Tensioner lever
11371591 ยท 2022-06-28
Assignee
Inventors
Cpc classification
F16H2007/081
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0897
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0893
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An object of the present invention is to provide a tensioner lever capable of consistently exerting appropriate reaction force to various tension fluctuations in conjunction with varying chain behavior, and reducing vibration and noise when the chain runs. The tensioner lever of the present invention includes a torsion coil spring having a pressing arm in which a distal end portion abuts on a lever body to form a first load point, and a support arm in which a distal end portion abuts on a support part provided to an attachment surface to form a first support point. The tensioner lever further includes a spring load adaption structure configured to form one or both of a second loading point and a second support point when a certain level or more of load is received from the chain.
Claims
1. A tensioner lever comprising: a lever body having a shoe surface that slidably guides a chain and rotatably supported on a pivot shaft provided upright on an attachment surface; and a torsion coil spring interposed between the lever body and the attachment surface to press the shoe surface toward the chain, the torsion coil spring including a helical part loosely fitted to a cylindrical boss part provided to the lever body, a pressing arm extending from one end of the helical part to form a first loading point where a distal end portion of the pressing arm contacts the lever body, and a support arm extending from another end of the helical part to form a first support point where a distal end portion of the support arm contacts and is supported by a support part provided to the attachment surface, the tensioner lever further comprising a spring load adaption structure configured, when a certain level or more of load is received from the chain, to form one or both of a second loading point where the pressing arm contacts the lever body in a position different from the first loading point, and a second support point where the support arm contacts the support part in a position different from the first support point, wherein the second loading point is a position where a spring load is applied together with the first loading point, and the second support point is a position where the spring load is applied together with the first support point.
2. The tensioner lever according to claim 1, wherein the spring load adaption structure includes an abutment part forming wall configured to form the second loading point and protruded from an inner side face of a chain-side circumferential side wall that forms the shoe surface, the spring load adaption structure being configured such that, when the pressing arm contacts the abutment part forming wall, an area of contact between the pressing arm and the abutment part forming wall gradually increases.
3. The tensioner lever according to claim 1, wherein the spring load adaption structure includes an abutment part forming wall configured to form the second loading point and protruded from an inner side face of a chain-side circumferential side wall that forms the shoe surface, the abutment part forming wall being formed such that the second loading point is located at a region along the pressing arm, the region being within a length that is โ of a length of the pressing arm from the first loading point.
4. The tensioner lever according to claim 1, wherein the spring load adaption structure includes an attachment-surface-side abutment part forming wall provided to the support part of the attachment surface and configured to form the second support point.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) A tensioner lever that is one embodiment of the present invention will be hereinafter described with reference to the drawings.
(9) The tensioner lever 100, as illustrated in
(10) The tensioner lever 100 includes a lever body 110 made of a synthetic resin or the like, and a torsion coil spring 120 made of metal or the like and interposed between the lever body 110 and the attachment surface.
(11) The lever body 110 has a lever circumferential wall 111 formed substantially in a comma-like shape in side view, as illustrated in
(12) The lever circumferential wall 111 includes, as also illustrated in
(13) The space surrounded by the lever circumferential wall 111 is partitioned to two cavities in the longitudinal direction by a reinforcing rib part 112a provided between the chain-side circumferential wall part 111c and the non-chain-side circumferential wall part 111d. One of the cavities positioned on one side forms a torsion spring accommodating part H. The cavity positioned on the other side is partitioned in the axial direction (in which the pivot shaft Pa extends) by a partition wall part 113 and each part of the divided cavity is provided with a reinforcing rib part 112b between the chain-side circumferential wall part 111c and the non-chain-side circumferential wall part 111d.
(14) In a section of the lever circumferential wall 111 which defines the torsion spring accommodating part H, a lever side wall part 115 that covers the torsion spring accommodating part H is formed continuously from an end face on the opposite side from the attachment surface.
(15) The lever side wall part 115 is formed with a shaft hole 116 in which the pivot shaft Pa is inserted. A cylindrical boss part 117 is integrally formed to the lever side wall part 115 such as to protrude from the circumferential edge of the shaft hole 116 toward the attachment surface. With the pivot shaft Pa being inserted into the boss part 117, the lever body 110 is pivotably (rotatably) supported on the attachment surface.
