Research on Pulley Strain of Metal Belt CVT

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Abstract:

Pulley strain aggravated whole-Part abrasion, affected friction and lubricates state of metal belt continuously variable transmission. Pulley strain was analyzed by analytical method and finite element analysis. The results indicate that with the increase of transmission ratio, the driver pulley compressive strain is increases after reduces for a while, and the driven pulley increase. Compressive strain dense when radius is lesser and vice versa. Two methods results are basically the same, whereby demonstrating that the model is rational and that the analysis results are reliable.

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249-252

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May 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Lingyuan Kong, Robert G. Parker. Steady mechanics of layered, multi-band belt drives used in continuously variable transmissions (CVT)[J]. Mechanism and Machine Theory, 2008, 43 (2): 171-185.

DOI: 10.1016/j.mechmachtheory.2007.02.003

Google Scholar

[2] Sattler H. Efficiency of Metal Chain and V-belt CVT[C]/Proceeding of CVT'99 Congress, Eindhoven, Netherlands. 1999: 99–104.

Google Scholar

[3] Akehurst S, Vaughan N D, Parker D A, et al. Modeling of Loss Mechanisms in a Pushing Metal V-belt Continuously Variable Transmission. Part 1: Torque Losses due to Band Friction [J]. Part D: Journal of Automobile Engineering, 2004, 218(11): 1269-1281.

DOI: 10.1243/0954407042580020

Google Scholar

[4] Akehurst S, Vaughan N D, Parker D A. The effect of lubricant temperature on the loss mechanisms associated with an automotive metal V-belt CVT[C]/2000 CEC/SAE International Spring Fuels and Lubricants Meeting and Exposition, Paris, France. 2000: 20121872.

Google Scholar

[5] Gerbert G. Skew V-belt pulleys[C]. International Conference on Continuously Variable Transmissions, CVT'96, Yokohama, Japan. 1996: 11212.

Google Scholar

[6] Ruan Zhongtang. The Design and Selection Guide of CVT of the Machine[M]. Bei Jing: Chemical Industry Press, 1999. 140-176.

Google Scholar

[7] Srivastava N, Haque I. Transient dynamics of the metal V-belt CVT: Effects of pulley flexibility and friction characteristics[J]. Journal of Computational and Nonlinear Dynamics. 2007, 2(1): 86-97.

DOI: 10.1115/1.2389233

Google Scholar