Tensioner for an accessory drive system of a motor vehicle and accessory drive system including said tensioner

The tensioner design with eccentric ring axes and a spring system addresses space and torque challenges, achieving reduced belt tension and improved operational efficiency in accessory drives with reversible electric machines.

JP7805069B2Active Publication Date: 2026-01-23ムヴィック·エッセ·エッレ·エッレ
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Patent Information

Application Number
JP2022577182
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-01
Filing Date
2021-07-01
Publication Date
2026-01-23
Estimated Expiration
2041-07-01

AI Technical Summary

Technical Problem

Existing tensioners for accessory drives in motor vehicles with reversible electric machines face challenges in maintaining optimal tension under varying torque conditions and space constraints, particularly in applications with only two pulleys, and require high belt tension for optimal operation.

Method used

A tensioner design featuring a first ring rotating about a first axis and a second ring rotating about a second axis eccentric to the first, with a spring system maintaining pulley contact, allowing reduced belt installation tension and symmetrical operation under positive and negative torque conditions.

Benefits of technology

The design reduces belt installation tension while maintaining torque transmission capacity, minimizing friction and wear, and optimizing operation across different torque modes without increasing size or cost.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A tensioner for an accessory drive of an internal combustion engine (2) includes a belt (8) on at least a first pulley (3) connected to a drive shaft (4) of the engine (2) and on a second pulley (5) connected to an electric machine (7), the tensioner comprising a base (11) configured to be fixed to a casing (13) of the electric machine, a first ring (15) rotating relative to the base (11) about a first axis (A1), and a second ring (15) rotating relative to the base (11) about a second axis (A2) different from the first axis (A1). a second ring (20) rotating relative to the first ring (15) about its own axis (PA1); a first tensioning pulley (23) carried by the first ring (15) and rotating relative thereto about its own axis (PA1); a second tensioning pulley (27) carried by the second ring (20) and rotating relative thereto about its own axis (PA2); and resilient means (34) acting on the first and second rings (15, 20) to bring the first and second pulleys (23, 27) into contact with respective spans (8a, 8b) of the belt.
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Description

[Technical Field]

[0001] [CROSS-REFERENCE TO RELATED APPLICATIONS] This patent application claims priority to U.S. Patent No. 6,279,999, the disclosure of which is incorporated herein by reference in its entirety.

[0002] The present invention relates to a tensioner for an accessory drive system of a motor vehicle, and to an accessory drive system including such a tensioner. [Background technology]

[0003] An accessory drive for an internal combustion engine generally comprises a pulley connected to a drive shaft, the pulley being connected to the shaft of an electric machine, and may comprise one or more pulleys for driving other accessories, such as a regulating system compressor, etc. The accessory drive further comprises a belt for transmitting motion between said pulley and a tensioner, the tensioner being configured to ensure the correct minimum tension level in the belt and to prevent slippage between the belt and the pulley.

[0004] In a conventional accessory drive where the electric machine is an alternator driven by the engine, the tensioner acts on the slack span of the belt, i.e., the span located downstream of the engine and upstream of the alternator relative to the direction of belt motion.

[0005] In motor vehicles, reversible electric machines are frequently used instead of conventional alternators, which can not only operate in the conventional generator mode but also according to further modes, for example as regenerative braking (regenerative mode) or as a further motor operating in combination with an internal combustion engine (boost mode).

[0006] With a reversible electric machine, in operating conditions where the electric machine is driven by the engine, the belt span that is in tension becomes a slack span when torque is delivered by the electric machine.

[0007] Therefore, various solutions have been devised to ensure that both spans of the belt are properly tensioned.

[0008] One solution is to use a tensioner with two arms hinged on a common pin and supporting each pulley. The arms are subjected to the elastic force of a spring that tends to move the pulleys closer together so as to maintain contact with each span of the belt. An example of this solution is described in US Pat. No. 5,649,499. The common axis of the two arms is positioned within the path of the belt.

[0009] The overall dimensions of the base around which the arms pivot and of the springs arranged around the common articulation axis of the arms make this solution unsuitable for applications where space constraints exist in the path of the belt, such as in the case of drives with only two pulleys. Furthermore, the configuration of the arms is not optimal with respect to the resulting forces acting on the pulleys.

