DEVICE FOR TRANSMITTING A TORQUE FROM AN INTERNAL COMBUSTION ENGINE TO AN AUXILIARY UNIT
20170261042 · 2017-09-14
Assignee
Inventors
Cpc classification
F16D7/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D43/2026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D43/2024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B63/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D7/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H35/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B63/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H35/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An apparatus for transfer of a torque from an internal combustion engine to an auxiliary unit has an auxiliary unit shaft and a pulley rotatably disposed on the auxiliary unit housing. The pulley and the auxiliary unit shaft are connected with one another by an overload protection device configured to interrupt the connection between the pulley and the auxiliary unit shaft if a predetermined torque is exceeded. The overload protection device has a spring washer having multiple spring arms connected, on the end side, with connection elements of a disk-shaped driver until the predetermined torque is reached. Each connection element is configured as a pocket-shaped mounting in the driver, wherein the respective spring arm end lies against a contact surface of the pocket-shaped mounting under spring tension, with force fit. The respective pocket-shaped mounting is configured as a hook-shaped crosspiece cut out of the driver in certain regions.
Claims
1. Apparatus for transfer of a torque from an internal combustion engine to an auxiliary unit, particularly a compressor of an air conditioning system of a motor vehicle, having an auxiliary unit shaft (3) and a pulley (4) disposed on the auxiliary unit housing (2) so as to rotate, wherein the pulley (4) and the auxiliary unit shaft (3) are connected with one another by way of an overload protection device, wherein the overload protection device is configured in such a manner that the connection between the pulley (4) and the auxiliary unit shaft (3) is interrupted if a predetermined torque is exceeded, wherein the overload protection device has a spring washer (6) having multiple spring arms (10), which are connected, on the end side, with connection elements of a disk-shaped driver (7) until the predetermined torque is reached, wherein the respective connection element of the driver (7) is configured as a pocket-shaped mounting (11) in the driver (7), in each instance, wherein the end (10a) of the respective spring arm (10) lies against a contact surface (12) of the pocket-shaped mounting (11) under spring tension, with force fit, wherein the respective pocket-shaped mounting (11) is configured as a crosspiece (13) formed in hook shape and cut out of the driver (7) in certain regions.
2. Apparatus according to claim 1, wherein the end (10a) of the respective spring arm (10) and the respective contact surface (12) have shaped elements (10b, 12a) that are coordinated with one another.
3. Apparatus according to claim 2, wherein the shaped elements are configured as concave or convex regions (10b, 12a).
4. Apparatus according to claim 1, wherein the crosspiece (13) is provided with an additional reinforcement (14).
5. Apparatus according to claim 1, wherein the crosspiece (13) is configured to be resilient.
6. Apparatus according to claim 1, wherein the driver (7) has a supporting arm (15) directed toward the related spring arm (10) and lying against it, circumferentially adjacent to the respective crosspiece (13).
7. Apparatus according to claim 6, wherein the respective supporting arm (15) is configured as a crosspiece (13) that is cut out from the driver (7) in certain regions.
8. Apparatus according to claim 6 wherein the respective supporting arm (15) is provided with an additional reinforcement.
9. Apparatus according to claim 1, wherein the spring washer (6) has at least three symmetrically distributed spring arms (10).
10. Apparatus according to claim 1, wherein the spring washer (6) has a circumferential projection (6a) that lies against the driver (7), as long as the predetermined torque is not exceeded.
Description
[0019] The invention will be explained in greater detail below, using the drawing. This shows, in
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[0028]
[0029] An apparatus for transfer of torque from an internal combustion engine, not shown, to an auxiliary unit of a motor vehicle, is indicated in general with 1. In the exemplary embodiment shown, the auxiliary unit is a compressor of an air conditioning system, of which a compressor housing 2 is indicated. The auxiliary unit has an auxiliary unit shaft, in other words a compressor shaft 3 in the exemplary embodiment, which shaft is supposed to be driven by means of the apparatus 1, by way of a belt drive. This belt drive is driven by a pulley disposed on the crankshaft of the motor vehicle, which shaft stands in a drive connection with a pulley 4 of the apparatus 1 by way of a belt, not shown. This pulley 4 is mounted on the compressor housing or a lateral attachment 2a of the compressor housing 2, so as to rotate, by way of a bearing 5.
