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Assembly of spacecraft components based on adaptive compliance control
Journal of Tsinghua University (Science and Technology) 2023, 63(11): 1808-1819
Published: 15 November 2023
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Objective

The assembly of spacecraft components plays an important role in their production, and the quality and efficiency of assembly have a direct impact on the quality and efficiency of their production. Currently, spacecraft components are often constructed by hand, which results in low accuracy and efficiency. The aerospace industry's research focus is on utilizing robots to complete the assembly tasks of spacecraft components, which can improve the quality and efficiency of their production. The current assembly robots mostly use the position control mode, which measures the relative pose between the assembly features of two spacecraft components and then moves the robot to complete the robotic assembly tasks according to the measurement results. In this control mode, assembly errors are unavoidable due to measurement and robot motion errors, which will result in a huge contact force between the two contact surfaces of the spacecraft components. Excessive contact forces can damage the surface quality and coatings of spacecraft components, ultimately affecting their service lives. Therefore, the contact forces are required to be controlled by compliance control. The control parameters in the current study of compliance control are established based on the operator's experience, which is closely related to the contact forces. Because the spacecraft components are manufactured in small batches, pre-assembly cannot be used to determine the control parameters without damaging their surface quality and coatings. And improper control parameters can lead to uncontrolled contact forces.

Methods

To address this issue, a compliance control method is proposed in this paper based on the classical admittance control, which can adaptively adjust the control parameters according to the contact forces and system status. In this adaptive compliance control, the target pose and stiffness matrix are changed during the assembly process. This research examines the control effects of adaptive compliance, position, and classical admittance controls to validate the practicality of this strategy. Taking the control moment gyroscope (CMG) assembly task as an example, this research designs and develops a CMG robotic assembly prototype. The F/T sensor is installed between the CMG and the robot's end-effector to measure the contact forces during the assembly process. And Kalman filtering is utilized in this paper to filter the measurement noise of the F/T sensor.

Results

The position and orientation of the CMG were modified according to the adaptive compliance control presented in this study. After adjusting the position and orientation, the CMG's contact surface and the mounted base's contact surface were fitted together, and the contact forces of the two surfaces were guaranteed to be small.

Conclusions

The outcomes of the simulation and experiment results show that adaptive compliance control has advantages, including fast convergence, minimal residual contact force, and adaptive adjustment of the control parameters. Additionally, the adaptive compliance control suggested in this study can be quickly applied to various spacecraft component assembly tasks. This method establishes the theoretical and technical foundation for autonomous robotic assembly of spacecraft components and is expected to be employed for real-world spacecraft component assembly tasks.

Issue
Workspace Analysis of the 4RRR Planar Parallel Manipulator with Actuation Redundancy
Tsinghua Science and Technology 2010, 15(5): 509-516
Published: 01 October 2010
Abstract PDF (19 MB) Collect
Downloads:1

In order to overcome the drawbacks of 3RRR non-redundant parallel manipulators, a redundantly actuated planar parallel manipulator, the 4RRR manipulator, was examined. In the current study, three types of workspace were analyzed. In the analysis of the reachable workspace, the shape of the workspace of 4RRR PMs was illustrated, and the relationship between the parameters of parallel mechanisms (PMs) and this kind of workspace was discussed. In the analysis of the m-orientation workspace, a procedure for calculating this type of workspace was presented, and the relationship between this type of workspace and the requirement of rotational displacement was revealed. In the analysis of the nonsingular workspace, the singularity of 4RRR PMs was discussed, the boundary of the singularity was illustrated, and a scheme to maximize the nonsingular workspace was presented. Depicting the properties of 4RRR PMs from different perspectives, the analyses of these three kinds of workspace can serve as helpful references for the structure design and mechanism control of 4RRR PMs.

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