According to differential geometry and gear geometry, the equation of meshing for small teeth difference planetary gearing and a universal equation of conjugated profile are established based on cylindrical pin tooth ...According to differential geometry and gear geometry, the equation of meshing for small teeth difference planetary gearing and a universal equation of conjugated profile are established based on cylindrical pin tooth and given motion. The correct meshing condition, contact line, contact ratio, calculating method for pin tooth's maximum contact point are developed. Investigation on the theory of conjugated meshing is carried out when the tooth difference numbers between pin wheel and cycloidal gear are 1, 2, 3 and ?1, respectively. A general method called enveloping method to generate hypocycloid and epicycloid is put forward. The correct meshing condition for cycloid pin wheel gearing is provided, and the contact line and the contact ratio are also discussed.展开更多
为了研究表面形貌对线接触弹流状态下摩擦副摩擦特性的影响,采用激光微造型技术,通过控制微造型的形状、深度、间距和面积占有率等参数制造了两组表面高度算术平均值Sa分别相同的试件.使用Talysurf CCI Lite非接触式三维光学轮廓仪对表...为了研究表面形貌对线接触弹流状态下摩擦副摩擦特性的影响,采用激光微造型技术,通过控制微造型的形状、深度、间距和面积占有率等参数制造了两组表面高度算术平均值Sa分别相同的试件.使用Talysurf CCI Lite非接触式三维光学轮廓仪对表面进行测量,采用ISO25178参数及连通性系数Us对测量表面进行表征,最后在JPM-1型双盘摩擦磨损试验机上对试件进行富油摩擦试验,得到不同转速、不同载荷工况下的摩擦系数.结果表明:线接触状态下,微造型形状、方向及深度均会对表面的摩擦特性产生影响,顺向箭头微造型表面表现出了最优的摩擦特性;试件摩擦系数随着转速的增大呈线性增长趋势,随着载荷的增大而减小,减小的幅度随载荷的增大逐渐变得缓慢;表面形貌三维表征参数Ssk、Sku、Vvv、Vvc、Us与摩擦特性均有一定的关联性.展开更多
Although numerical simulation tools are now very powerful,the development of analytical models is very important for the prediction of the mechanical behaviour of line contact structures for deeply understanding conta...Although numerical simulation tools are now very powerful,the development of analytical models is very important for the prediction of the mechanical behaviour of line contact structures for deeply understanding contact problems and engineering applications.For the line contact structures widely used in the engineering field,few analytical models are available for predicting the mechanical behaviour when the structures deform plastically,as the classic Hertz’s theory would be invalid.Thus,the present study proposed an elastic-plastic model for line contact structures based on the understanding of the yield mechanism.A mathematical expression describing the global relationship between load history and contact width evolution of line contact structures was obtained.The proposed model was verified through an actual line contact test and a corresponding numerical simulation.The results confirmed that this model can be used to accurately predict the elastic-plastic mechanical behaviour of a line contact structure.展开更多
利用激光微造型技术在环形试样表面加工出直径在20μm到80μm之间,且具有相同深度和面积占有率的圆凹坑,通过Talysurf CCI Lite非接触式三维光学轮廓仪测量试样表面,并采用ISO 25178参数对各试样表面进行三维表征,最后利用JPM-1双盘磨...利用激光微造型技术在环形试样表面加工出直径在20μm到80μm之间,且具有相同深度和面积占有率的圆凹坑,通过Talysurf CCI Lite非接触式三维光学轮廓仪测量试样表面,并采用ISO 25178参数对各试样表面进行三维表征,最后利用JPM-1双盘磨损试验机,在重载条件下(赫兹接触压力≥1 GPa)研究各组试样在不同工况下的摩擦特性及表面三维形貌参数对摩擦学性能的影响.试验结果说明:直径为80μm和20μm的织构表面润滑效果优于光滑表面.载荷、转速、滑滚比对摩擦系数的影响具有一定的规律性,且不同的工况下呈现的规律有所差别,在高速低载大滑滚比条件下,织构表面对提高摩擦副润滑效果最为显著,还进一步探索了表面三维表征参数Sa、Vv、Spc、Vmp、Vxp与重载条件下40Cr钢摩擦特性的关系.展开更多
基金the National Science and Technology Supporting Program (Grant No. No. 2006BAF01B08)Chongqing Science and Technology Key Task (Grant No. CSCT2006AA3010-6)
文摘According to differential geometry and gear geometry, the equation of meshing for small teeth difference planetary gearing and a universal equation of conjugated profile are established based on cylindrical pin tooth and given motion. The correct meshing condition, contact line, contact ratio, calculating method for pin tooth's maximum contact point are developed. Investigation on the theory of conjugated meshing is carried out when the tooth difference numbers between pin wheel and cycloidal gear are 1, 2, 3 and ?1, respectively. A general method called enveloping method to generate hypocycloid and epicycloid is put forward. The correct meshing condition for cycloid pin wheel gearing is provided, and the contact line and the contact ratio are also discussed.
