UHMW-PE-based lubricating material with fillers that influence the tribological properties

DE502024000034D1Active Publication Date: 2025-05-15GLEITLAGER
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Patent Information

Application Number
DE502024000034
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-06-07
Filing Date
2024-05-14
Publication Date
2025-05-15
Estimated Expiration
2044-05-14

AI Technical Summary

Technical Problem

Existing sliding materials lack cost-effectiveness and versatility for both dry and lubricated rotation and axial applications, with limited wear resistance and friction reduction.

Method used

A polymer-based sliding material composed of ultra-high molecular polyethylene (UHMW-PE) as the polymer base and a mixture of calcium phosphate, WS2, and SNS2 as fillers, which improve tribological properties by reducing friction and wear.

Benefits of technology

The proposed sliding material offers improved wear resistance and friction reduction, is cost-effective, and suitable for both dry and lubricated conditions, expanding its application range compared to traditional materials.

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Description

[0001] The invention relates to a polymer-based sliding material with fillers that influence the tribological properties.

[0002] Such sliding materials are known in the art in a variety of forms. For example, PTFE-based or PA-based sliding materials are known, which contain fillers to influence the tribological properties.

[0003] For example, DE 10 2011 077 008 A1 describes a PTFE-based plain bearing composite material, wherein fillers comprising thermoplastics and / or thermosets and other tribologically active substances are present together in compounded form in the polymer base of the sliding layer material.

[0004] Furthermore, EP 2 563 590 B1 describes a plain bearing material based on fluoropolymer, for example based on PTFE, wherein 5-25 vol.% boron nitride and 1-15 vol.% mixed phase oxide pigments are added to the fluoropolymer, which is intended to improve wear resistance.

[0005] EP 2 316 707 A1 and EP 1 647 574 A1 describe a PTFE-based plain bearing material with barium sulfate, phosphate and an amount of 0.1 to 2% of metal sulfide.

[0006] Finally, POM and PVDF-based sliding materials are known.

[0007] From CN 113 278 212 A a sliding material for bridge girders containing ultra-high molecular weight polyethylene and MoS 2 is known.

[0008] From CN 114 736 448 A a material containing ultra-high molecular weight polyethylene and WS 2 -gC 3 N 4 is known.

[0009] Despite the variety of sliding materials described in the prior art, there is still a need for a sliding material that is cost-effective and also suitable for both dry-running and lubricated rotary and axial applications.

[0010] The invention is concerned with the task of providing a cost-effective sliding material with good friction properties and improved wear resistance.

[0011] This object is achieved by a sliding material having the features of claim 1. This is a polymer-based sliding material with fillers, in particular dispersed therein. The sliding material thus consists of the polymer base and the fillers. The polymer base forms, in particular, a (polymer) matrix in which the fillers are dispersed. In particular, the fillers are embedded, at least in sections, in the polymer base.

[0012] The fillers influence, in particular improve, the tribological properties of the sliding material. In particular, the fillers can reduce the coefficient of friction of the sliding material and / or wear of the sliding material. In this context, "sliding material" refers in particular to a material designed for sliding stress, e.g., as the sliding layer of a plain bearing (see below). In this respect, the sliding material is in particular a surface material.

[0013] The fillers comprise a mixture of calcium phosphate, WS 2 and SnS 2 , with a proportion of this mixture amounting to a maximum of 15.0 wt.% of the sliding material.

[0014] The polymer base comprises ultra-high molecular weight polyethylene (also referred to as UHMW-PE or PE-UHMW). Therefore, the sliding material according to the invention is a UHMW-PE-based sliding material. This does not necessarily mean that the entire polymer base must consist of UHMW-PE. However, the polymer base preferably comprises at least 80.0 wt.%, in particular at least 90.0 wt.%, and more particularly at least 95.0 wt.% ultra-high molecular weight polyethylene. It is particularly advantageous if the polymer base consists (100%) of ultra-high molecular weight polyethylene. This does not exclude the possibility that the polymer base may contain undesirable impurities.

