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利用有限元分析开发鞋类热模型。

Development of thermal models of footwear using finite element analysis.

作者信息

Covill D, Guan Z W, Bailey M, Raval H

机构信息

Micro Climate Research Unit, University of Brighton, Brighton, UK.

出版信息

Proc Inst Mech Eng H. 2011 Mar;225(3):268-81. doi: 10.1243/09544119JEIM860.

Abstract

Thermal comfort is increasingly becoming a crucial factor to be considered in footwear design. The climate inside a shoe is controlled by thermal and moisture conditions and is crucial to attain comfort. Research undertaken has shown that thermal conditions play a dominant role in shoe climate. Development of thermal models that are capable of predicting in-shoe temperature distributions is an effective way forward to undertake extensive parametric studies to assist optimized design. In this paper, two-dimensional and three-dimensional thermal models of in-shoe climate were developed using finite element analysis through commercial code Abaqus. The thermal material properties of the upper shoe, sole, and air were considered. Dry heat flux from the foot was calculated on the basis of typical blood flow in the arteries on the foot. Using the thermal models developed, in-shoe temperatures were predicted to cover various locations for controlled ambient temperatures of 15, 25, and 35 degrees C respectively. The predicted temperatures were compared with multipoint measured temperatures through microsensor technology. Reasonably good correlation was obtained, with averaged errors of 6, 2, and 1.5 per cent, based on the averaged in-shoe temperature for the above three ambient temperatures. The models can be further used to help design shoes with optimized thermal comfort.

摘要

热舒适性日益成为鞋类设计中需要考虑的关键因素。鞋内的气候由热湿条件控制,对于实现舒适性至关重要。已开展的研究表明,热条件在鞋内气候中起主导作用。开发能够预测鞋内温度分布的热模型是进行广泛参数研究以辅助优化设计的有效途径。本文通过商业软件Abaqus利用有限元分析开发了鞋内气候的二维和三维热模型。考虑了鞋帮、鞋底和空气的热材料特性。根据足部动脉的典型血流计算了来自足部的干热通量。利用所开发的热模型,分别预测了在15℃、25℃和35℃的受控环境温度下鞋内不同位置的温度。通过微传感器技术将预测温度与多点测量温度进行了比较。基于上述三种环境温度下的鞋内平均温度,获得了较好的相关性,平均误差分别为6%、2%和1.5%。这些模型可进一步用于帮助设计具有优化热舒适性的鞋子。

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