chain

The aC:H type DLC coating on chain components addresses the aggressive wear issue of ta-C coatings by reducing friction and wear, enhancing durability and fuel efficiency.

JP7734844B2Active Publication Date: 2025-09-05DAIDO KOGYO CO LTD
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Patent Information

Application Number
JP2024530984
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-06-30
Filing Date
2023-06-29
Publication Date
2025-09-05
Estimated Expiration
2043-06-29

AI Technical Summary

Technical Problem

Conventional ta-C coatings on chain components are highly aggressive and cause excessive wear on mating surfaces due to their high hardness and roughness, leading to reduced durability and increased maintenance needs.

Method used

A chain with aC:H type diamond-like carbon coating on bushings and rollers, having specific thickness, surface roughness, and hardness, which reduces wear and friction, and is less aggressive to mating components.

Benefits of technology

The aC:H type DLC coating significantly reduces wear, extends chain life, and decreases lubricant usage, improving fuel economy and reducing maintenance, while being less aggressive to mating components.

✦ Generated by Eureka AI based on patent content.

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Abstract

This chain comprises: multiple outer links each having a pair of outer plates and a pin connecting both ends of the pair of outer plates; and multiple inner links each having a pair of inner plates, a bush connecting both ends of the pair of inner plates, and a roller rotatably fitted to the bush, wherein the inner links and the outer links are alternatively connected. A coating (20) of a-C:H type diamond-like carbon is formed on outer peripheral surfaces of the bush and the roller. The thickness of the coating (20) is 1.5-4.0 μm, and the thickness of the bush outer peripheral surface is equal to larger than the thickness of the roller outer peripheral surface.
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Description

[Technical Field]

[0001] The present invention relates to a chain. [Background technology]

[0002] A conventional two-wheel drive unit has been proposed in which a chain, the outer surfaces of the bushings and rollers of which are coated with a pure ta-C coating, is wound around a drive pinion and a sprocket (see Patent Document 1). The ta-C coating is extremely hard and highly aggressive to mating components, but in the drive unit of Patent Document 1, the surface of the ta-C coating has a roughness Ra of 0.03 μm to 0.2 μm and / or a roughness Rz of 0.3 μm to 2 μm, thereby reducing wear. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Special Publication No. 2021-501291 Summary of the Invention [Problem to be solved by the invention]

[0004] Thus, efforts have been made to reduce wear in the past, but as mentioned above, ta-C coating has an extremely high hardness and tends to be highly aggressive towards the mating surface. [Means for solving the problem]

[0005] The present invention provides a chain with reduced wear.

[0006] One aspect of the present invention is A chain for driving a two-wheeled vehicle, wound around a drive sprocket and a driven sprocket driven by a drive source,The bearing comprises an outer link having a pair of outer plates and a pin connecting the pair of outer plates, an inner link having a pair of inner plates, a bushing connecting the pair of inner plates, and a roller rotatably fitted on the bushing, an aC:H type diamond-like carbon coating formed on an outer peripheral surface of the bushing, and an aC:H type diamond-like carbon coating formed on an outer peripheral surface of the roller, wherein the coating formed on the outer peripheral surface of the bushing is a film a thickness of 1.5 to 4.0 μm, a surface roughness of Ra 0.025 μm to 0.4 μm, a hardness of 10 GPa to 25 GPa, and adhesion of HF1 to HF2; the coating formed on the outer peripheral surface of the roller has a thickness of 1.5 to 4.0 μm, a surface roughness of Ra 0.025 μm to 0.4 μm, a hardness of 10 GPa to 25 GPa, and adhesion of HF1 to HF2; and the coating formed on the outer peripheral surface of the bushing has a thickness equal to or greater than the thickness of the coating formed on the outer peripheral surface of the roller. [Effects of the Invention]

[0007] It is possible to provide a chain with reduced wear.

