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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Fretting wear behavior of fine grain structured aluminium alloy formed by oil jet peening process under dry sliding condition
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Fretting wear behavior of fine grain structured aluminium alloy formed by oil jet peening process under dry sliding condition

机译:干喷条件下喷丸强化细晶粒结构铝合金的微动磨损行为

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摘要

Use of aluminium alloy in aerospace and automotive industry has increased due to their high strength to weight ratio. Oil jet peening, a surface modification process is developed to impart compressive residual stresses on the surface of the metallic materials and resulted in significant surface hardening with associated grain refinement. Unlubricated fretting tests were performed on the oil jet peened and unpeened aluminium samples using ball-on-flat configuration at constant slip amplitude and at different applied normal loads. At low applied normal loads, the contact region between the mating surfaces makes the asperities interlock each other resulting in high tangential force coefficient. Due to micro-displacement between the interfaces of two mating members, cracks initiate and cause debris formation. The steady state tangential force coefficient, wear volume and specific wear rate of the oil jet peened samples were lower than those of the unpeened (as-received) samples for all the conditions tested and this is mainly attributed to increased substrate strength. A complex adhesion and oxidation type of wear mechanism was observed at low applied normal loads and at high applied normal loads abrasion was found to be a dominant wear mechanism.
机译:由于铝合金的高强度重量比,铝合金在航空航天和汽车工业中的使用有所增加。进行喷丸喷丸处理时,人们开发了一种表面改性工艺,以在金属材料的表面施加压缩残余应力,并伴随相关的晶粒细化而导致明显的表面硬化。在保持恒定的滑动幅度和不同的施加法向载荷的情况下,使用平放球式配置对喷丸和未喷铝样品进行了无润滑的微动试验。在较低的法向载荷下,配合表面之间的接触区域使这些凹凸彼此互锁,从而导致较高的切向力系数。由于两个配合构件的界面之间的微位移,裂纹开始并引起碎屑形成。在所有测试条件下,喷丸处理后的样品的稳态切向力系数,磨损量和比磨损率均低于未喷丸处理(按原样)的样品,这主要归因于基材强度的提高。在低施加的正常载荷下观察到复杂的粘附和氧化型磨损机制,在高施加的正常载荷下发现磨损是主要的磨损机制。

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