Grouping Neural Network-Based Smith PID Temperature Controller for Multi-Channel Interaction System

Author:

Li Fubing1ORCID,Yang Linhao1ORCID,Ye Ao1ORCID,Zhao Zongmin1ORCID,Shen Bingxia1ORCID

Affiliation:

1. School of Information and Communication Engineering, Beijing Information Science and Technology University, Beijing 102206, China

Abstract

The thermal vacuum test (TVT) is an important verification process in the development of spacecraft and load. There are often multiple temperature points on the device under test (DUT) that require control. The interaction among multiple channels poses a challenge for temperature control in the TVT. To solve this problem, a multi-channel Smith proportional–integral–derivative (PID) controller based on a grouping neural network (Grouping-NN) is proposed. Firstly, the mathematical derivation for a typical multi-channel temperature control model of the TVT is carried out. Then, the multi-channel interaction system is identified using a Grouping-NN to predict the output temperature of each channel by grouping the hidden layer neurons according to the number of channels. Finally, two Grouping-NNs are utilized to update the Smith predictor, and the time-delay error is fed back to the PID controller, which is used to optimize the control effect of the multi-channel interaction system under high time delay. The proposal is compared with the traditional PID controller and Smith predictor-based PID controller through simulation. The simulation results show that the proposed method has better suppression of overshooting. In addition, the algorithm is verified by controlling the temperature of six channels in a practical thermal vacuum test.

Funder

Beijing Natural Science Foundation

Publisher

MDPI AG

Reference27 articles.

1. The application and the development trend of the measurement and control system in the spacecraft vacuum thermal test;Zhang;Spacecr. Environ. Eng.,2012

2. Effectiveness of low-cost thermal vacuum tests of a micro-satellite;Almeida;Acta Astronaut.,2006

3. Enhancing Temperature Control Method of Thermal Vacuum Chamber for Satellite Testing Using Optimization Algorithm: A Review;Salleh;J. Teknol.,2016

4. Experimental and numerical investigations of an open-cell copper foam (OCCF)/phase change material (PCM) composite-based module for satellite avionics thermal management in a thermal vacuum chamber (TVC);Elshaer;J. Energy Storag.,2024

5. Temperature transition optimization in cryogenic systems: Application to liquid nitrogen expenditure reduction in a thermal vacuum chamber case study;Werkhausen;Appl. Therm. Eng.,2024

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