介绍了微重力模拟实验系统的特点,归纳了研究中的关键问题.总结了主要实现方法,包括:基于自由落体运动、基于抛物线飞行、气浮式、水浮式、吊丝配重式实验系统,以及硬件在环内(hardware in loop)的混合地面实验系统.讨论、比较了各种实...介绍了微重力模拟实验系统的特点,归纳了研究中的关键问题.总结了主要实现方法,包括:基于自由落体运动、基于抛物线飞行、气浮式、水浮式、吊丝配重式实验系统,以及硬件在环内(hardware in loop)的混合地面实验系统.讨论、比较了各种实验系统的应用背景及优缺点;在此基础上,提出了动力学模拟与运动学等效的两种思想,并建立了实验系统,以对路径规划、控制等关键算法进行评估和验证.展开更多
Retinal surgery continues to be one of the most technical demanding surgeries for its high manipulation accuracy requirement, small and constrained workspace, and delicate retinal tissue. Robotic systems have the pote...Retinal surgery continues to be one of the most technical demanding surgeries for its high manipulation accuracy requirement, small and constrained workspace, and delicate retinal tissue. Robotic systems have the potential to enhance and expand the capabilities of surgeons during retinal surgery. Thus, focusing on retinal vessel bypass surgery, a master-slave robot system is developed in this paper. This robotic system is designed based on characteristics of retinal vascular bypass surgery and analysis of the surgical workspace in eyeball. A novel end-effector of two degrees of freedom is designed and a novel remote center of motion mechanism is adopted in the robot structure.The kinematics and the mapping relationship are then established, the gravity compensation control strategy and the hand tremor elimination algorithm are applied to achieve the high motion accuracy. The experiments on an artificial eyeball and an in vitro porcine eye are conducted, verifying the feasibility of this system.展开更多
To eliminate the load weight limit of carrier rockets and reduce the burden on support structures,in-orbit assembly is a key technology to make design of scattering a large diameter telescope into submirror modules,wh...To eliminate the load weight limit of carrier rockets and reduce the burden on support structures,in-orbit assembly is a key technology to make design of scattering a large diameter telescope into submirror modules,which requires smooth operation of assembly robots,and flexible force control technology is necessary. A ground demonstration system is presented for in-orbit assembly focusing on flexible force control. A six-dimensional force/torque sensor and its data acquisition system are used to compensate for gravity. For translation and rotation,an algorithm for flexible control is proposed. A ground transportation demonstration verifies accuracy and smoothness of flexible force control,and the transportation and assembly task is completed automatically. The proposed system is suitable for the development of in-orbit assembly robots.展开更多
文摘介绍了微重力模拟实验系统的特点,归纳了研究中的关键问题.总结了主要实现方法,包括:基于自由落体运动、基于抛物线飞行、气浮式、水浮式、吊丝配重式实验系统,以及硬件在环内(hardware in loop)的混合地面实验系统.讨论、比较了各种实验系统的应用背景及优缺点;在此基础上,提出了动力学模拟与运动学等效的两种思想,并建立了实验系统,以对路径规划、控制等关键算法进行评估和验证.
基金Supported by National Natural Science Foundation of China(Grant Nos.50675008,51175013)National Hi-tech Research and Development Program of China(863 Program,Grant No.2017YFB1302702)
文摘Retinal surgery continues to be one of the most technical demanding surgeries for its high manipulation accuracy requirement, small and constrained workspace, and delicate retinal tissue. Robotic systems have the potential to enhance and expand the capabilities of surgeons during retinal surgery. Thus, focusing on retinal vessel bypass surgery, a master-slave robot system is developed in this paper. This robotic system is designed based on characteristics of retinal vascular bypass surgery and analysis of the surgical workspace in eyeball. A novel end-effector of two degrees of freedom is designed and a novel remote center of motion mechanism is adopted in the robot structure.The kinematics and the mapping relationship are then established, the gravity compensation control strategy and the hand tremor elimination algorithm are applied to achieve the high motion accuracy. The experiments on an artificial eyeball and an in vitro porcine eye are conducted, verifying the feasibility of this system.
基金Supported by the National Natural Science Foundation of China(No.11672290)
文摘To eliminate the load weight limit of carrier rockets and reduce the burden on support structures,in-orbit assembly is a key technology to make design of scattering a large diameter telescope into submirror modules,which requires smooth operation of assembly robots,and flexible force control technology is necessary. A ground demonstration system is presented for in-orbit assembly focusing on flexible force control. A six-dimensional force/torque sensor and its data acquisition system are used to compensate for gravity. For translation and rotation,an algorithm for flexible control is proposed. A ground transportation demonstration verifies accuracy and smoothness of flexible force control,and the transportation and assembly task is completed automatically. The proposed system is suitable for the development of in-orbit assembly robots.