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首页> 外文期刊>Surface & Coatings Technology >Influence of wetting and thermophysical properties of diamond-like carbon coatings on the frictional behavior in automobile gearboxes under elasto-hydrodynamic lubrication
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Influence of wetting and thermophysical properties of diamond-like carbon coatings on the frictional behavior in automobile gearboxes under elasto-hydrodynamic lubrication

机译:类金刚石碳涂层的润湿和热物理性能对弹性流体动力润滑下汽车变速箱摩擦性能的影响

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摘要

With regard to the transportation sector, an efficient powertrain technology contributes to sustainable lowering of CO2 emissions. Due to the periodic or continuous operation in boundary and mixed friction, minimization of friction losses in automobile gearboxes offers massive potential in terms of efficiency improvement and saving fossil fuels. In close cooperation between the Surface Engineering Institute (JOT) and the Gear Research Center (FZG), the aim of this work was to reduce friction losses in powertrain by diamond-like carbon (DLC) coatings on highly loaded gears under severe rolling-sliding conditions. The zirconium based DLC coatings ZrCg (a:C-H/ZrCg) and nano-composite ZrC (a-C:H/ZrC) were deposited by physical vapor deposition (PVD) at IOT. The industrial DLC coating DLC-REF1 served as reference. Application-related tribological tests of lubricated highly-loaded rolling-sliding contacts were performed in a twin-disc test-rig and a gear efficiency test-rig at FZG. Calculations and measurements of relative lubricant film thickness confirmed that the tribological model tests covered the entire friction regime from boundary and mixed friction to fluid friction (elasto-hydrodynamic lubrication, EHL). Despite complete separation of the coated surfaces, the Coefficient of Friction was reduced by 35% using ZrCg coated discs in the twin-disc test-rig. Practical investigations of DLC coated gears in the FZG gear efficiency test-rig revealed that compared to uncoated gears friction losses in EHL were reduced by up to 25% using the industrial reference DLC-REF1 and 39% using ZrCg, especially at higher loads and higher circumferential speeds. This yet widely unknown favorable effect of DLC coatings under EHL conditions was attributed to the thermophysical properties of DLC coatings and confirmed by simulations of real rolling-sliding contacts at FZG. Wetting analyses of tribological surfaces were analyzed determining the surface properties, interfacial tension and surface energy, of the DLC coatings and the gear oils by means of contact angle measurements. The adhesion energy was calculated from contact angle data. Correlation analyses revealed a clear impact of the interfacial tension and adhesion energy on the frictional behavior under boundary and fluid friction conditions. It was found that a higher adhesion energy (good wetting) contributes to a lower CoF under boundary and mixed friction conditions as well as in the fluid friction regime (EHL). (C) 2015 Elsevier B.V. All rights reserved.
机译:在运输领域,高效的动力总成技术有助于持续降低二氧化碳排放量。由于边界摩擦和混合摩擦的周期性或连续运行,在提高效率和节省化石燃料方面,使汽车变速箱中的摩擦损失最小化具有巨大潜力。在表面工程研究所(JOT)与齿轮研究中心(FZG)的密切合作下,这项工作的目的是通过在剧烈滚动滑动条件下减少高负荷齿轮上类金刚石碳(DLC)涂层在动力总成中的摩擦损失条件。锆基DLC涂层ZrCg(a:C-H / ZrCg)和纳米复合ZrC(a-C:H / ZrC)在IOT上通过物理气相沉积(PVD)进行沉积。工业DLC涂层DLC-REF1作为参考。在FZG的双盘试验台和齿轮效率试验台上进行了与润滑有关的高负荷滚动滑动触点的与应用有关的摩擦学测试。相对润滑剂膜厚度的计算和测量证实,摩擦模型测试涵盖了从边界摩擦和混合摩擦到流体摩擦(弹性流体动力润滑,EHL)的整个摩擦状态。尽管涂层表面完全分离,但在双盘试验台中使用ZrCg涂层盘将摩擦系数降低了35%。在FZG齿轮效率测试装置中对DLC涂层齿轮进行的实际研究表明,与无涂层齿轮相比,使用工业参考DLC-REF1可以将EHL中的摩擦损耗降低多达25%,使用ZrCg可以降低39%,特别是在更高负载和更高载荷下圆周速度。在EHL条件下DLC涂层的这种尚未广为人知的有利效果归因于DLC涂层的热物理性质,并通过在FZG处实际滚动接触的模拟得到了证实。通过接触角测量,分析了摩擦学表面的润湿分析,以确定DLC涂层和齿轮油的表面性能,界面张力和表面能。从接触角数据计算出粘附能。相关分析表明,在边界和流体摩擦条件下,界面张力和粘附能对摩擦行为具有明显的影响。发现在边界摩擦和混合摩擦条件以及流体摩擦状态(EHL)下,较高的粘附能(良好的润湿性)有助于降低CoF。 (C)2015 Elsevier B.V.保留所有权利。

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