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Influence of adhesion strength on cavitation erosion resistance of diamond-like carbon coating

机译:粘合强度对金刚石碳涂层空化腐蚀抗性的影响

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Purpose The disbonding of DLC coating is a main failure mode in the high-speed cavitation condition, which shortens the service life of the bearing. This study aims to investigate influence of adhesion strength on cavitation erosion resistance of DLC coating. Design/methodology/approach Three DLC coatings with different adhesion strengths were grown on the 304 steel surfaces by using a cathodic arc plasma deposition method. Cavitation tests were performed by using a vibratory test rig to investigate the influence of adhesion strength on cavitation erosion resistance of a DLC coating. The cavitation mechanism of the substrate-coating systems was further discussed by means of surface analyses. Findings The results indicated that, the residual stress decreased and then increased with the increasing DLC coating thickness from 1 mu m to 2.9 mu m, and the lower residual stress can improve the adhesion strength of the DLC coating to the substrate. It was also concluded that, the plastic deformation as well as the fracture occurred on the DLC coating surface at the same time, owing to higher residual stress and poorer adhesion strength. However, lower residual stress and better adhesion strength could help resist the occurrence of the coating fracture. Originality/value Cavitation tests were performed by using a vibratory test rig to investigate the influence of adhesion strength on cavitation erosion resistance of the DLC coating. The plastic deformation and the fracture occurred on the DLC coating surface at the same time, owing to higher residual stress and poorer adhesion of coating. Lower residual stress and better adhesion of coating could resist the occurrence of the DLC coating fracture.
机译:目的,DLC涂层的脱屑是高速空化条件下的主要故障模式,缩短了轴承的使用寿命。本研究旨在调查粘合强度对DLC涂层空化抗蚀性的影响。通过使用阴极电弧等离子体沉积方法,在304钢表面上在304钢表面上生长设计/方法/方法三种DLC涂层在304钢表面上生长。通过使用振动试验台进行空化试验,以研究粘合强度对DLC涂层的空化腐蚀性的影响。通过表面分析进一步讨论基材涂层系统的空化机制。结果表明,残留应力降低,然后随着1μm至2.9μm的增加,增加的DLC涂层厚度增加,并且较低的残余应力可以提高DLC涂层对基材的粘附强度。还得出结论,由于较高的残余应力和较差的粘合强度,塑性变形以及骨折在DLC涂层表面上发生骨折。然而,较低的残余应力和更好的粘合强度可以有助于抵抗涂层骨折的发生。通过使用振动试验台来研究原创性/值空化试验,以研究粘合强度对DLC涂层的空化腐蚀性抗性的影响。塑性变形和骨折在DLC涂层表面上发生同时,由于较高的残余应力和涂层粘附较差。较低的残余应力和更好的涂层粘附可以抵抗DLC涂层骨折的发生。

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