Patent classifications
F16D2500/30818
High efficiency, high output transmission
- Paul Peterson ,
- Graeme Andrew Jackson ,
- Timothy Scott Smith ,
- Paul Wilson ,
- Christian Chimner ,
- Andrzej Wota ,
- Carlos H. WINK ,
- Benjamin S. Sheen ,
- Kevin MCGOVERN ,
- David L. Wadas ,
- Troy Scott Reinoehl ,
- James Lee Whitaker ,
- Steven Michael Peterson ,
- Clinton Lee McClellan ,
- Paige Elizabeth FERNALD ,
- William A. DAVID ,
- Sujay Kawale ,
- Thomas Connolly ,
- Justin Keith Griffiths ,
- Joseph Paul Furner ,
- Sipei Chen ,
- Jeff Hawarden ,
- Yeidei Wang ,
- Adam Christopher MAURER ,
- Carl Christopher Smith ,
- Ian Daniel McKenzie ,
- Ryan Pauls ,
- Matthew R. Busdiecker ,
- Christopher Deboer
A transmission includes an input shaft coupled to a prime mover, a countershaft, main shaft, and an output shaft, with gears between the countershaft and the main shaft. A shift actuator selectively couples the input shaft to the main shaft by rotatably coupling gears between the countershaft and the main shaft. The shift actuator is mounted on an exterior wall of a housing including the countershaft and the main shaft. An integrated actuator housing includes a single external power access for the shift actuator. A controller interprets a shaft displacement angle, determines if the transmission is in an imminent zero or zero torque region, and performs a transmission operation in response to the transmission in the imminent zero or zero torque region.
HIGH EFFICIENCY, HIGH OUTPUT TRANSMISSION HAVING AN ALUMINUM HOUSING
- Paul Peterson ,
- Graeme Andrew Jackson ,
- Timothy Scott Smith ,
- Paul Wilson ,
- Christian Chimner ,
- Andrzej Wota ,
- Carlos H. WINK ,
- Benjamin S. Sheen ,
- Kevin MCGOVERN ,
- David L. Wadas ,
- Troy Scott Reinoehl ,
- James Lee Whitaker ,
- Steven Michael Peterson ,
- Clinton Lee McClellan ,
- Paige Elizabeth FERNALD ,
- William A. DAVID ,
- Sujay Kawale ,
- Thomas Connolly ,
- Justin Keith Griffiths ,
- Joseph Paul Furner ,
- Sipei Chen ,
- Jeff Hawarden ,
- Yeidei Wang ,
- Adam Christopher MAURER ,
- Carl Christopher Smith ,
- Ian Daniel McKenzie ,
- Ryan Pauls ,
- Matthew R. Busdiecker ,
- Christopher Deboer
A transmission includes an input shaft coupled to a prime mover, a countershaft, main shaft, and an output shaft, with gears between the countershaft and the main shaft. A shift actuator selectively couples the input shaft to the main shaft by rotatably coupling gears between the countershaft and the main shaft. The shift actuator is mounted on an exterior wall of a housing including the countershaft and the main shaft. An integrated actuator housing includes a single external power access for the shift actuator. A controller interprets a shaft displacement angle, determines if the transmission is in an imminent zero or zero torque region, and performs a transmission operation in response to the transmission in the imminent zero or zero torque region.
SYSTEM, METHOD, AND APPARATUS FOR OPERATING A HIGH EFFICIENCY, HIGH OUTPUT TRANSMISSION
A transmission includes an input shaft coupled to a prime mover, a countershaft, main shaft, and an output shaft, with gears between the countershaft and the main shaft. A shift actuator selectively couples the input shaft to the main shaft by rotatably coupling gears between the countershaft and the main shaft. The shift actuator is mounted on an exterior wall of a housing including the countershaft and the main shaft. An integrated actuator housing includes a single external power access for the shift actuator. A controller interprets controls the shift actuator with actuating and opposing pulses, and interprets a shaft displacement angle, determines if the transmission is in an imminent zero or zero torque region, and performs a transmission operation in response to the transmission in the imminent zero or zero torque region.
SYSTEM, METHOD, AND APPARATUS FOR OPERATING A HIGH EFFICIENCY, HIGH OUTPUT TRANSMISSION
A transmission includes an input shaft and an output shaft, the input shaft selectively accepting a torque input from a prime mover, and the output shaft selectively providing torque output to a driveline. A controller determines a shaft displacement angle representing an angle value of rotational displacement difference between at least two shafts of the transmission, and performs a transmission operation responsive to the shaft displacement angle.
