Boost system including turbo and hybrid drive supercharger
10006343 ยท 2018-06-26
Assignee
Inventors
Cpc classification
F02B33/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B39/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M31/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B33/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B39/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B39/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B33/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02B37/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B39/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B33/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B33/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B33/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M31/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B39/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B39/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present disclosure relates to a boost system that provides boost pressure to an air intake manifold of an engine. The boost system includes a turbocharger and a supercharger that cooperate to provide the pressure boost to the air intake manifold. The boost system also includes a hybrid drive system for powering the supercharger.
Claims
1. A boost system for providing boost pressure to air within an air intake manifold of an engine, the boost system comprising: a turbocharger and a supercharger that cooperate to provide a total pressure boost to the air intake manifold; and a hybrid drive system including an electric motor/generator coupled to a battery and including a planetary gear set that provides a torque transfer interface between the electric motor/generator, the supercharger, and the engine and including a clutch provided between the planetary gear set and the engine for selectively engaging and disengaging the planetary gear set from the engine; wherein the hybrid drive system is operable in: a turbocharging only mode, wherein the clutch is disengaged such that the supercharger provides no pressure boost such that the turbocharger provides the entirety of the total pressure boost; a steady state mode, wherein the clutch is engaged and the supercharger is driven only by the engine through the planetary gear set such that a baseline portion of the total pressure boost to the air intake manifold is provided at a fixed ratio with the engine speed; a first transient mode, wherein the clutch is engaged and the electric motor/generator is operated as a generator such that the supercharger provides a portion of the total pressure boost that is less than the baseline portion; a second transient mode, wherein when the clutch is engaged and the electric motor/generator is operated as a motor such that the supercharger provides a portion of the total pressure boost that is greater than the baseline portion.
2. The boost system of claim 1, wherein the turbocharger is positioned upstream from the supercharger.
3. The boost system of claim 1, wherein the turbo charger is positioned downstream from the supercharger.
4. The boost system of claim 1, wherein the turbocharger is a single scroll turbine.
5. The boost system of claim 4, wherein the engine has a size in the range of 1-4 liters.
6. The boost system of claim 4, wherein the engine has a size in the range of 1-3 liters.
7. The boost system of claim 1, wherein the engine is a spark ignition gasoline engine.
8. The boost system of claim 1, further comprising a bypass line that bypasses the supercharger.
9. The boost system of claim 8, further comprising an intercooler positioned downstream from the supercharger for cooling the intake air, wherein the bypass line bypasses both the supercharger and the intercooler.
10. The boost system of claim 1, wherein the electric motor/generator is used to reduce differential rotational speed within the clutch prior to engaging the clutch.
11. The boost system of claim 10, wherein the planetary gear set includes a sun gear coupled to a rotor of the supercharger, a carrier coupled to one side of the clutch, a ring gear coupled to the electric motor/generator, planetary gears intermeshed between the sun gear and the ring gear, and a belt for transferring torque from the engine to a pulley, and wherein the clutch transfers torque between the pulley and the carrier when engaged and does not transfer torque between the pulley and the carrier when not engaged.
12. The boost system of claim 11, wherein the boost system can be operated in an electric only mode by locking the carrier, disengaging the clutch and operating the motor/generator as a motor so as to apply torque to the ring gear.
13. The boost system of claim 11, wherein the boost system can be operated in a low battery mode in which the motor/generator is braked and the supercharger is driven only by the engine.
14. The boost system of claim 11, the boost system can be operated in a low battery mode in which the motor/generator is prevented from acting as a motor.
15. The boost system of claim 11, the boost system can be operated in a low battery mode in which the motor/generator is operated as a generator and the supercharger is driven only by the engine.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(7) Aspects of the present disclosure can relate to a boost system that uses both a supercharger and a turbocharger to provide boost pressure to an engine. In certain examples, the engine can include a spark ignition gasoline engine. In certain examples, the gasoline engine can have a size ranging from one liter to four liters. In another example, the engine can have a size ranging from one liter to three liters. Of course, in other examples, aspects of the present disclosure are also applicable to engines having sizes outside the ranges specified above.
(8) In a boost system including both a supercharger and a turbocharger, the system can be designed with a pressure ratio balance between the supercharger and the turbocharger selected to achieve a desired manifold pressure profile.
(9)
(10) Referring still to
(11) In the depicted example, the throttle 106 is positioned between the supercharger 108 and the engine 102 such that the throttle 106 is positioned downstream from the supercharger 108. In other examples, the throttle can be positioned upstream from the supercharger 108.
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(13) In certain examples, the hybrid drive system 120 can be configured to provide various functions and can be operated in various modes. In certain examples, the hybrid drive system 120 can be provided with a brake for applying a braking force to the rotors of the supercharger 108 such that the rotors of the supercharger 108 are prevented from rotating. In such an example, with the supercharger brake open, the electric motor/generator 122 can be operated to vary the speed of the supercharger 108 to control and vary the boost rate based on the operating condition of the engine. This mode can be referred to as a variable speed boost mode. In an engine start/stop mode, the supercharger brake can be locked and the electric motor 122 can provide torque to the engine for starting. With the supercharger brake locked, the system can be operated in a brake regeneration mode in which the electric motor/generator 122 is operated as a generator and is used to recover energy associated with braking. With the supercharger brake locked, the boosting system can be operated in a torque assist mode in which the electric motor 122 is operated as a motor and is used to provide supplemental torque to the engine. With the supercharger brake locked, the hybrid drive system 120 can also be operated in an alternator mode in which the electric motor/generator functions as a generator and uses torque from the engine to charge the battery. It will be appreciated that further details relating to example hybrid drive systems that can be incorporated into the present boosting system are disclosed in U.S. Provisional Patent Application Ser. No. 61/776,834; U.S. Provisional Patent Application Ser. No. 61/776,837; and PCT Application No. PCT/US2013/003094, all of which are hereby incorporated by reference in their entireties.
