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Advances in the optimisation of apparel heating products: a numerical approach to study heat transport through a blanket with an embedded smart heating system

机译:服装加热产品优化方面的进展:一种通过带有嵌入式智能加热系统的毯子研究热传递的数值方法

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摘要

The optimisation of the performance of products with smart/active functionalities (e. g. in protective clothing, home textiles products, automotive seats, etc.) is still a challenge for manufacturers and developers. The aim of this study was to optimise the thermal performance of a heating product by a numerical approach, by analysing several opposing requirements and defining solutions for the identified limitations, before the construction of the first prototype. A transfer model was developed to investigate the transport of heat from the skin to the environment, across a heating blanket with an embedded smart heating system. Several parameters of the textile material and of the heating system were studied, in order to optimise the thermal performance of the heating blanket. Focus was put on the effects of thickness and thermal conductivity of each layer, and on parameters associated with the heating elements, e.g. position of the heating wires relative to the skin, distance between heating wires, applied heating power, and temperature range for operation of the heating system. Furthermore, several configurations of the blanket (and corresponding heating powers) were analysed in order to minimise the heat loss from the body to the environment, and the temperature distribution along the skin. The results show that, to ensure an optimal compromise between the thermal performance of the product and the temperature oscillation along its surface, the distancebetween the wires should be small (and not bigger than 50 mm), and each layer of the heating blanket should have a specific thermal resistance, based on the expected external conditions during use and the requirements of the heating system (i.e. requirements regarding energy consumption/efficiency and capacity to effectively regulate body exchanges with surrounding environment). The heating system should operate in an ON/OFF mode based on the body heating needs and within a temperature range specified based on the blanket total thermal resistance, external temperature during use, and observed temperature on the blanket outer surface (safety and energy efficiency aspects).The approach described in this work enabled the definition of the textile properties, the features of the embedded heating system, and the overall design of the system thus reducing substantially the number of prototypes needed for the final performance optimisation and fine-tuning.
机译:具有智能/主动功能(例如在防护服,家用纺织品,汽车座椅等中)的产品性能的优化仍然是制造商和开发人员的挑战。这项研究的目的是通过数值方法优化加热产品的热性能,方法是在建造第一个原型之前,通过分析几个相反的要求并为确定的局限性定义解决方案。开发了一种传递模型,以研究热量通过具有嵌入式智能加热系统的加热毯从皮肤到环境的传递。为了优化加热毯的热性能,研究了纺织材料和加热系统的几个参数。重点放在每一层的厚度和热导率的影响上,以及与加热元件有关的参数上,例如温度。加热丝相对于皮肤的位置,加热丝之间的距离,施加的加热功率以及加热系统运行的温度范围。此外,还对毯子的几种配置(以及相应的加热功率)进行了分析,以最大程度地减少从人体到环境的热量散失以及沿着皮肤的温度分布。结果表明,为确保在产品的热性能和沿其表面的温度振荡之间取得最佳折衷,导线之间的距离应较小(且不大于50 mm),并且加热毯的每一层都应具有基于使用期间的预期外部条件和加热系统的要求(即,有关能耗/效率以及有效调节人体与周围环境交换的能力的要求)的特定热阻。加热系统应根据人体加热需求并在根据毯子总热阻,使用期间的外部温度以及毯子外表面观察到的温度指定的温度范围内以开/关模式运行(安全和节能方面) )。这项工作中描述的方法可以定义纺织品属性,嵌入式加热系统的特征以及系统的整体设计,从而大大减少了最终性能优化和微调所需的原型数量。

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