EP1872001A2

Optimized fuel management system for direct injection ethanol enhancement of gasoline engines

Abstract

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Term

Term ended

Projected expiry passed 6 April 2026, 0.5 years ago.

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1 claim: 1 independent, 0 dependent

  1. 1
    Claims of equivalent WO 2006108076 A2 What is claimed is:1. Fuel management system for operation of a spark ignition gasoline engine comprising: a spark ignition engine;a source of gasoline;a source of anti-knock agent which is a fuel;an injector for direct injection of the anti-knock agent into a cylinder of the engine;and a fuel management control system for controlling injection of the anti- knock agent into the cylinder to control knock, wherein the antiknock agent has a heat of vaporization per unit of combustion energy that is at least three times that of gasoline. 2. Fuel management system for operation of a spark ignition gasoline comprising: a spark ignition engine;a source of gasoline;a source of an anti-knock agent which is a fuel an injector for direct injection of the anti-knock agent into a cylinder of the engine;and a fuel management control system for controlling injection of the anti- knock agent into the cylinder when engine torque is above a selected value or fraction of maximum torque where the value or fraction of maximum torque is a function of engine speed. 3. The system of claims 1 or 2 wherein the maximum anti-knock agent energy fraction used during a drive cycle is between 30% and 100%. 4. The system of claims 1 or 2 where direct injection of the antiknock agent occurs after the inlet valve has closed. 5. The system of claim 4 wherein the anti-knock agent is ethanol. 6. The system of claim 5 where the effect of vaporization of the ethanol on knock suppression is greater than the effect of the higher octane number of ethanol. 7. The system of claim 5 where part of the fuel is port injected, and this part of the fuel is either ethanol or gasoline. 8. The system of claim 5 where direct injection of ethanol is used to reduce the need for spark retard at low engine speeds and high engine torque. 9. The system of claim 5 where the ethanol is mixed with gasoline, as in E85, or with methanol 10. The system of claim 5 where injection after the inlet valve closes can increase the manifold pressure at which the engine can operate without knock by at least 0.5 bar relative to knock fuel pressure than can be obtained using early injection before the inlet valve closes. 11. The fuel management system of claim 5 where the anti-knock agent is injected relatively late in the compression stroke (after bottom dead center, and close to top dead center), to make use of the high temperature from the compression stroke for fast evaporation of the antiknock agent. 12. The system of claims 1 or 2 where knock can be prevented at manifold pressure of more than 2 bar for an engine with a compression ratio of 10 or more. 13. The system of claims 1 or 2 where a lookup table is used to provide knock prevention requirements at various values of torque and/or horsepower for use in an open-loop control system. 14. The engine system of claims 1 or 2 where the engine is downsized by at least a factor of 2. 15. The system of claim 14 where the efficiency gain is more than 20%. 16. The engine system of claim 14 where multiple scroll turbocharger is used to decrease pressure fluctuations in the inlet manifold due to decreased number of cylinders. 17. The system of claim 2 wherein the anti-knock agent is ethanol and where the amounts of air, ethanol and gasoline per cylinder per cycle are controlled so as to achieve a substantially stoichiometric fuel/air ratio. 18. The system of claim 17 where a 3-way catalyst is used to reduce the exhaust emissions from the engine. 19. The system of claim 17 where the control system operates open loop at high loads with ethanol, gasoline and air, but with closed loop when operating with gasoline and air at low and partial load. 20. The system of claim 17 where the ethanol/gasoline fraction is controlled by closed loop feedback using the information provided by a knock sensor and the air/fuel mixture is controlled by an oxygen sensor. 21. The system of claim 17 where during transients the control system operates open loop with the use of a lookup table. 22. The system of claim 17 where at high load the engine operates with ethanol fuel fractions larger than required for knock control in order to decrease the temperature of the combustion to protect the engine, the turbocharger, the catalyst and other systems. 23. The system of claim 17 where at sustained high load the engine operates rich to decrease the temperature of combustion in order to protect the engine, the turbocharger, the catalyst and other systems and during the rich operation the fraction of ethanol used is larger than that required to prevent knock. 