Chain tensioner

The chain tensioner addresses assembly complexity and damping issues by using a plunger with protrusions and an inclined locking member holding portion, ensuring stable operation and reduced size and cost.

JP7849604B2Active Publication Date: 2026-04-22TSUBAKIMOTO CHAIN CO
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
TSUBAKIMOTO CHAIN CO
Filing Date
2022-08-29
Publication Date
2026-04-22

AI Technical Summary

Technical Problem

Existing chain tensioners require complex assembly processes, involve tools for expanding locking members, and lack effective damping mechanisms, leading to unstable operation and increased size and cost.

Method used

A chain tensioner with a plunger having plunger protrusions and a locking member holding portion with an inclined surface, allowing the locking member to elastically deform and engage with the plunger, damping movement without tools and reducing size and cost.

Benefits of technology

The solution provides efficient damping of plunger movement, suppresses chain flapping and noise, and reduces assembly complexity and manufacturing costs by using an elastic locking member that engages easily with the plunger.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a chain tensioner which is simple in a constitution, can suppress a time and labor accompanied by assembling work and maintenance work, can sufficiently attenuate a motion of a plunger, and can suppress a processing cost and the size enlargement of the plunger and a tensioner body.SOLUTION: In a chain tensioner 100 having a tensioner body 110 having a plunger accommodation hole 111, a plunger 120, and an energization member S for energizing the plunger 120, the plunger 120 has a plunger protrusion 122 with which a lock member 130 can be engaged, a lock member holding part 113 is arranged at a release side of the plunger accommodation hole 111, an inclination face 114 which is formed shallow as progressing toward a plunger intrusion direction is formed at an end part of the plunger intrusion direction side of the lock part holding part 113, and the lock member 130 is engaged with the plunger protrusion 122, and elastically deformable at a cross section in the lock member holding part 113.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to a chain tensioner that includes a tensioner body having a plunger receiving hole open at one side, a cylindrical plunger slidably inserted into the plunger receiving hole, and a biasing member that biases the plunger in the protruding direction, and appropriately holds the tension of a chain.

[0002] Conventionally, as a chain tensioner that appropriately holds the tension of a chain, for example, in a chain guide mechanism that slidably guides a transmission chain such as a roller chain endlessly suspended between sprockets provided on a crankshaft and a camshaft in an engine room by a running guide shoe, a chain tensioner biases a swing chain guide having a running guide shoe to appropriately hold the tension, which is known from Patent Document 1 and the like.

[0003] The chain tensioner described in Patent Document 1 includes a tensioner body (housing 1) having a plunger receiving hole (cylinder portion 11) open at one side, a cylindrical plunger 3 slidably inserted into the plunger receiving hole (cylinder portion 11), and a biasing member (return spring 5) that biases the plunger 3 in the protruding direction. The plunger 3 has a plurality of annular plunger convex portions (wall surfaces 331, 332) on its outer peripheral surface, and a locking member (register ring 7) that can engage with the plunger convex portions (wall surfaces 331, 332) is attached around the plunger 3 so as to be engageable. Oil is supplied to the inside of the plunger receiving hole (cylinder portion 11) and the plunger 3, and when the plunger 3 receives vibrations from the chain during engine operation and moves forward and backward in the plunger receiving hole (cylinder portion 11), the movement of the plunger 3 can be attenuated by the hydraulic pressure of the oil.

[0004] Furthermore, the locking member (registering ring 7) is movable within the locking member holding portion (guide groove 18) provided on the open side of the plunger housing hole (cylinder portion 11), and can move forward and backward by a predetermined amount in accordance with the forward and backward movement of the plunger. However, if the plunger 3 moves beyond the range formed by the locking member holding portion (guide groove 18) toward the open side of the plunger housing hole (cylinder portion 11), the locking member (registering ring 7) expands in diameter and engages with the locking wall 331 of the plunger protrusion (wall surface 331, 332) at a position where it has overcome the slope (tapered surface) of the plunger protrusion (wall surface 331, 332).

