Slide member and manufacturing method thereof

By pre-receiving the edges on the sliding member back layer and forming a copper-based alloy porous substrate with gradually increasing density, combined with the injection and cutting treatment of the resin material, the manufacturing complexity and poor seizure resistance caused by the difference between the sliding member edge materials and the central material in the prior art are solved, and the effect of simplifying the manufacturing process and improving the edge seizure resistance is achieved.

JP7676089B2Active Publication Date: 2025-05-14DAIDO METAL IND CO LTD
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Patent Information

Application Number
JP2021063790
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-04-02
Publication Date
2025-05-14
Estimated Expiration
2041-04-02

AI Technical Summary

Technical Problem

In the prior art, the edge material of the sliding member is different from the central material, which makes the manufacturing process complex and time-consuming, making it difficult to effectively improve the seizure resistance of the edge.

Method used

By pre-receiving the edges on the back layer of the sliding member and evenly laying and firing the copper-based alloy particles across the surface, a copper-based alloy porous substrate with a gradually increasing density from the lowest surface to the depth is formed. The resin material is then injected on the substrate to form a mixture and different density regions are formed by cutting to improve seizure resistance at the edges.

Benefits of technology

This method simplifies the manufacturing process, avoids the complexity of two-color molding, and effectively improves the seizure resistance of the sliding member edges, preventing seizure caused by a single contact.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a simple method for changing seizure resistance of an edge of a sliding surface of a sliding member used in a compressor of a freezer, etc.SOLUTION: A manufacturing method for a sliding member of a refrigerator compressor, in which a resin material is impregnated into a porous base material made of a bronze alloy and both the porous base material and the resin material are exposed on the sliding surface, comprises: preparing a backing layer; laminating bronze-based alloy particles on the surface of the backing metal layer and sintering it to form a porous base material; impregnating the porous substrate with a resin material; deforming the edge of the backing metal layer in a direction away from the sliding surface; and cutting the porous substrate impregnated with the resin material to form the sliding surface.SELECTED DRAWING: Figure 3
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Description

[Technical field]

[0001] The present invention relates to an improvement in a sliding member used in a compressor for a refrigerator and a manufacturing method thereof. [Background technology]

[0002] The sliding member used in the compressor for a refrigerator comprises a backing metal layer and a sliding layer. The sliding layer is made of a porous base material and a resin material impregnated therein. The porous base material is made by laminating and sintering bronze alloy particles. The resin material is a composite material of a tetrafluoroethylene synthetic resin and a lubricant, and is compatible with today's chlorine-free refrigerator refrigerants. On the sliding surface of such a sliding member, both a porous substrate made of a bronze-based alloy and a resin material are exposed, and Patent Document 1 proposes that the exposed area ratio of the porous substrate should be 5% or more and 60% or less. Also, Patent Document 2 proposes that the edge of the sliding surface of the sliding member be made of a material having higher seizure resistance than a porous substrate made of a bronze-based alloy. By forming the edge of the sliding surface of the sliding member from a material having higher seizure resistance, problems such as seizure caused by uneven contact can be prevented in advance. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] JP 2006-132540 A [Patent Document 2] JP 2020-193626 A Summary of the Invention [Problem to be solved by the invention]

[0004] In order to form the edges of the sliding surface of the sliding member from a material having higher seizure resistance than a porous substrate made of a bronze-based alloy, the technology disclosed in Patent Document 2 uses a first material forming the center of the sliding surface and a second material forming the edges that are different from each other. As described in Patent Document 2, in order to form the center of the sliding surface and its edges from different materials, it is considered that the center of the sliding surface is first formed from the first material, and then the edges are formed from the second material. Executing such two-color molding is time-consuming. [Means for solving the problem]

[0005] Therefore, the present inventors have been studying methods for improving the seizure resistance of the edge of the sliding surface of a sliding member. They have studied a simple method for improving the seizure resistance by utilizing the fact that the density of a porous substrate made by sintering bronze-based alloy particles varies in the thickness direction. That is, they have noticed that the density of a porous substrate is smallest at its surface and increases with depth. Since the porous substrate of the sliding member is filled with a resin material, if the density of the porous substrate is reduced, the density of the resin material is increased, and thus the seizure resistance is improved. The present invention was conceived by focusing on such characteristics of the porous substrate.

