Tensioner
10767739 ยท 2020-09-08
Assignee
Inventors
Cpc classification
F16H7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0844
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
To provide a tensioner that enables, with a simple structure, reduction of installation space of the tensioner and reduction of production costs. The tensioner includes a plunger, a housing, a spring, and a locking mechanism that stops the plunger from projecting out to the front side. The locking mechanism includes a first locking member and a second locking member. The first locking member includes a first spring holder arranged on a first side of a first end of the spring, and a restrained part. The second locking member includes a second spring holder arranged on a second side of a second end of the spring, and a movement restricting part that restricts movement of the restrained part toward the first side. The restrained part and movement restricting part are configured to releasably engage with each other.
Claims
1. A tensioner comprising: a plunger having a plunger hole that is open on a rear side; a housing having a plunger accommodating hole that is open on a front side and accommodates the plunger; a spring accommodated inside an oil pressure chamber formed between the plunger and the plunger accommodating hole so as to be able to expand and contract and to urge the plunger toward the front side; and a locking mechanism stopping the plunger from projecting out toward the front side, the spring including a first end arranged on a first side in a front-to-back direction and a second end arranged on a second side in the front-to-back direction, the locking mechanism including a first locking member and a second locking member, the first locking member including a first spring holder arranged on the first side of the first end of the spring, and a restrained part, the second locking member including a second spring holder arranged on the second side of the second end of the spring, and a movement restricting part that restricts movement of the restrained part toward the first side, and the restrained part and the movement restricting part being configured to releasably engage with each other.
2. The tensioner according to claim 1, wherein the second locking member includes a release cam formed on the second side opposite the movement restricting part, and the release cam is formed so as to guide the restrained part in a circumferential direction to an open position where the restrained part is not locked by the movement restricting part, when the first locking member and the second locking member are moved closer to each other.
3. The tensioner according to claim 1, wherein the movement restricting part has a cam profile that guides the restrained part to a restriction position where movement of the restrained part is restricted by the movement restricting part, when the first locking member and the second locking member are moved away from each other.
4. The tensioner according to claim 1, wherein the restrained part and the movement restricting part are located radially inside the spring.
5. The tensioner according to claim 4, wherein the first, locking member includes a pin portion extending from the first spring holder toward the second side and having the restrained part formed thereon, the second locking member includes a tubular part extending from the second spring holder toward the first side and having the movement restricting part formed thereto, and the pin portion is inserted in the tubular part.
6. The tensioner according to claim 5, wherein the restrained part is formed as a boss on an outer circumferential surface of the pin portion, and the tubular part includes a passage slit extending from an edge on the first side of the tubular part toward the second side, and a movement restricting slit formed continuously with the passage slit, an inner edge on the first side of the movement restricting slit functions as the movement restricting part, and an inner edge on the second side of the movement restricting slit functions as a release cam.
7. The tensioner according to claim 5, wherein at least a part of a check valve unit that allows oil to flow into the oil pressure chamber and prevents oil from flowing out of the oil pressure chamber is accommodated in the tubular part on the second side thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) A tensioner 10 according to a first embodiment of the present invention will be described below with reference to the drawings.
(13) First, the tensioner 10 is incorporated in a chain transmission used in a timing system or the like of a car engine. As shown in
(14) The tensioner 10 includes, as shown in
(15) Hereinafter, various constituent elements of the tensioner 10 will be described with reference to the drawings.
(16) The plunger 20 is made of metal such as iron or the like in the form of a cylinder with a bottom and inserted in the plunger accommodating hole 31 so as to be able to move back and forth in the front-to-back direction, as shown in
(17) The housing 30 is made of aluminum alloy or synthetic resin and the like, and includes, as shown in
(18) The check valve unit 40 allows the oil to flow into the oil pressure chamber 11 from the outside through the oil supply hole 33, and prevents the oil from flowing out from the oil supply hole 33.
