热能储存
压缩空气储能
超调(微波通信)
瞬态(计算机编程)
火用
质量流量
超临界流体
储能
压缩空气
温度控制
惯性
热的
控制理论(社会学)
功率(物理)
工程类
计算机科学
工艺工程
机械工程
机械
热力学
控制(管理)
电气工程
物理
经典力学
人工智能
操作系统
作者
Huan Guo,Yujie Xu,Xuehui Zhang,Liang Qi,Shurui Wang,Haisheng Chen
出处
期刊:Applied Energy
[Elsevier BV]
日期:2020-12-02
卷期号:283: 116294-116294
被引量:62
标识
DOI:10.1016/j.apenergy.2020.116294
摘要
Abstract Compressed air energy storage systems are often in off-design and unsteady operation under the influence of external factors. A comprehensive dynamic model of supercritical compressed air energy storage system is established and studied for the first time. In this model, important factors, including volume effect and thermal inertia, are considered for system dynamic simulation which used to be ignored in the past. The transient characteristics and control methodology are mainly focused in this work. The exergy efficiency of transient processes is detected to better understand the dynamic process. Specifically, firstly the response characteristics of system power, mass flow rate, thermal storage temperature/outlet water temperature, and exergy efficiency under the step of key regulation parameters are studied in depth. And then a control framework is well built and studied. The result shows that the influence of the volume effect on the system dynamic characteristics is concentrated in the early time, and mainly affecting the mass flow rate and then the power. The influence of thermal inertia on the system dynamic characteristics takes a long time, mainly affecting thermal storage temperature and the outlet temperature. With the new-built controller, during energy charging, under 10% step-down command of load, the power can quickly reach equilibrium for about 10 s, while thermal storage temperature can be controlled in about 8 s. During the energy discharging period, the combination control mode can achieve shorter load equilibrium time and smaller load overshoot.
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