Claims
- 1. A method of operating a wheeled vehicle, said method comprising the steps of:
(a) providing an engine mounted in said vehicle and coupled to at least one vehicle wheel for its propulsion and braking, said engine including:
(1) at least one cylinder, (2) a cylinder chamber within said at least one cylinder, (3) a head mounted to said at least one cylinder, and (4) a piston operatively engaging said at least one cylinder, with the piston to head and cylinder relationship being such that the volume of said cylinder chamber shrinks during a volume decreasing stroke, when said piston moves towards said head, and expands during a volume increasing stroke, when said piston moves away from said head, (b) providing an air-reservoir means mounted in said vehicle for receiving, storage, and discharge of compressed air, (c) providing a control means for controlling the operation of said engine and said vehicle in response to driver's demands and in accordance with a control program incorporated in said control means, (d) providing a gas exchange controlling means for selectively, variably, and alternatively connecting said cylinder chamber to outside atmosphere and to said air-reservoir means, in timed relation to said engine operation, (e) providing a fuel delivery means for selectively and variably adding fuel to the air intended for participation in combustion in said engine in timed relation to said engine operation, (f) providing a means for allowing a vehicle driver to perform vehicle control functions including:
(1) selectively demanding a vehicle braking force, (2) selectively demanding a vehicle propulsion force, (3) selectively demanding a change in magnitude of said vehicle braking force, and (4) selectively demanding a change in magnitude of said vehicle propulsion force, (g) operating said engine in a compressor mode driven by a vehicle momentum in response to a demand for a vehicle braking force, when said vehicle is in motion and said engine is coupled to said at least one vehicle wheel, by repeatedly performing a two-stroke compressor cycle in said at least one cylinder, said two-stroke compressor cycle including the steps of:
(1) receiving air from said outside atmosphere into said cylinder chamber during a second part of said volume increasing stroke, (2) compressing air in said cylinder chamber during a first part of said volume decreasing stroke, (3) displacing a fraction of compressed air from said cylinder chamber into said air-reservoir means during a second part of said volume decreasing stroke for storage therein, and (4) expanding the fraction of compressed air left in said cylinder chamber during a first part of said volume increasing stroke, whereby work of air compression and displacement performed during said volume decreasing stroke contributes to braking said vehicle, whereby compressed air stored in said air-reservoir means is available to perform useful work, and whereby work of air expansion performed during said volume increasing stroke returns to said piston at least a fraction of energy contained in said fraction of compressed air left in said cylinder chamber, and (h) operating said engine in a prime mover mode propelling said vehicle in response to a demand for a vehicle propulsion force when there is no concurrent demand for said vehicle braking force, said prime mover mode including:
(I) operating said engine in a mode selected from a set of propulsion modes comprising:
(1) an air-motor mode including repeated performance of a two-stroke air-motor cycle in said at least one cylinder, said two-stroke air-motor cycle including the steps of:
(A) receiving compressed air from said air-reservoir means into said cylinder chamber and displacing said piston during a first part of said volume increasing stroke, (B) expanding said compressed air in said cylinder chamber and displacing said piston during a second part of said volume increasing stroke, and (C) expelling a substantial fraction of air contained in said cylinder chamber into said outside atmosphere during said volume decreasing stroke, whereby a substantial fraction of energy contained in said compressed air is transferred to said piston, and whereby said vehicle is propelled without any fuel being consumed, and
(2) a fuel propulsion mode including operating said engine in a conventional internal combustion mode receiving air from said outside atmosphere, and (II) changing said engine operation from one propulsion mode to another one selected from said set of propulsion modes.
- 2. The method of claim 1 wherein the step of providing said gas exchange controlling means comprises the steps of:
(a) providing at least one normally-closed intake valve for selectively and variably connecting said cylinder chamber to said outside atmosphere, (b) providing at least one normally-closed exhaust valve for selectively and variably connecting said cylinder chamber to said outside atmosphere, and (c) providing at least one normally-closed charging valve for selectively and variably connecting said cylinder chamber to said air-reservoir means.