(16) The end face of the boss part 117 on the side facing the attachment surface is formed to protrude slightly more toward the attachment surface than the lever circumferential wall 111, which prevents other parts than this end face of the boss part 117 on the side facing the attachment surface from contacting the attachment surface, so that smooth pivoting (rotation) of the lever body 110 around the pivot shaft Pa is ensured.
(17) A restricting protrusion 118 is formed on an outer circumferential surface of the boss part at the end on the side facing the attachment surface to restrict the torsion coil spring 120 from moving toward the attachment surface. This way, in a state before the tensioner lever 100 is attached to the attachment surface, the torsion coil spring 120 is prevented from coming off of the lever body 110, and also, in a state where the tensioner lever 100 is attached to the attachment surface, the torsion coil spring 120 is prevented from interfering with the attachment surface.
(18) The torsion coil spring 120 includes a helical part 121, a pressing arm 122 extending from one end of the helical part 121, and a support arm 123 extending from the other end of the helical part 121. The pressing arm 122 has a distal end portion 122a bent toward the attachment surface, while the support arm 123 has a distal end portion 123a bent in the opposite direction from the attachment surface.
(19) The torsion coil spring 120 is set in the lever body 110 with the helical part 121 loosely fitted around the outer circumferential surface of the boss part 117. The distal end portion 122a of the pressing arm 122 forms a first loading point P1 by being abutted on an inner surface of the chain-side circumferential wall part 111c, while the support arm 123 extends out of the lever body 110 through a cut-out portion 114 provided to the circular arc circumferential wall part 111a, with the distal end portion 123a thereof forming a first support point R1 by being abutted to a support part W provided to the attachment surface (see
(20) The distal end portion of the pressing arm 122 is stopped by a spring lock rib 119 protruded from the inner surface of the chain-side circumferential wall part 111c, so that a correct contact state of the distal end portion 122a of the pressing arm 122 on the inner surface of the chain-side circumferential wall part 111c is secured.
(21) Accordingly, as illustrated in
(22) Furthermore, the tensioner lever 100 according to this embodiment includes a spring load adaption structure 130 configured to form a second loading point where the pressing arm 122 contacts the lever body 110 in a position different from the first loading point P1 when the tensioner lever receives a certain level or more of load from the chain CH.
(23) The spring load adaption structure 130 includes an abutment part forming wall 131 formed to protrude from the inner surface of the chain-side circumferential wall part 111c.
(24) As illustrated in
(25) The spring load adaption structure 130 is configured such that, when the pressing arm 122 contacts the abutment part forming wall 131, the area of contact between the pressing arm 122 and the abutment part forming wall 131 gradually increases.
(26) In this embodiment, when more than a level or more of load is received from the chain CH, the pressing arm 122 warps such as to be convex toward the circumferential wall part 111c as illustrated in
(27) The abutment part forming wall 131 is formed such that the second loading point P2 will be located within a region L1 of a length that is โ
of the length La of the pressing arm 122 from the first loading point P1, as illustrated in
(28) While one embodiment of the present invention has been described in detail, the present invention is not limited to the embodiment described above and may be carried out with various design changes without departing from the scope of the present invention set forth in the claims.
(29) For example, while the spring load adaption structure has been depicted as being formed by an abutment part forming wall on the chain-side circumferential wall part in the embodiment described above, a spring load adaption structure may be configured to make contact with the pressing arm to form a second loading point when a high load is applied by changing the shape of the pressing arm of the torsion coil spring as suited, for example. Specifically, for example, a torsion coil spring having a pressing arm, for example, extending in a circular arc shape curved toward the chain-side circumferential wall part may be used to form a spring load adaption structure.
(30) Moreover, while the spring load adaption structure has been depicted as being formed such that a second loading point is formed when a high load is applied in the embodiment described above, the spring load adaption structure may be configured such that a second support point is formed when a high load is applied, or, such that a second loading point and a second support point are formed when a high load is applied.
(31) When the spring load adaption structure 230 is to be configured such that a second support point R2 will be formed, an abutment part forming wall 235 on the abutment surface side may be provided to a support part W of the abutment surface, as illustrated in
(32) In the case with configuring the spring load adaption structure 230 such that a second support point will be formed, too, the spring load adaption structure may be configured by using a torsion coil spring having a support arm extending in a circular arc shape curved toward the support wall part.