The present invention relates to a hybrid drive module, and in particular to a chain tensioning device for a cassette of such a hybrid drive module as well as to a method for tensioning a chain.
Hybrid powertrains for passenger cars are gaining interest and various solutions for such applications have been proposed during the recent years. Especially it has been suggested to provide the hybrid functionality as a separate module which is added to the existing powertrain. One example of an existing hybrid drive module includes a first sprocket which is intended to be connected to the crank shaft of the internal combustion engine indirectly via a disconnect clutch arranged in series with a dual mass flywheel, and an electrical motor, preferably a 48V electrical motor, being drivingly connected to a second sprocket. The sprockets are connected by means of a belt, thus forming a belt drive, in order to allow for various driving modes such as pure electrical driving, recuperation, traction mode, and boost. In this prior art system the electrical motor, the flywheel, the clutch, and the belt drive are formed as a standalone module which can be added to an existing powertrain.
Other prior art modules are implemented using a chain drive instead of a belt drive.
During assembly of such standalone module to the powertrain, the chain must be set at a defined pre-load, which is a time consuming process. Therefore it would be desirable to provide an improved chain tensioning device and method for tensioning the chain which reduces the work required when mounting the hybrid drive module to the powertrain.
It is thus an object of the teachings herein to provide an improved assembly method, as well as an improved chain tensioning apparatus, overcoming the disadvantages of prior art solutions.
An idea of the present invention is therefore to provide a chain tensioning device which can be secured to a cassette of the hybrid drive module during manufacturing, and which is removed only after mounting to the existing powertrain.
According to a first aspect, a chain tensioning device is provided. The chain tensioning device is configured to be used with a cassette supporting a first sprocket of a chain drive, and also housing a second sprocket of the chain drive. The chain tensioning device comprises a base member being provided with a centering member, which is configured to be received by the associated cassette. The device further comprises a tensioning pin being configured to be received in a recess concentric with the second sprocket of the chain drive in the cassette, the second sprocket being moveable at least in a radial direction in relation to the cassette. The chain tensioning device further comprises a displacement mechanism being configured to move, such as selectively manipulate, the position of the tensioning pin in relation to the centering member between an idle state and a pre-loading state of a chain of the chain drive. The chain drive of the cassette, preferably of a hybrid drive module, can thus be tensioned without having to be mounted to an engine. The chain tensioning device also facilitates keeping the desired tension on the chain during transportation, i.e. as a transport securing device. This is beneficial as manufacture of the cassette/hybrid drive module and assembly of the cassette with an engine may take place at sites being geographically separated, which requires the cassette and/or the engine to be transported. The chain tensioning device will in such situations, regardless of the distance that it is necessary to transport the cassette, facilitate that the cassette can securely be handled/transported, reducing the risk of that the tension level of the chain changes unintentionally.
The centering member may further comprise a plurality of centering pins, distributing and sharing the loads from the tensioning of the chain into the cassette.
In one embodiment, the chain tensioning device comprises four centering pins that are distributed in a cross-shape.
Furthermore, the displacement mechanism may comprises a screw acting on the tensioning pin. The screw is preferably self-locking, and facilitates adjustment of the chain tension to a desired level. Being self-locking, the tensioning device will maintain the desired tension, for instance during transportation of the cassette.
In one embodiment, the chain tensioning device further comprises at least one locking pin receivable in a hole in the cassette, the locking pin upon manipulation is configured to lock the chain tensioning device in place against the cassette to facilitate tensioning of the chain.
Further still, the tensioning pin may be slidably supported by the base member such that the tensioning pin may only move relative the base member in a direction towards or away from the first sprocket.
In a second aspect is a hybrid drive module provided, comprising a cassette supporting a first sprocket of a chain drive, and a second sprocket of said chain drive. The hybrid drive module further comprising a chain tensioning device according to the first aspect attached to said second sprocket by inserting the tensioning pin into a recess concentric with said second sprocket and to the cassette by inserting the centering member into at least one hole in the cassette. The hybrid drive module can thus be transported with the chain tensioned to a desired level, facilitating the assembly of the hybrid drive module and an engine.
In one embodiment, the holes into which the centering member of the chain tensioning device is insertable are crankshaft access holes.
In another embodiment, the holes into which the centering member of the chain tensioning device is insertable are separate from crankshaft access holes.
In a third aspect is an engine assembly provided, comprising an internal combustion engine a thereto mounted hybrid drive module according to second aspect.
In a fourth aspect is a method for tensioning a chain of a chain drive provided, using the chain tensioning device of the first aspect. The chain connects a first sprocket supported by a cassette and a second sprocket in the cassette, the method comprising arranging the centering member of the chain tensioning device in at least one hole of the cassette, arranging a displaceable tensioning pin of the chain tensioning device in a recess concentric with the second sprocket, and manipulating a distance between the centering pins and the tensioning pin such that the chain is pre-loaded to a predetermined level. The chain tensioning device is thus held in place by its interaction with the cassette and the second sprocket respectively, allowing the chain to be tensioned and kept in correct tension for instance during transportation of the cassette. The cassette is, as mentioned, preferably a cassette of a hybrid drive module.
The method may further comprise mounting the cassette with the chain tensioning device to an engine, removing the chain tensioning device after at least one screw attaching the cassette to the engine is tightened, and tightening the screws which previously were non-accessible because of the presence of the chain tensioning device. The cassette, preferably of a hybrid drive module, can thus be mounted to the engine with the chain tensioning device still attached. By attaching at least one screw, preferably at least one to the cassette and at least one to the second sprocket, the cassette will be secured with the correct chain tension to the engine.
