1. Field of Invention
The present invention relates, generally, to powertrain starting systems and, more specifically, to a helical flexplate assembly and systems incorporating the same.
2. Description of the Related Art
Conventional automotive powertrain starting systems known in the art typically include an internal combustion engine controlled by an Engine Control Unit (ECU). The engine generates rotational torque through a crankshaft which is typically in rotational communication with a transmission. A ring gear is typically disposed between the engine and transmission. Depending on the type of transmission, the ring gear may be integrated on a clutch flywheel, a flexplate to which a torque converter or modular clutch assembly is attached, or on any powertrain component in rotational communication with the crankshaft. The ring gear cooperates with a pinion gear of a starter motor to rotate the engine at startup. To that end, conventional starter motors tend to simultaneously rotate and move the pinion gear into engagement with the ring gear, creating a distinctive noise as teeth of the rotating pinion gear engage teeth of the stationary ring gear.
So-called “permanently engaged” starter systems are also known in the art, wherein the pinion gear of the starter motor does not move and is always engaging the ring gear in operation. However, the ring gear typically rotates as the engine runs and, thus, rotates the pinion gear of the starter as well, which generates noise and reduces the efficiency of the engine.
Each of the components of a powertrain starting system of the type described above must cooperate to effectively start the engine. In addition, each of the components must be designed not only to facilitate improved performance and efficiency, but also so as to reduce the cost and complexity of manufacturing and assembling the system. While starting systems known in the related art have generally performed well for their intended purpose, there remains a need in the art for a starting system that has superior operational characteristics, and, at the same time, reduces the cost and complexity of manufacturing the components of the system, as well as the amount of noise generated in operation.
The present invention overcomes the disadvantages in the related art in a flexplate assembly for use in translating rotational torque between a starter motor, an engine, and a transmission. The flexplate assembly includes a drive assembly and a ring assembly. The drive assembly is operatively attached to the engine and the transmission and is used to translate rotational torque therebetween. The ring assembly includes a helical ring gear permanently engaging the starter motor. The ring assembly is in freewheel rotational communication with the drive assembly such that the ring assembly couples to and rotates with the drive assembly in response to rotational torque generated by the starter motor, and wherein the drive assembly disengages from the ring assembly in response to rotational torque generated by the engine.
In addition, the present invention is directed toward a system for use in starting an engine and translating rotational torque between the engine and a transmission. The system includes a starter motor, a drive assembly, and a ring assembly. The starter motor is operatively attached to at least one of the engine and the transmission and includes a helical pinion gear. The drive assembly is operatively attached to the engine and the transmission, and is used to translate rotational torque therebetween. The ring assembly includes a helical ring gear permanently engaging the helical pinion gear of the starter motor. The ring assembly is in freewheel rotational communication with the drive assembly such that the ring assembly couples to and rotates with the drive assembly in response to rotational torque generated by the starter motor, and wherein the drive assembly disengages from the ring assembly in response to rotational torque generated by the engine.
Further, the present invention is directed toward a method of starting and operating a vehicle having an engine operatively attached to a transmission. The method includes the steps of: providing an engine control unit for selectively driving the engine to generate rotational torque; providing a starter motor operatively attached to at least one of the engine and the transmission, the starter motor having a helical pinion gear; providing a flexplate assembly disposed between the engine and the transmission, the flexplate assembly including: a drive assembly operatively attached to the engine and the transmission for translating rotational torque therebetween, and a ring assembly having a helical ring gear permanently engaging the starter motor, the ring assembly being in selective freewheel rotational communication with the drive assembly, and the flexplate assembly being movable between a freewheel configuration and a locked configuration in response to a predetermined rotational torque differential occurring between the drive assembly and the ring assembly; rotating the starter motor such that the helical pinion gear rotates and translates rotational torque to the helical ring gear of the drive assembly thereby causing the flexplate assembly to move to the locked configuration and subsequently rotate the engine; detecting a rotational speed of the engine with the engine control unit; simultaneously stopping the starter motor and driving the engine with the engine control unit in response to the engine reaching a predetermined rotational speed; and generating rotational torque with the engine in response to being driven by the engine control unit such that the flexplate assembly moves to the freewheel configuration in response to a predetermined rotational torque differential occurring between the ring assembly and the drive assembly.
In this way, the present invention significantly reduces the complexity, noise generation, and packaging size of the starting system and its associated components. Moreover, the present invention reduces the cost of manufacturing starter systems that have superior operational characteristics, such as improved engine performance, control, and efficiency.