[0015] According to the invention, the ultra-high molecular weight polyethylene has a molar mass of at least 5.0 million g / mol, in particular of at least 6.0 million g / mol, more particularly of at least 6.2 million g / mol, more particularly of at least 6.5 million g / mol, more particularly of at least 7.0 million g / mol. It proves to be particularly advantageous if the ultra-high molecular weight polyethylene has a molar mass of more than 6.0 million g / mol, in particular of more than 6.2 million g / mol, more particularly of more than 6.5 million g / mol, more particularly of more than 7.0 million g / mol. In particular, the ultra-high molecular weight polyethylene has a molar mass of at most 10.0 million g / mol.

[0016] The proposed sliding material provides a new material optimized for frictional properties. Within the scope of the invention, it has been found in particular that the proposed combination of UHMW-PE and calcium phosphate and / or metal sulfide ensures that the frictional properties of the sliding material remain largely constant even with progressive wear. The use of UHMW-PE as the polymer base also makes the sliding material comparatively cost-effective and easy to process, particularly compared to known PTFE-based sliding materials. A further advantage of the proposed combination of UHMW-PE, calcium phosphate, and metal sulfide results from the sliding material's applicability both in dry running and under oil or grease lubrication. This broadens the range of applications compared to sliding materials that can only be used with lubrication, e.g., those based on PVDF and POM.The proposed UHMW-PE-based sliding material is also PFAS-free (i.e., free of per- and polyfluorinated chemicals), which promotes environmentally friendly production and disposal.

[0017] The proposed sliding material is suitable for applications in the automotive sector (e.g., steering gears, power steering, pedal bearings, seat guide rails, steering knuckle bearings, brake caliper bushings, tailgate bearings) or in general industrial applications (e.g., handling and lifting equipment, guideways, hydraulic cylinders, pneumatic devices, hydraulic motors). Other areas of application include, for example, ski lifts, medical devices, textile machinery, or agricultural equipment.

[0018] Within the scope of the invention, it has surprisingly been found that when using UHMW-PE as the polymer base, even comparatively small amounts of the aforementioned fillers (calcium phosphate and metal sulfide) are sufficient to significantly improve the tribological properties, in particular wear resistance. The proportion of calcium phosphate in the mixture is preferably a maximum of 10.0 wt.%, more preferably a maximum of 7.0 wt.%, more preferably a maximum of 5.0 wt.%, more preferably 1.0-10.0 wt.%, more preferably 1.0-7.0 wt.%, more preferably 1.0-5.0 wt.%, more preferably 3.0-7.0 wt.%, more preferably 3.0-5.0 wt.% of the sliding material. In particular, the fillers can be a mixture of calcium phosphate, WS 2 and SnS 2. In this respect, the sliding material can consist of the polymer base and a mixture of calcium phosphate, WS 2 and SnS 2.

[0019] A mixture of the following composition has proven to be preferred: 70.0 - 97.0 wt% calcium phosphate, 2.0 - 20.0 wt% SnS 2 , 1.0 - 10.0 wt% WS 2 .

[0020] The sum of the proportions amounts to 100 wt.% (the percentages refer to the sum of the weights of the three components). Such filler compositions offer particularly good tribological properties, which particularly improve wear characteristics.

[0021] A mixture with the following composition has proven to be particularly preferred: 88.0 wt% calcium phosphate, 8.5 wt% SnS 2 , 3.5 wt% WS 2 .

[0022] In a particularly advantageous embodiment, the sliding material can consist of 95.0 wt.% ultra-high molecular weight polyethylene and 5.0 wt.% of the mixture of calcium phosphate, WS 2 and SnS 2 (preferably with the composition 88.0 wt.% calcium phosphate / 8.5 wt.% SnS 2 / 3.5 wt.% WS 2 ).

