机械工程学报
機械工程學報
궤계공정학보
Journal of Mechanical Engineering
2015年
19期
40-46
,共7页
齿轮-转子系统%接触有限元%动态传递误差%非线性振动
齒輪-轉子繫統%接觸有限元%動態傳遞誤差%非線性振動
치륜-전자계통%접촉유한원%동태전체오차%비선성진동
geared rotor system%contact finite analysis method%dynamic transmission error%non-linear vibration
考虑齿轮-转子系统各部件的弹性,基于接触有限元理论提出一种能够高保真模拟齿轮副连续啮合过程的动态特性分析方法。该方法利用实体有限元进行系统建模,可体现各部件的结构特征;基于接触有限元进行啮合过程仿真,可模拟系统的时变刚度、啮合冲击等真实激励进而得到全面准确的响应信息。以一直齿轮-转子系统为例进行啮合过程的数值仿真,利用中心差分法求得系统各动力学参量在时域上的响应,通过中心距偏差、动态传递误差、动态接触力等参数分析系统的弯曲振动、扭转振动、齿轮副的啮合特性及其耦合关系。研究结果表明:考虑各部件尤其是转子的弹性后,系统的非线性振动特性显著,齿轮副啮合存在明显的双边冲击及脱啮现象。
攷慮齒輪-轉子繫統各部件的彈性,基于接觸有限元理論提齣一種能夠高保真模擬齒輪副連續齧閤過程的動態特性分析方法。該方法利用實體有限元進行繫統建模,可體現各部件的結構特徵;基于接觸有限元進行齧閤過程倣真,可模擬繫統的時變剛度、齧閤遲擊等真實激勵進而得到全麵準確的響應信息。以一直齒輪-轉子繫統為例進行齧閤過程的數值倣真,利用中心差分法求得繫統各動力學參量在時域上的響應,通過中心距偏差、動態傳遞誤差、動態接觸力等參數分析繫統的彎麯振動、扭轉振動、齒輪副的齧閤特性及其耦閤關繫。研究結果錶明:攷慮各部件尤其是轉子的彈性後,繫統的非線性振動特性顯著,齒輪副齧閤存在明顯的雙邊遲擊及脫齧現象。
고필치륜-전자계통각부건적탄성,기우접촉유한원이론제출일충능구고보진모의치륜부련속교합과정적동태특성분석방법。해방법이용실체유한원진행계통건모,가체현각부건적결구특정;기우접촉유한원진행교합과정방진,가모의계통적시변강도、교합충격등진실격려진이득도전면준학적향응신식。이일직치륜-전자계통위례진행교합과정적수치방진,이용중심차분법구득계통각동역학삼량재시역상적향응,통과중심거편차、동태전체오차、동태접촉력등삼수분석계통적만곡진동、뉴전진동、치륜부적교합특성급기우합관계。연구결과표명:고필각부건우기시전자적탄성후,계통적비선성진동특성현저,치륜부교합존재명현적쌍변충격급탈교현상。
Considering each component’s elasticity of geared rotor system, a method to simulate the continuous engagement of gear pairs is proposed based on the contact finite analysis. The model is built by solid finite element to analyze structural vibration characteristics. By using the contact finite analysis method to simulate the engagement, the actual excitation like time-varying mesh stiffness, meshing contact can be included in the model, then more comprehensive, accurate response characteristics can be obtained. Solid finite model of a spur geared rotor system is built to simulate the dynamic engagement of gear pairs based on the contact finite element analysis method; the time-domain response of kinetic parameters such as contact force is achieved by resolving the equation of motion. The deviation of center distance, dynamic transmission error and the contact force is used to study the lateral vibration, torsional vibration, the engagement characteristic and coupling relationships of these. The results show that the elasticity of each component especially the rotors have great affection on the dynamic behavior of the system through increasing the nonlinear vibration characteristics such as bilateral impact and disengage of the gear pair.