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Graphene embedded form stable phase change materials for drawing the thermo-electric energy harvesting

机译:石墨烯嵌入形式稳定的相变材料,用于吸引热电能量

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We introduce a reusable energy harvesting system that can recover discarded thermal energy by utilizing temperature variation of the environment. The system consists of two different phase change materials (PCMs); poly ethylene glycol (PEG) and 1-tetradecanol (1-TD), and a cell of N and P type semiconductor. Since a large amount of heat energy is absorbed during phase transition, PCMS are generally utilized to maintain isothermal temperature on the opposite sides of the N and P type semiconductor as long as possible. The resulting temperature difference between two sides of semiconductor induces an electric current during the heating and cooling process. It is important for the phase change material (PCM) to possess a good shape stability without significant loss of latent heat. A 3D porous graphene aerogel is selected for the pure phase change material to infiltrate into the aerogel and to increase the shape stability and thermal conductivity of the PCM composite. The thermal conductivity of PEG and 1-TD composites is significantly increased to 0.4268 W/m.K, and 0.3408 W/mK, respectively. Thermal and electrical analyses are performed to predict the energy harvested by the device. The electrical energy is generated in the harvesting system due to the Seebeck effect. The maximum value of the electric current reaches 10 mA in both heating and cooling processes and an LED lamp was turned on successfully. Additionally, the energy harvesting system is modelled by using the finite element method (FEM) and the numerical prediction is in good agreement with the experimental results.
机译:我们引入了一种可重复使用的能量收集系统,该系统可以利用环境温度的变化来回收废弃的热能。该系统由两种不同的相变材料(PCM)组成。聚乙二醇(PEG)和1-十四烷醇(1-TD),以及N和P型半导体电池。由于在相变过程中吸收了大量的热能,因此通常利用PCMS尽可能长时间地在N型和P型半导体的相对侧上保持等温温度。半导体两侧之间产生的温差会在加热和冷却过程中感应出电流。重要的是,相变材料(PCM)具有良好的形状稳定性,而不会显着损失潜热。为纯相变材料选择3D多孔石墨烯气凝胶,使其渗透到气凝胶中并增加PCM复合材料的形状稳定性和导热性。 PEG和1-TD复合材料的热导率分别显着提高到0.4268 W / m.K和0.3408 W / mK。进行热和电分析以预测设备收集的能量。由于塞贝克效应,在收割系统中产生了电能。在加热和冷却过程中,电流最大值均达到10 mA,并且LED灯已成功打开。此外,利用有限元方法(FEM)对能量采集系统进行建模,数值预测与实验结果非常吻合。

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