[0023] In some embodiments, the fillers may also comprise BaSO 4 . As explained in more detail below, the addition of BaSO 4 can reduce the proportion of calcium phosphate and / or metal sulfide—while maintaining essentially the same wear properties. BaSO 4 serves, in particular, as a solid lubricant. The proportion of BaSO 4 is preferably a maximum of 10.0 wt.%, more preferably a maximum of 5.0 wt.%, more preferably 1.0-10.0 wt.%, more preferably 1.0-5.0 wt.%, of the sliding material.

[0024] In a further particularly advantageous embodiment, the sliding material can consist of 94.0 wt.% ultra-high molecular weight polyethylene, 3.0 wt.% of the mixture of calcium phosphate, WS 2 and SnS 2 , preferably with the composition 88.0 wt.% calcium phosphate / 8.5 wt.% SnS 2 / 3.5 wt.% WS 2 , and 3.0 wt.% BaSO 4 .

[0025] In some embodiments, the fillers may comprise at least one further inorganic filler, in particular boron nitride. A proportion of the further inorganic filler, or the total of the further inorganic fillers, of 0.5-3.0 wt.%, in particular 0.5-1.5 wt.%, of the sliding material has proven advantageous.

[0026] Additionally or alternatively, the fillers may comprise one or more additional functional substances. The at least one additional functional substance may in particular be selected from the following group of functional substances: Reinforcing materials, such as in particular carbon fibers, glass fibers, polymer fibers (in particular aramid fibers); solid lubricants, such as in particular ZnS, graphite, carbon black, or hexagonal BN; plastic particles, such as in particular aramid (PPTA), PPSO2, PI and PAI particles, polyacrylate particles (PAR), PBA particles, PBI particles; metal oxides, such as in particular Fe2O3, Al2O3, SiO2, CrO2, TiO2, CuO, MgO, ZnO; hard material particles, in particular ceramic particles, such as SiC, Si3N4, BC, cubic BN; fluorides, such as in particular CaF2, NaF, AlF3; layered silicates, such as in particular kaolin, mica, wollastonite, talc, silica; metallic fine powders, such as in particular bronze and bismuth; and pigments or mixed phase oxide pigments, such as in particular Co-Al, Cr-Sb-Ti, Co-Ti, Fe-Al or Co-Cr.

[0027] In this context, it may prove advantageous if the proportion of the additional functional material, or the proportion of several additional functional materials in total, amounts to a maximum of 5% by weight of the sliding material.

[0028] Preferably, the total proportion of fillers (i.e., in total) is a maximum of 25.0 wt.%, in particular a maximum of 20.0 wt.%, furthermore in particular a maximum of 15.0 wt.%, furthermore in particular a maximum of 10.0 wt.%, furthermore in particular a maximum of 7.0 wt.% of the sliding material. In particular, the proportion of fillers is 1.0-25.0 wt.%, in particular 1.0-20.0 wt.%, furthermore in particular 5.0-15.0 wt.%, furthermore in particular 3.0-7.0 wt.%, furthermore in particular 5.0 wt.%, 7.0 wt.%, or 10.0 wt.% of the sliding material. In this respect, the proportion of the polymer base can be in particular 75.0 - 99.0 wt.%, further in particular 80.0 - 99.0 wt.%, further in particular 85.0 - 95.0 wt.%, further in particular 93.0 - 97.0 wt.%, further in particular 90.0 wt.%, 93.0 wt.% or 95.0 wt.% of the sliding material.

[0029] The sliding material can be used to produce a sliding bearing composite material. In this respect, the invention also relates to a sliding bearing composite material comprising the sliding material described above. The advantages and optional features described above in connection with the sliding material per se can also serve to design the sliding bearing composite material. To avoid repetition, reference is therefore made to the above disclosure in this regard.

[0030] According to a first advantageous aspect, the plain bearing composite material can comprise a support layer, in particular a metallic one, in particular made of steel or a copper alloy, a porous carrier layer, in particular made of bronze, preferably lead-free bronze, applied directly to the support layer, and the above-described sliding material, wherein the sliding material is impregnated into the porous carrier layer. Such a plain bearing composite material thus has a three-layer structure consisting of a support layer, a porous carrier layer applied to the support layer, and a sliding material impregnated into the porous carrier layer. The sliding material preferably forms a projection over the porous carrier layer.

