Exploiting Dynamic Thermal Energy Harvesting for Reusing in Smartphone with Mobile Applications

Yuting Dai, Tao Li, Benyong Liu, Mingcong Song, Huixiang Chen
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引用次数: 10

Abstract

Recently, mobile applications have gradually become performance- and resource- intensive, which results in a massive battery power drain and high surface temperature, and further degrades the user experience. Thus, high power consumption and surface over-heating have been considered as a severe challenge to smartphone design. In this paper, we propose DTEHR, a mobile Dynamic Thermal Energy Harvesting Reusing framework to tackle this challenge. The approach is sustainable in that it generates energy using dynamic Thermoelectric Generators (TEGs). The generated energy not only powers Thermoelectric Coolers (TECs) for cooling down hot-spots, but also recharges micro-supercapacitors (MSCs) for extended smartphone usage. To analyze thermal characteristics and evaluate DTEHR across real-world applications, we build MPPTAT (Multi-comPonent Power and Thermal Analysis Tool), a power and thermal analyzing tool for Android. The result shows that DTEHR reduces the temperature differences between hot areas and cold areas up to 15.4°C (internal) and 7°C (surface). With TEC-based hot-spots cooling, DTEHR reduces the temperature of the surface and internal hot-spots by an average of 8° and 12.8mW respectively. With dynamic TEGs, DTEHR generates 2.7-15mW power, more than hundreds of times of power that TECs need to cool down hot-spots. Thus, extra-generated power can be stored into MSCs to prolong battery life.
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基于移动应用的智能手机动态热能收集再利用研究
最近,移动应用逐渐变得性能和资源密集型,这导致了大量的电池电量消耗和高表面温度,并进一步降低了用户体验。因此,高功耗和表面过热被认为是智能手机设计面临的严峻挑战。在本文中,我们提出了DTEHR,一个移动动态热能收集再利用框架来解决这一挑战。这种方法是可持续的,因为它使用动态热电发电机(teg)产生能量。产生的能量不仅可以为热电冷却器(tec)提供动力,用于冷却热点,还可以为微型超级电容器(MSCs)充电,以扩展智能手机的使用。为了分析热特性并评估实际应用中的DTEHR,我们构建了MPPTAT(多组件功率和热分析工具),这是一款用于Android的功率和热分析工具。结果表明,DTEHR将冷热区温差降低至15.4℃(内部)和7℃(表面)。基于tec的热点冷却,DTEHR使表面和内部热点的温度平均分别降低了8°和12.8mW。采用动态teg, DTEHR可产生2.7-15mW的功率,是tec冷却热点所需功率的数百倍以上。因此,额外产生的能量可以储存在msc中以延长电池寿命。
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