Design of cam-linkage combined mechanism based on Fourier series
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1.College of Mechanical and Electrical Engineering, Shihezi University, Shihezi, Xinjiang 832003, China;2.Xinjiang Production and Construction Corps Key Laboratory of Modern Agricultural Machinery, Shihezi, Xinjiang 832003, China;3.Key Laboratory of Northwest Agricultural Equipment, Ministry of Agriculture and Rural Affairs, Shihezi, Xinjiang 832003, China;4.School of Mechanical Engineering, Hunan University of Technology, Zhuzhou, Hunan 412000, China;5.School of Mechanical Engineering, Ningxia University, Yinchuan, Ningxia 750021, China

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    Abstract:

    Objective To enhance the motion smoothness and reliability of cam-linkage combined mechanisms under high-speed operating conditions and to investigate a cam profile design method based on Fourier series.Methods This study derives the motion law expression of a cam-linkage combined mechanism through the Fourier series expansion theory and analyzes the influence of initial parameters on motion characteristics. Taking the lifting mechanism of packaging machinery as an example, the study employs MATLAB for cam profile curve design based on Fourier series and validates the basic dimensions and motion and dynamic performance of the cam.Results When the Fourier series expansion order k is 15, motion accuracy and acceleration fluctuations can be effectively balanced. The designed cam profile curve is continuous and impact-free with a maximum pressure angle of 41.39° and a minimum curvature radius of 5.42 mm. Both the velocity and acceleration curves meet the requirements for high-speed operation.Conclusion The method simplifies the design process by applying Fourier series expansion with a single motion law, eliminating the complexity of segmented calculations. It significantly improves the stability and dynamic performance of cam-linkage mechanisms under high-speed conditions.

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谭镕镫,杨宏飞,李文元,等.基于傅里叶级数的凸轮连杆组合机构设计[J].食品与机械英文版,2025,41(3):94-99.

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History
  • Received:January 08,2025
  • Revised:March 02,2025
  • Adopted:
  • Online: April 25,2025
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