[0030] In order for the torque to be transferred from the pulley 4 to the compressor shaft 3, but for this transfer to be interrupted if the compressor is damaged and the compressor shaft 3 can no longer rotate, the apparatus 1 has an overload protection device in the powertrain between the pulley 4 and the compressor shaft 3. This overload protection device has a spring washer 6 and a disk-shaped driver 7. In this regard, in the exemplary embodiment, the spring washer 6 is connected with the compressor shaft 3 so as to rotate with it. For this purpose, in the exemplary embodiment the spring washer 6 is set onto the compressor shaft 3, and attached in torque-proof manner by means of a nut 8. Of course, a different method of torque-proof connection between the spring washer 6 and the compressor shaft 3 is also possible. The disk-shaped driver 7 is connected with the pulley 4 so as to rotate with it, in contrast. In the exemplary embodiment, the driver 7 is screwed onto the pulley 4 by means of screws 9 that are symmetrically distributed over the circumference, by means of a common radius. Of course, the driver 7 can be attached to the pulley 4 in torque-proof manner in a different way, for example with shape fit, for which purpose the driver 7 has finger-like elements, in known manner, which elements engage into corresponding indentations in the face side of the pulley 4. In the case of such an embodiment, a damping unit composed of elastomer elements or the like can additionally be integrated into this shape-fit connection, but this is not decisive within the scope of the invention.
[0031] In order to allow a transfer of force or torque from the driver 7 to the spring washer 6 and thereby from the pulley 4 to the compressor shaft 3, the spring washer 6 has three spring arms 10 in the exemplary embodiment, which arms are disposed symmetrically distributed over the circumference of the spring washer 6, extend radially outside of the circumference of the actual spring washer 6, and are angled away in the circumference direction. These spring arms 10, which can be best seen in
[0032] The respective spring end 10a therefore engages into the respective assigned pocket-shaped mounting 11 of the driver 7 and lies against the contact surface 12 of the pocket-shaped mounting 11 with force fit, under spring tension. As long as the torque to be transferred does not become too great, transfer of torque between the spring washer 6 and the driver 7 or between the pulley 4 and the compressor shaft 3 is thereby possible. However, if the torque becomes too great, if the compressor shaft 3 is jammed, for example, the spring ends 10a slip out of the pocket-shaped mountings 11 in a manner that will be described in greater detail below, so that the transfer of torque is interrupted and the pulley 4 can rotate freely.
[0033] In order to achieve not only the pure force-fit connection between the spring ends 10a and the pocket-shaped mounting 11, but also, in addition, a shape-fit connection, it is preferably provided that the respective end 10a of the spring arm 10 and the respective contact surface 12 have shaped elements that are configured to be complementary to one another. These shaped elements are configured as concave or convex regions 10b, 12a, in the exemplary embodiment, depending on the viewing direction.
[0034] The respective pocket-shaped mounting 11 of the driver 7 is configured, in the exemplary embodiment, as a hook-shaped crosspiece 13 that is cut out from the driver 7 in certain regions, in each instance, which crosspiece forms the contact surface 12 having a concave or convex region 12a on the free end side. The hook-shaped crosspiece 13 preferably has an additional reinforcement 14 adjacent to its articulation toward the actual driver 7, which reinforcement is preferably configured as a surface stamping of this crosspiece region.
[0035] As is evident from the above description, the overload protection device of the apparatus 1 fundamentally consists of only two pieces, namely the spring washer 6 and the driver 7. The two parts are joined together before installation, preferably to form a separable unit. Final installation takes place by means of pushing them onto the compressor shaft 3 and tightening the connection element, in the exemplary embodiment the nut 8. Alternatively, the compressor shaft 3 can, of course, also have an inner bore having an inside thread. To attach the spring washer 6 to the end of the compressor shaft 3, not a nut 8 but rather an attachment screw is used, accordingly. The driver 7, which is not connected with the compressor shaft 3 with its inside bore, which is greater as compared with the compressor shaft 3, is attached to the pulley 3 by means of the screws 9.
