首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Wear mechanism evolution on brake discs for reduced wear and particulate emissions
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Wear mechanism evolution on brake discs for reduced wear and particulate emissions

机译:磨损机构的磨损机制演化减少磨损和微粒排放

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摘要

Brake disc wear contributes heavily to particulate matter as non-exhaust emission in the transportation sector. To tackle this issue, research on this topic has so far been directed at obtaining a hard and dense disc surface to reduce abrasive wear. The present research manipulates the disc surface morphology so that an adhesive transfer layer can be formed during sliding to protect the disc from wear. The designed interlocking surface was prepared using plasma electrolytic aluminating (PEA) process. A non asbestos organic (NAO) brake pad was used for tribotests. The results showed that the PEA-treated brake disc exhibited negligible wear because of the thin protective layer generated by the pad material transfer onto the PEA-treated cast iron. The dimple-like surface, produced through the PEA process, enhanced the bonding of the transfer layer due to mechanical interlocking. The coated surface increased the coefficient of friction of the disc to some extent. The surface also resulted in a reduced wear rate of the brake pad, highlighting the potential for the PEA process to enable reduced wear debris and thus non-exhaust emission through an altered wear mechanism in future brake disc applications.
机译:制动盘穿的磨损将颗粒物质源于运输部门的非排气。为了解决这个问题,对本主题的研究迄今已在获得硬质和致密的盘面以减少磨料。本研究操纵盘表面形态,使得可以在滑动期间形成粘合剂转印层以保护盘免受磨损。使用等离子体电解铝(PEA)工艺制备设计的互锁表面。非石棉有机(NaO)制动垫用于摩擦垫。结果表明,由于垫材料转移到豌豆处理的铸铁上的薄保护层,豌豆处理的制动盘具有可忽略不计的磨损。通过豌豆工艺产生的凹坑状表面,由于机械互锁而增强了转移层的键合。涂覆的表面在一定程度上增加了盘的摩擦系数。表面也导致制动垫的磨损率降低,突出了豌豆工艺的可能性,以使得通过改变的磨损机构在未来的制动盘应用中能够降低磨损碎片并因此是非排气。

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