[0031] To produce the above-described plain bearing composite material according to the first aspect, the metallic support layer with the porous carrier layer applied thereto and the sliding material are first provided. In particular, the sliding material is provided in the form of a sliding material film (i.e., a film-like flat material made of sliding material). The sliding material or the sliding material film is then applied to the porous carrier layer and subsequently impregnated into the porous carrier layer, in particular by means of a hot-pressing process and / or rolling process. The sliding material is thus pressed into the carrier layer, in particular with the introduction of heat.

[0032] According to a second, alternative advantageous aspect, the plain bearing composite material can have a support layer, in particular a metallic one, in particular made of steel, a coated steel, or a copper alloy, and a sliding layer made of a sliding material described above or comprising a sliding material described above, wherein the sliding layer or the sliding material is joined to the support layer by means of an adhesion promoter layer, in particular an adhesive layer. In this respect, the plain bearing composite material can comprise a support layer, in particular a metallic one, an adhesion promoter layer applied, in particular directly, to the support layer, and a sliding layer made of or comprising sliding material applied to the adhesion promoter layer. In advantageous embodiments, the support layer can be made of an aluminum alloy.

[0033] The sliding bearing composite material according to the second aspect, in particular, does not comprise a porous carrier layer or other reinforcement layers such as expanded metal or fabric. It was recognized according to the invention that the combination of UHMW-PE and the aforementioned fillers (calcium phosphate and metal sulfide) sufficiently improves the load-bearing capacity of the sliding layer, in particular its wear, for use as a sliding bearing element. A design with an adhesion promoter layer therefore promotes a simple and cost-effective construction of the sliding bearing composite material. Furthermore, the bonding of the sliding layer to the support layer by means of the adhesion promoter layer promotes the use of (usually comparatively difficult to process) ultra-high molecular weight polyethylene with a very high molecular weight, preferably of more than 6.0 million g / mol. Such polyethylene exhibits very good wear resistance.

[0034] According to a third aspect, the sliding layer can also comprise a reinforcing structure, in particular a metallic one, preferably in the form of an expanded metal mesh or a fabric, in particular into which the sliding material is impregnated. In this respect, the sliding bearing composite material according to the third aspect can have a supporting layer, in particular a metallic one, in particular made of steel, a coated steel, or a copper alloy, a sliding layer comprising a reinforcing structure, in particular a metallic one, and a sliding material as described above, wherein the sliding layer is joined to the supporting layer by means of an adhesion promoter layer, in particular an adhesive layer. The reinforcing structure is preferably spaced from the supporting layer, in particular by the adhesion promoter layer and / or by the sliding material. This can result in advantageous stress conditions during sliding loading.The combination of UHMW-PE and the aforementioned fillers ensures that the plain bearing composite material has high mechanical strength. The reinforcement structure can be made, in particular, of bronze.

[0035] It is also conceivable, in principle, for the sliding layer, especially the reinforcement structure, to be sintered onto the support layer. In this case, no additional adhesion promoter layer is required.

[0036] According to a fourth aspect, the sliding bearing composite material can comprise a support layer made of UHMW-PE or comprising UHMW-PE, and a sliding layer comprising a reinforcing structure and a sliding material described above, wherein the sliding layer is joined to the support layer by means of an adhesion promoter layer, in particular an adhesive layer. According to an advantageous development of the fourth aspect, the support layer can also be made of the sliding material described above.

[0037] In the aforementioned plain bearing composite materials with an adhesion promoter layer, the adhesion promoter layer can, in particular, be applied directly to the support layer. The adhesion promoter layer is different from the sliding layer or the sliding material. As explained in more detail below, the adhesion promoter layer and the sliding layer can be provided as a film during the production of the plain bearing composite material. The adhesion promoter layer can be an adhesive layer in each of the aforementioned aspects. In this respect, the plain bearing composite material can have a support layer and a sliding layer made of a sliding material described above or comprising a sliding material described above, wherein the sliding layer is adhesively bonded to the support layer.