[0005] Subsequently, when the plunger 3 begins to move toward the direction of entry into the plunger housing hole (cylinder portion 11), the locking member (registering ring 7) also moves together with the plunger 3 within the locking member holding portion (guide groove 18). However, when the locking member (registering ring 7) comes into contact with the inclined surface (first stopper 21) of the locking member holding portion (guide groove 18), the locking member (registering ring 7), sandwiched between the inclined surface (first stopper 21) and the lock wall 331, prevents the plunger 3 from moving toward the direction of entry into the plunger housing hole (silling portion 11). As a result, even if the chain stretches due to wear or other reasons, the plunger 3 vibrates within a range that maintains a position where it can sufficiently press down on the chain, thus maintaining the appropriate tension on the chain. During assembly, the process involves using tools or specialized operating implements to expand the diameter of the locking member (register ring 7) within the locking member holding portion (guide groove 18) while inserting the plunger 3 into the plunger housing hole (cylinder portion 11). [Prior art documents] [Patent Documents]

[0006] [Patent Document 1] Japanese Patent Publication No. 2002-005249 [Overview of the project] [Problems that the invention aims to solve]

[0007] However, the chain tensioners known from the above-mentioned patent documents still had room for improvement.

[0008] In other words, the chain tensioner known in Patent Document 1 requires the continuous expansion of the locking member using tools or specialized operating devices when attaching the plunger to the plunger housing hole. This is often done in an inconvenient state, such as when the chain is attached to an engine, which could make assembly and maintenance work time-consuming. Furthermore, because the locking member is a ring-shaped metal spring similar to a register ring, it can prevent the plunger from moving in the direction of entering the plunger housing hole by being sandwiched between the inclined surface and the locking wall. However, the locking member, which is made of metal or similar material with poor cushioning properties, directly absorbs the force of the plunger's entry. Therefore, under certain operating conditions such as engine startup or high-speed rotation, or when the oil pump is insufficient, and the tensioner is not filled with oil, the stroke amount can be restricted, but the momentum of the plunger's movement itself cannot be dampened. This could lead to unstable tensioner operation, or the chain may not be able to keep up with the unstable movement of the plunger, causing it to flap around and generate loud noise.

[0009] Furthermore, if the locking member is a ring-shaped, radially expandable metal spring like a register ring, it needs to be positioned to surround the outer surface of the plunger. This requires a plunger projection that engages with the locking member along the entire circumference of the plunger's outer surface, which could increase the processing cost of the plunger. Furthermore, the design required tools or specialized operating devices to expand the diameter of locking members such as register rings, which could lead to an increase in the size of the tensioner body in order to provide space around the plunger housing hole for the operating devices, and could also increase the processing cost of the tensioner body.

[0010] The present invention aims to solve these problems by providing a chain tensioner with a simple structure that reduces the effort involved in assembly and maintenance, can sufficiently dampen the movement of the plunger even when the tensioner is not filled with oil, and can suppress the processing costs and size of the plunger and tensioner body. [Means for solving the problem]

[0011] The chain tensioner of the present invention comprises a tensioner body having a plunger housing hole with one end open, a cylindrical plunger slidably inserted into the plunger housing hole, and a biasing member that biases the plunger in the protruding direction, wherein the plunger has a plurality of plunger protrusions on its outer circumference into which a locking member can engage, a locking member holding portion is provided on the open side of the plunger housing hole, which is open in the direction of the central axis of the plunger and holds the locking member, and at least the end of the locking member holding portion on the plunger entry direction side, which is the direction in which the plunger enters the plunger housing hole, is provided with an inclined surface that is formed to become shallower as it advances in the plunger entry direction, and the locking member engages with the plunger protrusions and its cross-section is elastically deformable within the locking member holding portion, thereby solving the above problem. [Effects of the Invention]