Embodiments of the teachings herein will be described in further detail in the following with reference to the accompanying drawings which illustrate non-limiting examples on how the embodiments can be reduced into practice and in which:
Starting in
The hybrid drive module 100 comprises an electrical motor 110 and a continuous member drive 120, here in the form of a chain drive 120, connecting the electrical motor 110 with the crank shaft 22. The electrical motor 110 is for this purpose driving a first sprocket 122 of the chain drive 120, whereby upon activation of the electrical motor 110 rotational movement of the first sprocket 122 is transmitted to a second sprocket 124 of the chain drive 120 via a chain 126.
The second sprocket 124 is drivingly connected to the crank shaft 22 via one or more couplings. In the embodiment shown in
Also illustrated in
The electrical motor 110 is preferably a 48V motor/alternator which thus can be used to provide hybrid functionality to the existing powertrain of the vehicle. For other embodiments, also possible within the scope of this application, high voltage hybrid electrical motors may be utilized. More specifically, the provision of the chain drive 120 allows for modularity with high voltage hybrid electrical motors in comparison to if a belt drive would be used. A belt drive could never accommodate the much higher loads provided by a more powerful high voltage hybrid electrical motor.
The crank shaft 22 provides input torque to a primary inertial mass 142 of the dual mass flywheel 140. A secondary inertial mass 144 of the dual mass flywheel 140 is in turn connected to an input shaft of the disconnect clutch 130, here in the form of a limited slip coupling. The output shaft of the disconnect clutch 130 is connected to the second sprocket 124 carrying the chain 126. Preferably, one or more springs may be provided connecting the internal masses 142, 144 to each other such that the secondary inertial mass 144 may rotate relative the primary inertial mass 142 whereby the springs may deform causing a reduction of torsional vibrations being transmitted from the internal combustion engine 20.
The dual mass flywheel 140 and the disconnect clutch 130 are preferably arranged concentrically around the crank shaft 22, thereby reducing the axial length of the hybrid drive module 100.
As is further shown in
In
With reference to
The cassette 200 supports the first sprocket 122 of the chain drive 120, the first sprocket 122 being rotationally secured to the inside of the cassette 200.
The outer cover 180 forms a closure for the cassette 200, and is preferably removable after that the cassette 200 is mounted to the engine 20. The purpose of the cassette 200 is consequently, as mentioned, to provide a sealed closure for the hybrid drive module 100, and to allow mounting of the components associated with the cassette 200 as a unit to the engine 20.
Now referring to
The first sprocket 122 is rotatably supported by the cassette 200, optionally by means of a radial bearing 123 such that it may rotate but not translate in relation to the cassette 200. The chain 126 runs along the first sprocket 122, as well as around the second sprocket 124, for torque transfer from the electric motor 110 (driving the first sprocket 122) to the crank shaft of the internal combustion engine 22 (driving the second sprocket 124). As is evident, torque may also be transferred in the opposite direction. The second sprocket 124 is arranged within the cassette 200, and is configured to be connected to the crankshaft 22 of the engine 20 when the hybrid drive module 100 is connected thereto. The second sprocket 124 is however configured to be radially moveable in relation to the cassette 200 when the cassette 200 is not mounted to the engine 20, to allow tensioning of the chain 126.
Seen also in
Now referring to
The chain tensioning device 400 comprises a base member 410, and a centering member 440, preferably in the shape of a number of centering pins 440 extending from a distal face 430 of the base member 410 and in a direction inwards, i.e. towards the hybrid drive module 100 during use. The chain tensioning device 410 preferably comprises more than two centering pins 440, even more preferably four centering pins 440 arranged at a distance from each other. As is clear from
The chain tensioning device 400 further comprises a tensioning pin 450 which is configured to extend through the base member 410 at a recess 411 thereof, and to be received by the center recess 512 of the cassette 200 of the hybrid drive module 100. Further to this, the chain tensioning device 400 comprises a displacement mechanism 413, such as a force exerting screwing member, capable of displacing the tensioning pin 450 in relation to the base member 410 such as to manipulate the position of tensioning pin 450 within the recess 411. As is shown e.g. in
In the embodiment of
In further embodiments, alternatives to the centering member 440 (or the centering pins 440) may be a circular track (not shown) or the like which may be received in a corresponding slot in the cassette 200 to facilitate centering of the chain tensioning device 400 relative the cassette 200 and the center recess 512.
In
The chain tensioning device 400 is in
Now referring to
In
At this stage, tensioning of the chain 126 is possible. With reference to
In
At this stage the chain has been pre-loaded, or tensioned, and the hybrid drive module 100 is thereby ready to be mounted 1004 to the engine block of the internal combustion engine 20. The chain drive 120 of the hybrid drive module 100 may thus be pre-loaded at a first geographic location being different from a second geographic location, where the hybrid drive module 100 attached to the engine block of the internal combustion engine 20.
Mounting 1004 of the hybrid drive module 100 preferably is performed by bolting the hybrid drive module 100 to the crankshaft 22 by means of pre-mounted screws 414 (see
Turning now to
The device 400 can consequently be attached to the cassette 200 without obstructing access, or at least reducing said obstruction, to the crankshaft screws 414, further facilitating mounting of the hybrid drive module 100 to the engine 20. As is shown, the device 400 may further comprise at least one locking pin 460. The locking pin 460 serves to hold the device 400 securely in place during tensioning of the chain 126 and during transportation of the module 100 with the tensioning device 400 attached.
The device 400 is arranged on the cassette 200 into the position shown in
It should be mentioned that the improved concept is by no means limited to the embodiments described herein, and several modifications are feasible without departing from the scope of the appended claims.
Number | Date | Country | Kind |
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1950240-0 | Feb 2019 | SE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/054943 | 2/25/2020 | WO | 00 |