[0010] Another solution consists in attaching the tensioner to the electric machine.

[0011] According to a known solution, the tensioner comprises a base configured to be fixed to the electric machine, a first annular element rotating relative to the base around the axis of the electric machine and supporting a first pulley, and a second annular element rotating relative to the base around the axis of the electric machine and supporting a second pulley.

[0012] A spring acts between two annular elements configured to apply a resilient force between said elements to maintain the first and second pulleys in contact with respective spans of the belt.

[0013] A drawback associated with the above solution is that it must operate at a relatively high belt tension in order to be able to function optimally in regenerative and boost conditions.

[0014] According to another known solution, the tensioner comprises a base configured to be fixed to the electric machine, an annular element supporting a first pulley relative to the base around the axis of the electric machine, and an arm hinged to the annular element and supporting a second pulley.

[0015] A problem associated with this solution is that it is difficult to obtain symmetrical characteristics under positive and negative torque conditions of the electric machine. [Prior art documents] [Patent documents]

[0016] [Patent Document 1] Italian Patent Application No. 102020000015877 [Patent Document 2] European Patent Application Publication No. 1581753 Summary of the Invention [Problem to be solved by the invention]

[0017] SUMMARY OF THE INVENTION It is an object of the present invention to create a tensioner for an accessory drive that does not have the drawbacks associated with known tensioners identified above. [Means for solving the problem]

[0018] The above object is achieved by a tensioner for an accessory drive according to claim 1.

[0019] In order that the invention may be better understood, preferred embodiments will now be described, by way of non-limiting example, and with reference to the accompanying drawings, in which: [Brief explanation of the drawings]

[0020] [Figure 1] 1 is a schematic top view of an engine with an accessory drive having a tensioner according to the present invention; [Figure 2] FIG. 2 is a schematic front view of the accessory drive system of FIG. 1. [Figure 3] FIG. 2 is a front view of the first embodiment of the tensioner of FIG. 1. [Figure 4] FIG. 4 is a partial perspective view of a cross section taken along line IV-IV in FIG. 3. [Figure 5] FIG. 4 is a cross-sectional view taken along line VV in FIG. [Figure 6] FIG. 4 is an exploded perspective view of the tensioner of FIG. 3. [Figure 7] 6A is an exploded perspective view of the tensioner of FIG. 3 in the axially opposite direction to FIG. 6. FIG. [Figure 8] 1 is a graph showing comparative quantities for various embodiments of the present invention. [Figure 9] 1 is a graph showing comparative quantities for various embodiments of the present invention. [Figure 10] 1 is a graph showing comparative quantities for various embodiments of the present invention. [Figure 11] 1 is a graph showing comparative quantities for various embodiments of the present invention. [Figure 12] 1 is a graph showing comparative quantities for various embodiments of the present invention. [Figure 13] 1 is a graph showing comparative quantities for various embodiments of the present invention. [Figure 14] 6 is a schematic partial cross-sectional view showing a variant of the embodiment of the detail of FIG. 5; [Figure 15] 6 is a schematic partial cross-sectional view showing a variant of the embodiment of the detail of FIG. 5; [Figure 16] 6 is a schematic partial cross-sectional view showing a variant of the embodiment of the detail of FIG. 5; [Figure 17] 6 is a schematic partial cross-sectional view showing a variant of the embodiment of the detail of FIG. 5; [Figure 18] 6 is a schematic partial cross-sectional view showing a variant of the embodiment of the detail of FIG. 5; [Figure 19] FIG. 1 is a front view of a tensioner according to the present invention. [Figure 20] FIG. 2 shows a second embodiment of a tensioner according to the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0021] 1 and 2, the number 1 indicates an accessory drive for an internal combustion engine 2.

[0022] The accessory drive 1 comprises a first pulley 3 connected to a drive shaft 4 of the engine 2 having an axis EA, a second pulley 5 connected to a shaft 6 of an electric machine 7 having an axis MA, and a belt 8 connecting the first pulley 3 and the second pulley 5 to each other. The accessory drive may comprise other pulleys, not shown, for driving other accessories of the engine 2, such as, for example, a regulating system compressor.