Other objects, features, and advantages of the present invention will be readily appreciated as the same becomes better understood after reading the subsequent description taken in connection with the accompanying drawing wherein:
Referring now to the figures, where like numerals are used to designate like structure, a portion of a powertrain of an automobile is illustrated at 10 in
The powertrain 10 also typically includes a disengagement member 20 in rotational communication with the crankshaft 16 for controlling engagement between the engine 12 and transmission. As shown in
To start the engine 12, a starter motor 22 is typically operatively attached to one of the engine 12 and the transmission, and is in selective rotational communication with the crankshaft 16. To that end, and according to one embodiment of the present invention, the starter motor 22 includes a helical pinion gear 24 that cooperates with a flexplate assembly 26 to rotate the engine 12 at startup. The flexplate assembly 26 is used to translate rotational torque between the starter motor 22, the engine 12, and the transmission. More specifically, and as illustrated in
Referring now to
As noted above, the system 31 enables the starter motor 22 to be permanently engaged to the flexplate assembly 26, whereby the helical pinion gear 24 of the starter motor is permanently meshed with the helical ring gear 32 of the ring assembly 30 of the flexplate assembly 26. The helical teeth are spaced diagonally with respect to gear rotation, which improves tooth-to-tooth engagement and thereby allows flexibility with respect to the design, spacing, size, and orientation of the helical ring gear 32 and helical pinion gear 24. Moreover, the helical profiles of the ring gear 32 and pinion gear 24 significantly reduces noise generation, thus enabling the engine 12 to be started quietly, which also contributes to an improved start-stop driving experience. Further, as will be appreciated from the description of the drive assembly 28 and ring assembly 30 below, the relationship between the helical pinion gear 24 of the starter motor 22 and the helical ring gear 32 of the flexplate assembly 26 enables improved flexibility in the design, sizing, and orientation of the starter motor 22 and the flexplate assembly 26, whereby the overall weight and packaging size of the system 31 can be reduced.
As shown best in
Referring now to
As noted above, the rollers 34 interact with the ring assembly 30 so as to effect freewheel rotational communication of the flexplate assembly 26. To that end, and in one embodiment, the drive assembly 28 may include a plurality of springs 44 disposed in the apertures 38 and at least partially engaging the rollers 34 for biasing the rollers 34 within the apertures 38. As shown best in
In one embodiment, and as best shown in
In one embodiment, and as best shown in
As noted above, the present invention is also directed toward a method of starting and operating a vehicle (not shown, but generally known in the art) having an engine 12 operatively attached to a transmission. The engine 12 is controlled by an engine control unit (not shown, but generally known in the art). The method includes the steps of: providing an engine control unit for selectively driving the engine 12 to generate rotational torque; providing a starter motor 22 operatively attached to at least one of the engine 12 and the transmission, the starter motor 22 having a helical pinion gear 24; providing a flexplate assembly 26 disposed between the engine 12 and the transmission, the flexplate assembly 26 including: a drive assembly 28 operatively attached to the engine 12 and the transmission for translating rotational torque therebetween, and a ring assembly 30 having a helical ring gear 32 permanently engaging the helical pinion gear 24 of the starter motor 22, the ring assembly 30 being in selective freewheel rotational communication with the drive assembly 28, the flexplate assembly 26 being movable between a freewheel configuration and a locked configuration in response to a predetermined rotational torque differential occurring between the drive assembly 28 and the ring assembly 30; rotating the starter motor 22 such that the helical pinion hear 24 rotates and translates rotational torque to the helical ring gear 32 of the drive assembly 28 thereby causing the flexplate assembly 26 to move to the locked configuration and subsequently rotate the engine 12; detecting a rotational speed of the engine 12 with the engine control unit 60; simultaneously stopping the starter motor 22 and driving the engine 12 with the engine control unit in response to the engine 12 reaching a predetermined rotational speed; and generating rotational torque with the engine 12 in response to being driven by the engine control unit such that the flexplate assembly 26 moves to the freewheel configuration in response to a predetermined rotational torque differential occurring between the ring assembly 30 and the drive assembly 28.
In one embodiment, the method described above includes the further steps of: driving the vehicle using rotational torque generated by the engine 12 and translated through the flexplate assembly 26 to the transmission; and stopping rotation of the engine 12 with the engine control unit in response to the vehicle reaching a predetermined speed.
In this way, the invention significantly reduces the complexity, cost, and packaging size of powertrain 10 systems and associated components. Specifically, it will be appreciated that the present invention provides significant advantages relating to elimination of noise, vibration, and harshness (NVH) traditionally associated with conventional starting systems 31. To that end, the helical ring gear 32 of the flexplate assembly 26 and helical pinion gear 24 of the starter motor 22 cooperate to provide smooth, consistent, and quiet engagement so as to start the engine 12 in operation. Moreover, it will be appreciated that the flexplate assembly 26 and starting system 31 of the present invention can be used in conjunction with any suitable type of powertrain 10, irrespective of the type of transmission or lubrication used. Further still, the present invention reduces the cost of manufacturing powertrain 10 starting systems 31 and components that have superior operational characteristics, such as improved performance, weight, component life and longevity, and efficiency.
The invention has been described in an illustrative manner. It is to be understood that the terminology which has been used is intended to be in the nature of words of description rather than of limitation. Many modifications and variations of the invention are possible in light of the above teachings. Therefore, within the scope of the appended claims, the invention may be practiced other than as specifically described.