- 3. The method of claim 2 wherein the operation of said engine in said compressor mode comprises, during each two-stroke cycle, the steps of:
(a) deactivating said fuel delivery means, (b) deactivating said at least one exhaust valve, (c) expanding the residual compressed air during a first part of said volume increasing stroke, (d) variably opening said at least one intake valve, (e) receiving air from said outside atmosphere into said cylinder chamber during a second part of said volume increasing stroke, (f) variably closing said at least one intake valve, (g) compressing said air in said cylinder chamber during a first part of said volume decreasing stroke, (h) variably opening said at least one charging valve, (i) substantially displacing the compressed air from said cylinder chamber into said air-reservoir means during a second part of said volume decreasing stroke, and (j) variably closing said at least one charging valve.
- 4. The method of claim 2 wherein the operation of said engine in said air-motor mode comprises, during each two-stroke cycle, the steps of:
(a) deactivating said fuel delivery means, (b) deactivating said at least one intake valve, (c) variably opening said at least one charging valve, (d) receiving compressed air into said cylinder chamber from said air-reservoir means during a first part of said volume increasing stroke, (e) variably closing said at least one charging valve, (f) expanding said compressed air in said cylinder chamber during a second part of said volume increasing stroke, (g) variably opening said at least one exhaust valve, (h) substantially expelling the air from said cylinder chamber during said volume decreasing stroke, and (i) variably closing said at least one exhaust valve.
- 5. The method of claim 2 further comprising the step of responding to a demand for a change in magnitude of said vehicle braking or propulsion force by making changes in at least one parameter selected from a set of parameters controlling the operation of said gas exchange controlling means, said set of parameters including:
(a) timing of opening of said at least one intake valve, (b) timing of closing of said at least one intake valve, (c) timing of opening of said at least one exhaust valve, (d) timing of closing of said at least one exhaust valve, (e) timing of opening of said at least one charging valve, and (f) timing of closing of said at least one charging valve, and changing the quantity of fuel added to the air intended for participation in combustion, when operating in said conventional internal combustion mode, whereby the net negative work-per-cycle performed in said at least one engine cylinder is changed.
- 6. The method of claim 1 further comprising the steps of providing a transmission means for selectively coupling said engine to said at least one vehicle wheel with a variable transmission ratio, and responding to a demand for a change in magnitude of said vehicle braking or propulsion force by selectively changing said transmission ratio.
- 7. The method of claim 1 wherein the step of providing said gas exchange controlling means comprises the steps of:
(a) providing an intake manifold means for accomodating gas flow into or out of said cylinder chamber, (b) providing at least one normally-closed intake valve for selectively and variably connecting said cylinder chamber to said intake manifold means, (c) providing an exhaust manifold means for accomodating gas flow out of or into said cylinder chamber, (d) providing at least one normally-closed exhaust valve for selectively and variably connecting said cylinder chamber to said exhaust manifold means, and (e) providing a switching means for setting the arrangement of said gas exchange controlling means into a configuration selected from a variety of configurations, and switching said arrangement from one configuration to another in accordance with said program incorporated in said control means, said variety of configurations including:
(1) a first switching configuration wherein said intake manifold means is connected to outside atmosphere and disconnected from said air-reservoir means, and said exhaust manifold means is connected to said air-reservoir means and disconnected from outside atmosphere, (2) a second switching configuration wherein said intake manifold means is connected to said air-reservoir means and disconnected from outside atmosphere, and said exhaust manifold means is connected to outside atmosphere and disconnected from said air-reservoir means, and (3) a third switching configuration wherein said intake manifold means and said exhaust manifold means are both connected to outside atmosphere and disconnected from said air-reservoir means.
- 8. The method of claim 7 wherein the operation of said engine in said compressor mode comprises the step of operating said gas exchange controlling means in said first switching configuration, and the operation of said engine in said prime mover mode comprises the steps of:
(a) operating said gas exchange controlling means in said second switching configuration if said engine operates in said air-motor mode, and (b) operating said gas exchange controlling means in said third switching configuration if said engine operates in said conventional internal combustion mode.
