Torque Measurement and Control for Electric-Assisted Bike Considering Different External Load Conditions

Author:

Ho Ping-Jui1,Yi Chen-Pei1,Lin Yi-Jen1ORCID,Chung Wei-Der2,Chou Po-Huan2,Yang Shih-Chin1

Affiliation:

1. Department of Mechanical Engineering, National Taiwan University, Taipei 106319, Taiwan

2. Industrial Technology Research Institute (ITRI), Hsinchu 310401, Taiwan

Abstract

This paper proposes a novel torque measurement and control technique for cycling-assisted electric bikes (E-bikes) considering various external load conditions. For assisted E-bikes, the electromagnetic torque from the permanent magnet (PM) motor can be controlled to reduce the pedaling torque generated by the human rider. However, the overall cycling torque is affected by external loads, including the cyclist’s weight, wind resistance, rolling resistance, and the road slope. With knowledge of these external loads, the motor torque can be adaptively controlled for these riding conditions. In this paper, key E-bike riding parameters are analyzed to find a suitable assisted motor torque. Four different motor torque control methods are proposed to improve the E-bike’s dynamic response with minimal variation in acceleration. It is concluded that the wheel acceleration is important to determine the E-bike’s synergetic torque performance. A comprehensive E-bike simulation environment is developed with MATLAB/Simulink to evaluate these adaptive torque control methods. In this paper, an integrated E-bike sensor hardware system is built to verify the proposed adaptive torque control.

Funder

National Taiwan University, Taiwan, R.O.C.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

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1. Cargo E-Bike Robust Speed Control Using an MPC Battery Thermal Lumped Model Approach;Strojniški vestnik - Journal of Mechanical Engineering;2024-08-28

2. Data-driven model predictive control using road-based disturbance estimations in longitudinal driving of e-bike;Journal of the Brazilian Society of Mechanical Sciences and Engineering;2024-03-12

3. Enhancing Urban Mobility with Self-Tuning Fuzzy Logic Controllers for Power-Assisted Bicycles in Smart Cities;Sensors;2024-02-28

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5. Pedal Assist Torque Performance of Electric Bikes Driven by BLDC Motors on Uphill Roads;2023 6th International Conference of Computer and Informatics Engineering (IC2IE);2023-09-14

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