[0012] According to the chain tensioner of claim 1, the plunger has a plurality of plunger protrusions on its outer circumference into which a locking member can engage, a locking member holding portion is provided on the open side of the plunger housing hole, and the end of the locking member holding portion on the plunger entry direction side is provided with an inclined surface that becomes shallower as it advances in the plunger entry direction, and since the locking member engages with the plunger protrusions and its cross-section can be elastically deformed within the locking member holding portion, even when the plunger moves within the plunger housing hole, the locking member is compressed by being sandwiched between the plunger protrusions and the inclined surface of the plunger housing hole, thereby damping the movement of the plunger in the plunger entry direction. This allows the locking member to sufficiently dampen the momentum of the plunger's movement in the direction of entering the plunger housing hole, even when the plunger housing hole and the plunger itself are not filled with oil, thereby suppressing chain flapping and noise. Furthermore, if the chain stretches due to wear or other reasons and the plunger moves towards the open side of the plunger housing hole, the locking member expands in diameter within the locking member holding portion to overcome the plunger protrusion, allowing the plunger to move towards the open side of the plunger housing hole. At the same time, even if the plunger tries to move again in the direction of plunger entry, the locking member engages with the overturned plunger protrusion, compressing it between the plunger protrusion and the inclined surface of the plunger housing hole, thereby restricting the plunger's movement in the direction of entry into the plunger housing hole. Furthermore, if the locking member is made of an elastic material such as rubber, it can be easily extended and retracted without the need for tools or operating devices, and can be easily engaged around the plunger. Furthermore, since there is no need to provide space in the tensioner body for working with tools or operating implements, the processing cost and size of the chain tensioner can be reduced.

[0013] According to the configuration described in claim 2, since the plunger projection is formed in an annular shape on the outer circumferential surface of the plunger, the locking member in the locking member holding portion can be reliably engaged with the plunger projection regardless of the orientation of the outer circumferential surface of the plunger, eliminating the need for a configuration that restricts the direction of the plunger and reducing manufacturing costs. According to the configuration described in claim 3, since the volume of the locking member holding portion is greater than or equal to the volume of the locking member, when the plunger moves toward the open side of the plunger housing hole, the locking member can be fully contained within the locking member holding portion by elastically deforming its diameter and cross-section. This allows the plunger to be reliably moved to the open side of the plunger housing hole without significant resistance from the locking member.

[0014] According to the configuration described in claim 4, the locking member holding portion is formed in an annular shape, and the locking member is formed in a ring shape, so that the locking member can engage with the plunger protrusion around the entire circumference of the plunger, and the movement of the plunger in the plunger entry direction can be dampened with a uniform force around the entire circumference. Furthermore, since tensioner bodies equipped with locking member retention sections for conventional metal rings such as register rings can be reused, manufacturing costs can also be reduced. According to the configuration described in claim 5, the locking member holding portion is formed in the shape of a plurality of holes that are open in the direction of the central axis of the plunger housing hole, and the locking member is formed in the shape of a sphere. Therefore, the resistance from the locking member to the plunger can be easily adjusted by adjusting the number of locking member holding portions and locking members.

[0015] According to the configuration described in claim 6, the locking member holding portion is formed in the shape of a groove that is open in the direction of the central axis of the plunger housing hole, and the locking member is formed in the shape of a rod with an end. Therefore, by adjusting the number of locking member holding portions and locking members, the resistance from the locking members to the plunger can be easily adjusted, and by adjusting the orientation and position of the groove of the locking member holding portion, the amount of oil leaking from between the outer surface of the plunger and the plunger housing hole can also be adjusted. According to the configuration described in claim 7, since at least a portion of the locking member is fixed to the locking member holding portion, even if the locking member sandwiched between the plunger protrusion and the inclined surface is compressed and undergoes significant elastic deformation of its cross-section, at least a portion of the locking member will reliably remain within the locking member holding portion, and the locking member, once the compression is released, will be able to reliably restore its shape while remaining positioned within the locking member holding portion. Furthermore, it can suppress misalignment or falling of the locking member during chain tensioner assembly, as well as entanglement between the plunger and the plunger housing hole. [Brief explanation of the drawing]

[0016] [Figure 1] A partial cross-sectional view of a chain tensioner 100 according to one embodiment of the present invention. [Figure 2]Schematic enlarged view of part A of the chain tensioner 100 according to an embodiment of the present invention. [Figure 3] Schematic enlarged view of part A showing the state of the chain tensioner 100 according to an embodiment of the present invention when the plunger 120 moves in the plunger entry direction. [Figure 4] Schematic enlarged view of part A showing the state of the chain tensioner 100 according to an embodiment of the present invention when the plunger 120 moves to the open side of the plunger receiving hole 111.