[0006] In manufacturing a sliding member in which a porous substrate made of a bronze-based alloy is impregnated with a resin material and both the porous substrate and the resin material are exposed on the sliding surface, a back metal layer 3 is first prepared, and then the edge 4 of the back metal layer 3 is recessed in advance (deformed in a direction away from the sliding surface S) (see Figs. 1A and 3B). Bronze-based alloy particles 5 are evenly layered on the entire surface of the back metal layer 3 processed in this way so that it is thicker than the planned sliding layer 10 (see Fig. 3B), and this is sintered to form a porous substrate 7 (see Fig. 1B). Then, the resin material 9 is impregnated (Fig. 2). 3A, the porous substrate 7 impregnated with the resin material 9 is cut at a plane K. This plane K is a plane equidistant from the axis of the back metal layer 3. The deformation of the backing metal layer is preferably carried out after the porous substrate is impregnated with the resin material, but may also be carried out before the porous substrate is formed or between the formation of the porous substrate and the impregnation with the resin material. In the example of Fig. 1, the edge 4 is an inclined surface, but a step can be provided between the edge 4 and another portion (the center), and an incline can be provided from this step to form the edge 4. The portion from the step to the tip can also be flat (parallel to the center).

[0007] The cut surface becomes the sliding surface S (see FIG. 3B). In this sliding surface S, the thickness of the porous substrate 7 differs between the edge SE corresponding to the edge 4 of the back metal layer 3 and the central portion SC, the former being thicker than the latter. Here, since the density of the porous substrate 7 decreases toward the surface side, the density of the porous substrate 7 is lower at the edge SE of the sliding surface S than at the center SC. In other words, the exposed area ratio of the porous substrate 7 at the edge SE of the sliding surface S is smaller than that at the center SC of the sliding surface S. As a result, without any particular change in the material, in other words, without two-color molding, the seizure resistance of the edge SE can be improved compared to that of the central portion SC.

[0008] From the above, the first aspect of the present invention can be defined as follows. A method for producing a sliding member, which is formed by impregnating a porous substrate made of a bronze-based alloy with a resin material, and in which both the porous substrate and the resin material are exposed on a sliding surface of the sliding member, Providing a backing metal layer; forming the porous substrate by laminating particles of the bronze-based alloy on a surface of the backing metal layer and sintering the particles; impregnating the porous substrate with the resin material; deforming an edge of the backing metal layer in a direction away from the sliding surface; A step of cutting the porous substrate impregnated with the resin material to form a sliding surface; A method for producing a sliding member comprising the steps of:

[0009] The sliding member thus manufactured is specified in terms of its structure as follows. A sliding member comprising a porous substrate made of a bronze-based alloy impregnated with a resin material, the porous substrate and the resin material being both exposed on the sliding surface, A sliding member, wherein the exposed area ratio of the porous substrate at the edge of the sliding surface is smaller than that at the central portion of the sliding surface. According to the sliding member thus defined, the ratio of the exposed area of ​​the porous substrate at the edge of the sliding surface is reduced, improving the sliding properties, thereby making it possible to prevent seizure caused by uneven contact.

[0010] The exposed area ratio of the porous substrate on the sliding surface can be controlled by a manufacturing method other than the manufacturing method of the first aspect described above. For example, the exposed area ratio of the porous substrate on the sliding surface can be reduced by increasing the particle size of the bronze-based alloy particles constituting the edge of the sliding surface compared to the central part.