(19) The check valve unit 40 is made up of a ball seat 41, a spherical check ball 42 that can be seated on the ball seat 41 in tight contact therewith, a retainer 43 arranged on the front side of the check ball 42 to restrict the movement of the check ball 42, and a ball spring 44 that urges the check ball 42 toward the ball seat 41, as shown in
(20) The spring 50 has one end arranged on the rear side of the bottom of the plunger hole 21 (a front-side part of the plunger 20) and the other end arranged on the front side of the check valve unit 40 (retainer 43) as shown in
(21) The locking mechanism 60 is configured to temporarily stop the plunger 20 from protruding to the front side by keeping the spring 50 compressed in the front-to-back direction. As shown in
(22) The first locking member 70 integrally includes, as shown in
(23) The first spring holder 71 is disposed in contact with the bottom of the plunger hole 21.
(24) The second locking member 80 integrally includes, as shown in
(25) The second spring holder 81 is disposed in contact with the check valve unit 40 (retainer 43). The second spring holder 81 extends radially more outward than the outer circumferential surface of the tubular part 82.
(26) A hole extending through in the front-to-back direction (not shown) is formed in the center of the second spring holder 81, so that oil supplied from outside of the housing 30 via the oil supply hole 33 and check valve unit 40 is supplied into the oil pressure chamber 11 through this hole and a hollow part of the tabular part 82.
(27) The tubular part 82 is formed with a passage slit 83 extending from an edge on the first side of the tubular part 82 toward the second side along the front-to-back direction, and a movement restricting slit 84 formed continuously with the passage slit 83, as shown in
(28) The passage slit 83 extends through between the outer circumferential surface and the inner circumferential surface of the tubular part 82, with a predetermined width for allowing the restrained part 73 to pass, as shown in
(29) The movement restricting slit 84 extends from the end on the second side (rear side) of the passage slit 83 diagonally relative to the circumferential and front-to-back directions toward the first side (front side) and away from the passage slit 83, as shown in
(30) The movement restricting slit 84 extends through between the outer circumferential surface and the inner circumferential surface of the tubular part 82, with a predetermined width for allowing the restrained part 73 to pass and be received.
(31) An inner edge on the first side of the movement restricting slit 84 functions as a movement restricting part 85 that restricts the movement of the restrained part 73 of the first locking member 70 toward the first side, as shown in
(32) This movement restricting part 85 has a cam profile for guiding the restrained part 73 to a restriction position where the movement of the restrained part is restricted by the movement restricting part 85, when the first locking member 70 and second locking member 80 are moved away from each other.
(33) More specifically, the movement restricting part 85, which extends diagonally relative to the circumferential and front-to-back directions toward the first side (front side) and away from the passage slit 83 as shown in
(34) The restrained part 73 and movement restricting part 85 are thus configured to releasably engage with each other.
(35) An inner edge on the second side of the movement restricting slit 84 opposite the movement restricting part 85 in the front-to-back direction functions as a release cam 86.
(36) This release cam 86 is formed to guide the restrained part 73 in the circumferential direction to an open position where the restrained part is not locked by the movement restricting part 85, when the first locking member 70 and second locking member SO are moved closer to each other.
(37) More specifically, the release cam 86, which extends diagonally relative, to the circumferential and front-to-back directions toward the first side (front side) and away from the passage slit 83, is configured to guide the restrained part 73 to the open position that is an end position on the second side of the passage slit 83, when the first locking member 70 and second locking member 80 are moved closer to each other.
(38) Next, the process of attaching the first locking member 70 and second locking member 80 to the spring 50 will be described below.
(39) First, as shown in
(40) Next, with the spring 50 being sandwiched between the first spring holder 71 of the first locking member 70 and the second spring holder 81 of the second locking member 80, the first locking member 70 and second locking member 80 are moved closer to each other in the front-to-back direction to compress the spring 50, and the pin portion 72 is inserted into the tubular part 82 from the first side, with the restrained part 73 being positioned inside the passage slit 83.