[0038] The adhesion promoter layer is preferably a polymer layer. In an advantageous embodiment, the intermediate layer can comprise or consist of a polyolefin or mixtures of different polyolefins. The intermediate layer preferably comprises or consists of polyethylene. The intermediate layer preferably comprises or consists of polyethylene with a molecular weight of less than 1.0 million g / mol, more preferably less than 0.5 million g / mol. It can be particularly advantageous if the adhesion promoter layer comprises or consists of thermoplastic polyethylene. The adhesion promoter layer can comprise a functionalized polyethylene. In this way, for example, the bond to the intermediate layer and thus the sliding material to the support layer can be improved.

[0039] The adhesion promoter layer is preferably provided separately from the sliding material during the production of the plain bearing composite material. By way of example and preferably, the adhesion promoter layer can be provided as a film-like flat material made of adhesion promoter material (adhesion promoter film).

[0040] An advantageous method for producing such a plain bearing composite material according to the second, third or fourth aspect may comprise the following steps: Providing the support layer; providing an adhesion promoter film made of an adhesion promoter material; providing a sliding material film made of the sliding material described above or comprising an above-described sliding material and a reinforcing structure described above, in particular expanded metal or fabric; applying the adhesion promoter film to the support layer and applying the sliding material film to the adhesion promoter film; pressing the support layer, the adhesion promoter film, and the sliding material film, in particular by means of a hot-pressing process and / or a rolling process.

[0041] The provision of the sliding material film can in particular include the following steps: Providing a mixture of ultra-high molecular weight polyethylene and the fillers. One possible implementation may involve mixing the UHMW-PE with the fillers in a powder dry mixing process.; Pressing this mixture of ultra-high molecular weight polyethylene and the fillers into a block, particularly with heat input (hot pressing); Peeling a film-like flat material from the block.

[0042] The invention also encompasses a three-dimensional molded body consisting of or containing a sliding material of the type described above. The molded body can be attached to a support part made of a different material. The molded body can be designed or used as a sliding bearing element or as a transmission component.

[0043] Preferably, the dimensions of the molded body are at least 1.0 mm in each dimension, in particular at least 2.0 mm, and more particularly at least 5.0 mm or at least 6.0 mm. Of course, the dimensions can also be much larger.

[0044] The sliding bearing composite material formed with the sliding material or the three-dimensional shaped body formed from or with the sliding material can be used in particular as a sliding bearing element. In this respect, the invention also encompasses a sliding bearing element made from a sliding bearing composite material of the types described above or comprising a shaped body described above.

[0045] The plain bearing element can be, for example, a sliding strip, a sliding shoe, a sliding cushion, a plain bearing shell, a plain bearing bushing, or a flanged bushing. The sliding element can also be typically rolled cylindrical bushings or half-shell-shaped plain bearing elements manufactured with the plain bearing composite material. The plain bearing composite material can also be used to manufacture flanged bushings or cup bushings, or flat and spherical plain bearing elements.

[0046] The invention is explained in more detail below using examples and the figures. The drawings show: Figure 1: a schematic sectional view of an embodiment of a plain bearing composite material according to a first aspect; Figure 2: a schematic sectional view of an embodiment of a plain bearing composite material according to a second aspect; Figure 3: a schematic sectional view of an embodiment of a plain bearing composite material according to a third aspect; Figure 4: a schematic sectional view of an embodiment of a plain bearing composite material according to a fourth aspect; Figure 5: a diagram explaining the wear behavior of various plain bearing elements made from the plain bearing composite material; and Figure 6: a diagram explaining the friction behavior of various plain bearing elements made from the plain bearing composite material.

[0047] The Figure 1 shows a schematic sectional view of an embodiment of a plain bearing composite material, which is designated overall by the reference numeral 10.