- 9. The method of claim 8 wherein the operation of said engine in said compressor mode comprises, during each two-stroke cycle, the steps of:
(a) deactivating said fuel delivery means, (b) expanding the residual compressed air remaining in said cylinder chamber during a first part of said volume increasing stroke, (c) variably opening said at least one intake valve, (d) receiving air from said outside atmosphere into said cylinder chamber during a second part of said volume increasing stroke, (e) variably closing said at least one intake valve, (f) compressing said air in said cylinder chamber during a first part of said volume decreasing stroke, (g) variably opening said at least one exhaust valve, (h) substantially displacing the compressed air from said cylinder chamber into said air-reservoir means during a second part of said volume decreasing stroke, and (i) variably closing said at least one exhaust valve.
- 10. The method of claim 8 wherein the operation of said engine in said air-motor mode comprises, during each two-stroke cycle, the steps of:
(a) deactivating said fuel delivery means, (b) variably opening said at least one intake valve, (c) receiving compressed air into said cylinder chamber from said air-reservoir means during a first part of said volume increasing stroke, (d) variably closing said at least one intake valve, (e) expanding said compressed air in said cylinder chamber during a second part of said volume increasing stroke, (f) variably opening said at least one exhaust valve, (g) substantially expelling the air from said cylinder chamber during said volume decreasing stroke, and (h) variably closing said at least one exhaust valve.
- 11. A method of braking a wheeled vehicle, said method comprising the steps of:
(a) providing an engine mounted in said vehicle and coupled to at least one vehicle wheel for its propulsion and braking, said engine including:
(1) at least one cylinder, (2) a cylinder chamber within said at least one cylinder, (3) a head mounted to said at least one cylinder, and (4) a piston operatively engaging said at least one cylinder, with the piston to head and cylinder relationship being such that the volume of said cylinder chamber shrinks during a volume decreasing stroke, when said piston moves towards said head, and expands during a volume increasing stroke, when said piston moves away from said head, (b) providing an air-reservoir means mounted in said vehicle for receiving, storage, and discharge of compressed air, (c) providing a control means for controlling the operation of said engine and said vehicle in response to driver's demands and in accordance with a control program incorporated in said control means, (d) providing a gas exchange controlling means for selectively, variably, and alternatively connecting said cylinder chamber to outside atmosphere and to said air-reservoir, in timed relation to said engine operation, (e) providing a means for allowing a vehicle driver to perform vehicle control functions including:
(1) selectively demanding a vehicle braking force, and (2) selectively demanding a change in magnitude of said vehicle braking force, (f) operating said engine in a compressor mode driven by a vehicle momentum in response to a demand for a vehicle braking force, when said vehicle is in motion and said engine is coupled to said at least one vehicle wheel, by repeatedly performing a two-stroke compressor cycle in said at least one cylinder, said two-stroke compressor cycle including the steps of:
(1) receiving air from said outside atmosphere into said cylinder chamber during a second part of said volume increasing stroke, (2) compressing air in said cylinder chamber during a first part of said volume decreasing stroke, (3) displacing a fraction of compressed air from said cylinder chamber into said air-reservoir means during a second part of said volume decreasing stroke for storage therein, and (4) expanding the fraction of compressed air left in said cylinder chamber during a first pair of said volume increasing stroke, whereby work of air compression and displacement performed during said volume decreasing stroke contributes to braking said vehicle, whereby compressed air stored in said air-reservoir means is available to perform useful work, and whereby work of air expansion performed during said volume increasing stroke returns to said piston at least a fraction of energy contained in said fraction of compressed air left in said cylinder chamber.
- 12. The method of claim 11 wherein the step of providing said gas exchange controlling means comprises the steps of:
(a) providing at least one normally-closed first valve for selectively and variably connecting said cylinder chamber to said outside atmosphere, and (b) providing at least one normally-closed second valve for selectively and variably connecting said cylinder chamber to said air-reservoir means.
