首页> 外文会议>HT2008;ASME summer heat transfer conference >EVALUATING A THERMOREGULATORY MODEL FOR COOLING GARMENT APPLICATIONS WITH TRANSIENT METABOLIC RATES
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EVALUATING A THERMOREGULATORY MODEL FOR COOLING GARMENT APPLICATIONS WITH TRANSIENT METABOLIC RATES

机译:瞬态代谢率冷却服装应用的热力学模型评估

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Current state-of-the-art thermoregulatory models do not predict body temperatures with the accuracies that are required for the development of automatic cooling control in liquid cooling garment (LCG) systems. Automatic cooling control would be beneficial in a variety of space, aviation, military, and industrial environments for optimizing cooling efficiency, for making LCGs as portable and practical as possible, for alleviating the individual from manual cooling control, and for improving thermal comfort and cognitive performance. In this paper, we adopt the Fiala thermoregulatory model, which has previously demonstrated state-of-the-art predictive abilities in air environments, for use in LCG environments. We compare the model's tissue temperature predictions with analytical solutions to the bioheat equation, and with experimental data for a 700 W rectangular type activity schedule. The thermoregulatory model predicts rectal temperature, mean skin temperature, and body heat storage (BHS) with mean absolute errors of 0.13°C, 0.95°C, and 11.9 W·hr, respectively. Even though these accuracies are within state-of-the-art variations, the model does not satisfy the target BHS accuracy of ±6.5 W·hr. We identify model deficiencies, which will be addressed in future studies in order to achieve the strict BHS accuracy that is needed for automatic cooling control development.
机译:当前最新的温度调节模型无法以液体冷却服装(LCG)系统中自动冷却控制的开发所需的精度来预测人体温度。自动冷却控制在各种空间,航空,军事和工业环境中将有利于优化冷却效率,使LCG尽可能便携和实用,减轻个人的手动冷却控制以及改善热舒适性和认知能力表现。在本文中,我们采用了Fiala温度调节模型,该模型先前已经证明了在空气环境中用于LCG环境的最新预测能力。我们将模型的组织温度预测与生物热方程的解析解以及700 W矩形活动计划的实验数据进行了比较。体温调节模型预测的直肠温度,平均皮肤温度和人体储热(BHS)的平均绝对误差分别为0.13°C,0.95°C和11.9 W·hr。即使这些精度在最新技术水平之内,该模型也无法满足目标BHS精度±6.5 W·hr。我们确定模型缺陷,将在以后的研究中解决这些缺陷,以实现自动冷却控制开发所需的严格的BHS精度。

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