[0048] In the example according to Figure 1 The plain bearing composite material 10 comprises a metallic support layer 12, typically made of steel or a copper alloy, and a porous carrier layer 14, in particular a bronze layer. The plain bearing composite material 10 also comprises a sliding material 16, as described above, which is impregnated into the porous carrier layer 14.

[0049] For example, the porous carrier layer 14 is formed from a sintered layer of bronze-based metallic particles 18. The particles of the carrier layer 14 form interconnected macroscopic cavities 20 (which are not shown to scale), into which the sliding material 16 is impregnated. As shown in Fig. 1 As shown schematically, the sliding material 16 essentially completely fills the pores 20 of the carrier layer 14 and forms a projection over the carrier layer 14.

[0050] As mentioned above, the sliding material 16 comprises a polymer base that forms the matrix of the sliding material 16. In this specific example, the polymer base comprises ultra-high molecular weight polyethylene (UHMW-PE) with a molar mass of at least 5.0 million g / mol, preferably greater than 6.0 million g / mol. Preferably, the polymer base consists of ultra-high molecular weight polyethylene.

[0051] The sliding material 16 also comprises fillers (not separately shown) incorporated into the matrix-forming polymer base. As mentioned above, the fillers comprise calcium phosphate and / or at least one metal sulfide, in particular SnS 2 and WS 2 (see below for advantageous compositions).

[0052] As mentioned above, for the production of the plain bearing composite material 10 according to Figure 1the sliding material 16 may be provided in the form of a foil-like flat material (sliding material foil), which is then impregnated into the porous carrier layer by means of a hot pressing process.

[0053] The Figure 2 shows a simplified schematic representation of a further embodiment of a plain bearing composite material 10. In the example according to Figure 2 The plain bearing composite material 10 comprises a metallic support layer 12, typically made of steel, a coated steel, a copper alloy, or an aluminum alloy, and a sliding layer 22 made of the sliding material 16 described above. The sliding material 16 is bonded to the metallic support layer 12 via a polymeric adhesion promoter layer 24.

[0054] As mentioned above, for the production of the plain bearing composite material 10 according to Fig. 2the sliding material 16 and the adhesion promoter layer 22 are each provided as a film, which is then pressed and thus connected to the support layer 12 in a hot pressing process.

[0055] The adhesion promoter layer 24 can in particular comprise or consist of polyolefins, preferably polyethylene. By way of example and preferably, the adhesive layer 24 can comprise or consist of polyethylene with a molecular weight of less than 1.0 million g / mol.

[0056] The Figure 3 shows a simplified schematic representation of a further embodiment of a plain bearing composite material 10. In the example according to Figure 3 The sliding bearing composite material 10 comprises a metallic support layer 12, typically made of steel, a copper alloy, or an aluminum alloy, and a sliding layer 22, which now comprises, in addition to the sliding material 16, a reinforcing structure 26, for example in the form of a metallic expanded metal mesh. As shown in Figure 3 As indicated, the sliding material 16 is particularly impregnated into the reinforcing structure 26. The sliding layer 22, comprising the sliding material 16 and the reinforcing structure 26, is then joined to the support layer 12 by means of the aforementioned adhesion promoter layer 24.

[0057] As mentioned above, for the production of the plain bearing composite material 10 according to Figure 3 the reinforcing structure 26 with the impregnated sliding material 16 and the adhesion promoter layer are each provided as a film, which is then pressed and thus connected to the support layer 12 in a hot pressing process.

[0058] The Figure 4 shows a simplified schematic representation of a further embodiment of a plain bearing composite material 10. The example according to Figure 4 differs from the plain bearing composite material 10 according to Figure 3in that instead of the metallic support layer 12, a support layer 28 comprising ultra-high molecular weight polyethylene (UHMW-PE) is provided. For example, the support layer 28 can also consist of the sliding material 16. Otherwise, the design according to Figure 4 the design according to Figure 3 .