- 13. The method of claim 12 wherein the operation of said engine in said compressor mode comprises, during each two-stroke cycle, the steps of:
(a) expanding the residual compressed air during a first part of said volume increasing stroke, (b) variably opening said at least one first valve, (c) receiving air from said outside atmosphere into said cylinder chamber during a second part of said volume increasing stroke, (d) variably closing said at least one first valve, (e) compressing said air in said cylinder chamber during a first part of said volume decreasing stroke, (f) variably opening said at least one second valve, (g) substantially displacing the compressed air from said cylinder chamber into said air-reservoir means during a second part of said volume decreasing stroke, and (h) variably closing said at least one second valve.
- 14. The method of claim 13 wherein the step of expanding the residual compressed air during a first part of said volume increasing stroke continues until the pressure in said cylinder chamber becomes substantially equal to the pressure in said outside atmosphere.
- 15. The method of claim 13 wherein the step of compressing said air in said cylinder chamber during a first part of said volume decreasing stroke continues until the pressure in said cylinder chamber becomes substantially equal to the pressure in said air-reservoir means.
- 16. The method of claim 13 wherein the step of variably opening said at least one second valve takes place before the pressure in said cylinder chamber becomes equal to the pressure in said reservoir means,
whereby the air displacement work performed during said second part of said volume decreasing stroke increases, and whereby a substantially greater braking force can be achieved.
- 17. The method of claim 12 further comprising the step of responding to a demand for a change in magnitude of said vehicle braking force by making changes in at least one parameter selected from a set of parameters controlling the operation of said gas exchange controlling means, said set of parameters including:
(a) timing of opening of said at least one first valve, (b) timing of closing of said at least one first valve, (c) timing of opening of said at least one second valve, and (d) timing of closing of said at least one second valve, whereby the net negative work-per-cycle performed in said at least one engine cylinder is changed.
- 18. The method of claim 11 further comprising the steps of providing a transmission means for selectively coupling said engine to said at least one vehicle wheel with a variable transmission ratio, and responding to a demand for a change in magnitude of said vehicle braking force by selectively changing said transmission ratio.
- 19. A method of propelling a wheeled vehicle, said method comprising the steps of:
(a) providing an engine mounted in said vehicle and coupled to at least one vehicle wheel for its propulsion and braking, said engine including:
(1) at least one cylinder, (2) a cylinder chamber within said at least one cylinder, (3) a head mounted to said at least one cylinder, and (4) a piston operatively engaging said at least one cylinder, with the piston to head and cylinder relationship being such that the volume of said cylinder chamber shrinks during a volume decreasing stroke, when said piston moves towards said head, and expands during a volume increasing stroke, when said piston moves away from said head, (b) providing an air-reservoir means mounted in said vehicle for receiving, storage, and discharge of compressed air, (c) providing a control means for controlling the operation of said engine and said vehicle in response to driver's demands and in accordance with a control program incorporated in said control means, (d) providing a gas exchange controlling means for selectively, variably, and alternatively connecting said cylinder chamber to outside atmosphere and to said air-reservoir, in timed relation to said engine operation, (e) providing a fuel delivery means for selectively and variably adding fuel to the air intended for participation in combustion in said engine in timed relation to said engine operation, (f) providing a means for allowing a vehicle driver to perform vehicle control functions including:
(1) selectively demanding a vehicle propulsion force, and (2) selectively demanding a change in magnitude of said vehicle propulsion force, and (g) operating said engine in a mode selected from a set of propulsion modes in response to a demand for a vehicle propulsion force, said set of propulsion modes comprising: a four-stroke air-power-assist mode including repeated performance of a hybrid four-stroke cycle in said at least one cylinder, said hybrid four-stroke cycle comprising two power strokes:
(1) a first power stroke including expansion of a compressed-air charge, received from said air-reservoir means, in said cylinder chamber during a first volume increasing stroke, and (2) a second power stroke including expansion of combustion gas produced as a result of fuel combustion in said cylinder chamber during a second volume increasing stroke, whereby work performed during said first power stroke is added to work performed during said second power stroke, and a two-stroke air-power-assist mode including repeated performance of a hybrid two-stroke internal combustion cycle in said at least one cylinder during which a compressed-air charge is received into said cylinder chamber from said air-reservoir means and used for combustion during the same cycle, whereby energy of said compressed-air charge supplements the energy released in combustion.