Embodiments for Carrying Out the Invention

[0017] Hereinafter, the chain tensioner 100 according to an embodiment of the present invention will be described based on the drawings. Note that FIGS. 2 to 4 do not show components other than the tensioner body 110, the plunger 120, and the locking member 130 for the purpose of explanation.

[0018] As shown in FIGS. 1 and 2, the chain tensioner 100 includes a tensioner body 110 having a plunger receiving hole 111 that is open on one side, a cylindrical plunger 120 that is slidably inserted into the plunger receiving hole 111, and a biasing member S that biases the plunger 120 in the protruding direction. An oil supply passage 112 is provided at the inner side of the tensioner body 110 at the bottom of the plunger receiving hole 111. The oil supply passage 112 and the plunger receiving hole 111 are blocked via a check valve V, and the check valve V can be opened and oil can be supplied by the pressure on the oil supply passage 112 side.

[0019] An annular groove-shaped locking member holding portion 113 that is open in the central axis direction of the plunger receiving hole 111 is provided on the inner peripheral surface of the open side of the plunger receiving hole 111. The locking member holding portion 113 is composed of a locking wall 115 and an inclined wall 114 on the open side of the plunger receiving hole 111. The inclined wall 114 is formed so as to gradually become shallower as it advances toward the inner side of the plunger receiving hole 111. Furthermore, the volume of the locking member holding portion 113 is formed to be at least larger than the volume of the locking member 130, which will be described later.

[0020] The plunger 120 has a plunger hole 121 and a plurality of plunger protrusions 122 and plunger recesses 123 provided on the outer circumferential surface of the plunger 120. The plunger hole 121 is configured to allow the biasing member S to enter, and the biasing member S constantly biases the plunger 120 toward the open side of the plunger housing hole 111.

[0021] The locking member 130 is made of an annular elastic member whose cross-sectional shape can be elastically deformed by an external force such as rubber, and the inner diameter of the locking member 130 is formed to be smaller than at least the outer diameter of the plunger projection 122.

[0022] Next, a method for attaching the plunger 120 and the locking member 130 of the chain tensioner 100 according to one embodiment of the present invention will be described with reference to Figures 1 and 2. First, a check valve V is installed to block communication between the plunger housing hole 111 of the tensioner body 110 and the oil supply passage 112. Next, the biasing member S, the plunger 120, and the locking member 130 are installed in the plunger housing hole 111. The locking member 130 is positioned so as to be sandwiched between the plunger recess 123, which is located on the open side of the plunger housing hole 111, and the locking member holding portion 113.

[0023] Next, a method for damping the vibration of the plunger 120 of a chain tensioner 100 according to one embodiment of the present invention will be explained with reference to Figures 1 to 4. First, the plunger 120 is constantly biased by the biasing member S in the protruding direction, that is, toward the opening side of the plunger housing hole 111, thereby applying tension to the chain (not shown) that is wrapped around the engine (not shown) via the guide shoe (not shown). Furthermore, the space formed by the plunger housing hole 111 and the plunger hole 121 becomes a pressurized oil chamber, and while the engine (not shown) is operating, it is filled with oil supplied from the oil supply passage 112 via the check valve V. Therefore, it functions as a hydraulic damper that dampens the vibrations that the plunger 120 receives from the guide shoe (not shown), thereby reducing the force of the vibrations of the plunger 120 and effectively suppressing chain flapping and noise.

