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Talk to the Hand: US Army Biophysical Testing

机译:谈谈:美国陆军生物物理测试

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摘要

Background: Many people are unaware of the science underlying the biophysical properties of Soldier clothing and personal protective equipment, yet there is a well-refined biomedical methodology initiated by Army physiologists in World War II. This involves a methodical progression of systematic material testing technologies, computer modeling, and human testing that enables more efficient development and rapid evaluation of new concepts for Soldier health and performance. Sophisticated manikins that sweat and move are a central part of this testing continuum. This report briefly summarizes the evolution and use of one specialized form of the manikin technologies, the thermal hand model, and its use in research on Soldier hand-wear items that sustain dexterity and protect the hand in extreme environments. Methods: Thermal manikin testing methodologies were developed to provide an efficient and consistent analytical tool for the rapid evaluation of new clothing concepts. These methods have been upgraded since the original World War II and Korean War eras to include articulation and sweating capabilities, as characterized and illustrated in this article. The earlier "retired" versions of thermal hand models have now been transferred to the National Museum of Health and Science. Findings: The biophysical values from manikin testing are critical inputs to the U.S. Army Research Institute of Environmental Medicine mathematical models that provide predictions of soldier comfort, duration of exposure before loss of manual dexterity, and time to significant risk of freezing (skin temperature <-1 degrees C) and nonfreezing cold injuries (skin temperature < 5 degrees C). The greater thickness of better insulated handwear reduces dexterity and also increases surface area which makes added insulation increasingly less effective in retaining heat. Measurements of both thermal resistance (insulation) and evaporative resistance (permeability) collectively characterize the biophysical properties and enable mathematical modeling of the human thermophysiological responses. This information can help guide the hand-wear development and selection process which often requires trade-offs between factors such as material, cost, and sizing. Impact: Soldier hands provide fine motor dexterity in tactical functions, ranging from pulling a trigger to pulling a parachute ripcord; thus, protecting hand function is critical to soldier readiness. Also, the importance of protection against nonbattle cold injuries was highlighted during World War II in northern Europe, in the Aleutian Islands, and later in Korea. The U.S. Army has been on the forefront of the biophysical analysis of clothing including gloves since environmental research was established at the Armored Medical Research Laboratory and Climatic Research Laboratory during World War II. U.S. Army Research Institute of Environmental Medicine does not make the equipment but works with their Natick Soldier Research, Development, and Engineering Center partners to make the equipment better.
机译:背景:许多人没有意识到士兵服装和个人防护装备的生物物理特性的科学版,但在第二次世界大战中,军队生理学家发起了精致的生物医学方法。这涉及系统性材料测试技术,计算机建模和人类测试的有条理进展,使得能够更有效的发展和对士兵健康和性能的新概念的快速评估。汗水和移动的精致人体米金斯是该测试连续体的中心部分。本报告简要介绍了一种专业形式的Manikin Technologies,热手模型及其在士兵手佩戴物品的研究中的演变和使用,以在极端环境中保护手动的士兵手磨损物品。方法:开发了热人体试验方法,为快速评估新服装概念提供了一种有效且一致的分析工具。这些方法自最初第二次世界大战和韩国战争时代以来已经升级,包括铰接和出汗能力,如本文的特征和出汗。现在,热手模型的早期“退休”版本已被转移到国家卫生和科学博物馆。调查结果:来自Manikin测试的生物物理学价值是美国陆军研究所的环境医学院数学模型的关键投入,这些数学模型提供了士兵舒适性,持续时间前的持续时间在手动灵活性之前的持续时间,以及冻结风险的时间(皮肤温度< - 1℃)和非直接冷伤(皮肤温度<5℃)。更大的绝缘手衣的厚度较大减小了灵活性,并且还增加了表面积,该表面积增加了添加的绝缘在保持热方面越来越少。耐热性(绝缘)和蒸发性耐蒸发性(渗透率)的测量统称为生物物理性质并实现人体热性学反应的数学建模。此信息可以帮助指导手工磨损开发和选择过程,这些过程通常需要在材料,成本和尺寸等因素之间进行权衡。影响:士兵手在战术功能中提供精细电机灵活性,从拉动扳机到拉动降落伞撕裂;因此,保护​​手功能对士兵准备至关重要。此外,北欧第二次世界大战期间,在阿雷迪迪群岛,韩国后来突出了防止非措施冷伤的重要性。美国陆军一直处于衣服的生物物理分析的最前沿,包括在第二次世界大战期间在装甲医学研究实验室和气候研究实验室建立了环境研究。美国陆军的环境医学研究所没有制造设备,而是与他们的Natick士兵研究,开发和工程中心合作伙伴制造,使设备更好。

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