[0023] The accessory drive 1 further comprises a tensioner 10 mounted on the electric machine 7; and a base 11 integrally comprising a flat flange 12 configured to be fixed to a casing 13 of an electric machine 7 (FIGS. 1 and 5) and an annular collar 14 cantilevered axially from the flange 12, the collar having an axis A1 which, in use, is coincident with the axis MA; a first ring 15 supported on the base 11 for rotation around the collar 14 by a first bushing 16 having a flat annular portion 17 axially inserted between the first ring 15 and the flange 12, and by a cylindrical portion 18 having an axis A1 inserted radially between the first ring 15 and the collar 14 (FIG. 5); a second ring 20 supported on the base 11 rotatably around the first ring 15 by a bushing 21 surrounding its inner edge and therefore having a C-shaped cross section for at least a predominant part of its circumference, the bushing 21 being suitably pressed onto the inner edge of the second ring 20; (Figures 3 to 7)

[0024] The base 11 and rings 15, 20 have an inner diameter larger than the diameter of the second pulley 5 to allow assembly of the tensioner 10 on the electric machine 7 in the presence of the second pulley 5 (see FIG. 5, where the overall dimensions of the pulley 5 are indicated diagrammatically by dashed lines).

[0025] The first ring 15 has a radially outer extension 22 which supports for rotation a first pulley 23 of the tensioner 10 having an axis PA1 by means of a pin 24 and a bearing 25. The second ring 20 has a tubular axial extension 26 which cantilevers from the opposite side of the flange 12 of the base 11, on which a second pulley 27 of the tensioner 10 having an axis PA2 is rotatably mounted by means of a pin 28 and a bearing 29.

[0026] The first and second pulleys 23, 27 are configured to cooperate with respective sections 8a, 8b of the belt located respectively upstream and downstream of the second pulley 5 according to the belt feed direction (clockwise, with reference to Figure 2).

[0027] According to the invention, the second ring 20 rotates relative to the first ring 15 about a separate axis A2, parallel to axis A1. Axis A2 is located inside the first ring 15 and orbits around axis A1 as the first ring 15 rotates. To this end, the first ring 15 has a cylindrical inner surface 30 having axis A1, which rotates around the cylindrical portion 18 of the bushing 16, and an eccentric cylindrical outer surface 31 having axis A2, which radially supports the bushing 21.

[0028] The first ring 15 and the second ring 20 define respective housings 32, 33 for springs 34 whose purpose is to maintain the pulleys 23, 27 in contact with the belt 8 and thus generate an elastic force which, in use, tends to maintain a predetermined tension level in said belt 8.

[0029] The spring 34 (FIGS. 3-5) is an arc-shaped helical compression spring circumferentially disposed relative to the rings 15, 20. The housings 32, 33 are radial extensions of the rings 15, 20 and accommodate the ends 34a, 34b of the spring 34. The housings 32, 33 have a U-shaped cross section and define circumferential channels 35 closed on opposite circumferential sides by radial walls 36 that define shoulders for both ends of the spring 34. Projections 37 extend from the walls 36 for centering the spring 34. A half-shell 38 made of plastic is housed inside the channel 35, housing the spring 34 and preventing direct contact between the spring and the housings 32, 33.

[0030] The first ring 15 is axially locked onto the flange 12 of the base 11 by a disc spring 43 (FIGS. 5-7) which is axially compressed between the first ring 15 and an annular end 44 of the collar 14 of the base 11. To avoid direct contact between the disc spring 43 and the first ring 15, the disc spring 43 is provided with a coating 45 made of a plastic material, which covers its outer edge.

[0031] The tubular appendage 26 of the second ring 20 is positioned inside a recess 45 (FIG. 6) provided in the periphery of the first ring 15 to limit relative rotation between the rings 15, 20 between a free arm position corresponding to maximum longitudinal expansion of the spring 34 and a load-stop position corresponding to a position of maximum compression of the spring 34.

[0032] The first ring 15 has a protrusion 47 (FIG. 7) at its bottom that is configured to slidably engage an arcuate groove 48 in the flange 12 of the base 11 to limit the rotation angle of the first ring 15 relative to the base 11.

