods such as counting steps of a stepper motor or by regulating vacuum to a pneumatically controlled EGR valve.
A number of valve types such as throttle, poppet or flap may be used to control the flow of exhaust gas.
Emission levels are reviewed and periodically reduced. New EGR systems may be required to control the lower emission limits.
Engine system 210 also has turbo charger for compressing the intake air and boosting the pressure within intake manifold 218. The turbocharger receives exhaust gas within turbine 250 causing it to rotate. A shaft 248 connects the turbine 250 and compressor 252. Compressor 252 receives the incoming air at approximately ambient pressure and will increase the pressure.
Air is delivered to the engine via a path including air inlet 224, throttle valve 32, conduit 279, compressor 252, intercooler 256, conduit 220, intake manifold inlet 222, and intake manifold 218.
Engine exhaust gas is removed via a path including exhaust manifold 228, exhaust manifold outlet 232, conduit 230, turbine 250, after treatment devices 236, 24, throttle valve 32, and outlet 232.
Exhaust Gas Recirculation (EGR) may be provided by several methods. A first method will direct EGR to the intake manifold 218 via a path including exhaust manifold 228, exhaust manifold outlet 232, conduit 230, conduit 242, EGR cooler 244, EGR valve 246, EGR outlet 243, conduit 220, intake manifold inlet 222, and intake manifold 218. The exhaust gas is taken between the exhaust manifold 228 and turbine 250 where the exhaust pressure will be high. This system is commonly known as the high pressure EGR system. Optionally, an EGR cooler bypass conduit and associated valve may be provided to selectively direct at least a portion of the EGR gas around the EGR cooler 224.
A second method of providing EGR will direct EGR to the intake manifold 218 via a path including exhaust manifold 228, exhaust manifold outlet 232, conduit 230, turbine 250, after treatment devices 236, 24, conduit 272, EGR valve 246, EGR cooler 278, conduit 279, compressor 252, intercooler 256, conduit 220, intake manifold inlet 222, and intake manifold 218. The exhaust gas is taken after turbine 250 where the exhaust pressure will be low. The system is commonly known as the low pressure EGR system. During some engine operating conditions, the exhaust pressure is too low to supply adequate EGR flow. A throttle valve 32 must be used to develop an adequate pressure differential across the EGR valve 246 to provide the required flow.
The EGR valve 246 may be located on the hot side (exhaust side) of the EGR cooler 278 or the cold side (intake side) of the EGR cooler.
Several types of valves may be used for the EGR valve 246 and exhaust throttle 32 functions. For example: a poppet style, flat style, or throttle style valve could be capable of providing these functions. These valves may be actuated by several different types of actuators. For example: vacuum/pressure motors, D.C. motor, torque motor, stepper motor, or linear solenoid type actuators could be capable of actuating the valve.
The actuator housing 301 contains a D.C. motor actuator 308 that is operably connected to the valve shaft 306 by gear train 309, actuator shaft 310, and levers 311 and 312. The D.C. motor actuator is controlled by a signal from an engine control unit (ECU) 280 (also shown in
The D.C. motor 308 will receive the control signal from the ECU 280 and will force the valve shaft 306 and valve plate 305 to rotate to a predetermined position between the valve closed and open positions. The electrical connector and lead frame 314 are also connected to a position sensor 315 located within EGR throttle valve 300. The position sensor 315 provide a feedback voltage position signal to the ECU 280 to determine valve position that may indicate fluid flow to outlet 304.
The throttle valve 32 and EGR valve 246 have been shown in
Referring to
A valve shaft 407 is installed through the wall of port 403 and extends within the port. As noted with throttle valve 300 in
The maximum flow rate, delivered to port 404, is determined in part by the pressure P1, measured at port 402, the pressure P2, measured at port 403, and the pressure P3 measure at port 404. The maximum fluid flow rate, through port 403, will occur when the throttle plate 406 is in the fully open position 406B. The pressure differential, P3−P2, measured between port 403 and port 404 will also determine the maximum flow rate through port 403. The pressure differential will diminish as the throttle plate 406 is rotated towards the open position 406B. It may be desirable to increase flow through port 403. In the valve arrangement shown, this can be accomplished by restricting a portion or all of the fluid flow through port 402. This will result in an increased pressure differential (P2−P3), between port 403 and 404, that will cause higher fluid flow through port 403.
