Increasing the Wear Resistance of Restored Car Parts by Using Electrospark Coatings

D. Marchenko, K. Matvyeyeva
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Abstract

The work scientifically substantiates the application of effective technology for the restoration of worn car parts by applying new electrospark coatings based on electroerosion nanomaterials. The developed technology is characterized by technological flexibility, cheapness, simplicity, does not require the use of expensive and scarce materials and equipment, and also meets the requirements of environmental safety. The proposed technology can be used to restore a wide range of parts for cars, tractors and other machines. Experimentally established dependences of the effect of the properties of electroerosive materials on the properties of electrospark coatings of restored car parts. It is shown that the content of nano-sized particles in the electrode material contributes to the improvement of the physical and mechanical properties of electrospark coatings. The dependences of the influence of the properties of electrospark coatings on the resource of restored car parts were experimentally established. It is shown that the resource of the shafts of turbocompressors restored according to the recommended technology is higher than the resource of new shafts by an average of 1.5 times. Experimentally established rational modes of applying wear-resistant coatings to worn shafts of turbocompressors, which provide the necessary complex of physical and mechanical properties of the coating and the given resource of the shafts as a whole (rotation frequency of the part, min - 1 - 50; electrode feed, mm/min - 0.4 ... 0.5). The characteristics of wear resistance of electrospark coatings of turbocompressor shafts, obtained using electroerosion nanomaterials, were studied. It is shown that the average value of the coefficient of friction of the electrospark coating was 0.146 instead of 0.486 without coating, which is 3.3 times lower. According to the results of production tests, it was found that the duration of operation of the turbocharger, with the restored method of electrospark treatment with a nanostructured electrode shaft, increased by 2.1 times compared to a new industrially manufactured shaft. Thus, when abrasive material containing a fraction of 0.1...0.4 mm was introduced, the operating time of the turbocompressor with a restored shaft was 12.8 hours, and the operating time of the turbocompressor with a new shaft without wear of the nominal size was 8.1 hours.
利用电火花涂层提高汽车修复件的耐磨性
该工作通过应用基于电蚀纳米材料的新型电火花涂层,科学地证明了有效技术在汽车磨损部件修复中的应用。所开发的技术具有技术灵活性、廉价、简单的特点,不需要使用昂贵稀缺的材料和设备,也符合环境安全的要求。所提出的技术可用于修复汽车、拖拉机和其他机器的各种零件。实验建立了电腐蚀材料性能对修复汽车零件电火花涂层性能影响的相关性。结果表明,电极材料中纳米颗粒的含量有助于改善电火花涂层的物理力学性能。实验建立了电火花涂层性能对汽车零部件修复资源的影响关系。结果表明,按推荐技术修复的涡轮压缩机轴资源比新轴资源平均高1.5倍。通过试验建立了合理的涡轮压缩机磨损轴耐磨涂层应用模式,为涂层的物理力学性能和轴的整体给定资源(零件的旋转频率,min-1-50;电极进给,mm/min-0.4…0.5)提供了必要的复杂性。研究了使用电蚀纳米材料获得的涡轮压缩机轴电火花涂层的耐磨性特征。结果表明,电火花涂层的摩擦系数的平均值为0.146,而不是没有涂层的0.486,其低3.3倍。根据生产测试的结果,发现使用纳米结构电极轴的电火花处理的恢复方法,涡轮增压器的运行持续时间与新的工业制造的轴相比增加了2.1倍。因此,当引入含有0.1…0.4mm的部分的磨料时,具有恢复的轴的涡轮压缩机的操作时间为12.8小时,并且具有没有标称尺寸的磨损的新轴的涡轮压缩器的操作时间是8.1小时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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