A correction method based on the simulation and experiment of side sled collision

In the context of conducting a side-impact collision test without side airbag for a specific vehicle model, an analysis of the injury value curve of the crash test dummy, when bench-marked against results from whole-vehicle testing, sled test and sled simulation, reveals two issues with the sled res...

Ամբողջական նկարագրություն

Մատենագիտական մանրամասներ
Հիմնական հեղինակներ: Pang, Yi, Wong, Shaw Voon, Han, Yong, As’arry, Azizan, Ahmad, Yahaya, Tan, Kean Sheng
Ձևաչափ: Հոդված
Լեզու:English
Հրապարակվել է: Institute of Electrical and Electronics Engineers 2024
Առցանց հասանելիություն:http://psasir.upm.edu.my/id/eprint/112904/1/112904.pdf
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author Pang, Yi
Wong, Shaw Voon
Han, Yong
As’arry, Azizan
Ahmad, Yahaya
Tan, Kean Sheng
author_facet Pang, Yi
Wong, Shaw Voon
Han, Yong
As’arry, Azizan
Ahmad, Yahaya
Tan, Kean Sheng
author_sort Pang, Yi
collection UPM
description In the context of conducting a side-impact collision test without side airbag for a specific vehicle model, an analysis of the injury value curve of the crash test dummy, when bench-marked against results from whole-vehicle testing, sled test and sled simulation, reveals two issues with the sled results: a delay in contact time and an excessively high peak value. This paper aims to analyze the problems arising from the simplification of the whole-vehicle model to the side-impact sled model. For the first time, these issues are addressed by correcting the sensor waveforms of the whole-vehicle test vehicle. Subsequently, by adjusting the input curves of the sled simulation model based on benchmarking the injury values of the side-impact sled dummy, a more accurate simulation of the dummy injury value curve is achieved compared to the experimental results. This approach represents an improvement in the substructure method for sled simulation, and its practicality and convenience have been validated through its application in a specific development vehicle project. The total score of the dummy injury in the experiment is 15.66, and the simulation is 15.76, the results are very close. The contact timing and peak value of chest, abdomen, and pelvis injury in the simulation are basically consistent with the experimental results. It offers a novel method for benchmarking dummy injuries, sled simulation, and sled testing in the context of side-impact collision condition, providing a new avenue for research and development in the automotive industry. © 2013 IEEE.
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spelling upm.eprints-1129042024-10-28T07:47:46Z http://psasir.upm.edu.my/id/eprint/112904/ A correction method based on the simulation and experiment of side sled collision Pang, Yi Wong, Shaw Voon Han, Yong As’arry, Azizan Ahmad, Yahaya Tan, Kean Sheng In the context of conducting a side-impact collision test without side airbag for a specific vehicle model, an analysis of the injury value curve of the crash test dummy, when bench-marked against results from whole-vehicle testing, sled test and sled simulation, reveals two issues with the sled results: a delay in contact time and an excessively high peak value. This paper aims to analyze the problems arising from the simplification of the whole-vehicle model to the side-impact sled model. For the first time, these issues are addressed by correcting the sensor waveforms of the whole-vehicle test vehicle. Subsequently, by adjusting the input curves of the sled simulation model based on benchmarking the injury values of the side-impact sled dummy, a more accurate simulation of the dummy injury value curve is achieved compared to the experimental results. This approach represents an improvement in the substructure method for sled simulation, and its practicality and convenience have been validated through its application in a specific development vehicle project. The total score of the dummy injury in the experiment is 15.66, and the simulation is 15.76, the results are very close. The contact timing and peak value of chest, abdomen, and pelvis injury in the simulation are basically consistent with the experimental results. It offers a novel method for benchmarking dummy injuries, sled simulation, and sled testing in the context of side-impact collision condition, providing a new avenue for research and development in the automotive industry. © 2013 IEEE. Institute of Electrical and Electronics Engineers 2024 Article PeerReviewed text en cc_by_nc_nd_4 http://psasir.upm.edu.my/id/eprint/112904/1/112904.pdf Pang, Yi and Wong, Shaw Voon and Han, Yong and As’arry, Azizan and Ahmad, Yahaya and Tan, Kean Sheng (2024) A correction method based on the simulation and experiment of side sled collision. IEEE Access, 12. pp. 45102-45111. ISSN 2169-3536 https://ieeexplore.ieee.org/document/10478007 10.1109/ACCESS.2024.3380813
spellingShingle Pang, Yi
Wong, Shaw Voon
Han, Yong
As’arry, Azizan
Ahmad, Yahaya
Tan, Kean Sheng
A correction method based on the simulation and experiment of side sled collision
title A correction method based on the simulation and experiment of side sled collision
title_full A correction method based on the simulation and experiment of side sled collision
title_fullStr A correction method based on the simulation and experiment of side sled collision
title_full_unstemmed A correction method based on the simulation and experiment of side sled collision
title_short A correction method based on the simulation and experiment of side sled collision
title_sort correction method based on the simulation and experiment of side sled collision
url http://psasir.upm.edu.my/id/eprint/112904/1/112904.pdf
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