[0033] In the absence of a reaction force from the belt 8, the spring 34 tends to maintain the rings 15, 20 in a free arm position. Prior to installation, to facilitate assembly of the belt 8, the rings 15, 20 are locked relative to one another in a relative angular mounting position by a locking pin 49 (FIGS. 3-5) that engages in respective holes 50, 51 of the rings 15, 20, which conveniently are near the load stop position.

[0034] After the belt is installed, the pin 49 is removed and, under the action of the spring 34, the tensioner moves to the normal position shown diagrammatically in FIG. 2, in which the two pulleys 23, 27 are symmetrically positioned with respect to the bisector H of the wrap angle θ of the belt 8 relative to the pulley 5, and which coincides with the direction obtained by tensioning the belt 8 relative to the pulley 5 in the normal state.

[0035] The operation of the tensioner 10 is as follows.

[0036] Under normal operating conditions, the engine 2 delivers torque and the electric machine 7 is driven to operate as an alternator.

[0037] In this state, span 8b of the belt is the tensioned span and span 8a is the relaxed span.

[0038] 2, tensioner 10 rotates clockwise about axis A1 as a result of the hub load transmitted by tensioned span 8b to pulley 27. Under the thrust of spring 34, which tends to move pulleys 23 and 27 toward each other, pulley 23 acts on relaxed span 8a to maintain the same preset minimum tension value as torque changes.

[0039] In boost mode, the electric machine 7 delivers power (positive torque) that is added to that of the engine 2. This tends to decrease the tension in span 8b of the belt and increase the tension in its span 8a. On the other hand, in regenerative mode, the electric machine 7 absorbs mechanical power (negative torque), thus tending to decrease the tension in span 8a of the belt 8.

[0040] Using an axis of rotation A2 of the second ring 20 different from the axis A1 of the first ring (which, as mentioned before, coincides with the axis MA of the electric machine 7 in use) makes it possible to reduce the installation tension of the belt 8, with the torque transmission capacity in the slack span (which is always understood to be the slack span depending on the operating conditions).

[0041] 8 is a graph showing various positions of axis A2 relative to axis A1, designated as N1-N10 (where the X and Y axes represent coordinates measured in mm from the axis of the drive shaft). A1 shows a comparative example in which axis A2 coincides with axis A1 of electric machine 7 (at coordinates 210, 155 relative to the axis of the drive shaft).

[0042] FIG. 9 is a graph showing the trend of tension in the slack span of belt 8 relative to the points on the graph of FIG. 8 as the torque of electric machine 7 is varied (negative torque values ​​identify regenerative mode and positive values ​​identify boost mode).

[0043] The torque value of 0 corresponds to the belt installation tension, which is the same for all examples (315 N). Line A1 also represents a comparative example, in this case where axes A1 and A2 coincide.

[0044] Given the same mounting tension, examples N1 and N5-N10 determine significantly higher tensions in the relaxed span relative to comparative example A1, while examples N2, N3, and N4 have lower tensions in the relaxed span than the comparative examples in regeneration and / or boost conditions. Of the positive examples, N10 is the best, as it shows the symmetry of the tension curves in regeneration and boost conditions (as can be seen from the graph in Figure 9, the tension values ​​at the extreme torque values ​​of the curve are substantially the same, equal to + / - 55 Nm).

[0045] The increased tension in the relaxed span can be used to reduce the installation tension of the belt.

[0046] Figure 10 shows, for the N10 example of Figure 9, that the mounting tension has been reduced by 50 N relative to the comparative example (265 N instead of 315 N). By examining the figure, it is easy to see that in the normal operating range of about -25 to +25 Nm, where there is no risk of slippage, the tension remains lower than in the reference example, which results in lower losses due to friction and therefore lower wear.

[0047] On the other hand, in areas with high torques where slippage problems may occur (modules >25 Nm), the drive is much stronger than if the axes A1, A2 were coincident, improving the torque transmission capacity.