Several methods may be used to restrict flow through port 402. A first method may be the addition of a separate valve connected to port 402 by suitable means such as bolts. A second method of restricting fluid flow through port 402 may be the addition of a second throttle valve within port 402, similar to the valve installed within port 403. As mentioned earlier, each of the first or second methods will require a separate actuator and connection to a controller for controlling the valve movement and position. A more desirable method for restricting fluid flow through port 402 may be the addition of a second valve that is operated by the same actuator and controller used to operate the valve located within port 403. This would eliminate the need for a second actuator and second connection to a controller (or a second controller). It will also reduce the complexity of the control strategy by having only one device to control.
One embodiment includes product comprising a valve housing constructed and arranged to have a first fluid port, a second fluid port, and a third fluid port secured therein; a first valve disposed in one of the first fluid port, second fluid port or third fluid port and constructed and arranged to block or control flow of fluid therethrough, the first valve having a first face; a valve actuator shaft extending into one of the first fluid port, second fluid port, or third fluid port and operatively connected to the first valve; a second valve connected to the first valve by a stem portion different from the shaft, the second valve having a first face being constructed and arranged to be rotatable with the first valve and the valve shaft so that the shaft is rotatable to move the first valve between closed and open positions, the second valve is moved to a position that will block at least a portion of another of the first valve port, second valve port, or third valve port to restrict the flow of fluid therethrough, and wherein the first valve having a first face arranged at an angle with respect to a first face of the second valve.
Another embodiment includes a first valve connected to a second valve, and wherein the second valve includes a visor portion.
Other exemplary embodiments of the invention will become apparent from the detailed description provided hereinafter. It should be understood that the detailed description and specific examples, while disclosing exemplary embodiments of the invention, are intended for purposes of illustration only and are not intended to limit the scope of the invention.
Exemplary embodiments of the invention will become more fully understood from the detailed description and the accompanying drawings, wherein:
The following description of the embodiment(s) is merely exemplary (illustrative) in nature and is in no way intended to limit the invention, its application, or uses.
The multifunction valve will operate in the following manner. The closed throttle plate position 406B is shown by solid lines and the open throttle plate position 406B is shown only by outline. When shaft 407 progressively rotates the throttle plate 406 from the close position 406A to open position 406B, the fluid flow through port 403 will progressively increase and the differential pressure, P2−P3, between ports 403 and 404 will progressively decrease. At a desired position in the rotation of the valve shaft 407, it will cause the second valve 501 to move into the flow path of port 402 causing restriction (or throttling) of the fluid flow between ports 402 and 404. The restriction will increase the pressure differential, P1−P3, between ports 402 and 404. It will also increase the pressure differential P2−P3, between ports 403 and 404, and cause a higher fluid flow rate between ports 403 and 404. As the valve shaft 407 continues to rotate throttle plate 406, towards the full open position 406B, the second valve 501 moves further into the flow path of port 402 and further restricts fluid flow through port 402 to port 404.
The increased restriction will cause a higher pressure differential, P2−P3 between ports 403 and 404 and higher fluid flow between ports 403 and 404.
It may also be noted the pressures will result in forces being applied to second valve 501 and throttle plate 406 that will tend to move second valve 501 out of the flow path of port 402 and port 404. It will also move throttle valve 406 toward the throttle plate closed position 406A. This may act as a desirable failsafe during some conditions such as electrical power loss to the actuator.
An actuator housing 502 contains a D.C. motor actuator similar to that used in the typical throttle valve shown in
The D.C. motor will receive the control signal from the ECU and will force the valve shaft 407 and valve plate 406 to rotate to predetermined positions between the closed throttle plate position 406A and the open throttle plate position 406B to control the combined fluid flow from ports 402 and 403 to outlet port 404. The actuator will also control the movement and position of the second valve 501 within the flow path of port 402 causing restriction of the fluid flow between ports 402 and 404. The increased restriction will cause a higher pressure differential across throttle plate 406 and higher fluid flow between ports 403 and 404.
