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Experimental analysis on tribo-performance of aluminum composites

机译:铝复合材料摩擦性能的实验分析

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摘要

Two-body abrasion is of critical interest in engineering applications due to the severity of material and dimensional loss. In the present work, composites were manufactured through advanced stir-casting route by reinforcing Al-Zn-Mg-Cu alloy with 0 to 20 wt.% alumina particles. Microstructures of the developed materials were characterized through optical and field emission scanning electron microscopic examinations along with energy dispersive spectroscopy analyses besides measurements of porosity and Vickers hardness. Experimentation on two-body abrasion was carried out over a wide range of loads (20-80 N) and sliding velocities (0.125-1.50 m s(-1)) against silicon carbide abrasive medium. Tribological performances of base alloy and composites were assessed via evaluation of wear rate and coefficient of friction (COF) in addition to the estimation of surface roughness (SR) of abraded specimens. Composites exhibited higher SR, but lower wear rate and COF than alloy; the extents of those increased with raising reinforcement quantity. With rise in load, wear rate and abraded SR of the developed materials rose but COF decreased. Influence of sliding velocity was nominal on material loss for composites unlike base alloy, whereas SR was found to increase considerably and COF diminished slightly at higher velocities for all materials. Influences of various in-situ and ex-situ parameters on observed tribo-responses were explained through identification of different wear micromechanisms which were established via extensive postwear analyses of surface topography, worn surface, debris, and abraded paper.
机译:由于材料的严重程度和尺寸损失严重程度,双体磨损对工程应用具有重要兴趣。在本工作中,通过用0至20重量%的Al-Zn-Mg-Cu合金加强Al-Zn-Mg-Cu合金,通过先进的搅拌浇铸途径制造复合材料。%氧化铝颗粒。通过光学和场发射扫描电子显微镜检查以及能量分散光谱分析除了孔隙率和维氏硬度之外,通过光学和现场发射扫描电子显微镜检查的特征在于。对两种负载(20-80n)和滑动速度(0.125-1.50 m s(-1))进行对碳化硅磨料培养基进行的实验。除了磨损标本的表面粗糙度(SR)的估计之外,通过评估碱基合金和复合材料的摩擦学性能和复合材料的磨损率(COF)。复合材料表现出更高的Sr,但较低的磨损率和COF而不是合金;那些随着增强量的增加而增加。随着负载,磨损率和发达材料的磨损SR升高,但COF减少。滑动速度的影响是基于基础合金的复合材料的物质损失的标称,而SR被发现显着增加,并且COF在所有材料的速度较高的速度下略微减弱。通过识别不同的磨损微观机来解释各种原位和前原位参数对观察到的摩擦响应的影响,这些磨损微机械通过表面形貌,表面,碎片和磨损纸的广泛的磨损分析建立。

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