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储能系统技术 储能系统 ★ 5.0

一种新型吸附反应器用于吸附式热变换器:热能储存系统

A novel sorption reactor for sorption heat transformers: Thermal energy storage system

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中文摘要

摘要 本研究针对当前吸附式热变换器系统存在的一些关键局限性,特别是其成本、尺寸和重量问题,这些问题阻碍了其在各类应用中的广泛推广。本文提出了一种新型的壳管式吸附反应器设计,采用轻质外壳替代传统用于包裹吸附反应器的真空腔室。在所提出的结构中,吸附材料被合成为圆盘形状并置于管内,而传热流体则在壳体与管之间流动。对吸附材料进行了全面的材料表征,包括热扩散率测量、热重分析和孔隙率测定。设计、搭建并测试了一个原理验证型实验室规模原型。利用这种圆盘状复合材料,所提出的吸附反应器在单位可用体积内安装了更高活性的吸附复合材料,从而提高了储能密度,同时降低了系统的复杂性和成本。在名义运行条件(解吸温度90°C、吸附温度30°C、冷凝器温度30°C、蒸发器温度15°C)下,对4.3 dm³模块进行的量热法大压力跃变测试表明,该吸附反应器的能量存储密度达到0.74 MJ/kg,循环时间为20分钟时供热性能系数为0.98(90分钟循环时间时为1.4),比功率为267 W/kg(20分钟循环时间)。目前的吸附反应器仍有较大的性能提升空间。考虑到锂离子电池的能量密度范围为0.46–0.72 MJ/kg,这一结果显示出热能储存技术具有良好的竞争力,尤其相较于更为昂贵的锂离子电池而言。

English Abstract

Abstract This study addresses some of the critical limitations of current sorption heat transformer systems, particularly their cost, size and weight, which hinder their widespread adoption in various applications. A novel shell-and-tube sorption reactor design was proposed, featuring a lightweight shell instead of the conventional vacuum chambers typically used to encase the sorption reactor. In the proposed design, the sorbent material, synthesized in a disk-shaped form, was placed inside the tubes, while the heat transfer fluid flowed between the shell and the tubes. Comprehensive material characterization, including thermal diffusivity measurement, thermogravimetry, and porosimetry, was performed on the sorption materials. A proof-of-concept demonstration lab-scale prototype was designed, built, and tested. Using the disk-shaped composite, a significantly more active sorption composite per available volume was installed in the proposed sorption reactor which increased the energy storage density, while reducing the complexity and the cost of the system. Calorimetric large pressure jump tests on the proposed sorption reactor have shown a 0.74 MJ/kg energy storage density, a coefficient of performance for heating of 0.98 for 20-minute cycle time (1.4 for 90-minute cycle time), and specific power of 267 W/kg (20-min cycle time) for a 4.3 dm 3 module under the nominal operating conditions of 90 °C, 30 °C, 30 °C, 15 °C, desorption, sorption, condenser, evaporator, respectively; where there is considerable room for performance improvement in the current sorption reactor. Considering that the energy density range for lithium-ion batteries is 0.46–0.72 MJ/kg, this demonstrates the competitiveness of thermal storage, particularly in comparison to the more expensive lithium-ion batteries.
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SunView 深度解读

该新型吸附式热储能技术对阳光电源ST系列储能系统具有重要参考价值。其0.74 MJ/kg能量密度已接近锂电池水平,且成本更低,可作为PowerTitan等大型储能方案的补充技术路线。壳管式反应器的轻量化设计理念可启发PCS热管理优化,特别是在工业储能场景中实现电-热混合储能,提升系统经济性。该技术的高COP(0.98-1.4)和快速循环特性,与阳光电源GFM控制技术结合,有望开发新型热电联储解决方案,拓展iSolarCloud平台的多能互补管理能力。