Chain tensioner
09689474 ยท 2017-06-27
Assignee
Inventors
Cpc classification
F16H7/0836
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0812
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Provided is a chain tensioner that is capable of restricting the movement of a plunger at an engagement position, hardly causes its breakage and abrasion even if receiving a great force applied to the plunger, needs no setting for a backlash amount, and allows the engagement position of the plunger to be freely shifted forward and backward. The tensioner body has an engagement member that extends toward and retracts from engagement grooves provided on the outer periphery of the plunger, a press member that presses, in one direction, a cam member which maintains and releases the extending state of the engagement member, and a hydraulic supply path through which oil is supplied to press the cam member in a direction opposite to the pressing direction of the press member.
Claims
1. A chain tensioner comprising: a tensioner body having a plunger accommodation hole which is open on one side; a plunger slidably inserted in the plunger accommodation hole; and an urging mechanism that urges the plunger in a protruding direction, wherein the plunger has engagement grooves on an outer periphery thereof, and the tensioner body has: an engagement member that is formed in a spherical shape and that extends/retracts toward/from the engagement grooves from/into an inner peripheral surface of the plunger accommodation hole; a cam member that maintains and releases an extending state of the engagement member; a press member that presses the cam member in one direction; and a hydraulic supply path through which oil is supplied to press the cam member in a direction opposite to a pressing direction of the press member.
2. The chain tensioner according to claim 1, wherein the cam member is a slide bar that reciprocates linearly.
3. The chain tensioner according to claim 1, wherein the engagement grooves are formed in a spiral shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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(3) FIGS. 3A1 and 3A2, FIGS. 3B1 and 3B2, FIGS. 3C1 and 3C2, FIGS. 3D1 and 3D2, FIGS. 3E1 and 3E2, FIGS. 3F1 and 3F2, and FIGS. 3G1 and 3G2 show explanatory views for describing the operation of the chain tensioner according to the first embodiment of the present invention;
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(17) The present invention provides a chain tensioner including a tensioner body having a plunger accommodation hole which is open on one side, a plunger slidably inserted in the plunger accommodation hole, and an urging mechanism that urges the plunger in a protruding direction. In the chain tensioner, the plunger has engagement grooves on the outer periphery thereof, the tensioner body has an engagement member that extends/retracts toward/from the engagement grooves from/into the inner peripheral surface of the plunger accommodation hole, a cam member that maintains and releases the extending state of the engagement member, a press member that presses the cam member in one direction, and a hydraulic supply path through which oil is supplied to press the cam member in a direction opposite to the pressing direction of the press member. The chain tensioner may have any specific configuration so long as it is capable of restricting the movement of the plunger at an engagement position, hardly causes its breakage and abrasion even if receiving a great force applied to the plunger, needs no setting for a backlash amount, and allows the engagement position of the plunger to be freely shifted forward and backward.
(18) The tensioner body, the plunger, the engagement member, the cam member, or the like of the chain tensioner according to the present invention may be made of any specific material so long as it has a sufficient strength to maintain the tensional force of a chain at an appropriate level. Preferably, the tensioner body is made of a metal-based material such as steel, cast iron, aluminum, and an aluminum alloy from the viewpoint of strength, workability, economical efficiency.
(19) In addition, the urging mechanism and the press member of the chain tensioner according to the embodiment of the present invention may be formed into any shape including an elastic member such as a spring, a high-pressure fluid such as hydraulic pressure, a combination of an elastic member and a high-pressure fluid, or the like.
First Embodiment
(20) Hereinafter, a description will be given, with reference to the drawings, of a chain tensioner according to a first embodiment of the present invention.
(21) As shown in
(22) The plunger 120 has engagement grooves 121 on the outer periphery thereof. The tensioner body 110 has a cam slide hole 113 in which a slide bar 132 serving as a cam member is accommodated, an extension/retraction hole 112 that communicates with the plunger accommodation hole and the cam slide hole 113, a hydraulic supply path 114 through which pressure oil is supplied to the cam slide hole 113, and an oil discharge hole 115 through which the pressure oil from the cam slide hole 113 is discharged.
(23) In the extension/retraction hole 112, a spherical engagement member 131 that extends/retracts toward/from the engagement grooves from/into the inner peripheral surface of the plunger accommodation hole is accommodated.
(24) The cam slide hole 113 is provided at an area under the plunger accommodation hole so as to extend in a direction perpendicular to the extension/retraction direction of the plunger 120. The hydraulic supply path 114 communicates with the cam slide hole 113 on the same axial line. The oil discharge hole 115 communicates with the cam slide hole 113 at a position opposing the extension/retraction hole 112.
(25) As shown in
(26) When the large-diameter portion 134 of the slide bar 132 is positioned at the extension/retraction hole 112 of the cam slide hole 113, the engagement member 131 extends from the inner peripheral surface of the plunger accommodation hole and engages with the engagement grooves 121 on the outer periphery of the plunger 120 to stop the operation of the plunger 120. On the other hand, when one of the small-diameter portions 135 of the slide bar 132 is positioned at the extension/retraction hole 112 of the cam slide hole 113, the engagement member 131 retracts into the side of the cam slide hole 113 and disengages from the engagement grooves 121 to set the operation of the plunger 120 free.