The electrical connector and lead frame are also connected to a position sensor similar to that used in the typical throttle valve shown in
The MFV shown in
The electrical connector and lead frame are connected to a DC motor and a position sensor previously described herein. A vehicle ECU will provide a control signal to the DC motor actuator that will rotate the valve shaft 407, throttle plate 406, and second valve 510. The position sensor provides a feedback voltage positive signal to the ECU to determine the throttle plate and second valve position and the flow of exhaust gas 410 and inlet air 409 to port 404.
The MFV shown in
In operation, pressures will result in forces being applied to second valve 501 and throttle plate 406 that will tend to move second valve 501 into the flow path of port 402 and port 404. Forces will also move throttle valve 406 toward the throttle plate open position 406B. This may not be desirable because during some engine operating conditions, high forces, resulting from the pressure, could cause second valve 501 to block the exhaust outlet 232. This may result in high exhaust pressure P3−P1 between port 404 and port 402 that may cause poor engine performance and reduce fuel economy. This may also create a higher flow of exhaust gas 410 that may affect engine emissions.
Referring again to
MFV 500 may be constructed using several methods. For example, the valve shaft 407 and throttle place 406 may be installed in port 403. Port 403 may be formed as a portion of the housing 401, as shown in
The MFV 500 may also be integrated with another system component. For example,
Second valve 500 has been shown as a disc shaped valve assembly that is attached to throttle plate 406. Alternative style valves may also be used.
The multi-function valve 500 may operate in the following manner. When throttle plate 406 is in closed position 40A, there will be a low restriction to fluid flow between ports 402 and 404. The fluid will pass around alternative second valve 414 and through the central opening 416 of alternative second valve 414. The shaft 407 may be progressively rotated so that throttle plate 406 moves from the closed position 40A to open position 406B, wherein the flow through port 403 is progressively increased and the differential pressure, P3−P2, between ports 403 and 404 will progressively decrease. At a desired position in the rotation of the valve shaft 407, the alternative second valve 141 is moved into the flow path of port 402 causing the face 417 of the alternative valve 414 to restrict (or throttle) fluid flow between ports 402 and 404. Alternative second valve 414 will operate and function in a similar manner to the second valve 401 described herein. Alternative valve 414 may provide for compact packaging within the valve body 401.
The following is a description of select embodiment within the scope of the invention. However, the invention is not limited to the specific embodiment described hereafter.
Embodiment 1 may include a product comprising a valve housing constructed and arranged to have a first port for receiving and delivering a first fluid or second fluid, a second port for receiving or delivering a first fluid or second fluid, and a third port for receiving or delivering the first fluid, the second fluid, or mixture comprising the first fluid and the second fluid; a first valve disposed in one of the first port, second port or third port, the first valve constructed and arranged to fit within the port to block or control the flow of the first fluid or second fluid through the port; a valve shaft having a longitudinal axis and extending into one of the first port, second port or third port and connected to the first valve at a central location, the first valve having approximately equal areas extending on either side of the shaft and the axis, the shaft being rotatable about the axis to move the first valve to a closed position, open position or positions therebetween to block flow or control a portion of the first fluid or second fluid flowing to the first port, second port, or third port; a second valve operatively connected to the first valve and the first valve shaft and rotatable with the first valve and the valve shaft, wherein the valve shaft is rotatable to move the first valve between the closed position and opened positions, and so that the second valve is moveable to a position that will block at least a portion of first port, second port, or third port and restrict the flow of the first fluid or second fluid flowing to the first port, second port, or third port.
Embodiment 2 may include a product as set forth in Embodiment 1 wherein the second valve is operatively connected to the first valve or valve shaft by at least one of screws, rivets, rivets formed in said first valve, welding, brazing, soldering, or adhesive.
Embodiment 3 may include a product as set forth in one or more of Embodiment 1-2 wherein the second valve is formed of a continuous uniform material of the first valve and wherein the first valve and second valve are not connected together by joined parts.
Embodiment 4 may include a product as set forth in one or more of Embodiment 1-3 wherein the product is constructed and arranged so that fluid flow is controlled by a radial clearance or a lack of radial clearance between the first valve and the port receiving the first valve.
Embodiment 5 may include a product as set forth in one or more of Embodiment 1-4 wherein the first port, the second port, the third port, or combination thereof, are defined by separate structural housing components that are operatively connected to form the valve housing.
