摘要
为了准确识别玄武岩纤维树脂混凝土(Basalt fiber folymer concrete,BFPC)固定结合面虚拟材料参数,基于两自由度弹簧-阻尼动力学模型建立了BFPC固定结合面动态模型,在此基础上辅以实验测试方法确定了9组不同表面粗糙度和结合面压下的BFPC结合面动态特性参数。基于横观各向同性、赫兹接触理论和分形理论建立了BFPC结合面虚拟材料的动态特性参数数学模型,结合实验结果识别不同表面粗糙度和结合面压下的虚拟材料参数。通过对比含有BFPC结合面的组件模态振型和固有频率理论分析和有限元仿真分析结果,证明了BFPC结合面虚拟材料参数识别方法的正确性。
In order to accurately identify the virtual material parameters of the fixed joint interface of basalt fiber polymer concrete(BFPC),based on the two degree of freedom system spring-damping dynamic models,the dynamics characteristics parameter mathematical model for the fixed joint surfaces of the BFPC was established,and the dynamics characteristics parameter of the BFPC joint surfaces under different surfaces roughness and pressures of the 9 sets are determined by the experiments.The dynamic characteristic parameter model for the virtual material of the BFPC joint surfaces was established in terms of the transversely isotropic Hertz contact theory and the fractal theory of the fixed joint surfaces,and the parameters of the virtual materials under different surface roughness and joint pressures were identified by combining the experimental results.The correctness of the identification method of the virtual material parameters of the BFPC fixed joint surface is proved by comparing the principal and natural frequency theoretical analysis and the finite element simulation analysis result of the BFPC combination surface model.
作者
徐平
曹泉
于英华
沈佳兴
郑思贤
XU Ping;CAO Quan;YU Yinghua;SHEN Jiaxing;ZHENG Sixian(School of Mechanical Engineering,Liaoning Technical University,Fuxin 123000,Liaoning,China;Research Institute of Technology and Equipment for the Exploitation and Utilization of Mineral Resources,Liaoning Technical University,Fuxin 123000,Liaoning,China)
出处
《机械科学与技术》
CSCD
北大核心
2021年第8期1305-1312,共8页
Mechanical Science and Technology for Aerospace Engineering
基金
国家自然科学基金项目(51375219)
辽宁省教育厅项目(LJ2019JL030)。
关键词
玄武岩纤维树脂混凝土
结合面
动态特性参数
虚拟材料
实验测试
仿真分析
basalt fiber polymer concrete
joint interface
dynamic characteristic parameters
virtual material
experimental test
simulation analysis