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Modeling and Analysis of Truck Mounted Concrete Pump Boom by Virtual Prototyping

机译:车载混凝土泵臂动臂的虚拟样机建模与分析

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摘要

By far there is lack of research on different working conditions between rigid and flexible dynamics of truck mounted concrete pump booms. First a 3D model has been established by using virtual prototyping technology of a 37 m long boom in Pro/Engineering software. Then the rigid body simulation model has been built. Next modal superimposition method is adopted to change the 4 rigid body booms into flexible ones. Kinematics law and dynamic characteristics of 4 common working conditions had been studied then. Next tip displacement and the first boom hydraulic cylinder force of the 4 working conditions between rigid and flexible models have been researched. Furthermore the first natural frequencies of the structure have been calculated. The results show that the frequency of the horizontal condition has the lowest of all and the roof condition has the largest of all. Besides the cylinder forces of the flexible model are larger than the corresponding rigid ones because of the flexible boom vibration. Finally an experiment has been done on a boom test rig which proved that the established simulation model is reasonable and the frequency results are correct. All of these provide design reference to mechanical manipulator as well as reducing product development cost of such mechanism.
机译:迄今为止,在卡车安装的混凝土泵动臂的刚性和柔性动力之间的不同工作条件上缺乏研究。首先,在Pro / Engineering软件中使用37 m长的吊杆的虚拟样机技术建立了3D模型。然后建立了刚体仿真模型。接下来采用模态叠加方法将4个刚体动臂变为柔性动臂。然后研究了四种常见工况的运动规律和动态特性。研究了刚性和柔性模型在4种工况下的下尖端位移和第一臂杆液压缸力。此外,已经计算出该结构的第一固有频率。结果表明,水平条件的频率最低,而屋顶条件的频率最高。此外,由于动臂的振动,柔性模型的缸力要大于相应的刚性力。最后在动臂试验台上进行了实验,证明所建立的仿真模型合理,频率结果正确。所有这些都为机械手提供了设计参考,并降低了这种机构的产品开发成本。

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  • 来源
    《Journal of robotics》 |2017年第2017期|9182143.1-9182143.10|共10页
  • 作者单位

    School of Biomedical Engineering, Xinxiang Medical University, Xinxiang, Henan 453003, China,State Key Laboratory for High Performance Complex Manufacturing Central South University, Changsha, Hunan 410083, China;

    School of Biomedical Engineering, Xinxiang Medical University, Xinxiang, Henan 453003, China;

    School of Biomedical Engineering, Xinxiang Medical University, Xinxiang, Henan 453003, China;

    School of Biomedical Engineering, Xinxiang Medical University, Xinxiang, Henan 453003, China;

    Hunan Special Equipment Inspection and Testing Research Institute, Zhangjiajie Branch, Zhangjiajie, Hunan 427000, China;

    School of Biomedical Engineering, Xinxiang Medical University, Xinxiang, Henan 453003, China;

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