[0008] Other features and advantages of the present invention will become apparent from the following description taken in conjunction with the accompanying drawings, in which the same or similar elements are designated by the same reference numerals. [Brief explanation of the drawings]

[0009] [Figure 1] 1 is a schematic diagram showing a chain transmission device according to an embodiment of the present invention; [Figure 2A] FIG. 1 is a plan view showing a chain according to an embodiment of the present invention. [Figure 2B] 1 is a side view showing a chain according to an embodiment of the present invention; [Figure 2C] FIG. 2 is a cross-sectional view showing a pin of a chain. [Figure 3] 1 is a schematic diagram showing a DLC coating according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0010] (Schematic configuration of chain transmission device) Hereinafter, an embodiment of the present invention will be described with reference to the drawings. The chain transmission device 1 shown in Figure 1 is a chain transmission device for driving a two-wheeled vehicle driven by a drive source such as an engine or a motor, and includes a drive sprocket 2 and a driven sprocket 3 driven by the drive source, and a chain 5 wound around the drive sprocket 2 and the driven sprocket 3.

[0011] The chain 5 is a roller chain, and as shown in FIGS. 2A to 2C , it has inner links 13, each of which has a pair of inner plates 10 connected at their ends by bushings 11 and a roller 12 rotatably fitted around the bushing 11, and outer links 17, each of which has a pair of outer plates 15 connected at their ends by pins 16. The pins 16 are inserted into the bushings 11 to connect the inner links 13 and the outer links 17 alternately in an endless fashion. The inner links 13 are fixed by press-fitting the ends of the bushings 11 into bushing holes formed in the inner plates 10, and the outer links 17 are fixed by fitting the ends of the pins 16 into pin holes in the outer plates 15 and caulking. A seal ring is disposed between the inner plates 10 and the outer plates 15 to retain grease sealed between the pins 16 and the bushings 11. To reduce friction, it is desirable for the seal ring (gasket) 18 to be coated on the outside or to contain a chemical inside.

[0012] For example, as an external coating to reduce friction, it is desirable to apply a coating such as PTFE (polytetrafluoroethylene) to the outside of the seal ring 18. Furthermore, for example, rubber or resin can be used as a chemical to be compounded in the seal ring 18 to reduce friction.

[0013] Furthermore, in consideration of oil resistance, the material used for the seal ring 18 may be acrylic rubber (ACM / AEM), hydrogenated nitrile rubber (H-NBR), nitrile rubber (NBR), or a fluorine-based rubber polymer, or the seal ring 18 may be formed from the above-mentioned PTFE.

[0014] The acrylic rubber is a copolymer containing an acrylic ester, such as an acrylic ester copolymer (ACM) or an acrylic ester-ethylene copolymer (AEM), and these can be used alone or in combination as polymer components of the rubber composition that constitutes the seal ring 18.

[0015] Furthermore, there are no limitations on the hydrogenated nitrile rubber used in the seal ring 18, and rubbers with various nitrile contents, hydrogenation rates, and Mooney viscosities can be used. Examples of hydrogenated nitrile rubbers that can be used include, but are not limited to, Zetpol 0020, Zetpol 1010, Zetpol 1020, and Zetpol 2020 manufactured by Zeon Corporation; THERBAN 1706, THERBAN 1707, THERBAN 1907, and THERBAN 2207 manufactured by Bayer; and CHEMISAT manufactured by Goodyear. A blend of multiple hydrogenated nitrile rubbers may also be used. The hydrogenated nitrile rubber preferably has a hydrogenation rate of 90% or higher, and more preferably a hydrogenation rate of 95% or higher.

[0016] Furthermore, as the nitrile rubber, an acrylonitrile-butadiene rubber having a bound acrylonitrile content of 15 to 48%, preferably 22 to 35%, and a Mooney viscosity ML1+4 (100°C) of 25 to 85, preferably 30 to 60, can be used, and in practice, commercially available products may be used. For example, N240S, N241, etc. manufactured by JSR Corporation can be used.

[0017] Furthermore, any fluorine-based rubber containing fluorine atoms may be used as the material for the seal ring 18. For example, vinylidene fluoride-based fluorine-based rubber (FKM), whose main component is vinylidene fluoride, can be used. Examples of usable binary fluorine-based rubbers include vinylidene fluoride-hexafluoropropylene, vinylidene fluoride-chlorotrifluoroethylene, tetrafluoroethylene-perfluoro, and tetrafluoroethylene-propylene. Examples of usable ternary fluorine-based rubbers include vinylidene fluoride-hexafluoropropylene-tetrafluoroethylene, vinylidene fluoride-perfluoroalkyl vinyl ether-tetrafluoroethylene, and tetrafluoroethylene-propylene-vinylidene fluoride. Ternary fluorine-based rubbers have excellent cold resistance. In addition to using a single type of fluorine-based rubber, multiple types can also be used in combination. The degree of polymerization of the fluororubber can be determined depending on the application of the sealing member so as to obtain appropriate sealing properties and sliding properties. (DLC coating)

[0018] Next, we will explain the DLC (Diamond Like Carbon) coating of the chain 5. The bushings 11 and rollers 12 of the chain 5 described above are coated with an aC:H type DLC film.