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(15) Still referring to
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(17) It will be appreciated that the boosting system 100 can be designed taking into consideration both steady state and transient operating conditions. In certain examples, the system is designed to be efficient at steady state operating conditions and the fixed ratio boost provided by the supercharge 108 (as defined by line 176) has been selected so as to ensure efficient operation at a steady state. Referring to
(18) It will be appreciated that the supercharger 108 can be configured to withstand high flow/high pressure conditions. In certain examples, the supercharger 108 can include enhanced shaft sealing of the type disclosed at U.S. Provisional Patent Application Ser. Nos. 61/776,568 and 61/776,993, which are hereby incorporated by reference in their entireties.
(19) In certain examples in accordance with the principles of the present disclosure, the boost system 100 can include control features to enhance clutch performance and reduce clutch wear. In certain examples, the electric motor/generator 122 can be used to reduce clutch differential speed before engagement. For example, under normal extended steady state conditions, the clutch 174 can be operated in the disengaged state where torque is not transferred from the pulley 172 to the carrier 158. In this condition, the bypass line 134 can be opened to allow the intake air to bypass the supercharger 108. In this condition, the rotors of the supercharger 108 do not rotate and the carrier 158 also does not rotate. Alternatively, the rotors of the supercharger 108 and the carrier 158 may rotate at a speed substantially slower than the pulley 172. To limit clutch wear, prior to engaging the clutch 174, the electric motor/generator 122 can be used to reduce the clutch differential speed. For example, the electric motor/generator 122 can draw electricity from the battery 124 and convert this energy to a torque that is supplied to the ring gear 162 for rotating the ring gear 162. Rotation of the ring gear causes rotation of the carrier 158 since the inertial mass of the supercharger rotors prevents the sun gear 156 from rotating. Sensors can be utilized to monitor the rotational speed of the portion of the clutch corresponding to the carrier 158 and the portion of the clutch corresponding to the pulley 172. When the differential speed between the components of the clutch is sufficiently low or zero, the clutch 174 is then engaged. Upon engagement of the clutch 174, the electric motor/generator 122 is operated as a generator thereby providing resistance causing torque to be transferred through the planetary gear set 126 to the rotors of the supercharger 108. By controlling the resistance provided by the electric motor/generator 122 while the electric motor/generator 122 operates in the generator mode, the electric motor/generator 122 can control the supercharger engagement profile.
(20) The hybrid drive system 120 can further include additional operational modes. For example, in low battery conditions, the control system can be configured to operate the hybrid drive system 120 only in fixed ratio or regeneration modes. In other words, once the battery level falls below a predetermined level, the control system can prevent the electric motor/generator 122 from operating as a motor and applying additional torque to the ring gear 162. Thus, under this type of condition, the maximum boost provided by the supercharger 108 is established by the baseline value corresponding to the fixed ratio boost.
(21) In still other examples, it may be desirable to provide significant levels of boost without drawing torque from the engine 102. To accommodate such situations, the hybrid drive system 120 can be provided with an optional electric-only boost mode. To access the electric-only boost mode, the clutch 174 is disengaged and a brake or lock is used to prevent rotation of the carrier 158. The electric motor/generator 122 is then operated as a motor so as to apply torque through the planetary gear set 126 for driving rotation of the rotors of the supercharge 108.
(22) As described above, in certain examples, the electric motor/generator 122 can include an internal stop mechanism or a brake for braking the electric motor/generator 122 when it is desired to stop rotation of the output/input shaft of the electric motor/generator. In other examples, an external brake applied to the ring gear, the motor shaft or any intermediate components can be used to provide selective braking of the motor. In certain examples, the motor is braked when it is desired to drive the supercharger only from the engine (e.g, under low battery power conditions). Thus, supercharger boost is available even under low battery power conditions. In certain examples, torque is transferred to the motor and the supercharger from the engine crankshaft to provide power for driving the supercharger while simultaneously driving the motor/generator to re-charge/re-generate the battery under low battery power conditions.
(23) Another aspect of the present disclosure relates to a boost system for providing boost pressure to an air intake manifold of an engine. The boost system includes a turbocharger and a supercharger that cooperate to provide the pressure boost to the air intake manifold. The boost system also includes a hybrid drive system for powering the supercharger. In certain examples, the hybrid drive system includes a mechanical connection for transferring torque between the supercharger and the engine (e.g., between the engine crankshaft and a drive shaft of the supercharger) and a mechanical connection for transferring torque between a supplemental power source (e.g., an electric motor and/or an electric motor/generator) and the drive shaft of the supercharger. In certain examples, the hybrid drive can include a planetary gear set for transferring torque between the engine crankshaft and the drive shaft of the supercharger and between the supplemental power source and the drive shaft of the supercharger. In certain examples, a ring gear of the planetary gear set is coupled to the supplemental power source, a sun gear of the planetary gear set is coupled to the supercharger shaft and a carrier of the planetary gear set can be coupled to the engine crankshaft. Couplings can be made with gear sets, belts or other means.
(24) In certain examples, hybrid drive systems include mechanical connections for transferring torque between a drive shaft of a supercharger and an engine (e.g., between the engine crankshaft and a drive shaft of the supercharger) and a mechanical connection for transferring torque between a supplemental power source (e.g., an electric motor and/or an electric motor/generator) and the drive shaft of the supercharger. In certain examples, the hybrid drive system transfers (e.g., proportions) torque between the engine, the supercharger and the supplemental power source.
(25) From the forgoing detailed description, it will be evident that modifications and variations can be made in the aspects of the disclosure without departing from the spirit or scope of the aspects.