Claims
- 1. A motorcycle comprising:
a frame; front and rear wheels coupled to said frame for rotation with respect to said frame; an engine mounted to said frame, said engine including a housing, a crankshaft mounted for rotation within said housing, first and second cylinders, and first and second pistons in said first and second cylinders, respectively, whereby said pistons reciprocate within said cylinders in a four stroke combustion cycle to rotate said crankshaft; a crankshaft velocity sensor positioned to monitor the rotational speed of said crankshaft; and a processor interconnected with said crankshaft velocity sensor, said processor being programmed to measure a first rotational speed of said crankshaft prior to either of said pistons reaching an initial top-dead-center, and measure a second rotational speed of said crankshaft prior to either of said pistons reaching an initial top-dead-center, and determine the phase of said engine based on the comparison of the first and second rotational speeds.
- 2. The motorcycle of claim 1, further comprising a crank gear having teeth and mounted on said crankshaft for rotation therewith, wherein said crankshaft velocity sensor is mounted near said crank gear to sense the passage of said crank gear teeth past said crank gear sensor, and wherein said processor is programmed to measure the time period during which selected groups of crank gear teeth pass by said crank gear sensor and determine the phase of said engine by comparing said time periods.
- 3. The motorcycle of claim 2, wherein said selected groups of teeth include first and second groups of teeth, said first and second groups of teeth passing said crank gear sensor prior to either of said pistons reaching an initial top-dead-center.
- 4. The motorcycle of claim 2, wherein said selected groups of teeth include first, second, and third groups of teeth, said first, second, and third groups of teeth passing said crank gear sensor prior to both of said pistons reaching an initial top-dead-center.
- 5. The motorcycle of claim 2, wherein said selected groups of teeth include first, second, and third groups of teeth, said first and second groups of teeth passing said crank gear sensor prior to either of said first and second pistons reaching an initial top-dead-center, said third group of teeth passing said crank gear sensor after one of said pistons reaches an initial top-dead-center.
- 6. The motorcycle of claim 2, wherein said crank gear includes an indicator identified by said crank gear sensor when said indicator passes by said crank gear sensor, said crank gear sensor identifying said groups of teeth relative to said indicator.
- 7. The motorcycle of claim 1, wherein said engine further includes:
an air intake manifold in communication with said first cylinder; and a pressure sensor mounted on said intake manifold, interconnected with said processor, and sensing pressure within said intake manifold; wherein said processor is programmed to use pressure readings from said pressure sensor to determine the phase of said engine when said engine is operating at high rpm.
- 8. The motorcycle of claim 1, wherein said processor is programmed to determine the phase of said engine prior to either of said pistons reaching an initial top-dead-center.
- 9. A motorcycle comprising:
a frame; front and rear wheels coupled to said frame for rotation with respect to said frame; and an engine mounted to said frame, said engine including:
a housing; a crankshaft mounted for rotation within said housing; first and second cylinders; a flow sensor operable to sense a variable corresponding to the flow of air into said cylinders; and a processor communicating with said flow sensor, and programmed to use information from said flow sensor to determine engine phase when said engine is operating at high rpm.
- 10. The motorcycle of claim 9, wherein said engine includes an air intake manifold providing air to said cylinders, and wherein said flow sensor is a pressure sensor mounted on said air intake manifold.
- 11. The motorcycle of claim 9, further comprising a crankshaft velocity sensor positioned to monitor the rotational speed of said crankshaft, wherein said processor is programmed to use information from said crankshaft velocity sensor to determine engine phase when said engine is operating at low rpm.
- 12. The motorcycle of claim 11, further comprising a crank gear having teeth and mounted on said crankshaft for rotation therewith, wherein said crankshaft velocity sensor is mounted near said crank gear to sense the passage of said crank gear teeth past said crankshaft velocity sensor, and wherein said processor is programmed to measure the time period during which selected groups of crank gear teeth pass by said crankshaft velocity sensor and determine the phase of said engine by comparing said time periods.