[0036] During pre-assembly of the overload protection device, the spring washer 6 and the driver 7 are braced against one another by way of the spring arms 10 and the pocket-shaped mountings 11. In this regard, a force-fit connection takes place, on the one hand, by means of the spring-loaded deflection of the spring ends 10a against the contact surfaces 12 of the pocket-shaped mountings 11, and on the other hand, a shape-fit connection additionally takes place by way of the concave and convex regions 10b, 12a . The shape of these concave regions 10b, 12a is fundamentally freely selectable; they are spherical, conical or cylindrical, for example. The reinforcements 14 serve to reinforce the crosspieces 13 of the pocket-shaped mountings 11; they prevent the crosspieces 13 from being bent away. During bracing, the spring arms 10 are brought from a neutral, load-free position into a braced position, thereby generating a press-down force F that presses the spring washer 6 onto or against the driver 7.
[0037] The force F is determined by the geometry and the sheet-metal thickness of the spring arms 10, the elasticity of the spring steel used, and the deflection of the spring arms 10. In this regard, the spring washer 6 supports itself on the driver 7 with a circumferential projection 6a, and thereby the spring washer 6 and the driver 7 form a unit that is force-free toward the outside. This is evident from
[0038] During operation, the pulley 4 is driven by the belt of the internal combustion engine, not shown. The torque produced during this process is transferred by way of the spring washer 6 and the driver 7. Thereby a tangential force is introduced into the spring washer 6 by way of the pocket-shaped mountings 11 and crosspieces 13. The spring washer 6 in turn drives the compressor shaft 3 by means of the torque-proof connection by way of the nut 8. If rotation of the compressor shaft 3 is prevented during operation—for example due to a malfunction—the force that acts on the connection between the spring washer 6 and the driver 7 increases. If the force or the torque exceeds a predetermined amount, the spring ends 10a can slip out of the pocket-shaped mountings 11. They slide on one another until the connection is completely released. This disengagement process is shown in
[0039] The maximal force that can be transferred is determined by the contact angle of the concave and convex regions 10b, 12a, the friction coefficients of the contact partners, and the bias force of the spring arms 10.
[0040] The spring arms 10 can return to the load-free position after complete separation from the driver 7. Because the rotation of the pulley 4 is then uncoupled from the rotation of the compressor shaft 3, the belt of the pulley 4 is not stressed by the malfunction of the compressor. Because the spring washer 6 and the driver 7 are separated and the spring arms 10 lie axially offset from the pocket-shaped mountings 11 of the driver 7, free rotation of the driver 7 and thereby also of the pulley 4 can take place.
[0041] In
[0042] The spring tension of the spring arms 10 can be better regulated by means of suitable dimensioning of the supporting arm 15. Furthermore, the supporting arms 15 guarantee, in the uncoupled state that is not shown, in which the ends 10a of the spring arms 10 are situated above the pocket-shaped mountings 11 in the sense of
[0043] Of course, the invention is not restricted to the exemplary embodiment shown. Further embodiments are possible without departing from the fundamental idea. Thus, the type of torque-proof connection between the driver 7 and the pulley 4 as well as between the spring washer 6 and the compressor shaft 3 can also be configured differently; the same also holds true for the concave and convex regions 10b, 12a, which can also be eliminated completely, if applicable, so that only a force-fit connection exists. Furthermore, the spring washer 6 can also be firmly connected with the pulley 4, and the driver 7 can be firmly connected with the compressor shaft 3.
REFERENCE SYMBOL LIST
[0044] 1 apparatus [0045] 2 compressor housing [0046] 2a attachment [0047] 3 compressor shaft [0048] 4 pulley [0049] 5 bearing [0050] 6 spring washer [0051] 6a circumferential projection [0052] 7 driver [0053] 7a contact surfaces [0054] 8 nut [0055] 9 screws [0056] 10 spring arms [0057] 10a ends [0058] 10b concave or convex region [0059] 11 pocket-shaped mounting [0060] 12 contact surface [0061] 12a concave or convex region [0062] 13 crosspieces [0063] 14 reinforcements [0064] 15 supporting arm