[0011] According to the study by the present inventors, the width of the edge at which the ratio of the exposed area of ​​the porous substrate on the sliding surface should be small is preferably 5 mm or less. By making it 5 mm or less, it is possible to effectively prevent seizure due to uneven contact. If it exceeds 5 mm, there is a risk that the durability of the entire sliding surface will decrease. From another perspective, the width of the edge can be 10 to 90% of the entire sliding. The boundary between the edge and the center is not clearly visible and can be delineated, but the edge can be defined as an area where the exposed area ratio is 5% or more smaller than that of the center, for example. [Brief description of the drawings]

[0012] [Figure 1] FIG. 1 is a schematic diagram showing a back metal layer (A) prepared in the method for producing a slide member of the present invention and a porous substrate (B) formed on the surface of the back metal layer. [Diagram 2] FIG. 2 is a schematic diagram showing the state in which the porous substrate is impregnated with a resin material. [Diagram 3]FIG. 3(A) shows a cross section K of a porous substrate impregnated with a resin material, and (B) shows the structure after cutting. [Figure 4] FIG. 4 is a graph showing the depth and exposed area percentage of a porous substrate. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0013] The back metal layer 3 is a member made of a steel material. The diameter, length and thickness of the back metal layer 3 are appropriately selected depending on the compressor for a refrigerator to which it is applied. In this example, both end edges 4 of the back metal layer 3 are recessed by a so-called crowning process, forming inclined surfaces in the direction away from the sliding surface. The length of the end edges 4 can be designed arbitrarily, but it is preferable to set it to 5 mm or less. The method of shaping the edge 4 will be described later.

[0014] For example, a flat steel sheet is prepared as the back metal layer, and bronze-based alloy particles are laminated on the surface of the steel sheet. As long as the bronze-based alloy particles can be laminated, the shape of the steel sheet that becomes the back metal layer is not particularly limited. The particle size of the bronze-based alloy particles made of copper-tin alloy can be selected arbitrarily according to the characteristics required for the bearing member, but the average particle size can be 50 to 200 μm. The particles used are not limited to being spherical, and may have different shapes. The lamination method can be arbitrarily selected depending on the material of the back metal layer 3 and the desired thickness. For example, a bronze alloy is spread on the surface of the back metal layer 3, and then the thickness is made uniform with a spatula or the like. After the bronze-based alloy particles are layered, they are sintered under conditions that maintain the shape of the particles. As a result, the particles are fused to each other to form the porous substrate 7. This porous substrate 7 is also fused to the back metal layer 3.

[0015] The porous substrate 7 thus formed has a density that gradually decreases from the back metal layer 3 side toward the surface side, as shown typically in FIG. 1(B). Figure 4 shows the relationship between the thickness of the porous substrate 7 and the exposed area ratio. The horizontal axis of the graph shows the thickness (μm) of the porous substrate 7 impregnated with the resin material 9 scraped off from the surface, and the vertical axis shows the exposed area ratio (%) when scraped off. In Figure 4, the upper line shows the value of the center of the backing metal layer 3, and the lower line shows the value of the edge 4. The exposed area ratio (%) can be found by taking an image of the surface at the scraped depth, binarizing the difference in brightness between the porous substrate 7 part and other parts, and then finding the area ratio. To obtain the results shown in Fig. 4, bronze alloy particles were spread on the surface of the steel backing layer 3 to a thickness of 300 μm, and the thickness was made uniform with a spatula or the like. Then, the sample was sintered in a reducing atmosphere at 900°C for 20 minutes. The porous substrate impregnated with the resin material was then cut to various depths, and the surfaces obtained were image-processed to calculate the ratio of the exposed area at each depth.

[0016] The resin material 9 impregnated so as to fill the voids in the porous substrate 7 shown in FIG. 1(B) can be arbitrarily selected depending on the application of the sliding member. It is preferable to use a synthetic resin with excellent durability, such as a fluororesin, as the base resin of the resin material 9. It is preferable to include a lubricant and an anti-wear agent in the resin material 9. An example of the lubricant is a solid lubricant such as molybdenum disulfide. An example of the anti-wear agent is an inorganic material such as barium sulfate, a metal material, or the like.

