Abstract
Rubber shock absorbers are widely used to reduce vibration in aerospace load devices due to their high damping characteristics. However, due to the material nonlinearity of rubber and high temperature, the accurate numerical simulation and practical application of rubber shock absorbers face difficulties and challenges. In this paper, taking a T-type rubber shock absorber as an example, according to the correlation data obtained from the performance test of rubber materials, a constitutive model of rubber materials is established for its hyperelasticity-viscoelasticity simulation analysis. On this basis, the rubber shock absorber was used to carry out the numerical simulation and experimental verification of an Unmanned Aerial Vehicle (UAV) Light Detection And Ranging (LiDAR). The results show that when the rubber constitutive model is used for simulation analysis, the obtained acceleration response curve on the UAV LiDAR is in good agreement with the test results, which effectively confirms the accuracy of the numerical simulation, and successfully verifies that the rubber shock absorber is suitable for vibration reduction of UAV LiDAR. At the same time, this method also provides a practical and effective solution for the vibration reduction design of rubber shock absorbers.
Funder
State Key Laboratory of Robotics
National Natural Science Foundation of China
Liao Ning Revitalization Talents Program
Natural Science Foundation of Liaoning Province
Chinese Academy of Science Youth Innovation Promotion Association
Development Fund of Space Automation Technology Laboratory, SIA, CAS
Subject
Control and Optimization,Control and Systems Engineering
Reference32 articles.
1. A Distributed-order Maxwell Constitutive Model for Vibration Isolation SR and its Shock Response;Mech. Sci. Technol. Aerosp. Eng.,2021
2. Study on Rationality of Fractional Derivative Constitutive Model of Rubber Viscoelasticity;J. Kunming Univ.,2020
3. The Calculation and Test for a MRD Vibration Isolation System Based on a Modified Ogden Material Model;Spacecr. Environ. Eng.,2017
4. Finite Element Analysis of Rubber Material Based on Mooney-Rivlin Model and Yeoh Model;Synth. Rubber Ind.,2020
5. Classification and Unified Phenomenological Modeling of Complex Uniaxial Rate-Independent Hysteretic Responses;Mech. Syst. Signal Process.,2023
Cited by
4 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献