(41) Next, as shown in
(42) When the load on the compressed spring 50 is removed, the spring 50 resiliently restores and expands to cause the first locking member 70 and second locking member 80 to move away from each other, and the restrained part 73 is guided by the movement restricting part 85 to the restriction position at the end of the movement restricting slit 84 as shown in
(43) After that, the engagement between the restrained part 73 and the movement restricting part 85 retains the first locking member 70 and second locking member 80 at their positions relative to each other in the front-to-hack direction so that the spring 50 is kept compressed, and thus the spring 50, first locking member 70, and second locking member 80 can be handled as one unit.
(44) Next, how to unlock the locking mechanism 60 that stops the plunger 20 from protruding out will be described below.
(45) First, as shown in
(46) When installed, the plunger 20 is pushed rearward by the tensioner lever G, which causes the first locking member 70 and second locking member 80 to approach each other, so that the restrained part 73 is guided by the release cam 86 to the open position that is the end position on the second side of the passage slit 33. In other words, the restrained part 73 and movement restricting part 85 are disengaged from each other by themselves. At this time, the first locking member 70 and second locking member 80 rotate relative to each other.
(47) Next, when the plunger 20 is stopped from being pressed rearward, the spring 50 resiliently restores and expands, and the plunger 20 is pushed by the plunger 20 to protrude forward.
(48) When the spring 50 expands, the first spring holder 71 (first locking member 70) may be subjected to a rotational force from the first end 51 of the spring 50 (which acts clockwise when viewed from above, when the spring 50 is left-handed as in this embodiment). The movement restricting slit 84 is positioned relative to the passage slit 83 such that the restrained part 73 will not enter the movement restricting slit 84 again by this rotational force applied to the first locking member 70 (the movement restricting slit 84 is behind the passage slit 83 in the clockwise direction when viewed from above, in this embodiment).
(49) Next, a tensioner 10 according to a second embodiment of the present invention will be described with reference to
(50) In the second embodiment, as shown in
(51) This way, the check valve unit 40 can also be handled with the spring 50, first stopper 70, and second stopper 80 as one unit.
(52) The check valve unit 40 may be fixed to the second locking member 80. Alternatively, the check valve unit 40 may only be received in the second locking member 80 and not fixed to the second locking member 80.
(53) While embodiments of the present invention have been described above in detail, the present invention is not limited to these embodiments and may be carried out with various design changes without departing from the scope of the present invention set forth in the claims. Various configurations of several embodiments and variations thereof described above may be freely combined to form other tensioners.
(54) For example, while the tensioner was described as a component to be incorporated in a timing system of a car engine in the embodiments above, the purpose of use of the tensioner is not limited to this specific application.
(55) Also, while the tensioner was described as a component that applies tension to a drive chain with a tensioner lever in the embodiments above, the plunger can directly guide the drive chain slidably with a distal end thereof to apply tension to the drive chain.
(56) The tensioner may not necessarily be applied to a transmission mechanism with a drive chain but can also be used for similar transmission mechanisms that use belts, ropes and the like, and can be applied in a variety of industrial fields where it is required to apply tension to an elongated component.
(57) While the housing accommodating the plunger is described as the component known as a tensioner body that is attached to an engine block or the like in the embodiments described above, the housing is not limited to the specific form described above and may be a cylindrical component known as a sleeve inserted into a body hole formed in the tensioner body.
(58) While the first locking member and second locking member are described as being disposed on the front side and rear side, respectively, in the embodiments described above, the first locking member and second locking member may be disposed on the rear side and front side, respectively.
(59) While the method of releasably engaging the first locking member and second locking member in the embodiments described above uses the restrained part of the first locking member and the movement restricting part and release cam of the second locking member, the method of releasably engaging the first locking member and second locking member is not limited to the one described above and any other methods can be employed.
(60) While the first locking member is described as having a pin portion in the embodiments described above, the first locking member is not limited to the specific form described above. For example, the first locking member may have a tubular part extending from the first spring holder toward the second side, and this tubular part may be disposed radially inside or outside the tubular part of the second locking member.
(61) While the restrained part of the first locking member and the movement restricting part (and release cam) of the second locking member are described as being disposed radially inside the spring in the embodiments described above, these restrained part and movement restricting part (and release cam) may be disposed radially outside the spring.