[0017] The resin material 9 made of the fluororesin thus prepared is impregnated into the porous substrate 7 . The impregnated resin material 9 is baked by a method such as heating. This results in a structure (hybrid body) in which the pores (voids) of the porous substrate 7 are filled with the resin material 9 (see FIG. 2). According to FIG. 4, when 120 μm is removed from the surface, the exposed area ratio of the porous substrate 7 to the surface is 60%.

[0018] In this way, a hybrid body of the porous substrate 7 and the resin material 9 is laminated on the surface of the flat backing metal layer. This is cut to the product width to form a first intermediate body. This first intermediate body is shaped into a cylindrical shape so that the hybrid body is on the inner peripheral surface side. The edge of the cylindrical shape is deformed to the outer peripheral surface side, i.e., away from the sliding surface, to shape the edge, thereby forming a second intermediate body. It is also possible to obtain the second intermediate body by deforming the edge of the first intermediate body in advance. The second intermediate body is press-fitted into the housing of a compressor such as a refrigerator. Then, its inner circumferential surface is cut by plane K as shown in Fig. 3(A). The cut surface becomes the sliding surface S. If plane K is set so that the cutting depth in the center of the backing metal layer 3 is 60 μm, then according to the example of Fig. 4, the exposed area ratio in the center SC of the sliding surface S is 33%, whereas the exposed area ratio in the edge SE of the sliding surface S is just under 20%. The exposed area ratio on the sliding surface can be selected arbitrarily based on the results of FIG. EXAMPLES

[0019] A steel cylinder with an outer diameter of 40 mm, a thickness of 2 mm, and a length of 35 mm was used as the backing layer 3, and both ends of the inner peripheral surface were subjected to crowning processing with a width of 5 mm in the axial direction. The cutting depth at the extreme ends was 20 μm. Bronze-based alloy particles were prepared and laminated over the entire area of ​​the back metal layer 3 . The thickness of the laminate was 300 μm. After that, the mixture was sintered in a reducing atmosphere at 900°C for 20 minutes to fuse the surfaces of the particles together.

[0020] Asahi Glass's "CD097" PTFE was used as the resin matrix of resin material 9, and molybdenum disulfide was used as the lubricant. The compounding ratio of the two was 85:15. The lubricant was dispersed in a resin matrix, which was then impregnated into a porous substrate, after which the resin material was sintered by heat treatment. After firing, the hybrid of the porous substrate 7 and the resin material 9 was cut so that the cutting depth of the porous substrate 7 was 60 μm in the center of the back metal layer 3, to form the sliding surface S. The exposed area ratio of the porous substrate 7 in the center SC of the sliding surface S was 33%. On the other hand, the exposed area ratio at the edge SE was 18%. In this example, the exposed area ratio at the center of the edge SE is used, but the average value of the entire area of ​​the edge SE may also be used.

[0021] The cut surface K of the porous substrate 7 is assumed to exist on a virtual cylindrical surface centered on the axis of the sliding member, and the surface after cutting becomes the sliding surface S. The edge SE of the sliding surface S can be further subjected to crowning. The inclined surface formed by such crowning preferably has an inclination angle smaller than that of the inclined surface of the edge 4 formed on the backing metal layer 3. This is to ensure that the density of the porous substrate 7 at the edge SE is smaller than that of the central portion SC.

[0022] The present invention is not limited to the above-mentioned embodiment. Various modifications within the scope of the claims and within the scope of those skilled in the art are also included in the present invention. A device using a bearing mechanism, such as an internal combustion engine, using the sliding member of the present invention exhibits excellent sliding characteristics. [Explanation of symbols]

[0023] 3. Backing layer 4 Edge 5 Bronze alloy particles 7 Porous substrate 9. Resin Materials S sliding surface SE edge SC central part

Claims

1. A sliding member comprising a porous substrate made of a bronze-based alloy impregnated with a resin material, the porous substrate and the resin material being both exposed on the sliding surface, a sliding member, wherein an exposed area ratio of the porous substrate at the edge of the sliding surface is smaller than that at a central portion thereof, the porous substrate is formed on the surface of a backing metal layer, and the backing metal layer is deformed in a direction away from the sliding surface at a portion supporting the edge.

