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铸型尼龙端面扭动摩擦接触模型及实验验证 被引量:3
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作者 滕兵 王世博 《摩擦学学报》 EI CAS CSCD 北大核心 2014年第1期73-78,共6页
基于刚性平冲头压在弹性半无限空间的理论研究,建立了玻璃纤维增强铸型尼龙(MC尼龙)复合材料与45#钢的端面扭动摩擦模型,并开展了铸型尼龙端面扭动摩擦学试验.结果表明:摩擦扭矩-角位移(T-θ)曲线随角位移幅值的增加由直线形、椭圆形最... 基于刚性平冲头压在弹性半无限空间的理论研究,建立了玻璃纤维增强铸型尼龙(MC尼龙)复合材料与45#钢的端面扭动摩擦模型,并开展了铸型尼龙端面扭动摩擦学试验.结果表明:摩擦扭矩-角位移(T-θ)曲线随角位移幅值的增加由直线形、椭圆形最终转变为准平行四边形;纯MC尼龙及其复合材料(3%GF、5%GF)在扭动角分别为0.5°、1°和2°时,扭动接触界面处于完全滑移状态,其不同的摩擦系数直接影响黏着半径与扭动角的关系,即导致了不同的扭动界面接触机制;MC尼龙复合材料的扭矩随扭动角的增加急剧减小至稳定状态,由扭矩与扭动角的关系还可知部分滑移状态时的扭矩值高于完全滑移状态的扭矩.不同角位移下的实验扭矩与计算曲线相似,揭示了该扭动摩擦模型可近似预测MC尼龙复合材料的扭矩. 展开更多
关键词 扭动摩擦模型 T-θ曲线 摩擦系数 接触机制
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铸型尼龙端面扭动与滑动摩擦学行为研究 被引量:6
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作者 张纱 王世博 葛世荣 《摩擦学学报》 EI CAS CSCD 北大核心 2011年第4期375-380,共6页
为研究端面扭动摩擦特性,研制了端面扭动摩擦特性测量装置,进行了玻璃纤维增强铸型尼龙(MC尼龙)复合材料与45#钢在123 N法向载荷下的扭动与滑动摩擦学试验,扭动角位移幅值为60°和90°,使用扫描电镜观察MC尼龙复合材料磨损表面... 为研究端面扭动摩擦特性,研制了端面扭动摩擦特性测量装置,进行了玻璃纤维增强铸型尼龙(MC尼龙)复合材料与45#钢在123 N法向载荷下的扭动与滑动摩擦学试验,扭动角位移幅值为60°和90°,使用扫描电镜观察MC尼龙复合材料磨损表面形貌,采用光学显微镜观察45#钢偶副表面转移膜形貌.结果表明:扭动摩擦的扭矩-角位移(T-θ)曲线随着循环次数的增加保持平行四边形,而摩擦扭矩随之升高;扭动状态下的摩擦系数高于滑动摩擦系数,扭动磨损后MC尼龙试样质量增加;滑动状态下的磨损机理主要为塑性变形和疲劳磨损,扭动状态下的磨损机理为更为严重的黏着磨损和疲劳磨损;滑动摩擦状态下,45#钢偶副表面形成了大面积连续的转移膜,扭动状态下,45#钢偶副表面只在接触中心区域有少量条块状转移物质. 展开更多
关键词 扭动摩擦 磨损机理 转移膜 T-θ曲线
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Friction and wear of 7075 aluminum alloy induced by torsional fretting 被引量:6
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作者 蔡振兵 朱旻昊 林修洲 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2010年第3期371-376,共6页
The torsional fretting wear tests of 7075 aluminum alloy flat against 52100 steel ball in dry condition were carried out on a new high-precision torsional fretting-wear tester.The kinetics behaviors and damage mechani... The torsional fretting wear tests of 7075 aluminum alloy flat against 52100 steel ball in dry condition were carried out on a new high-precision torsional fretting-wear tester.The kinetics behaviors and damage mechanism of 7075 aluminum alloy under different angular displacement amplitudes were investigated in detail.The results show that the torsional fretting running behaviors of 7075 aluminum alloy can be defined by three fretting regimes(i.e.partial slip regime(PSR),mixed fretting regime(MFR) and slip regime(SR)) with the increase of angular displacement amplitudes.In PSR,the damage occurs at the lateral portion of the contact zone with a slight annular shape.However,in MFR and SR,more severe damages are observed and the debris layer covers the wear scars.Friction torque and dissipation energy which are strongly dependent upon the imposed angular displacement amplitudes and presented in three stages were discussed in detail.The mechanisms of torsional fretting wear of aluminum alloy are mainly oxidative wear,abrasive wear and delamination in the three fretting regimes.In addition,the oxidative debris plays an important role during the torsional fretting wear processes. 展开更多
关键词 7075 aluminum alloy fretting wear torsional fretting fretting regime
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Fretting instability characteristics for gear shaft shoulder 被引量:1
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作者 贾国海 龚金科 +2 位作者 鄂加强 蔡皓 王曙辉 《Journal of Central South University》 SCIE EI CAS 2014年第10期3746-3752,共7页
In order to solve fretting instability problem of gear shaft shoulder due to torsional vibration in mechanical system, the mathematical model of fretting instability vibration of gear shaft shoulder was established by... In order to solve fretting instability problem of gear shaft shoulder due to torsional vibration in mechanical system, the mathematical model of fretting instability vibration of gear shaft shoulder was established by adopting the method of combining kinematics and tribology, and the numerical analysis was applied to the fretting instability mechanism of gear shaft shoulder by introducing the friction instability damping ratio. The numerical results show that the main factors causing the unstable and vibrating gear shaft shoulder are the large tightening torque and too large static friction coefficient. The reasonable values of the static friction coefficient, the amount of interference and tightening torque can effectively mitigate the fretting instability phenomenon of gear shaft shoulder. The experimental results verify that damping plays a significant role in eliminating the vibration of gear shaft control system. 展开更多
关键词 gear shaft shoulder torsional vibration KINEMATICS fretting friction instability damping ratio
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