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Heat Transfer Model of Multilayer Thermal Protective Clothing for High-Temperature Operation

机译:多层高温防护服的传热模型

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The thermal protective clothing for high-temperature operation usually consists of three-layer fabrics and a gap called the air layer or Layer IV between Layer III and skin. In order to design more effective thermal protective clothing at less cost, based on the heat transfer principles, we establish heat transfer models of fabrics and air layer, which are one-dimensional nonlinear partial differential equations with constant coefficients. In the three-layer fabrics, we consider the effects of heat conduction and heat radiation in Layer I but only consider heat conduction in Layer II and Layer III. Furthermore, the heat transfer model of Layer IV is decoupled and simplified to steady-state heat conduction in Layer IV and radiation heat transfer on surface of Layer IV. According to the explicit difference schemes for the models, we use the parameters in an experiment which puts a thermal manikin in high-temperature environment for some time and measures the temperature of lateral skin at regular time, to solve the models and calculate the temperature of each layer. With MATLAB, the visual interface of three-dimensional temperature distribution is provided, which is reference for functional design of thermal protective clothing. We also compare the simulation result of skin surface with the experimental data. The results show that at the same position, the temperature rises over time but with decreasing rate and finally reaches the steady state. Moreover, at one moment after reaching the steady state, the temperature has a gradual decrease with the increase of distance from the external environment.
机译:用于高温操作的热防护服通常由三层织物和第三层与皮肤之间的缝隙(称为空气层或第四层)组成。为了以更低的成本设计出更有效的热防护服,基于传热原理,我们建立了织物和空气层的传热模型,它们是一维具有常数系数的非线性偏微分方程。在三层织物中,我们考虑了第一层中的导热和热辐射的影响,但仅考虑了第二层和第三层中的导热。此外,第四层的热传递模型被解耦并简化为第四层的稳态热传导和第四层表面的辐射热传递。根据模型的显式差分方案,我们在实验中使用参数,将人体模型放置在高温环境中一段时间​​,并定期测量外侧皮肤的温度,以求解模型并计算温度。每层。利用MATLAB,提供了三维温度分布的可视界面,为热防护服的功能设计提供了参考。我们还将皮肤表面的模拟结果与实验数据进行了比较。结果表明,在同一位置,温度随时间升高,但速率下降,最终达到稳态。而且,在达到稳态后的一瞬间,温度随着与外部环境的距离增加而逐渐降低。

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