[0019] Specifically, as shown in FIG. 3, the DLC coating 20 applied to the outer peripheral surfaces of the bushing 11 and roller 12 includes an intermediate layer 22 formed on a base material 21 of the bushing 11 and roller 12, and a DLC layer 23.

[0020] The base material 21 is made of a steel material such as high-carbon chromium bearing steel or chromium-molybdenum steel, and its surface is polished by barrel polishing or the like. The intermediate layer 22 formed on the surface of the base material is a metal carbide layer containing, for example, chromium (Cr), silicon (Si), tungsten (W), etc., and is softer (has lower hardness) than the DLC layer 23. The presence of such a relatively soft intermediate layer 22 between the base material 21 and the DLC layer 23 makes the DLC layer 23 less likely to peel off. The intermediate layer 22 may be formed as a single layer or multiple layers. Furthermore, polishing the intermediate layer 22 would easily allow foreign matter to enter between the intermediate layer 22 and the DLC layer 23, reducing adhesion, so the intermediate layer 22 is not polished.

[0021] The DLC layer 23 is composed of aC:H type DLC. The aC:H type DLC contains hydrogen in a film at, for example, 5 to 50 at %, and has a structure in which carbon atoms with graphite-like sp2 hybrid orbitals are mixed in greater numbers than carbon atoms with diamond-like sp3 hybrid orbitals. Furthermore, the inclusion of hydrogen in the aC:H type DLC forms a coating that is softer than ta-C type DLC and has a lower coefficient of friction.

[0022] The DLC layer 23 formed from the aC:H type DLC is formed, for example, by sputtering a hydrocarbon gas as a hydrogen-containing raw material, and its surface has a roughness Ra of 0.025 μm to 0.4 μm. More preferably, the DLC layer 23 has a surface roughness Ra of 0.025 μm to 0.25 μm, and even more preferably, Ra of 0.1 μm to 0.25 μm. Furthermore, the surface roughness of the DLC layer 23, expressed in terms of Rz, is preferably in the range of Rz 0.025 μm to 2.5 μm. The DLC layer 23 may also be formed by a method other than sputtering, such as a physical vapor deposition (PVD) method such as ion plating, a thermal CVD method using hydrocarbon gas or organic solvent vapor as a raw material, or a plasma CVD method.

[0023] The thickness of the DLC layer 23 is 1.5 to 4.0 μm, and in this embodiment, the thickness T1 of the DLC layer on the outer peripheral surface of the bushing is equal to or greater than the thickness T2 of the DLC layer on the outer peripheral surface of the roller (T1≧T2).

[0024] The hardness of the DLC layer 23 is set to 10 GPa to 25 GPa. If it exceeds 25 GPa, it will be highly aggressive to the mating member. If it is less than 10 GPa, durability cannot be ensured and the desired wear resistance may not be achieved. Since the film thickness is set to 1.5 μm to 4.0 μm and the hardness is set to 10 GPa to 25 GPa, the adhesion of the DLC layer 23 is HF1 to HF4, which is good. If the film thickness and hardness are within the above ranges, the film thickness T1 of the DLC layer 32 on the outer circumferential surface of the bushing and the film thickness T2 of the DLC layer 32 on the outer circumferential surface of the roller may be set to be approximately the same. The adhesion was evaluated by an indentation test using a Rockwell hardness tester in accordance with the German VDI 3198 standard.

[0025] As described above, in this embodiment, the aC:H type diamond-like carbon coating 20 is formed on the outer circumferential surfaces of the rollers 12 of the chain 5 that slide against the sprockets 2 and 3 and on the outer circumferential surfaces of the bushings 11 that slide against the rollers 12. By forming the high-hardness, high-durability aC:H type diamond-like carbon coating 20 on the parts of the chain 5 that are subject to heavy wear, even if an oil film shortage occurs between the bushing and roller or between the roller and the sprocket tooth surface, wear of the parts that are subject to heavy wear, such as the bushings 11 and rollers 12, can be suppressed, thereby extending the life of the chain. Furthermore, the improved wear resistance allows the user to reduce the frequency with which lubricant is applied to the chain 5, reducing the user's maintenance burden. This, combined with the reduction in lubricant usage, also reduces the environmental impact.