(27) Note that the slide bar 132 according to the first embodiment is formed in a simple symmetrical shape. Therefore the manufacturing of the slide bar 132 is facilitated. In addition, the assembling of the chain tensioner 100 is also facilitated since there is no need to align the insertion direction of the slide bar 132 into the cam slide hole 113.
(28) Here, a description will be given, with reference to
(29) First, as shown in
(30) As a result, fluttering caused when a chain greatly changes its tensional force at the start of the engine is prevented, and noise is also reduced.
(31) Next, as shown in
(32) At this time, as shown in
(33) The supply of the oil from the hydraulic supply path 114 is stopped when the engine stops, and the slide bar 132 slides in the right direction of
(34) Then, the engagement member 131 extends, as shown in
(35) Note that at assembling, maintenance, or the like, the slide bar 132 is also fixed in the right direction by the pressing force of the press member 133 like the states shown in
(36) In the first embodiment, the slide bar 132 is formed in the symmetrical shape having the large-diameter portion 134 at the central area thereof and the small-diameter portions 135 at the both-end areas thereof. However, the slide bar 132 may be formed in various shapes.
(37) For example, in a chain tensioner 100a according to a first modified example, a slide bar 132a has, as shown in
(38) Thus, the slide bar 132a may be reduced in weight.
(39) Like the first modified example, in a chain tensioner 100b according to a second modified example, a slide bar 132b has, as shown in
(40) In addition, in the second modified example, the slide bar 132b has a large-diameter portion 134b also at an end thereof on the side of a hydraulic supply path 114b. Other configurations of the chain tensioner 100b are the same as those of the chain tensioner 100a according to the first modified example.
(41) Therefore, the inner peripheral surface of the cam slide hole 113b that needs dimensional accuracy has only the diameter of the large-diameter portions 134b in the slide bar 132b. As a result, the working of the cam slide hole 113b is facilitated.
(42) In a chain tensioner 100c according to a third modified example, a slide bar 132c has, as shown in
(43) Therefore, like the second modified example, the inner peripheral surface of the cam slide hole 113c that needs dimensional accuracy has only the diameter of the large-diameter portions 134c in the slide bar 132c. As a result, the working of the cam slide hole 113c is facilitated. In addition, the slide bar 132c is formed in the symmetrical shape. As a result, like the first embodiment, the assembling of the chain tensioner 100c is also facilitated since there is no need to align the insertion direction of the slide bar 132c into the cam slide hole 113c.
Second Embodiment
(44) As shown in
(45) In the second embodiment, the engagement grooves 221 are formed in a spiral shape. Therefore, until hydraulic pressure is supplied to a hydraulic supply path 214 immediately after an engine starts, a plunger 220 is allowed to, even if the engagement grooves 221 and an engagement member 231 engage with each other, extend and retract at a low speed in a state in which the chain tensioner 200 receives the slide resistance between the engagement grooves 221 and the engagement member 231 and the rotation resistance of the plunger 220 about the axis of a plunger accommodation hole.
(46) As a result, the plunger 220 may move at a low speed to absorb an appropriate force when the plunger 220 receives a great force. In addition, the plunger 220 is not prevented from vibrating and fluttering since it does not extend and retract at a high speed. Therefore, noise may also be reduced.
Third Embodiment
(47) As shown in
(48) Therefore, the distance between a plunger accommodation hole and a cam slide hole 313 may be increased. As a result, the working of the cam slide hole 313 is facilitated.
(49) In addition, when a spring or the like is arranged at the stepped portion to press the engagement member 331 downward, the engagement member 331 is pressed by a slide bar 332 at all times and thus not allowed to move vertically in the extension/retraction hole 312. As a result, the occurrence of noise due to vibration or the like is prevented.
Fourth Embodiment
(50) As shown in
(51) In addition, the slide bar 432 has a large-diameter portion 434 also at an end thereof on the side of a hydraulic supply path 414, a small-diameter portion 435 close to the central area relative to the large-diameter portion 434 on the side of the hydraulic supply path 414, and a tapered portion 437 gradually reduced in diameter from the central large-diameter portion 434 toward the small-diameter portion 435.
(52) Other configurations of the chain tensioner 400 are the same as those of the chain tensioner 100b according to the second modified example of the first embodiment.
(53) Therefore, by designing the chain tensioner 400 such that, when the supply of oil from the hydraulic supply path 414 is stopped and the slide bar 432 slides in the right direction of
(54) In each of the embodiments described above, the slide bar serving as the cam member has a columnar shape or cylindrical shape in cross section. However, the slide bar may have other shapes such as an elliptic shape and a prism shape in cross section.
(55) In addition, the cam member may be of a rotation type or an oscillation type having a stepped portion in the periphery direction thereof, the tensioner body may have an accommodation portion to suit the shape of the cam member, and the press member and the hydraulic pressure may act in the rotation direction or the oscillation direction of the cam member.
(56) Moreover, in each of the embodiments described above, the engagement member is spherical and has a columnar shape in cross section. However, the engagement member may have other shapes.
(57) Further, in each of the embodiments described above, the portion that contacts the cam member and the portion that engages with the engagement grooves of the plunger are formed in a semi-spherical shape. However, the portions may be formed in any shape or may be different in shape at both ends thereof.
(58) Furthermore, the number, the cross-sectional shape, the arrangement range, or the like of the engagement grooves of the plunger may be appropriately set in consideration of the shape, the material, the arrangement position, or the like of the engagement member.