Claim Missing Document
Check
Articles

Found 2 Documents
Search

Modeling and Analysis of Vibration Amplitude Reduction in In-Wheel Electric Vehicle Using a Regenerative Tune Mass Damper (TMD) Margiasih Liana; I Kadek Warjaya
Indonesian Journal of Engineering, Science and Technology Vol. 3 No. 1 (2026): VOL. 03 NO. 01 (JUNE 2026)
Publisher : Universitas Muhammadiyah Lamongan

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.38040/ijenset.v3i1.1496

Abstract

This is a digest of the paper. One of the features of in-wheel electric vehicles is an increase in unsprung mass due to the integration of the motor into the wheel. It’s resulting in both increased vibration amplitude and reduced Vehicle comfort and stability. The purpose of this study is to model and analyze the reduction in vibration amplitude in the suspension system of in-wheel electric vehicles using an electromagnetic-based Regenerative Tuned Mass Damper (TMD). A dynamic model was developed using the quarter-car approach and transformed to state-space form for simulation in MATLAB. The parameters used were TMD masses of 5 to 15 kg with an increase of 1 kg, with road excitation testing conducted using a sinusoidal wave with an amplitude of 0.02 m and a frequency of 5 Hz. The results were then evaluated based on the Root Mean Square (RMS) value of vehicle unsprung mass acceleration as an indicator of vibration-damping performance. The results show that implementing TMD improves vibration attenuation compared to the baseline system, increasing vibration reduction from 16.97% to 18.81%. The system performs best at a TMD mass of around 8 kg, while achieves maximal damping effectiveness. However, increasing TMD mass beyond the ideal point decreases vibration attenuation efficacy, indicating a detuning impact between the TMD and the primary system. In contrast, the regenerative TMD generates electrical energy that increases with mass, with output power increasing from 5.04 W to 11.17 W. This study contributes to the development of adaptive suspension system designs to minimize the risk of failure at the in-wheel motor of electric vehicles while generating energy recovery.
Performance of A Regenerative Tuned Mass Damper for An Electric Vehicle Under Varying Road Condition I Kadek Warjaya; Margiasih Putri Liana; Muhammad Jauharul Wafi Taqiyyudin; Achmad Bahrul Ulum
Jurnal Teknik Ilmu dan Aplikasi Vol. 7 No. 02 (2026): Jurnal Teknik Ilmu dan Aplikasi
Publisher : Politeknik Negeri Malang

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.33795/jtia.v7i02.10057

Abstract

In-wheel motor (IWM) systems in electric cars increase unsprung mass, which can have a detrimental effect on ride comfort and vehicle stability even though they enhance powertrain efficiency. The effectiveness of a Regenerative Tuned Mass Damper (RTMD) incorporated into an electric car suspension system under various road conditions is examined in this study through a numerical simulation approach. In order to assess vibration attenuation and energy regeneration performance under urban and rural road profiles, a quarter-car model with an electromagnetic energy harvesting circuit was created in MATLAB/Simulink. The Root Mean Square (RMS) acceleration of the sprung mass, along with the generated voltage, current, and electrical power output, were used to evaluate the RTMD performance. The findings demonstrate that under both road conditions, the suggested RTMD efficiently enhances vibration attenuation while concurrently harvesting electrical energy. With maximum vibration attenuations of 8.20% and 19.62%, respectively, the ideal RTMD mass for vibration reduction was 9 kg for the urban road profile and 13 kg for the rural road profile. Road roughness has a bigger impact on energy harvesting capabilities than vibration attenuation performance, as seen by the maximum collected power of 9.35 W under urban road circumstances and 126.72 W under rural road conditions. The absorber mass that maximised vibration attenuation was different from the absorber mass that produced the highest power output, indicating a trade-off between vibration suppression and electrical power generation. All things considered, the suggested RTMD shows great promise as a passive suspension augmentation technique that can both increase ride comfort and collect electrical energy from suspension vibrations in electric cars.