← 返回
储能系统技术 ★ 5.0

两级吸收式热电池的动态特性及长期可再生能源储存性能提升

Dynamic characteristics and performance enhancement of two-stage absorption thermal battery for long-term renewable energy storage

作者 Zhixiong Ding · Wei Wu
期刊 Applied Energy
出版日期 2025年1月
卷/期 第 377 卷
技术分类 储能系统技术
相关度评分 ★★★★★ 5.0 / 5.0
关键词 The dynamic characteristics of the basic and two-stage cycles are compared.
语言:

中文摘要

摘要 近年来,吸收式热电池(ATB)因其高储能密度(ESD)、低热损失以及多样的输出功能而受到广泛关注。然而,在低品位可再生能源条件下,降低充电温度以提升系统性能对ATB的应用提出了关键挑战。为此,已提出两级ATB用于极低充电温度工况。为全面且准确地研究两级ATB在不同条件下的性能,本文建立了一个经过实验验证的动态模型。随后,对比了基本循环与两级循环在冷量储存和热量储存场景下的运行行为及循环性能。接着,研究了在不同充电温度下,两个溶液罐(即主储液罐和辅助罐)之间的溶液分配对循环性能的影响。此外,分析了两级ATB在长期储能应用中的优势与适用性。结果表明,在55°C充电温度下,两级ATB实现了115.8 kWh/m³的冷储能密度;在50°C充电温度下,其实现了59.7 kWh/m³的热储能密度,分别超过基本ATB对应值(57.7 kWh/m³和27.5 kWh/m³)的两倍以上。在低温充电条件下,不同溶液分配方案对储能密度(ESD)的影响显著。为实现最高储能密度的最优分配策略倾向于随着充电温度的升高,将更多的溶液分配至主储液罐。在长期储能场景中,两级ATB相较于基本ATB展现出明显优势,能够实现更高的浓度滑移(即更高的储能密度),尤其是在较低的充电温度下表现更为突出。

English Abstract

Abstract Absorption thermal battery (ATB) has garnered significant attention in recent years due to its high energy storage density (ESD), low heat loss, and versatile output functionalities. However, reducing the charging temperature to improve the performance under low-grade renewable energy sources poses critical challenges for ATB applications. The two-stage ATB has been proposed for extremely low charging temperatures. To comprehensively and accurately investigate the performance of the two-stage ATB under different conditions, this work establishes an experimentally validated dynamic model. Then, the operation behaviors and cycle performance for cold and heat storage scenarios have been compared between the basic and two-stage cycles. Subsequently, the effects of solution distribution between the two solution tanks (i.e., the main storage tank and auxiliary tank) on cycle performance have been studied under various charging temperatures. Moreover, the advantages and suitability of the two-stage ATB for long-term storage have been analyzed. Results indicate that the two-stage ATB achieves a cold storage density of 115.8 kWh/m 3 at 55 °C and a heat storage density of 59.7 kWh/m 3 at 50 °C, both more than doubling those of the basic ATB (57.7 kWh/m 3 and 27.5 kWh/m 3 ). At low charging temperatures, different solution distribution in tanks show significant differences in ESD . The optimal distribution scheme for achieving the highest ESD tends to allocate more solutions to the main storage tank as the charging temperature rises. For long-term storage scenarios, the two-stage ATB shows advantages over the basic ATB, achieving higher concentration glides (i.e., higher ESD), especially under low charging temperatures.
S

SunView 深度解读

该两级吸收式热电池技术为阳光电源储能系统提供了长时储能新思路。其在55°C低温充电下实现115.8 kWh/m³冷储能密度,在50°C下达59.7 kWh/m³热储能密度,均为基础系统两倍以上,可与ST系列PCS及PowerTitan系统形成冷热电三联供方案。该技术低热损、高密度特性适配可再生能源波动性,可为iSolarCloud平台增加热储能管理模块,优化光储系统季节性能量平衡,特别适用于工商业长周期储能场景,提升阳光电源综合能源解决方案竞争力。