[0059] The following table lists preferred compositions of the sliding material 16, with only Examples 2, 3, and 5 showing sliding materials according to the invention. Example 1, in which the sliding material consists of 100% UHMW-PE (i.e., contains no fillers), serves as a reference example for the wear analyses described below. Example 4 is a comparative example not according to the invention. Example composition 1 100 wt.% UHMW-PE 2 95 wt% UHMW-PE 5 wt.% (mixture of calcium phosphate / SnS 2 / WS 2 ) 3 97 wt% UHMW-PE 3 wt.% (mixture of calcium phosphate / SnS 2 / WS 2 ) 4 95 wt% UHMW-PE 5 wt% BaSO 4 5 94 wt% UHMW-PE 3 wt.% (mixture of calcium phosphate / SnS 2 / WS 2 ) 3 wt% BaSO 4

[0060] In the examples mentioned, the mixture of calcium phosphate, SnS 2 and WS 2 has, by way of example and preferably, the following composition: 88% by weight calcium phosphate / 8.5% by weight SnS 2 / 3.5% by weight WS 2 .

[0061] The wear and friction behavior of these examples is described below with reference to the Figures 3 and 4 explained. The Figure 5 shows the result of wear measurements and the Figure 6 of friction coefficient measurements on plain bearing elements made from a plain bearing composite material 10 using sliding materials 16 of the above examples 1 to 5.

[0062] Specifically, bushings made of a plain bearing composite material 10 according to Fig. 1 using the material compositions of Examples 1 to 5 as sliding material 16.

[0063] The wear resistance and friction coefficients were determined in a rotation test with a sliding speed of 0.25 m / s under a load of 23.4 MPa. The test parameters are listed in the table below. Test parameters Test parameters Lubrication condition Dry running Counterbody 100Cr6 load 23.4 MPa Gliding speed 0.25 m / s Test duration 4 h

[0064] Example 1, in which the sliding material consists of 100% UHMW-PE, serves as a reference example, to whose measured values ​​the other examples are based.

[0065] As from Figure 5 As can be seen, the examples containing a mixture of calcium phosphate, WS 2 and SnS 2 as filler show a significantly and surprisingly lower wear than the comparative examples and the reference example - with an improved coefficient of friction (cf. Figure 6 ).

[0066] A comparison of examples 3 and 5 also shows that, with the proportion of the mixture of calcium phosphate, SnS 2 and WS 2 remaining the same, both wear and friction coefficient can be reduced by adding BaSO 4.

Claims

1. Polymer-based sliding material (16) having fillers which improve the tribological properties, the polymer base comprising ultra-high molecular weight polyethylene which has a molar mass of at least 5.0 million g / mol, characterized in that the fillers comprise a mixture of calcium phosphate, WS2 and SnS2, the proportion of this mixture being at most 15.0 wt.% of the sliding material.

2. Sliding material (16) according to claim 1, wherein the proportion of the mixture of calcium phosphate, WS2 and SnS2 is at most 10.0 wt.%, more preferably at most 7.0 wt.%, more preferably at most 5.0 wt.%, more preferably 1.0 - 10.0 wt.%, more preferably 1.0 - 7.0 wt.%, more preferably 1.0 - 5.0 wt.%, more preferably 3.0 - 7.0 wt.%, more preferably 3.0 - 5.0 wt.% of the sliding material.

3. Sliding material (16) according to claim 1 or claim 2, wherein the mixture of calcium phosphate and at least one metal sulfide has the following composition: 70.0 - 97.0 wt.% calcium phosphate, 2.0 - 20.0 wt.% SnS2, 1.0 - 10.0 wt.% WS2.

4. Sliding material (16) according to any of the preceding claims, wherein the fillers also comprise BaSO4, in particular wherein the proportion of BaSO4 is 1.0 - 10.0 wt.%, preferably 1.0 - 5.0 wt.% of the sliding material.

