Key Laboratory of Traffic Safety on Tracks, Ministry of Education, School of Traffic & Transportation Engineering, Central South University, Changsha 410075, China.
Joint International Research Laboratory of Key Technology for Rail Traffic Safety, Central South University, Changsha 410075, China.
Int J Environ Res Public Health. 2019 Apr 10;16(7):1283. doi: 10.3390/ijerph16071283.
Ear complaints induced by interior pressure transients are common experiences for passengers and crew members when high-speed trains are passing through tunnels. However, approaches to assessing the risks of the pressure-related aural discomfort have not been reported until recently. The objective of this study was to evaluate the hazards of interior pressure transients of high-speed train on human ears combining the effects of operation speed and seal index. Moving model tests were conducted to obtain the pressure transients when the model train runs in the tunnel. The recorded data were transformed into the interior pressures by empirical formula. Furthermore, the aural sensations were divided into four levels hierarchically and the range for each level was derived by logistic regression analysis method and represented by three biomechanical metrics. Furthermore, a human middle ear finite element (FE) model was used to simulate its dynamics under the interior pressures. The results indicate that lifting operation speed from 250 km/h to 350 km/h in tunnel will prolong the duration of ear complaints by more than two times whereas improving the seal index from 4 s to 12 s will reduce the incidences of the onset of tinnitus and hearing loss by more than ten times. In addition, the duration of aural comfort shortens from the head car to the tail car against the running direction. It is desirable that enhancing the seal index improve the aural sensations of the passengers and crew members considering the lifting operation speed of high-speed train.
当高速列车通过隧道时,乘客和机组人员会经常遇到由内部压力瞬变引起的耳朵不适。然而,直到最近,才有人提出评估与压力相关的耳部不适风险的方法。本研究的目的是结合运行速度和密封指数,评估高速列车内部压力瞬变对人耳的危害。进行了移动模型测试,以获得模型列车在隧道中运行时的压力瞬变。通过经验公式将记录的数据转换为内部压力。此外,将听觉感觉分为四个层次,并通过逻辑回归分析方法推导出每个层次的范围,并由三个生物力学指标表示。此外,还使用人中耳有限元(FE)模型来模拟其在内部压力下的动力学。结果表明,在隧道中将运行速度从 250km/h 提高到 350km/h 将使耳朵不适的持续时间延长两倍以上,而将密封指数从 4s 提高到 12s 将使耳鸣和听力损失的发生率降低十倍以上。此外,与运行方向相反,从车头到车尾,听觉舒适度的持续时间会缩短。考虑到高速列车的运行速度,提高密封指数可以改善乘客和机组人员的听觉感受。