头盔蒸发传热特性评价。

X Liu, I Holmér
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引用次数: 29

摘要

安全帽的主要目的是防止职业危害。然而,热舒适是一个重要的人体工程学要求头盔接受其佩戴者。为了设计和制造一个热舒适的头盔,一种测试和评估热性能的方法是必不可少的。长期以来,研究的重点是对干热传递(传导、对流和辐射)的评价。蒸发传热没有得到太多的讨论。为了分析湿传热(蒸发)成分,采用了出汗热头人体模型。本研究通过构建一个新的出汗头人体模型,进一步改进了该方法。头部模型的表面分为五个区域,可以提供更详细的信息,当戴上头盔时,环境对头部热量传递的影响。水供应(模拟出汗)也通过使用电子泵系统得到改善,该系统为头部人体模型提供稳定和可调节的水流量。采用改进后的方法在气候室内进行了不同试验条件下的实验:环境温度与头部人体表面温度设置为同一水平:34 +/- 0.5℃;头部表面湿润度两个等级:0.44和1.0;环境湿度:30%、60%两级;风速等级为0.4 m/s和1.0 m/s。实验中使用了七种不同的头盔。结果表明,改进后的方法可以更详细地揭示蒸发传热的信息;它更容易使用和控制;测量误差较小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of evaporative heat transfer characteristics of helmets.

The prime purpose of a safety helmet is to protect against occupational hazards. However, thermal comfort is one important ergonomics requirement for a helmet to be accepted by its wearer. To design and manufacture a thermally comfortable helmet, a method for testing and evaluating the thermal properties is essential. Research has long focused on the evaluation of dry heat transfer (conduction, convection and radiation). Evaporative heat transfer was not much addressed. In order to analyze the wet heat transfer (evaporation) component, a sweating thermal head manikin has been used. In this study the method has been further improved by constructing a new sweating head manikin. The surface of the head manikin is divided into five zones which can provide more detailed information about the environmental effects on the heat transfer from the head when a helmet is worn. Water supply (simulated sweating) is also improved by use of an electronic pumping system which provides a steady and adjustable flow rate of water to the head manikin. Experiments were conducted within a climatic chamber with this improved method under different test conditions: the ambient temperature and the head manikin surface temperature are set at the same level: 34 +/- 0.5 degrees C; two levels of head surface wettedness: 0.44 and 1.0; two levels of ambient humidity: 30% and 60%; and two levels of wind speed: 0.4 m/s and 1.0 m/s. Seven different helmets were used in the experiments. The results showed that the improved method revealed more detailed information about the evaporative heat transfer; it is easier to use and control; less error is involved with the measurement.

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