文摘为了研究表面形貌对线接触弹流状态下摩擦副摩擦特性的影响,采用激光微造型技术,通过控制微造型的形状、深度、间距和面积占有率等参数制造了两组表面高度算术平均值Sa分别相同的试件.使用Talysurf CCI Lite非接触式三维光学轮廓仪对表面进行测量,采用ISO25178参数及连通性系数Us对测量表面进行表征,最后在JPM-1型双盘摩擦磨损试验机上对试件进行富油摩擦试验,得到不同转速、不同载荷工况下的摩擦系数.结果表明:线接触状态下,微造型形状、方向及深度均会对表面的摩擦特性产生影响,顺向箭头微造型表面表现出了最优的摩擦特性;试件摩擦系数随着转速的增大呈线性增长趋势,随着载荷的增大而减小,减小的幅度随载荷的增大逐渐变得缓慢;表面形貌三维表征参数Ssk、Sku、Vvv、Vvc、Us与摩擦特性均有一定的关联性.
基金supported by the National Natural Science Foundation of China(Grant Nos.11602022,and 11727801)the opening projects from the State Key Laboratory of Explosion Science and Technology(Grant No.KFJJ16-05M)the State Key Laboratory of Earthquake Dynamics(Grant No.LED2016B02)
文摘Although numerical simulation tools are now very powerful,the development of analytical models is very important for the prediction of the mechanical behaviour of line contact structures for deeply understanding contact problems and engineering applications.For the line contact structures widely used in the engineering field,few analytical models are available for predicting the mechanical behaviour when the structures deform plastically,as the classic Hertz’s theory would be invalid.Thus,the present study proposed an elastic-plastic model for line contact structures based on the understanding of the yield mechanism.A mathematical expression describing the global relationship between load history and contact width evolution of line contact structures was obtained.The proposed model was verified through an actual line contact test and a corresponding numerical simulation.The results confirmed that this model can be used to accurately predict the elastic-plastic mechanical behaviour of a line contact structure.
文摘利用激光微造型技术在环形试样表面加工出直径在20μm到80μm之间,且具有相同深度和面积占有率的圆凹坑,通过Talysurf CCI Lite非接触式三维光学轮廓仪测量试样表面,并采用ISO 25178参数对各试样表面进行三维表征,最后利用JPM-1双盘磨损试验机,在重载条件下(赫兹接触压力≥1 GPa)研究各组试样在不同工况下的摩擦特性及表面三维形貌参数对摩擦学性能的影响.试验结果说明:直径为80μm和20μm的织构表面润滑效果优于光滑表面.载荷、转速、滑滚比对摩擦系数的影响具有一定的规律性,且不同的工况下呈现的规律有所差别,在高速低载大滑滚比条件下,织构表面对提高摩擦副润滑效果最为显著,还进一步探索了表面三维表征参数Sa、Vv、Spc、Vmp、Vxp与重载条件下40Cr钢摩擦特性的关系.