- 13. The motorcycle of claim 12, wherein said engine includes first and second pistons reciprocating within said first and second cylinders, respectively, wherein said processor is programmed to use said crankshaft velocity sensor to measure the time period during which first and second groups of crank gear teeth pass by said crankshaft velocity sensor, and to compare said time periods to determine the engine phase during a single rotation of said crankshaft, wherein said first and second groups pass by said crankshaft velocity sensor prior to either of the first and second pistons reaching top-dead-center.
- 14. The motorcycle of claim 13, wherein said processor uses said crankshaft velocity sensor to measure the time period during which a third group of teeth passes by said crankshaft velocity sensor after said second piston reaches top-dead-center and before said first piston reaches top-dead-center.
- 15. The motorcycle of claim 11, wherein said processor determines engine phase using information from said crankshaft velocity sensor below about 2500 rpm, and using information from said pressure sensor above about 2500 rpm.
- 16. An engine for a motorcycle including a frame, front and rear wheels coupled to the frame for rotation with respect to the frame, the engine comprising:
a housing mounted to the frame; a crankshaft mounted for rotation within said housing and operably coupled to the rear wheel; first and second cylinders; first and second pistons in said first and second cylinders; respectively, whereby said pistons reciprocate within said cylinders in a four stroke combustion cycle to rotate said crankshaft and drive the rear wheel; a crankshaft velocity sensor positioned to monitor the rotational speed of said crankshaft; and a processor interconnected with said crankshaft velocity sensor, said processor being programmed to measure a first rotational speed of said crankshaft prior to either of said pistons reaching an initial top-dead-center, and measure a second rotational speed of said crankshaft prior to either of said pistons reaching an initial top-dead-center, and determine the phase of said engine based on the comparison of the first and second rotational speeds.
- 17. The engine of claim 16, further comprising a crank gear having teeth and mounted on said crankshaft for rotation therewith, wherein said crankshaft velocity sensor is mounted near said crank gear to sense the passage of said crank gear teeth past said crank gear sensor, and wherein said processor is programmed to measure the time period during which selected groups of crank gear teeth pass by said crank gear sensor and determine the phase of said engine by comparing said time periods.
- 18. The engine of claim 17, wherein said selected groups of teeth include first and second groups of teeth, said first and second groups of teeth passing said crank gear sensor prior to either of said pistons reaching an initial top-dead-center.
- 19. The engine of claim 17, wherein said selected groups of teeth include first, second, and third groups of teeth, said first, second, and third groups of teeth passing said crank gear sensor prior to both of said pistons reaching an initial top-dead-center.
- 20. The engine of claim 17, wherein said selected groups of teeth include first, second, and third groups of teeth, said first and second groups of teeth passing said crank gear sensor prior to either of said first and second pistons reaching an initial top-dead-center, said third group of teeth passing said crank gear sensor after one of said pistons reaches an initial top-dead-center.
- 21. The engine of claim 17, wherein said crank gear includes an indicator identified by said crank gear sensor when said indicator passes by said crank gear sensor, said crank gear sensor identifying said groups of teeth relative to said indicator.
- 22. The engine of claim 16, further comprising:
an air intake manifold in communication with said first cylinder; and a pressure sensor mounted on said intake manifold, interconnected with said processor, and sensing pressure within said intake manifold; wherein said processor is programmed to use pressure readings from said pressure sensor to determine the phase of said engine when said engine is operating at high rpm.
- 23. The engine of claim 16, wherein said processor is programmed to determine the phase of said engine prior to either of said pistons reaching an initial top-dead-center.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. application Ser. No. 09/620,014, filed Jul. 20, 2000, the entire contents of which are herein incorporated by reference.
Continuations (1)
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Number |
Date |
Country |
Parent |
09620014 |
Jul 2000 |
US |
Child |
10288051 |
Nov 2002 |
US |