Embodiment 6 may include a product as set forth in one or more of Embodiment 1-5 wherein the valve housing comprises a plurality of housing components joined together.
Embodiment 7 may include a product as set forth in one or more of Embodiment 1-6 further comprising an actuator operatively connected to the valve shaft constructed and arranged to rotate and position the shaft, the actuator being selected from the group of vacuum/pressure motors, DC motor, torque motor, stepper motor, or linear solenoid.
Embodiment 8 may include a product as set forth in one or more of Embodiment 1-7 further comprising a position sensor operatively connected to the valve shaft constructed and arranged to provide a position signal that indicates the position of the valve shaft and the first valve, the position sensor being selected from the group consisting of inductive, Hall effect, magneto-resistive or resistive sensors.
Embodiment 9 may include a product as set forth in one or more of Embodiment 1-8 further comprising a position sensor operatively connected to the valve shaft constructed and arranged to determine the position of the second valve.
Embodiment 10 may include a product as set forth in one or more of Embodiment 1-9 further comprising a component operatively connected to the valve housing, the component being in fluid communication for receiving and delivering the first fluid, the second fluid or a mixture of the first fluid and the second fluid.
Embodiment 11 may include a product as set forth in one or more of Embodiment 1-10 wherein the component is one of a turbocharger, exhaust after treatment device, engine exhaust system, engine air induction system, engine intake manifold, or exhaust manifold.
Embodiment 12 may include a product as set forth in one or more of Embodiment 1-11 wherein the second valve comprises a visor portion.
Embodiment 13 may include a product as set forth in one or more of Embodiment 1-12 wherein the first valve has a first face and the second valve has a first face, and wherein first face of the first valve is arranged at an angle with respect a first face of the second valve.
Embodiment 13 may include a product comprising: a valve housing constructed and arranged to have a first port for receiving air, a second port for receiving exhaust gas from an internal combustion engine, a third port for delivering air, exhaust gas or a combination of air and exhaust gas; a first valve disposed in the second port and formed to fit within the port to block or control the exhaust gas through the second port; a valve shaft having a longitudinal axis and extending into said second port and connected to the first valve at a central location, the first value having approximately equal areas extending on either side of the shaft and axis, the shaft being rotatable about the axis to move the first valve to a closed position, an open position, and positions there between to block flow or control a portion of the exhaust gas to the third port; a second valve operatively connected to the first valve and the valve shaft and rotatable with the first valve and the valve shaft so that when the shaft is rotated to move the first valve between the closed and the opened positions, the second valve is moved to a position that will block at least a portion of the first port and restrict the flow of air to the third port.
Embodiment 14 may include a product comprising: a valve housing constructed and arranged to provide a first port for receiving exhaust gas from an internal combustion engine, a second port for delivering exhaust gas from an internal combustion engine, and a third port for delivering exhaust gas from the internal combustion engine; a first valve disposed in the second port and formed to fit the port to block or control flow of exhaust gas through the second port; a valve shaft having a longitudinal axis an extending into the second port and connected to the first valve at a central location, the first valve having approximately equal areas extending on either side of the shaft and the axis, the shaft being rotatable about the axis to move the first valve to a closed position, and an open position, or positions there between to block flow or control a portion of the exhaust gas fluid through the second port; a second valve operatively connected to the first valve and the valve shaft and rotatable with the first valve and the valve shaft so that when the shaft is rotated to move the first valve between the closed and the opened positions, the second valve is moved to a position that will block at least a portion of the third port and restrict the flow of exhaust gas through the third port.
