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Combining DLC, Shot blasting, chemical dip and nano fullerene surface treatments to reduce wear and friction when used with bio-lubricants in automotive contacts

机译:结合DLC,喷丸,化学浸渍和纳米富勒烯表面处理,减少与汽车接触中的生物润滑剂一起使用时的磨损和摩擦

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摘要

The interaction of three bio-lubricant base oil candidates with seventeen combinations of surface treatment was studied, comparing wear scar volumes and coefficient of friction results. Substrates were initially ground, then a combination of superfinished, Dymon-iC™ DLC, an impact technique of ultra-fine shot blasting method doped with Tin and Molybdenum Disulfide, a calcium based chemical dip containing calcium sulfate and nano fullerene, were used.DLC is well reported to reduce friction. Some reports suggest wear in coated contacts is independent of the type of lubricant used, whilst others report that bio-lubricants offer reduced friction and wear in combination with DLC. Shot blasting can also reduce wear and friction, due to the surface dimples acting as lubricant reservoirs, making hydrodynamic lubrication more likely. Previous work has also explored the performance of surface texturing in combination with coatings, some reporting higher friction when surface texturing and DLC is used. As a surface coating, fullerene has been shown to have significantly lower wear and friction than DLC coatings. The calcium based chemical treatment used has no published data.A ball on flat reciprocating wear tester was used with bio-lubricant base oil candidates, jojoba and soybean oil, with a mineral base oil used for comparison. Wear scars were analysed using a scanning electron microscope.Coefficient of friction results from testing with bio-lubricant base oil candidates’ soybean and jojoba oil were lower than tests with mineral base oil. A hybridized coating combination of superfinish, diamond like carbon and chemical dip gave the highest wear protection for tests with the mineral base oil and bio-lubricant base oil candidate soybean oil. A hybridized coating combination of superfinish, impact technique and chemical dip gave highest wear protection when tested with bio-lubricant base oil candidate jojoba oil. Results showed no overall improvement in wear protection when substrates were processed with the impact technique. Superfinishing substrates improved the performance of both the chemical dip and DLC.
机译:研究了三种生物润滑剂基础油候选物与十七种表面处理组合的相互作用,比较了磨损痕量和摩擦系数结果。首先对基板进行研磨,然后使用Dymon-iC™DLC超精加工,锡和二硫化钼掺杂的超细喷砂法冲击技术,含硫酸钙和纳米富勒烯的钙基化学浸液的组合。据报道可以减少摩擦。一些报告表明涂层触点的磨损与所用润滑剂的类型无关,而另一些报告则指出,生物润滑剂与DLC结合可降低摩擦和磨损。由于表面的凹坑起着润滑剂的作用,喷丸处理还可以减少磨损和摩擦,从而使流体动力润滑的可能性更大。先前的工作还探索了与涂层结合使用的表面纹理化的性能,一些研究人员在使用表面纹理化和DLC时报告了更高的摩擦力。作为表面涂层,富勒烯已显示出比DLC涂层低得多的磨损和摩擦。所使用的基于钙的化学处理方法尚未公开数据。使用平板往复式磨损测试仪上的球与候选生物润滑剂基础油,霍霍巴油和大豆油,并使用矿物基础油进行比较。使用扫描电子显微镜分析磨损痕迹。使用生物润滑剂基础油候选物的大豆和霍霍巴油测试的摩擦系数低于使用矿物基础油的摩擦系数。超精,类金刚石碳和化学浸胶的混合涂层组合为矿物基础油和生物润滑剂基础油候选大豆油提供了最高的耐磨保护。当使用生物润滑剂基础油候选荷荷巴油进行测试时,超精,冲击技术和化学浸涂的混合涂层组合可提供最高的磨损保护。结果表明,当用冲击技术处理基材时,耐磨性没有整体改善。超精加工基材可改善化学浸涂和DLC的性能。

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