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September 10, 2025IEEE Transactions on Cybernetics27 citations

Minimum Operator-Based Data-Driven Sliding Mode Control for a Magnetorheological Fluid Dual Clutch

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MHMingdong HouJZJin ZhaoJTJie Tian

Key Points

  • The proposed method significantly enhances torque tracking performance in MRFDC, demonstrating effectiveness across different driving conditions.
  • Using a data-driven model, the approach effectively handles hysteresis and nonlinearity, ensuring precise control during gear shifting.
  • Experimental validation confirms that the sliding mode control strategy provides consistent results in both transient and steady state operations.
  • The elimination of model dependence simplifies control strategy synthesis, making it more accessible for practical applications.

Abstract

The control of magnetorheological fluid dual clutch (MRFDC) has been challenging due to their modeling challenges, high complexity, strong nonlinearity, and rate-dependent hysteresis, especially in the transient states in which they are supposed to perform gear shifting and traction tracking. Motivated by this, this article presents a data-driven discrete-time sliding mode control (DSMC) approach for the transmission torque control of the MRFDC. This control method eliminates the model dependence and simplifies the control strategy synthesis by employing a compact form DL data model, which is constructed from real-time output torque and input current measurements of the MRFDC. Furthermore, based on the proposed data model, the DSMC is employed based on a MO sliding mode reaching law to deal with the rate-dependent hysteresis and nonlinearity of the MRFDC. Experimental studies validate that the presented control method provides satisfactory torque tracking performance in both transient and steady states.

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Cite This Study

Hou et al. (2025) studied this question.

synapsesocial.com/papers/68c1d22854b1d3bfb60f76b2https://doi.org/10.1109/tcyb.2025.3596063
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