Electric and Hybrid Vehicle TechnologiesHydraulic and Pneumatic SystemsBrake Systems and Friction Analysis

Lin Zhang, Sheng Liu, Yongliang Liu, Chao Wei, Jiandong Li

2026.3.18JOURNAL OF TRIBOLOGY-TRANSACTIONS OF THE ASME

DOI: 10.1115/1.4071417

tlooto Summary

Results demonstrate that increasing oil temperature or enlarging friction pair clearance reduces the critical rotational speed corresponding to the drag torque and power loss recovery point, thereby diminishing drag torque and power loss; conversely, increasing oil supply flow rate elevates this critical speed and exacerbates drag torque and power loss.

Abstract

Drag torque generated in disengaged wet clutches constitutes a critical factor causing power loss, efficiency reduction, and reliability issues in transmission systems. To achieve accurate prediction of drag torque and associated power losses, this study proposes a hybrid modeling approach integrating tribological mechanisms with machine learning. First, based on tribological principles, separate models were established: a viscous friction model for low-speed zones and an impact friction model for high-speed zones; simultaneously, a data-driven model was constructed using Multilayer Perceptron (MLP). Subsequently, inverse variance weighting was employed to fuse predictions from these mechanistic and MLP models through weighted integration, with the combined model demonstrating significantly superior accuracy over any single model. To further enhance performance, an Exponential Triangular Optimization (ETO) algorithm was introduced to optimize hyperparameters of the hybrid model, and experimental validation confirmed the model's reliability. Using the established model, systematic investigation was conducted on the influence patterns of oil temperature, friction pair clearance, and oil supply flow rate on drag torque and power loss. Results demonstrate that increasing oil temperature or enlarging friction pair clearance reduces the critical rotational speed corresponding to the drag torque and power loss recovery point, thereby diminishing drag torque and power loss; conversely, increasing oil supply flow rate elevates this critical speed and exacerbates drag torque and power loss.

Citation format

ZHANG, Lin, et al. Research on the drag torque and power loss characteristics of wet clutches based on a coupled tribological and machine learning model. JOURNAL OF TRIBOLOGY-TRANSACTIONS OF THE ASME, 2026, 148(9): 1–40.