2. 2. The sliding member according to claim 1, wherein the edge has a width of 5 mm or less.

3. The sliding member according to claim 1 or 2, wherein the porous base material constituting the edge of the sliding surface is thicker than other portions.

4. A method for producing a sliding member, which is formed by impregnating a porous substrate made of a bronze-based alloy with a resin material, and in which both the porous substrate and the resin material are exposed on a sliding surface of the sliding member, Providing a backing metal layer; a porous substrate forming step of laminating particles of the bronze-based alloy on a surface of the backing metal layer and sintering the particles to form the porous substrate; an impregnation step of impregnating the resin material into the porous substrate; a deformation step of deforming an edge of the back metal layer in a direction away from the sliding surface; A cutting step of cutting the porous substrate impregnated with the resin material to form a sliding surface; A method for producing a sliding member comprising the steps of:

5. The method of claim 4 , wherein the deformation step is performed after the impregnation step.

6. The method of claim 4 , wherein the deformation step occurs before the impregnation step.

7. After the impregnation step, The backing metal layer having the porous substrate impregnated with the resin material is cut to a product width to form a first intermediate body; The first intermediate body is molded into a predetermined cylindrical shape, and an end edge of the first intermediate body is deformed in a direction away from the sliding surface to form a second intermediate body. The method according to claim 4, wherein the sliding surface is formed by cutting the porous base material impregnated with the resin material in the second intermediate body.

8. After the impregnation step, The backing metal layer having the porous substrate impregnated with the resin material is cut to a product width to form a first intermediate body; deforming an edge of the first intermediate body in a direction away from the sliding surface; forming the deformed first intermediate body into a predetermined cylindrical shape to form a second intermediate body; The manufacturing method according to claim 4, wherein the sliding surface of the second intermediate body is formed by cutting the porous base material impregnated with the resin material.

9. A method for manufacturing a sliding device comprising: a sliding member and a housing, the sliding member being formed by impregnating a porous base material made of a bronze-based alloy with a resin material, the porous base material and the resin material being both exposed on the sliding surface of the sliding member; Providing a backing metal layer; a porous substrate forming step of laminating particles of the bronze-based alloy on a surface of the backing metal layer and sintering the particles to form the porous substrate; an impregnation step of impregnating the resin material into the porous substrate; a deformation step of deforming an edge of the back metal layer in a direction away from the sliding surface; a press-fitting step of press-fitting the back metal layer into the housing; A cutting step of cutting the porous substrate impregnated with the resin material to form a sliding surface; A method for manufacturing a sliding device comprising the steps of:

10. The method of claim 9 , wherein the deformation step is performed after the impregnation step.

11. The method of claim 9 , wherein the deformation step occurs before the impregnation step.

12. After the impregnation step, The backing metal layer having the porous substrate impregnated with the resin material is cut to a product width to form a first intermediate body; The first intermediate body is molded into a predetermined cylindrical shape, and an end edge of the first intermediate body is deformed in a direction away from the sliding surface to form a second intermediate body. The manufacturing method according to claim 9 , wherein in the pressing step, a back metal layer of the second intermediate body is pressed into the housing.

13. After the impregnation step, The backing metal layer having the porous substrate impregnated with the resin material is cut to a product width to form a first intermediate body; deforming an edge of the first intermediate body in a direction away from the sliding surface; forming the deformed first intermediate body into a predetermined cylindrical shape to form a second intermediate body; In the second intermediate body, the porous substrate impregnated with the resin material is cut to form a sliding surface; The manufacturing method according to claim 9 , wherein in the pressing step, a back metal layer of the second intermediate body is pressed into the housing.

Citation Information

Patent Citations

  • Bearing of compressor for refrigerator and compressor for refrigerator

    JP2006132540A

  • Bearing of compressor for freezing machine

    JP2020193626A

  • Sliding bearing and method of manufacturing same

    WO2010038588A1