- 20. The method of claim 19 wherein the step of providing said gas exchange controlling means comprises the steps of:
(a) providing at least one normally-closed first valve for selectively and variably connecting said cylinder chamber to said air-reservoir means, and (b) providing at least one normally-closed second valve for selectively and variably connecting said cylinder chamber to said outside atmosphere.
- 21. The method of claim 20 wherein the operation of said engine in said four-stroke air-power-assist mode comprises, during each four-stroke cycle, the steps of:
(b) variably opening said at least one first valve, (c) receiving compressed air into said cylinder chamber from said air-reservoir means during a first part of a first volume increasing stroke, (d) variably closing said at least one first valve, (e) expanding said compressed air in said cylinder chamber during a second part of said first volume increasing stroke, (f) compressing the air in said cylinder chamber during a first volume decreasing stroke, (g) adding fuel to said air in said cylinder chamber, (h) initiating combustion of said fuel in said cylinder chamber, whereby said fuel and said air are converted into a combustion gas, (i) expanding said combustion gas in said cylinder chamber during a second volume increasing stroke, (j) variably opening said at least one second valve, (k) substantially expelling said combustion gas from said cylinder chamber during a first part of a second volume decreasing stroke, (l) variably closing said at least one second valve, and (m) trapping the residual combustion gas remaining in said cylinder chamber during a second part of said second volume decreasing stroke, whereby work performed by said combustion gas during said second volume increasing stroke is supplemented by work performed by said compressed air during said first volume increasing stroke, and whereby trapping said residual combustion gas in said cylinder chamber during said second part of said second volume decreasing stroke contributes to reduction in harmful nitrogen oxide emission.
- 22. The method of claim 19 wherein the operation of said engine in said two-stroke air-power-assist mode comprises, during each two-stroke cycle, the steps of:
(a) variably opening said at least one first valve, (b) receiving compressed air into said cylinder chamber from said air-reservoir means during a second part of said volume decreasing stroke, (c) variably closing said at least one first valve, (d) compressing the air and the residual combustion gas in said cylinder chamber during a third part of said volume decreasing stroke, (e) adding fuel to the mixture of said air and said residual combustion gas in said cylinder chamber, (f) initiating combustion of said fuel in said cylinder chamber, whereby said fuel and said air are converted into a combustion gas, (g) expanding said combustion gas in said cylinder chamber during said volume increasing stroke, (h) variably opening said at least one second valve, (i) substantially expelling said combustion gas from said cylinder chamber during a first part of said volume decreasing stroke, and (j) variably closing said at least one second valve, whereby receiving of said compressed air into said cylinder chamber from said air-reservoir means reduces the amount of compression work required, and whereby the peak torque and the power of said engine increase.
- 23. The method of claim 20 further comprising the step of responding to a demand for a change in magnitude of said vehicle propulsion force by selectively making changes in at least one parameter selected from a set of parameters controlling operation of said gas exchange controlling means, said set of parameters including:
(a) timing of opening of said at least one first valve, (b) timing of closing of said at least one first valve, (c) timing of opening of said at least one second valve, and (d) timing of closing of said at least one second valve, and changing the quantity of fuel added to the air intended for participation in combustion, whereby the net positive work-per-cycle performed in said at least one engine cylinder is changed.
Parent Case Info
[0001] This is a division of Ser. No. 09/098,010 filed Jun. 15, 1998.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09098010 |
Jun 1998 |
US |
Child |
09758502 |
Jan 2001 |
US |