Dynamic characteristics of a compliant seat coupled with the human body and a manikin during the exposure to the whole-body vibration: effect of the polyurethane foam, the track position and the measurement location.

Acta of bioengineering and biomechanics Pub Date : 2025-01-28 Print Date: 2024-06-01 DOI:10.37190/abb-02452-2024-02
Xiaolu Zhang, Sen Lin, Xichen Song, Chi Liu, Yi Qiu
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Abstract

Transmissibility is used to assess dynamic responses of the occupant-seat system, and most studies have exclusively assessed the transmissibility from the floor to the cushion or the backrest surface with the human body. In this investigation, the vertical vibration transmitted from the floor to six specific locations both on the seat surface and the frame when the seat was fixed on three positions on the track was examined utilizing an SAE J826 manikin and 12 male adults (0.25 to 20 Hz) for a duration of 120 seconds at three vibration amplitudes. The transmissibility from the floor to the headrest frame, the cushion surface, the headrest surface, the seat back frame, and the seat back surface all exhibited a principal peak frequency within 4-5 Hz. With the exception of the cushion frame, the principal peak frequency and the peak transmissibility in transmissibilities to all positions decreased with increasing vibration amplitude, indicating the non-linearity within the occupant-seat system. It was also found modifying seat track positions minimally affected the seat transmissibility to either the surface or the frame of the seat. Polyurethane foam amplified vibration at peak frequency, simultaneously enhancing static sitting comfort and reducing the vertical vibration transmission above peak frequency.

柔性座椅与人体及人体模型在全身振动作用下的动态特性:聚氨酯泡沫塑料、轨迹位置和测量位置的影响。
传递性用于评估乘员座椅系统的动态响应,大多数研究只评估了从地板到坐垫或靠背表面的人体传递性。在这项研究中,当座椅固定在轨道上的三个位置时,利用SAE J826人体模型和12名男性成年人(0.25至20 Hz)在三种振动幅度下持续120秒,研究了从地板到座椅表面和框架上六个特定位置的垂直振动。从地板到头枕框架、坐垫表面、头枕表面、椅背框架和椅背表面的传递率均表现出主峰值频率在4-5 Hz以内。除缓冲架外,主峰值频率和各位置传递率的峰值传递率随振动幅值的增加而减小,表明乘员座椅系统存在非线性。还发现修改座椅轨道位置对座椅表面或座椅框架的传导性影响最小。聚氨酯泡沫放大了峰值频率处的振动,同时增强了静态坐姿舒适性,减少了峰值频率以上的垂直振动传递。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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