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首页> 外文期刊>International Journal of Refrigeration >Numerical simulation of an advanced energy storage system using H{sub}2O-LiBr as working fluid - Part 1: System design and modeling
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Numerical simulation of an advanced energy storage system using H{sub}2O-LiBr as working fluid - Part 1: System design and modeling

机译:以H {sub} 2O-LiBr为工作流体的高级储能系统的数值模拟-第1部分:系统设计和建模

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The advanced energy storage technology proposed and patented by authors can be applied for cooling, heating, dehumidifying, combined cooling and heating, and so on. It is also called the variable mass energy transformation and storage (VMETS) technology in which the masses in one or two storage tanks change continuously during the energy charging and discharging processes. This paper presents an advanced energy storage system using aqueous lithium bromide (H{sub}2O-LiBr) as working fluid. As one of VMETS systems, this system is a closed system using two storage tanks. It is used to shift electrical load and store energy for cooling, heating or combined cooling and heating. It is environmental friendly because the water is used as refrigerant in the system. Its working principle and process of energy transformation and storage are totally different from those of the traditional thermal energy storage (TES) systems. The electric energy in off-peak time is mostly transformed into the chemical potential of the working fluid and stored in the system firstly. And then the potential is transformed into cold or heat energy by absorption refrigeration or heat pump mode when the consumers need the cold or heat energy. The key to the system is to regulate the chemical potential by controlling the absorbent (LiBr) mass fraction or concentration in the working fluid with respect to time, As a result, by using a solution storage tank and a water storage tank, the energy transformation and storage can be carried out at the desirable time to shift electric load efficiently. Since the concentration of the working solution in the VMETS cycle varies continuously, the working process of the VMETS system is dynamic. As the first part of our study, the working principle and flow of the VMETS system were introduced first, and then the system dynamic models were developed. To investigate the system characteristics and performances under full-storage and partial-storage strategies, the numerical simulation will be performed in the subsequent paper. The simulation results will be very helpful for guiding the actual system and device design.
机译:由作者提出并获得专利的先进的储能技术可应用于冷却,加热,除湿,联合冷却和加热等。这也称为可变质量能量转换和存储(VMETS)技术,其中一个或两个存储罐中的质量在能量充放电过程中连续变化。本文提出了一种先进的能量存储系统,该系统使用溴化锂水溶液(H {sub} 2O-LiBr)作为工作流体。作为VMETS系统之一,该系统是一个使用两个储罐的封闭系统。它用于转移电负载并存储能量以进行冷却,加热或冷却和加热的组合。这是环保的,因为水在系统中用作制冷剂。它的能量转换和存储的工作原理和过程与传统的热能存储(TES)系统完全不同。非高峰时间的电能大部分先转换为工作流体的化学势,然后首先存储在系统中。然后,当消费者需要冷或热能时,通过吸收式制冷或热泵模式将电势转换为冷或热能。该系统的关键是通过相对于时间控制吸收剂(LiBr)的质量分数或工作流体中的浓度来调节化学势,因此,通过使用溶液储罐和储水罐,能量转换并且可以在期望的时间进行存储以有效地转移电负载。由于VMETS循环中工作溶液的浓度连续变化,因此VMETS系统的工作过程是动态的。作为研究的第一部分,首先介绍了VMETS系统的工作原理和流程,然后开发了系统动力学模型。为了研究全存储和部分存储策略下的系统特性和性能,将在随后的论文中进行数值模拟。仿真结果将对指导实际系统和设备设计非常有帮助。

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