The apparatus of the present invention is adapted to supply power to one or more of the belt driven accessories of a hybrid electro-mechanical vehicle while the engine is off. The belt driven accessories may include, for example, power steering; air conditioning compressors; water pumps; cooling fans; etc.
Referring to
The hybrid vehicle 10 is configured to optimize fuel economy by selectively operating either the engine 28 or an electric motor/generator 34 to supply the power to a transmission 36 and operate the vehicle 10. The accessory drive system 12 of the present invention allows the accessories 26 to be driven by the engine 28 when the engine 28 is on, and by the motor 14 when the engine 28 is off as will be described in detail hereinafter. In this manner, the accessories 26 are operational even when the hybrid vehicle 10 is being powered by the electric motor/generator 34 and the engine 28 is off. Additionally, power may be provided by multiple accessories with a single electric motor thereby saving the cost associated with manufacturing and installing a separate electric motor for each accessory.
According to a preferred embodiment of the present invention, the motor clutch 16 and the engine clutch 22 are over-running one-way clutches. It should be appreciated, however, that over-running one-way clutches are merely a preferred embodiment and that alternate clutch configurations may implemented for the clutches 16 and 22 as well. The motor clutch 16 includes a driving member 17a connected to the electric motor 14, and a driven member 17b connected to the motor clutch pulley 18. The engine clutch 22 includes a driving member 23a connected to the crank shaft 30, and a driven member 23b connected to the engine clutch pulley 24. Optionally, the engine clutch 22 may include a damper system such as a harmonic balancer (not shown). As is known in the art, a “harmonic balancer” is a device adapted to reduce the transmission of resonant frequencies and protect the engine 28.
As is known in the art, an over-running one-way clutch transmits torque based on the relative speed across the clutch, wherein the relative speed across the clutch is defined as the speed of the driving member versus the speed of the driven member. As an example, the motor clutch 16 may be configured to transmit torque if the speed of the driving member 17a is greater than the speed of the driven member 17b, and not to transmit torque (or freewheel) if the speed of the driven member 17b is greater than the speed of the driving member 17a. Similarly, the engine clutch 22 may be configured to transmit torque if the speed of the driving member 23a is greater than the speed of the driven member 23b, and not to transmit torque (or freewheel) if the speed of the driven member 23b is greater than the speed of the driving member 23a. Accordingly, when the engine 28 is off, the speed of the driving member 23a is zero and the engine clutch 22 will freewheel as the system 12 is powered by the electric motor 14 such that power is supplied to the accessories 26 without backdriving the engine 28.
When the engine 28 is on, the accessory drive system 12 is configured to transfer torque from the engine 28, through the crank shaft 30; the engine clutch 22; the engine clutch pulley 24; the accessory drive belt 20; and to the accessories 26. According to a preferred embodiment, when the engine 28 is on the motor clutch 16 freewheels to effectively remove the electric motor 14 from the accessory drive system 12 such that the system 12 is operational without incurring the efficiency loss attributable to spinning the electric motor 14. Additionally, by decoupling the electric motor 14 from the accessory drive system 12 when the engine 28 is operating, the electric motor 14 is not required to spin at the maximum engine speed which is advantageous because a more durable and expensive electric motor would otherwise be required.
When the engine 28 is off, the accessory drive system 12 is configured to transfer torque from the motor 14, through the motor clutch 16; the motor clutch pulley 18; the accessory drive belt 20 and to the accessories 26. In this manner, the accessories 26 may be powered by the motor 14 when the hybrid vehicle 10 is being powered by the electric motor/generator 34 and the engine 28 is off. According to a preferred embodiment, when the engine 28 is off the engine clutch 22 freewheels to effectively remove the engine 28 from the accessory drive system 12 such that the system 12 is operational without incurring the efficiency loss attributable to spinning the crank shaft 30.
Referring to
While the best modes for carrying out the invention have been described in detail, those familiar with the art to which this invention relates will recognize various alternative designs and embodiments for practicing the invention within the scope of the appended claims.