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Acta Armamentarii ›› 2023, Vol. 44 ›› Issue (10): 2920-2931.doi: 10.12382/bgxb.2022.0581

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Prognosticating Remaining Useful Life of Electro-Mechanical Actuators Using a Multi-mode Transformer Model

CHEN Zihan*()   

  1. Institute of Remote Sensing Satellite, China Academy of Space Technology, Beijing 100094, China
  • Received:2022-06-30 Online:2023-10-30
  • Contact: CHEN Zihan

Abstract:

Electro-mechanical actuators play an important role in next-generation spacecraft. To address the challenge of predicting the remaining useful life of electro-mechanical actuators, a failure prognostic algorithm based on a multi-mode Transformer model is proposed. Multi-channel sensor data are directly used as inputs to the Transformer model without feature extraction as a pre-processing step. The multi-mode Transformer uses multi-head attention to adaptively learn global features from various representation subspaces. The Encoder of the Transformer is utilized to extract features from different sensors across the time series in parallel and predict the remaining useful life directly. Simultaneously, the full Transformer, composed of an Encoder and a Decoder, is used to prognosticate key performance parameters of electro-mechanical actuators. A benchmark dataset is used to validate the effectiveness of the proposed model for electro-mechanical actuator failure prognostication. Experimental results reveal its advantage in accurate prediction and failure prognosis.

Key words: electro-mechanical actuator, failure prognostic, multimode data, attention mechanism

CLC Number: