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Thermoelectric Energy Storage Using Auxiliary Solar Thermal and Geothermal Energy

机译:使用辅助太阳能热和地热能的热电储能

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Multi-megawatt thermoelectric energy storage (TEES) based on thermodynamic cycles is a promising alternative to pumped-storage hydroelectricity (PSH) and compressed air energy storage (CAES) systems. The size and cost of energy storage are the main advantages of this technology as it generally uses inexpensive energy storage materials and does not require high-pressure tanks or rare geographic terrain, but the round trip electric efficiency of this technology remains low compared to its competitors. In this context, the objective of this article is to study and simulate a TEES system. A TEES system converts electrical energy to thermal energy by means of an electric heater uses joule heating effect, the system storage this thermal energy in solar salt. Stored thermal energy is converted into electrical energy by a thermal engine uses the organic Rankine cycle (ORC). An auxiliary energy source is integrated with the organic Rankine cycle to improve the round trip electric efficiency of the system. Auxiliary energy source can be solar thermal and geothermal at an average temperature between 100 and 140 °C, which is used to evaporate the working fluid to saturation. The steam is then superheated by stored thermal energy. The superheated steam expands in a turbine producing a good amount of energy compared to the saturated steam expansion. Methanol (CH_3OH) has been used as a working fluid because its boiling point is less than 100 °C at the atmospheric pressure.
机译:基于热力学循环的多兆瓦热电能量存储(T恤)是泵送储存水电(PSH)和压缩空气储能(CAES)系统的有前途的替代方案。储能的尺寸和成本是这项技术的主要优点,因为它一般使用廉价的储能材料,不需要高压罐或稀有地理地形,但与其竞争对手相比,该技术的往返电效率仍然低。 。在这种情况下,本文的目标是学习和模拟T恤系统。 T恤系统通过电加热器将电能转换为热能,使用焦耳加热效果,系统存储在太阳能盐中的热能。储存的热能通过热力发动机转换成电能,使用有机朗肯循环(ORC)。辅助能源与有机朗肯循环集成,以提高系统的往返电效率。辅助能量源可以是太阳能热和地热,在100至140℃之间的平均温度,其用于蒸发工作流体饱和。然后通过储存的热能过热蒸汽。与饱和蒸汽膨胀相比,过热的蒸汽在产生良好的能量的涡轮机中膨胀。甲醇(CH_3OH)已用作工作流体,因为其沸点在大气压下小于100℃。

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