24. The system of claims 1 or 2 where a higher gasoline fraction than would generally be used is employed during the first 30 seconds of engine operation. 25. The system of claims 1 or 2 wherein the anti-knock agent is ethanol and where the maximum ethanol fraction that is used in the engine can be varied. 26. The system of claim 25 where the maximum ethanol fraction is determined by the ratio of the ethanol to gasoline in the fuel tanks. 27. The system of claim 25 where the maximum ethanol fraction is determined by the driver. 28. The system of claim 25 where the maximum level of turbocharging, torque and horsepower are decreased as the maximum ethanol fraction is decreased. 29. The engine system of claims 1 or 2 wherein the anti-knock agent is ethanol and where the ethanol injection is delayed relative to bottom dead center when non-uniform ethanol distribution is desired. 30. The engine system of claims 1 or 2 wherein the anti-knock agent is ethanol and where the ethanol injector has multiple holes for the generation of multiple sprays for more uniform mixture preparation. 31. The gasoline engine system of claims 1 or 2 wherein the anti-knock agent is ethanol and where a membrane filter is used to separate the ethanol from the gasoline. 32. The fuel management system of claims 1 or 2 wherein the anti-knock agent is ethanol and where ethanol with 5% to 15% water by volume is used. 33. The fuel management system of claims 1 or 2 using closed loop where the gasoline and the antiknock fuel have unspecified and variable characteristics, and the fraction of the antiknock agent used is determined by using feedback from the engine's knock sensor. 34. The fuel management system of claim 33 where the lowest octane gasoline is chosen needed to meet operational need. 35. The fuel management system of claim 33 where the anti-knock fuel is chosen to minimize the cost of operation of the engine. 36. Fuel management system for efficient operation of a spark ignition gasoline engine comprising: a gasoline engine;a source of an anti-knock agent;an injector for direct injection of both the anti-knock agent and the gasoline into a cylinder of the engine;and a fuel management control system for controlling injection of the anti-knock agent into the cylinder to control knock. 37. The fuel management system of claim 36 where the injector has separate valves and nozzles for the anti-knock agent and the gasoline. 38. The engine management system of claims 1 or 2 that uses variable valve timing, rich operation, cooled EGR and spark timing adjustment. 39. The engine system of claims 1 or 2 where tumble-like or swirl motion is used to achieve combustion stability. 40. The engine system of claim 2 where ethanol is the anti-knock agent and is mixed with a solvent to minimize evaporative emissions. 41. The engine system of claims 2 where a canister between the ethanol and the atmosphere captures anti-knock agent evaporative emissions, such canister being regenerated when the engine is operational. 42. The engine system of claims 7 and 29 where the spark is located in the region that has the highest temperature air/fuel ratio mixture. 43. The systems of claims 1 or 2 where the anti-knock agent and gasoline are held in the same tank but are separated by a substantially impervious wall that can be moved or deformed so as to vary the relatively amounts of stored anti- knock agent and gasoline. 44. The system of claim 43 where the walls are deformable membranes. 45. The system of claims 1 or 2 where the anti-knock agent is stored ethanol and is kept separate from the gasoline and where it contains lubricity additives such as fatty acids or organic amine salts to insure the desired operation of the fuel injection system. 46. The system of claims 1 or 2 wherein the anti-knock agent is ethanol and where the ethanol with appropriate denaturing and other additives is provided in containers which can be sold at certain commercial locations as well as at gasoline stations. 47. The system of claim 46 where the ethanol is mixed with a sufficient amount of additives to be considered safe for sale in supermarkets and other commercial locations. 48. The system of claims 1 or 2 where an expandable pipe and funnel is built into the anti-knock agent tank so as to facilitate anti-knock agent fueling from a container. 49. The system of claim 1 where the amount of anti-knock agent used during a drive cycle is greater than would be needed to prevent knock. 50. The system of claim 49 when the energy fraction of the anti-knock agent is either constant or varied during the drive cycle. 51. The system of claim 1 where the use of the anti-knock agent is initiated by a signal from a knock sensor.