[0026] Furthermore, while aC:H type DLC has high durability, it is less hard and less aggressive to mating surfaces than ta-C type DLC, which prevents excessive wear on the sprockets 2 and 3 (the mating components of roller 12) and the inner circumferential surface of roller 12, thereby extending the life of the chain transmission device as a whole.

[0027] In addition, the low frictional resistance and excellent sliding characteristics at the sliding portions of the chain described above improve fuel economy of a drive device such as a motorcycle equipped with the chain transmission device 1. While the DLC coating 20 is applied only to the outer peripheral surfaces of the bushings 11 and rollers 12 in the above-described embodiment, the DLC coating 20 may be applied to the entire outer peripheral surfaces of the bushings 11 and rollers 12. Furthermore, the DLC coating 20 may be applied not only to the bushings 11 and rollers 12, but also to sliding components such as the sprockets 2 and 3 and the pins 16. Furthermore, while the above-described embodiment describes an example in which the present invention is applied to a sealed chain, the present invention may also be applied to, for example, a sealless chain. Furthermore, the present invention may also be applied to bush chains that do not have rollers 12. Furthermore, the present invention may be applied not only to transmission chains for motorcycles, but also to, for example, timing chains for automobile engines. [Industrial Applicability]

[0028] The present invention can be widely implemented in the field of chains.

[0029] The present invention is not limited to the above-described embodiments, and various modifications and variations can be made without departing from the spirit and scope of the present invention. Therefore, the following claims are appended to apprise the public of the scope of the present invention. [Explanation of symbols]

[0030] 5: Chain, 10: Inner plate, 11: Bush, 12: Roller, 13: Inner link, 15: Outer plate, 16: Pin, 17: Outer link, 20: Coating (DLC coating)

Claims

1. A chain for driving a two-wheeled vehicle, wound around a drive sprocket and a driven sprocket driven by a drive source, comprising: an outer link having a pair of outer plates and a pin connecting the pair of outer plates; an inner link including a pair of inner plates, a bushing connecting the pair of inner plates, and a roller rotatably fitted on the bushing; a coating of a-C:H type diamond-like carbon formed on the outer peripheral surface of the bushing; a coating of a-C:H type diamond-like carbon formed on the outer peripheral surface of the roller; the coating formed on the outer peripheral surface of the bushing has a film thickness of 1.5 to 4.0 μm, a surface roughness Ra of 0.025 μm to 0.4 μm, a hardness of 10 GPa to 25 GPa, and an adhesion of HF1 to HF2; the coating formed on the outer peripheral surface of the roller has a film thickness of 1.5 to 4.0 μm, a surface roughness Ra of 0.025 μm to 0.4 μm, a hardness of 10 GPa to 25 GPa, and an adhesion of HF1 to HF2; the thickness of the coating formed on the outer peripheral surface of the bushing is equal to or greater than the thickness of the coating formed on the outer peripheral surface of the roller; chain.

2. 2. The chain according to claim 1, wherein the thickness of the coating formed on the outer peripheral surface of said bushing is the same as the thickness of the coating formed on the outer peripheral surface of said roller.

3. The surface roughness of the coating formed on the outer peripheral surface of the bushing is Ra 0.25 μm or less, The surface roughness of the coating formed on the outer peripheral surface of the roller is Ra 0.25 μm or less.

3. A chain according to claim 1 or 2.

4. The surface roughness of the coating formed on the outer peripheral surface of the bushing is Ra 0.1 μm to 0.25 μm, 3. The chain according to claim 1, wherein the coating formed on the outer peripheral surface of the roller has a surface roughness Ra of 0.1 μm to 0.25 μm.

5. a seal ring disposed between the outer plate and the inner plate and configured to hold grease between the pin and the bushing; 2. The chain according to claim 1, wherein a surface of said seal ring is coated with PTFE.

6. a seal ring disposed between the outer plate and the inner plate and configured to hold grease between the pin and the bushing; 2. The chain according to claim 1, wherein the material of said seal ring is selected from the group consisting of acrylic rubber, hydrogenated nitrile rubber, nitrile rubber, fluorine-based rubber and PTFE.

Citation Information

Patent Citations

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