Yan Yao, Liu Yang, Páez Chávez Joseph, Zonta Florent, Yusupov Azat
1School of Aeronautics and Astronautics, University of Electronic Science and Technology of China, Chengdu, 611731 China.
2College of Engineering Mathematics and Physical Sciences, University of Exeter, Rennes Drive, Exeter, EX4 4RN UK.
Meccanica. 2018;53(8):1997-2012. doi: 10.1007/s11012-017-0801-3. Epub 2017 Nov 22.
This paper studies the prototype development for the self-propelled capsule system which is driven by autogenous vibrations and impacts under external resistance forces. This project aims for proof-of-concept of its locomotion in pipeline environment in order to mitigate the technical complexities and difficulties brought by current pressure-driven pipeline inspection technologies. Non-smooth multibody dynamics is applied to describe the motion of the capsule system, and two non-smooth nonlinearities, friction and impact, are considered in modelling. The prototype of the self-propelled capsule system driven by a push-type solenoid with a periodically excited rod has been designed to verify the modelling approach. The prototype contains a microcontroller, a power supply, and a wireless control module, which has been tested in a clear uPVC pipe via remote control. Various control parameters, e.g. impact stiffness, frequency and amplitude of excitation, are studied experimentally, and finally, the fastest progression of the system is obtained.
本文研究了一种自驱动胶囊系统的原型开发,该系统由自身振动驱动,并在外部阻力作用下产生冲击。该项目旨在验证其在管道环境中运动的概念,以减轻当前压力驱动管道检测技术带来的技术复杂性和困难。应用非光滑多体动力学来描述胶囊系统的运动,并在建模中考虑了摩擦和冲击这两种非光滑非线性因素。设计了一种由带有周期性激励杆的推式螺线管驱动的自驱动胶囊系统原型,以验证建模方法。该原型包含一个微控制器、一个电源和一个无线控制模块,已通过遥控在透明的uPVC管中进行了测试。通过实验研究了各种控制参数,如冲击刚度、激励频率和振幅,最终获得了系统的最快行进速度。