5. Sliding material (16) according to any of the preceding claims, wherein the fillers comprise at least one additional inorganic filler, in particular boron nitride, in particular wherein the proportion of the at least one additional inorganic filler is 0.5 - 3.0 wt.%, in particular 0.5 - 1.5 wt.%, of the sliding material.

6. Sliding material (16) according to any of the preceding claims, wherein the fillers also comprise at least one functional material, wherein the at least one functional material is selected from the group consisting of: - reinforcing materials, such as in particular carbon fibers, glass fibers, polymer fibers (in particular aramid fibers); - solid lubricants, such as in particular ZnS, graphite, carbon black, or hexagonal BN; - plastics particles, such as in particular aramid (PPTA), PPSO2, PI and PAI particles, polyacrylate particles (PAR), PBA particles, PBI particles; - metal oxides, such as in particular Fe2O3, Al2O3, SiO2, CrO2, TiO2, CuO, MgO, ZnO; - hard material particles, in particular ceramic particles such as SiC, Si3N4, BC, cubic BN; - fluorides, such as in particular CaF2, NaF, AlF3; - phyllosilicates, such as in particular kaolin, mica, wollastonite, talc, silica; - fine metal powders, such as in particular bronze and bismuth; and - pigments or mixed phase oxide pigments, such as, in particular Co-Al, Cr-Sb-Ti, Co-Ti, Fe-Al or Co-Cr.

7. Slide bearing composite material (10), comprising - a support layer (12), in particular made of metal, in particular made of steel or a copper alloy, - a porous carrier layer (14), in particular made of bronze, preferably lead-free bronze, applied, in particular directly, to the support layer (12), and - a sliding material (16) according to any of the preceding claims, wherein the sliding material (16) is impregnated into the porous carrier layer (14) and in particular forms a protrusion over the porous carrier layer (14).

8. Slide bearing composite material (10) comprising: - a support layer (12, 28) and - a sliding layer (22) made of or comprising sliding material (16) according to any of claims 1 to 6, wherein the sliding layer (22) is joined to the support layer (12) by means of an adhesion promoting layer (24), applied, in particular directly, to the support layer (12).

9. Slide bearing composite material (10) according to the preceding claim, wherein the sliding layer (22) also has a reinforcing structure (26).

10. Slide bearing composite material (10) according to claim 8 or claim 9, wherein the adhesion promoting layer is a polymer layer, in particular comprising a polyolefin, more particularly comprising polyethylene, more particularly comprising polyethylene which has a molar mass of less than 1.0 million g / mol, more particularly comprising thermoplastic polyethylene.

11. Three-dimensional molded body for sliding loads, consisting of a sliding material (16) according to any of claims 1 to 6.

12. Slide bearing element produced from a slide bearing composite material (10) according to any of claims 7 to 10, or comprising a molded body according to claim 11.

13. A method for producing a slide bearing composite material (10) in accordance with claim 7, comprising: - providing the metal support layer (12) with the porous carrier layer (14) applied thereto; - providing the sliding material (16), in particular in the form of a sliding material film, - impregnating the sliding material (16) into the porous carrier layer (14), in particular by means of a hot pressing process.

14. Method for producing a slide bearing composite material (10) in accordance with any of claims 8 to 10, comprising: - providing the support layer (12, 28); - providing an adhesion promoting film which is made of an adhesion promoting material; - providing a sliding material film made of sliding material (16) according to any of claims 1 to 8, or providing a sliding material film comprising sliding material (16) according to any of claims 1 to 8 and a reinforcing structure (26), in particular expanded metal or woven fabric; - applying the adhesion promoting film to the support layer and applying the sliding material film to the adhesion promoting film; - pressing the support layer (12, 28), the adhesion promoting film and the sliding material film, in particular by means of a hot pressing process and / or a rolling process.

15. Method according to claim 13 or claim 14, wherein providing the sliding material film comprises: - providing a mixture of ultra-high molecular weight polyethylene and the fillers; - pressing this mixture into a block, in particular using heat input; - peeling a film from the block.