[0048] To clarify the factors that contribute to the position of A2 compared to A1 in the tension balance of the slack span in the regenerative and boost states, Figure 11 shows various further examples N11-N16 corresponding to the position of axis A2 at equal distances from axis A1. That is, points N11-N16 are on a circle with center A1 (axis A2 coincides with A1). Given the same distance A1-A2 (Figure 12), different behavior corresponds to these points, from which it can be inferred that the important factor is not the distance between A1 and A2.

[0049] It has been experimentally verified that the determining factor for obtaining a symmetrical behavior of the tensioner 10 in positive and negative torque conditions is the angle formed, in the nominal condition, between the plane specified by the axes A1-A2 and the plane containing the axis A1 and the bisector H (FIG. 2) of the wrap angle θ of the belt 8 on the pulley 5 of the electric machine 7. It should be noted that, although in the symmetrical layout of the drive 1 with only two pulleys shown in FIG. 2, the bisector H intersects with the axis EA of the drive shaft, this condition does not generally occur.

[0050] The optimum angle α varies with the change in the winding angle θ and is expressed by the experimentally determined relationship: α=−0.2166θ+97.267+c, where α and θ are in degrees (°) and c is a variable ranging from +10° to −10°.

[0051] A value of c=0 corresponds to perfect symmetry of the curves (tension as a function of torque) of Figure 9 or 10 in the positive and negative torque conditions. The linear relationship described above is shown in Figure 13 for a value of c=0.

[0052] The extreme values ​​of the variable interval of c are calculated based on the accepted asymmetry value in the aforementioned curve, which is equal to 5% of the installation tension. In particular, in the N10 example with an installation tension of 315 N, for c=+10° an unbalance of 15.21 N is obtained, or for c=-10° 14.98 N is obtained, both values ​​being lower than 15.75 (5% of the installation tension).

[0053] Surprisingly, said optimum angle is independent of both the diameter of the pulley 5 and the layout of the drive.

[0054] Since the pulley system is symmetrical with respect to the bisector H of the wrap angle θ, and the resulting system forces are symmetrical, the plane P can be located independently on one side of the line H (i.e., towards pulley 23 or towards pulley 27), in each case forming an angle α with the line H. In other words, two tensioners having their axes A2 lying on the plane P located on either side of the line H, but forming the same angle α with it, will have identical behavior.

[0055] The optimum position of the plane P defined above refers to the nominal position of the tensioner.

[0056] 14 to 18 are schematic, partial cross-sectional views showing alternative solutions for the axial and radial support of the rings 15, 20 on the base 11. Said solutions are indicated by using the same numbers, which indicate identical or corresponding parts already described with reference to FIGS. 3 to 7 and refer to details highlighted in FIG. 5. For simplicity, the description of support bushes has been omitted, but they must be interposed in any case, axially and / or radially, between the rings 15, 20 and with respect to the base 11 and the disc springs 43, in order to avoid premature wear and to control the damping of vibrations.

[0057] 14, the disc spring 43 acts between the shoulder 50 integral with the first ring and the second ring 20, exerting axial loads on them in opposite directions. In this way, the first ring 15 is pressed axially against the shoulder 44 integral with the base 11, and the second ring 20 is pressed against the base 11.

[0058] In the solution of Figure 15, there is a shoulder 44 integral with the base 11 and two disc springs 43a, 43b acting between each ring 15, 20. In this way, it is possible to control the rotational restraint of the first ring 15 and the rotational restraint of the second ring 20 independently.

[0059] 16, the first ring 15 is axially supported by the second ring 20, and the disc spring 43 acts between the first ring 15 and a fixed shoulder 44 integral with the base 11. In this case, the first ring 15 and the second ring 20 are therefore arranged one after the other with respect to the axial load of the disc spring 43.

[0060] In the solution of FIG. 17, there are two disc springs 43a, 43b, one acting between a shoulder 44 integral with the base 11 and the first ring 15, and the other acting between a shoulder 50 integral with the first ring 15 and the second ring.

[0061] Finally, FIG. 18 shows a solution in which a disc spring 43 acts on the first ring 15 , which rests simultaneously on the base 11 and on the second ring 20 .

[0062] The solution used has an impact on the possibilities to control the inhibition of rotation of the first and second rings 15, 20, but does not change the overall operation of the tensioner as previously described.

