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Dynamic performance reliability analysis of rolling linear guide under parameter uncertainty

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Abstract

This paper presents a dynamic reliability analysis method of rolling linear guide considering the uncertainty of geometric parameters. A three degree of freedom (DOF) dynamic motion model of rolling linear guide that considers the complexity of the actual load is established. In order to improve the accuracy of reliability evaluation, interval model is used to express the uncertainty of geometric parameters. The reliability range of dynamic response is determined according to the accuracy grade of rolling linear guide. The interval reliability calculation method is used to analyze and calculate the horizontal and vertical dynamic reliability of rolling linear guide. Then, the comprehensive dynamic reliability of rolling linear guide is obtained. Finally, the dynamic reliability of the SHS-45R rolling linear guide is analyzed by using the reliability evaluation method described in this paper. And the validity and accuracy of the result is demonstrated by comparing with the Monte Carlo simulation.

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Acknowledgments

This work was supported by the National Natural Science Foundation of China [Grant numbers 51705048 and 51835001].

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Correspondence to Yan Ran.

Additional information

Li Jian is currently pursuing the Ph.D. degree in Mechanical Engineering with Chongqing University. His research interests include reliability technology, failure analysis of CNC machine tool, and advanced manufacturing technology.

Ran Yan is currently a lecturer at Chongqing University, a fixed researcher at the State Key Laboratory of Mechanical Transmission, Chongqing University, a member of the Chongqing Science and Technology Association and a member of the National Association of Basic Research on Interchangeability and Measurement Technology. Her research interests include mechatronic product reliability technology and modern quality engineering.

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Li, J., Ran, Y., Wang, H. et al. Dynamic performance reliability analysis of rolling linear guide under parameter uncertainty. J Mech Sci Technol 34, 4525–4536 (2020). https://doi.org/10.1007/s12206-020-1012-8

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  • DOI: https://doi.org/10.1007/s12206-020-1012-8

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