Graduate School of Science and Technology, Hirosaki University, Aomori 036-8560, Japan.
Sensors (Basel). 2020 Mar 6;20(5):1446. doi: 10.3390/s20051446.
The market for wearable devices such as smart watches and smart glasses continues to grow rapidly. Smart glasses are attracting particular attention because they offer convenient features such as hands-free augmented reality (AR). Since smart glasses directly touch the face and head, the device with high temperature has a detrimental effect on human physical health. This paper presents a thermal network model in a steady state condition and thermal countermeasure methods for thermal management of future smart glasses. It is accomplished by disassembling the state by wearing smart glasses into some parts, creating the equivalent thermal resistance circuit for each part, approximating heat-generating components such as integrated circuits (ICs) to simple physical structures, setting power consumption to the heat sources, and providing heat transfer coefficients of natural convection in air. The average temperature difference between the thermal network model and a commercial thermal solver is 0.9 °C when the maximum temperature is 62 °C. Results of an experiment using the model show that the temperature of the part near the ear that directly touches the skin can be reduced by 51.4% by distributing heat sources into both sides, 11.1% by placing higher heat-generating components farther from the ear, and 65.3% in comparison with all high conductivity materials by using a combination of low thermal conductivity materials for temples and temple tips and high conductivity materials for rims.
可穿戴设备(如智能手表和智能眼镜)市场持续快速增长。智能眼镜尤其受到关注,因为它们提供了免提增强现实(AR)等便捷功能。由于智能眼镜直接接触面部和头部,因此高温设备对人体健康有不利影响。本文提出了一种用于未来智能眼镜热管理的稳态热网络模型和热对策方法。通过将佩戴智能眼镜的状态分解为几个部分,为每个部分创建等效热阻电路,将集成电路(IC)等发热组件近似为简单的物理结构,将功耗设置为热源,并提供空气自然对流的传热系数来实现。当最大温度为 62°C 时,热网络模型与商业热求解器之间的平均温差为 0.9°C。使用该模型进行的实验结果表明,通过将热源分布到两侧,可以将直接接触皮肤的耳部附近部件的温度降低 51.4%,通过将更高发热的组件放置在远离耳朵的位置,可以将温度降低 11.1%,与使用低导热系数材料的镜腿和镜腿尖端以及高导热系数材料的镜架组合相比,温度降低 65.3%。