[0063] 19 and 20 show tensioner 52, which will be described below, only insofar as it differs from tensioner 10, using the same reference numerals to distinguish between identical or corresponding parts already described.

[0064] Tensioner 52 differs from tensioner 10 in that spring 34 is a helical tension spring arranged tangentially to first and second rings 15, 20 and has hook-shaped ends 34a, 34b that are integral with first ring 15 and second ring 20, respectively, and that hook onto pegs 53, 54 extending axially from outer radial extensions 55, 56 thereof.

[0065] The positions of the pulley 23 carried by the first ring 15 and the pulley 27 carried by the second ring are reversed relative to the tensioner 10 because the traction spring 34 (instead of a compression spring in the tensioner 10) determines the relative rotation in opposite directions between the two rings 15, 20. The effect of the spring 34 is to generate a resilient force which in any case tends to keep the pulleys 23, 27 in contact with the belt 8 at all times, thus maintaining a predetermined tension level in the belt 8 in use.

[0066] From an examination of the tensioner 10, 52 made in accordance with the present invention, the advantages it offers are clear.

[0067] In particular, by using tensioner pulleys carried by a first ring rotating about a first axis and a second ring rotating about a second axis eccentric to the first axis and relative to the first axis, it is possible to reduce the belt installation tension for the same torque transmission capacity without substantially increasing the overall size and cost of the tensioner.

[0068] Furthermore, by positioning the second axis on a plane that forms a predetermined angle with the bisector of the winding angle when the tensioner is in the nominal position, it is possible to optimize the operation of the drive unit under positive and negative torque conditions of the electric machine. [Explanation of symbols]

[0069] 1. Auxiliary drive unit 2. Internal combustion engine 3 First pulley 4 drive shaft 5 Second pulley 6 shafts 7 Electrical Machinery 8. Belt 8a span 8b span 10 Tensioner 11. Base 12 flange 13 Casing 14 colors 15 The First Ring 16 First Bush 17 Annular section 18 Cylindrical part 20 The Second Ring 21 Bush 22 Additional section 23 First pulley 24-pin 25 bearings 26 Additional section 27 Second pulley 28-pin 29 Bearings 30 Cylindrical inner surface 31 Eccentric cylindrical outer surface 32 Housing 33 Housing 34 Spring 34a end 34b end 35 Circumferential Channel 36 Wall 37 Protrusion 38 half shell 43 Disc spring 43a Disc spring 43b Disc spring 44 Shoulder, end 45 Coating, recess 47 Protrusion 48 Groove 49 Lock pin 50 holes, shoulder 51 holes 52 Tensioner 53 Nail 54 Nail 55 Additional section 56 Additional section A1 axis A2 axis E-Engine EA Drive shaft axis H bisector P plane MA axis PA1 axis PA2 axis α angle θ winding angle

Claims

1. 1. A tensioner (10) for an accessory drive of an internal combustion engine (2), wherein the accessory drive (1) includes at least one first pulley (3) connected to a drive shaft (4) of the internal combustion engine (2), at least one second pulley (5) connected to an electric machine (7), and a belt (8) wound around at least the first and second pulleys (3, 5), The tensioner (10) a base (11) adapted to be fixed to the casing (13) of said electric machine (7); a first ring (15) rotating relative to said base (11) about a first axis (A1); a second ring (20) rotating relative to said first ring (15) about a second axis (A2) different from said first axis (A1); a first tension pulley (23) mounted on said first ring (15) and rotating relative to said first ring (15) about its own axis (PA1); a second tension pulley (27) mounted on said second ring (20) and rotating relative to said second ring (20) about its axis (PA2); - elastic means (34) acting on the first ring (15) and the second ring (20) so as to urge the first pulley (23) and the second pulley (27) into contact with the respective spans (8a, 8b) of the belt; It contains a tensioner in which, in a normal state, a plane passing through the first axis (A1) and the second axis (A2) is inclined with respect to a bisector of the belt wrap angle (θ) about the second pulley (5) by an angle (α) that is a magnitude that balances the tension in the tensioned span of the belt (8) under positive and negative torque conditions of the electric machine (7).

