识别材料和涂层,以尽量减少/消除万克尔旋转发动机的顶点密封/齿面磨损颤振

IF 1 4区 工程技术 Q4 ENGINEERING, MECHANICAL
Aakash Gupta, S. Jayaram, H. Mccormick
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引用次数: 2

摘要

汪克尔旋转发动机中存在一个众所周知的问题,该问题导致发动机在达到工作负载条件之前就卡住了。现有研究文献表明,导致发动机熄火的主要迹象之一是颤振痕迹。本研究的重点是进行台架测试,对所选材料和涂层的组合进行排序,以获得最低的摩擦和减少的颤振。对总共11种材料和涂层的组合进行了分析和测试。研究发现,在A-2工具钢上涂有PVD涂层的titankote和涂有金刚石颗粒的nikasil涂层表现最好,没有磨损、擦伤或抖振,表面光滑度提高。HTCS-150硬次摆线和C-Lee Cook顶点密封测得的最低摩擦系数为0.06。在涂有PVD的次摆线的钛铁矿上获得的最大平均表面磨损减少量为15μm,在陶瓷顶点密封上获得的平均表面磨损最大减少量为18μm。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identification of materials and coatings to minimise/eliminate Wankel rotary engine's apex seal/trochoid wear chatter
A well-known problem is existing in Wankel rotary engine that leads the engine to seize before it achieves operational loading conditions. Existing research literature shows one of the primary indications to cause engine seizure are the chatter marks. The present study focuses on performing bench testing to rank the combinations of chosen materials and coatings resulting in lowest friction and reduced chatter. A total combination of 11 materials and coatings were analysed and tested. It was found that titankote with PVD coating and nikasil coating with diamond particles on A-2 tool steel performed the best, resulting in no wear, scuffing or chattering, with an increased surface smoothness. The lowest coefficient of friction measured was 0.06 with HTCS-150 hard trochoid and C-Lee Cook apex seals. The maximum average face wear reduction obtained was 15 μm on titankote with PVD coated trochoid and 18 μm on ceramic apex seal.
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来源期刊
CiteScore
1.60
自引率
25.00%
发文量
21
审稿时长
>12 weeks
期刊介绍: IJSurfSE publishes refereed quality papers in the broad field of surface science and engineering including tribology, but with a special emphasis on the research and development in friction, wear, coatings and surface modification processes such as surface treatment, cladding, machining, polishing and grinding, across multiple scales from nanoscopic to macroscopic dimensions. High-integrity and high-performance surfaces of components have become a central research area in the professional community whose aim is to develop highly reliable ultra-precision devices.
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