[0024] Furthermore, the oil in the pressurized oil chamber is configured to leak slightly through oil leak passages (not shown) provided in the plunger housing hole 111 and the plunger 120. Therefore, when starting the engine for the first time, or immediately after starting an engine that has not been operated for some time, the pressurized oil chamber may not be sufficiently filled with oil. This prevents the hydraulic damper from functioning properly and dampening the force of the plunger 120's vibrations. As a result, the unstable operation of the plunger 120 may result in insufficient suppression of chain flapping and noise.

[0025] Here, we will explain the behavior of the locking member 130 in response to vibrations of the plunger 120 during engine startup. First, when the plunger 120 moves in the direction of entering the plunger housing hole 111 (hereinafter referred to as the plunger entry direction), the locking member 130 moves together with the plunger protrusion 122 in the plunger entry direction, as shown in Figure 3.

[0026] However, since the inclined surface 114 of the locking member holding portion 113 is formed to gradually become shallower as it moves towards the back of the plunger housing hole 111, the locking member 130 follows to some extent while elastically deforming its cross-section between the inclined surface 114 and the plunger recess 123a. Eventually, the reaction force of the locking member 130 is transmitted to the plunger 120 via the plunger recess 123a, gradually suppressing and stopping the movement of the plunger 120 in the direction of plunger entry. As a result, even when the pressurized oil chamber is not sufficiently filled with oil, such as when the engine is started, the reaction force generated by the elastic deformation of the cross-section of the locking member 130 can sufficiently dampen the movement of the plunger 120 in the plunger entry direction, thereby sufficiently suppressing chain flapping and noise.

[0027] Next, when the plunger 120 moves in the direction of protruding from the plunger housing hole 111 (hereinafter referred to as the plunger protrusion direction), as shown in Figure 4, the locking member 130 moves together with the plunger 120 in the plunger protrusion direction until it contacts the locking wall 115. When the locking member 130 comes into contact with the locking wall 115, the movement of the locking member 130 is blocked, but the plunger 120 continues to move in the direction of plunger protrusion. As a result, the locking member 130 gradually expands in diameter from the plunger recess 123a along the plunger protrusion 122, and its cross-section is elastically deformed to match the shape of the locking member holding portion 113.

[0028] As a result, the engagement between the plunger recess 123a and the plunger protrusion 122 by the locking member 130 is released, and the plunger 120 continues to move in the direction of plunger protrusion without resistance from the locking member 130, pressing against the chain via the guide shoe. At this time, if the chain stretches due to wear or other reasons, the amount of protrusion of the plunger 120 increases, and the locking member 130 moves over the plunger protrusion 122 and fits into the plunger recess 123b.

[0029] Furthermore, since the volume of the locking member holding portion 113 is larger than the volume of the locking member 130, when overcoming the plunger protrusion 122, most of the locking member 130 can move into the locking member holding portion 113, and the plunger 120 does not receive significant resistance from the locking member 130 when moving in the direction of plunger protrusion. Furthermore, when the plunger 120 moves again in the plunger entry direction, the locking member 130, sandwiched between the plunger recess 123b and the inclined surface 114, can reduce the momentum of the plunger 120's movement and limit its range of motion. As a result, even if the chain stretches due to wear or other reasons, the plunger 120 vibrates within a range that maintains a position where it can sufficiently press the chain, thus maintaining the appropriate tension on the chain.

[0030] The locking member 130 does not have to be formed in an annular shape. For example, the locking member may be formed in the shape of a rod or a sphere with an end, and multiple groove-shaped or hole-shaped locking member holding parts may be formed on the inner circumferential surface of the plunger housing hole 111 to match the shape of the locking member. Alternatively, plunger protrusions and plunger recesses may be formed on the outer circumferential surface of the plunger in the shape of protrusions or grooves to match the number and shape of the locking member. As a result, for example, if the locking member 130 is formed in a spherical shape, the resistance from the locking member to the plunger can be easily adjusted by adjusting the number and arrangement of the locking member holding portion and the locking member. If the locking member 130 is formed in a groove shape with an end, the resistance from the locking member to the plunger can be easily adjusted by adjusting the number and arrangement of the locking member holding portion and the locking member. In addition, the amount of oil leaking from between the outer surface of the plunger and the plunger housing hole can be adjusted by adjusting the orientation and position of the groove of the locking member holding portion.

