Design, dynamic modelling and experimental study on a tether-net system for active debris removal

IF 4.5 1区 工程技术 Q1 ENGINEERING, MECHANICAL
Chenchen Wu , Pengyuan Zhao , Pengxu Chen , Zhiyu Ni , Shuai Yue , Liang Li , Dingguo Zhang , Guangbo Hao
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引用次数: 0

Abstract

The tether-net capture is considered to be a promising technology for active debris removal, due to its advantages of low cost, large capture range, and high stability. In this paper, we aim to address problems of mechanism design, dynamic modeling and experimental verification for a tether-net capture system. A compact tether-net capture system is initially designed. An improved dynamic model considering torsion of the tether-net capture system is innovatively developed on the basis of the concentrated mass method and the Kelvin–Voigt model. A collision detection model is followed to examine the collision between multiple objects and to determine the contact force. Additionally, the tether-net deployment and object capture are simulated, and a dragging simulation of the assembly of the tether-net capture system and the space debris is conducted using this model. Finally, ground tests for vertically and horizontally capturing a balloon are performed. The simulation results demonstrate that the improved model is accurate to describe the dynamic characteristics of the tether-net capture system. The prototype shows a capability to successfully capture objects.
主动碎片清除系绳网系统的设计、动力学建模和实验研究
绳网捕集具有成本低、捕集范围大、稳定性高等优点,被认为是一种很有前途的主动碎片清除技术。在本文中,我们旨在解决绳网捕获系统的机构设计,动态建模和实验验证问题。初步设计了一种紧凑的系绳网捕获系统。在集中质量法和Kelvin-Voigt模型的基础上,创新性地建立了考虑绳网捕获系统扭转的改进动力学模型。采用碰撞检测模型来检测多物体之间的碰撞并确定接触力。在此基础上,对绳网展开和目标捕获过程进行了仿真,并利用该模型对绳网捕获系统与空间碎片的装配进行了拖拽仿真。最后,进行了垂直和水平捕获气球的地面测试。仿真结果表明,改进后的模型能够准确地描述绳网捕获系统的动态特性。原型机显示了成功捕获物体的能力。
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来源期刊
Mechanism and Machine Theory
Mechanism and Machine Theory 工程技术-工程:机械
CiteScore
9.90
自引率
23.10%
发文量
450
审稿时长
20 days
期刊介绍: Mechanism and Machine Theory provides a medium of communication between engineers and scientists engaged in research and development within the fields of knowledge embraced by IFToMM, the International Federation for the Promotion of Mechanism and Machine Science, therefore affiliated with IFToMM as its official research journal. The main topics are: Design Theory and Methodology; Haptics and Human-Machine-Interfaces; Robotics, Mechatronics and Micro-Machines; Mechanisms, Mechanical Transmissions and Machines; Kinematics, Dynamics, and Control of Mechanical Systems; Applications to Bioengineering and Molecular Chemistry
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