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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Feasibility of perspiration based infrared Camouflage
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Feasibility of perspiration based infrared Camouflage

机译:基于排汗的红外伪装的可行性

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摘要

Infrared camouflage without resorting to existing and often burdensome technologies is clearly attractive. In this paper, we explored a new approach to potentially achieve the infrared camouflage by facilitating the latent heat transfer while controlling the sensible heat transfer of the human body. A multilayer structure of the corresponding camouflage cloth prototype with specific functions for each layer is proposed here (layer I to layer IV, from the body skin to the outside, respectively). Since the requirements for cloth infrared camouflage at-steady state are much stricter than at transient period, a steady state model for this prototype is developed to test its feasibility. The influences of related key parameters, including the porosity and the thickness for each layer are discussed using the model. The results show that a satisfactory infrared camouflage may be accomplished using all the layers proposed under specified structural conditions. In order to achieve the best effect of camouflage, for example, when the environment temperature is 296.15 K with 30% relative humidity, we further discovered that (1) the porosities of layer I and layer II should be lower as 5%, but those of layer III and layer IV should be relatively higher (85% and 90%, respectively); and (2) the thickness of the second layer should be greater enough to 1.5 cm, but the thickness of layer IV must be sufficiently thin at 0.1 cm. In summary, our proposed prototype provides a promising design for the uniform that can be used to suppress the probability of infrared detection.
机译:显然,不使用现有且通常繁重的技术的红外伪装很有吸引力。在本文中,我们探索了一种新的方法,可通过控制人体的显热传递同时促进潜热传递来潜在地实现红外伪装。在此提出了相应的迷彩布原型的多层结构,其每一层都具有特定功能(分别从身体皮肤到外部的第一层到第四层)。由于布料红外迷彩在稳态时的要求比在过渡时期要严格得多,因此开发了该原型的稳态模型以测试其可行性。使用该模型讨论了相关关键参数的影响,包括每层的孔隙率和厚度。结果表明,使用在指定的结构条件下建议的所有层都可以实现令人满意的红外伪装。为了获得最佳的伪装效果,例如,当环境温度为296.15 K,相对湿度为30%时,我们进一步发现(1)I层和II层的孔隙率应低于5%,但第三层和第四层的比例应相对较高(分别为85%和90%); (2)第二层的厚度应足够大到1.5厘米,但第四层的厚度必须足够薄,为0.1厘米。总而言之,我们提出的原型为制服提供了一种有前途的设计,可用于抑制红外探测的可能性。

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