[0031] Furthermore, by fixing a portion of the locking member 130 to the locking member holding portion 113 by adhesive or welding, even if the locking member 130, sandwiched between the plunger protrusion 122 and the inclined surface 114, is compressed and undergoes significant elastic deformation of its cross-section, at least a portion of the locking member 130 will reliably remain within the locking member holding portion 113, and the locking member 130, once released from compression, can reliably restore its shape while remaining positioned within the locking member holding portion 113. Furthermore, misalignment or falling of the locking member 130 during assembly of the chain tensioner 100, as well as entanglement between the plunger 120 and the plunger housing hole 111, can be suppressed.

[0032] Although one embodiment of the present invention has been described in detail above, the present invention is not limited to the above embodiment, and various design modifications can be made without departing from the present invention as described in the claims.

[0033] In the embodiments described above, the locking member holding portion was described as being composed of an inclined surface and a locking wall. However, the configuration of the locking member holding portion is not limited to this. For example, a connecting wall may be provided to connect the inclined surface and the locking wall, and the inclined surface may be formed to change its inclination angle in stages. Furthermore, although the locking members were described in the above-described embodiments as being formed in an annular, rod-shaped, or spherical shape with an end, the shape of the locking members is not limited to these, and they may be formed in a cylindrical, prismatic, or pyramidal shape, for example.

[0034] Furthermore, although the embodiments described above assumed that the plunger housing hole and the plunger are provided with oil leak passages, the configuration of the oil leak passages is not limited to this. For example, the small gap between the plunger housing hole and the plunger may be used as an oil leak passage, or grooves may be provided on the surface of the locking member to serve as an oil leak passage. [Explanation of Symbols]

[0035] 100 ··· Chain Tensioner 110 ··· Tensioner Body 111 ··· Plunger housing hole 112 ··· Oil supply path 113 ... Locking member holding part 114... Slope 115... Locking wall 120 ··· Plunger 121 ··· Plunger hole 122 ··· Plunger protrusion 123, 123a, 123b... Plunger recess 130... Locking member S ··· biasing member V... Check valve

Claims

1. A chain tensioner comprising a tensioner body having a plunger housing hole with one end open, a cylindrical plunger slidably inserted into the plunger housing hole, and a biasing member that biases the plunger in the protruding direction, The plunger has a plurality of plunger protrusions on its outer circumferential surface that can engage with a locking member, On the open side of the plunger housing hole, a locking member holding portion is provided, which is open in the direction of the central axis of the plunger and holds the locking member. At least the end of the locking member holding portion on the plunger entry direction side, which is the direction in which the plunger enters the plunger housing hole, is provided with an inclined surface that is formed to be shallower as it advances in the plunger entry direction. The chain tensioner is characterized in that the locking member engages with the plunger projection and its cross-section is elastically deformable within the locking member holding portion.

2. The chain tensioner according to claim 1, characterized in that the plunger projection is formed in an annular shape on the outer circumferential surface of the plunger.

3. The chain tensioner according to claim 1, characterized in that the volume of the locking member holding portion is greater than or equal to the volume of the locking member.

4. The locking member holding portion is formed in an annular shape, The chain tensioner according to claim 1, characterized in that the locking member is formed in the shape of a ring.

5. The locking member holding portion is formed in the shape of a plurality of holes that are open in the direction of the central axis of the plunger housing hole, The chain tensioner according to claim 1, characterized in that the locking member is formed in a spherical shape.

6. The locking member holding portion is formed in the shape of a groove that is open in the direction of the central axis of the plunger housing hole, The chain tensioner according to claim 1, characterized in that the locking member is formed in the shape of a rod having an end.

7. The chain tensioner according to claim 1, characterized in that at least a portion of the locking member is fixed to the locking member holding portion.

Citation Information

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