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Theoretical calculation and experimental study on the load distribution coefficient (LDC) of three-ring gear reducer 被引量:1

Theoretical calculation and experimental study on the load distribution coefficient (LDC) of three-ring gear reducer
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摘要 In this paper, primary manufacturing and assembling errors of three-ring gear reducer (TRGR) are analyzed. TRGR is a new transmission type whose eccentric phase difference between middle ring plate and side ring plates is 120°. Its mass of middle ring plate is equal to that of side ring plate or 180°, and its mass of middle ring plate is twice of that of side ring plate, which affects load distribution between ring plates. The primary manufacturing and assembling errors include eccentric error of eccentric sheath E_m, internal gear plate E_r and output external gear E_w. A new theoretical method is presented in this paper, which converts load on ring plates into the dedendum bending stress of ring plate to calculate load distribution coefficient (LDC), by means of gap element method(GEM), one of finite element method (FEM). The theoretical calculation and experimental study, which measures ring plate dedendum bending stress by means of sticking strain gauges on the dedendum of middle ring plate internal gear and side ring plate internal gears, are presented. The theoretical calculation and comparison with experiment result of LDC are implemented on two kinds of three-ring gear reducers whose eccentric phase difference between eccentric sheaths is 120° and 180° respectively. The research indicates that the result of theoretical calculation is consistent with that of experimental study. That is to say, the theoretical calculation method is feasible. In this paper, primary manufacturing and assembling errors of three-ring gear reducer (TRGR) are analyzed. TRGR is a new transmission type whose eccentric phase difference between middle ring plate and side ring plates is 120°, Its mass of middle ring plate is equal to that of side ring plate or 180°, and its inass of middle ring plate is twice of that of side ring plate, which affects load distribution between ring plates. The primary manufacturing and assembling errors include eccentric error of eccentric sheath E111, internal gear plate E1 and output external gear E11. A new theoretical method is presented in this paper, which converts load on ring plates into the dedendum bending stress of ring plate to calculate load distribution coefficient ( LDC ), by means of gap element method (GEM), one of finite element method (FEM). The theoretical calculation and experimental study, which measures ring plate dedendum bending stress by means of sticking strain gauges on the dedendum of middle ring plate internal gear and side ring plate internal gears, are presented. The theoretical calculation and comparison with experiment result of LDC are implemented an two kinds of three-ring gear reducers whose eccentric phase difference between eccentric sheaths is 120° and 180°respectively. The research indicates that the result of theoretical calculation is consistent with that of experimental study. That is to say, the theoretical calculation method is feasible.
机构地区 School of Mechatronics
出处 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2006年第6期748-752,共5页 哈尔滨工业大学学报(英文版)
基金 Sponsored by the National Natural Science Foundation of China(Grant No.59575007).
关键词 负荷载扰动 齿轮 传动装置 LDC 有限元分析 three-ring gear reducer (TRGR) load distribution coefficient (LDC) finite element method (FEM) gap element method (GEM)
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参考文献6

  • 1LI Huamin,LIANG Yongsheng,XIN Shaojie.Dynamic Balance, Load Equilibrating and Vibration Reducing Two- stage Three Ring Gear Reducer[].PRChina: ZL ·.2002
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同被引文献22

  • 1李传兵.混合少齿差星轮减速器星轮轴承寿命计算[J].安徽工业大学学报(自然科学版),2005,22(2):156-158. 被引量:3
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  • 3周干绪.一种新结构的星轮减速器和变速器:中国.96118189.3[P].1997-12-3.
  • 4周干绪.多功能星轮减速器:中国.98112433.x[P].1999-10-20.
  • 5周干绪.混合少齿差星轮减速器和变速器:中国.88105740.1[P].1990-01-24.
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  • 7Huang Chao, Wang Jiaxu, Xiao Ke, et al. Dynamic characteristics analysis and experimental research on a new type planetary gear apparatus with small tooth number difference[J]. Journal of Mechanical Science and Technology, 2013, 27(5): 1233- 1244.
  • 8Guo Y, Parker R G. Dynamic modeling and analysis of a spur planetary gear involving tooth wedging and bearing clearance nonlinearity[J]. Eur. J. Mech. A-Solid., 2010, 29(6): 1022- 1033.
  • 9Yang Jianming, Zhang Ce. Elasto-dynamics of internal gear planetary transmissions[J]. Mechanism and Machine Theory, 40 (2005): 1107-1125.
  • 10Yang J, Zbang C. Study on the coordination relation among the elastic deformations of a three-ring transmission[C]//Proceeding of the International conference on Mechanical Transmission, April 5-9, 2001, Chongqing, China. pp. 421-423.

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