HIGH EFFICIENCY, HIGH OUTPUT TRANSMISSION
- Paul Peterson ,
- Graeme Andrew Jackson ,
- Timothy Scott Smith ,
- Paul Wilson ,
- Christian Chimner ,
- Andrzej Wota ,
- Carlos H. WINK ,
- Benjamin S. Sheen ,
- Kevin MCGOVERN ,
- David L. Wadas ,
- Troy Scott Reinoehl ,
- James Lee Whitaker ,
- Steven Michael Peterson ,
- Clinton Lee McClellan ,
- Paige Elizabeth FERNALD ,
- William A. DAVID ,
- Sujay Kawale ,
- Thomas Connolly ,
- Justin Keith Griffiths ,
- Joseph Paul Furner ,
- Sipei Chen ,
- Jeff Hawarden ,
- Yeidei Wang ,
- Adam Christopher MAURER ,
- Carl Christopher Smith ,
- Ian Daniel McKenzie ,
- Ryan Pauls ,
- Matthew R. Busdiecker ,
- Christopher Deboer
A transmission includes an input shaft coupled to a prime mover, a countershaft, main shaft, and an output shaft, with gears between the countershaft and the main shaft. A shift actuator selectively couples the input shaft to the main shaft by rotatably coupling gears between the countershaft and the main shaft. The shift actuator is mounted on an exterior wall of a housing including the countershaft and the main shaft. An integrated actuator housing includes a single external power access for the shift actuator. A controller interprets a shaft displacement angle, determines if the transmission is in an imminent zero or zero torque region, and performs a transmission operation in response to the transmission in the imminent zero or zero torque region.
Method for coupling two sub-shafts
A method for coupling a first sub-shaft, which has a first turbomachine and a generator connected to a mains supply, to a second sub-shaft, which has a second turbomachine, by means of an overrunning clutch, has the following steps: a) rotating the second sub-shaft with a starting rotational speed which is lower than the rotational speed of the first sub-shaft; b) measuring the mains frequency of the mains supply; c) measuring a differential angle between the first sub-shaft and the second sub-shaft; d) accelerating the second sub-shaft with an acceleration value which is produced using the mains frequency measured in step b), the differential angle and the starting rotational speed, and therefore the overrunning clutch couples the two sub-shafts to each other with a previously determined target coupling angle.
Vehicle transmission device
A clutch disengagement position is detectable with high precision even during speed change. A vehicle transmission device can include a transmission including a main shaft to which rotational power from an engine is inputted via a clutch, and a countershaft, a clutch operation member that is driven by an actuator and performs disengaging and engaging operations of the clutch, and a driving wheel to which rotational power of the countershaft is transmitted via a driving force transmitting device. A damper member deformed by a driving force is provided in the countershaft, the driving force transmitting device or the driving wheel, or among the countershaft, the driving force transmitting device and the driving wheel. A control device learns a clutch disengagement operation amount when the control device detects deceleration of a predetermined value of the rotational frequency of the main shaft.
System, method, and apparatus for operating a high efficiency, high output transmission
A transmission includes an input shaft and an output shaft, the input shaft selectively accepting a torque input from a prime mover, and the output shaft selectively providing torque output to a driveline. A controller determines a shaft displacement angle representing an angle value of rotational displacement difference between at least two shafts of the transmission, and performs a transmission operation responsive to the shaft displacement angle.
Method for coupling a steam turbine and a gas turbine at a desired differential angle
A method and an associated arrangement for coupling a rotational device, particularly a steam turbine, and a shaft device, particularly a gas turbine, includes the following steps: 1) accelerating the rotational device up to an output rotational speed that is below the rotational speed of the shaft device; 2) detecting a differential angle between the shaft device and the rotational device; and 3) accelerating the rotational device with an acceleration value that is derived from the target rotational speed difference, which is formed as a function of the detected differential angle, the acceleration and a desired target coupling angle.
Rapid Onset Overload Prediction and Protection
A clutch controller provides protective disengagement of a clutch between an engine and driven machinery to prevent engine failure due to rapid onset overload. Sensor signals of measured parameters are used by the controller to determine potential engine failure. Multiple, successive sensor signals and elapsed times are assessed during which the current sensor signal value and the scaled rate of change in signal values is compared against a predefined amount. The clutch controller sends a clutch disengagement signal if a calculation result is indicative of imminent failure.