2. 2. The tensioner of claim 1, wherein the second axis (A2) is disposed inside the first ring (15) and describes an orbit around the first axis (A1) when the first ring (15) rotates around the first axis (A1).

3. The base (11) is configured in an annular shape, 3. The tensioner according to claim 1 or 2, wherein the base (11) and the first and second rings (15, 20) have inner diameters larger than the diameter of the second pulley (5), and the tensioner (10) can be attached to the electric machine (7) without interfering with the second pulley (5).

4. the base (11) includes an annular collar (14) having an axis coinciding with the first axis (A1); A tensioner according to any one of claims 1 to 3, wherein the first ring (15) is rotatably mounted around the collar (14) by a first bushing (16).

5. the first ring (15) has a cylindrical inner surface (30) arranged coaxially with the first axis (A1), the inner surface (30) rotating around the first bushing (16), and an eccentric cylindrical outer surface (31) arranged coaxially with the second axis (A2); 5. The tensioner of claim 4, wherein the second ring (20) is rotatable around the cylindrical outer surface (31) of the first ring (15) by a second bushing (21).

6. 6. The tensioner of claim 1, wherein the angle is a function of the belt wrap angle (θ) of the belt (8) relative to the second pulley (5), where α and θ are expressed in degrees (°), and c is a variable ranging from +10° to -10°, and the relationship is: α = -0.2166θ + 97.267 + c.

7. A tensioner according to any one of the preceding claims, wherein the elastic means comprises at least one spring (34) acting between the first ring (15) and the second ring (20).

8. 8. The tensioner of claim 7, wherein the spring (34) is a compression spring having end portions (34a, 34b) housed in housings (32, 33) integral with the first ring (15) and the second ring (20), respectively.

9. 9. A tensioner according to claim 8, wherein the housing (32, 33) is made up of radial extensions of the first ring (15) and the second ring (20), respectively, and defines respective closed circumferential channels (35) at each circumferential end by radial walls (36) forming shoulders for the respective end portions of the springs (34).

10. 8. The tensioner of claim 7, wherein the spring (34) is a compression spring having end portions (34a, 34b) hooked onto the attachment portions of the first ring (15) and the second ring (20), and is disposed tangentially to the first ring (15) and the second ring (20).

11. 11. The tensioner of claim 5, further comprising at least one spring (43) that applies an axial load to at least one of the first bushing (16) and the second bushing (21) to inhibit rotation of the first ring (15) and the second ring (20).

12. 12. The tensioner of claim 11, wherein the axial load acts on one of the first ring (15) and the second ring (20), and the other ring is axially disposed between at least a portion of the one ring and the base (11).

13. the spring is axially disposed between the first ring and the second ring and applies axial loads to the first ring and the second ring in opposite directions relative to each other; 12. The tensioner of claim 11, wherein one of the first and second rings (20) is pressed against the base (11) and the other ring (15) is pressed axially against a shoulder (44) integral with the base (11).

14. 12. The tensioner of claim 11, wherein the tensioner comprises two springs (43a, 43b) that apply an axial load to the first ring (15) and the second ring (20), respectively.

15. 15. The tensioner of claim 1, wherein the first ring (15) and the second ring (20) each include first engagement means (26, 45) for limiting relative rotation between the first ring (15) and the second ring (20).

16. 16. The tensioner of claim 1, wherein the first ring (15) and the base (11) each include engagement means (47, 48) for limiting relative rotation between the first ring (15) and the base (11).

17. the tensioner includes locking means (49) for angularly locking the first ring (15) and the second ring (20) relative to one another in their relative mounted positions; A tensioner according to any one of the preceding claims, wherein the locking means (49) is releasable after installation.

18. A tensioner as described in Claim 17, wherein the locking means (49) includes a pin that can be inserted into holes (50, 51) in the first ring (15) and the second ring (20), respectively.

19. An accessory drive system for an internal combustion engine (2), comprising: The accessory drive device is at least one first pulley (3) connected to a drive shaft (4) of the internal combustion engine (2); at least one second pulley (5) connected to the electric machine (7); a belt (8) wound around at least the first pulley (3) and the second pulley (5); A tensioner (10) according to any one of claims 1 to 18; An accessory drive device comprising:

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