Embodiment 15 may include a combustion engine breathing system comprising: an internal combustion engine having an induction system for receiving combustion air and exhaust system for removing exhaust gas from the combustion engine; an exhaust gas recirculation (EGR) system for returning a portion of the exhaust gas to the induction system; an EGR valve comprising a valve housing constructed and arranged to provide a first port for receiving and delivering a first fluid or second fluid, a second port for receiving or delivering a first fluid or second fluid, a third port for receiving or delivering the first fluid, the second fluid or a combination of the first fluid and second fluid; a first valve disposed within one of the first port, second port, or third port and formed to fit the port to block or control the flow of the first fluid or second fluid through the port; a valve shaft having a longitudinal axis and extending into one of the first port, second port, or third port, and connected to the first valve at a central location, the first valve having approximately equal areas extending on either side of the shaft and the axis, the shaft being rotatable about the axis to move the first valve to a closed position, and open position, or positions there between to block flow or control a portion of the first fluid or second fluid flow to the first port, second port or third port; a second valve operatively connected to the first valve and the valve shaft and rotatable with the first valve and the vale shaft; an actuator operatively connected to the valve shaft for rotating and positioning the valve shaft, the actuator being selected from one of vacuum/pressure motors, DC motors, torque motors, stepper motors, or linear solenoids; a position sensor operatively connected to the valve shaft for providing a position signal indicating the position of the valve shaft and the first valve, the position sensor being one of an inductive, Hall effect, magneto-resistive or resistive sensor; an electrical control unit connected to the actuator and the position sensor for providing the control signal to the actuator and receiving position signal for the valve shaft, wherein the electrical control unit provides the control signal to the actuator, the actuator will selectively position the valve shaft, the first valve and the second valve to control the flow of exhaust gas through the EGR valve and the position sensor provides a position sensor signal that will indicate the position of the valve shaft.
Embodiment 16 may include a product comprising: a valve housing constructed and arranged to have a first fluid port, a second fluid port, and a third fluid port secured therein; a first valve disposed in one of the first fluid port, second fluid port or third fluid port and constructed and arranged to block or control flow of fluid there through, the first valve having a first face; a valve actuator shaft extending into one of the first fluid port, second fluid port, or third fluid port and operatively connected to the first valve; a second valve connected to the first valve by a stem portion different from the shaft, the second valve having a first face being constructed and arranged to be rotatable with the first valve and the valve shaft so that the shaft is rotatable to move the first valve between closed and open positions, the second valve is moved to a position that will block at least a portion of another of the first valve port, second valve port, or third valve port to restrict the flow of fluid there through, and wherein the first valve having a first face is arranged at an angle with respect to a first face of the second valve.
Embodiment 17 may include a product as set forth in Embodiment 16 wherein the second valve is operably connected to the first valve or the shaft by at least one of screws, rivets, rivets formed in the first valve, welding, brazing, soldering or adhesive.
Embodiment 18 may include a product as set forth in one or more of Embodiment 17-18 wherein the second valve is formed as part of the first valve.
Embodiment 19 may include a product as set forth in one or more of Embodiment 16-18 wherein fluid flow is controlled by the radial clearance or lack of radial clearance between the first valve and a port.
Embodiment 20 may include product as set forth in one or more of Embodiment 16-19 wherein the housing comprises at least two portions constructed and arranged to form the first fluid port, second fluid port, and third fluid port.
Embodiment 21 may include an exhaust gas recirculation product comprising: a valve housing defining a first fluid port, second fluid port and third fluid port; a first valve disposed in one of the first fluid port, second fluid port, or third fluid port, the first valve constructed and arranged to block or control the flow of gas there through; a valve shaft extending into one of the first fluid port, second fluid port, or third fluid port, the valve shaft being rotatable about the axis to move the first valve to a closed position, open position or positions therebetween to block flow or control a portion of fluid flow through the associated port; a second valve comprising a visor portion connected to the first valve by at least one stem portion, the second valve rotatable with the first valve and the valve shaft wherein the shaft is rotatable to move the first valve between the closed and open positions, the second valve is moved to a position that will block at least a portion of another of the first fluid port, second fluid port or third fluid port to restrict the flow of fluid there through.
Embodiment 22 may include a product as set forth in Embodiment 21 wherein the second valve is operatively connected to the first valve by a second stem portion.
Embodiment 23 may include a product comprising first valve connected to a second valve, and wherein the second valve includes a visor portion.
The above description of embodiments of the invention is merely exemplary in nature and, thus, variations thereof are not to be regarded as a departure from the spirit and scope of the invention.
This application claims the benefit of U.S. Provisional Application No. 61/323,994 filed Apr. 14, 2010.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US2011/030750 | 3/31/2011 | WO | 00 | 10/5/2012 |
Number | Date | Country | |
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61323994 | Apr 2010 | US |