可再生能源
计算机科学
微电网
工艺工程
风力发电
调度(生产过程)
数学优化
工程类
电气工程
数学
作者
Da Xu,Bin Zhou,Qiuwei Wu,C. Y. Chung,Canbing Li,Sheng Huang,She Chen
标识
DOI:10.1109/tpwrs.2020.2989533
摘要
This paper proposes an integrated model of power-to-ammonia (P2A) to exploit the inherent operational dispatchability of nitrogen-ammonia (N 2 -NH 3 ) cycles for high-renewable multi-energy systems. In this model, the steady-state electrolytic process is mathematically formulated into a thermodynamic system based on thermo-electrochemical effects, and the long-term degradation process of P2A is transformed as the short-term degradation cost to characterize its cost-efficiency. Furthermore, the enhanced utilization of P2A is explored to form a renewable energy hub for coupled multi-energy supplies, and a coupling matrix is formulated for the optimal synergies of electrical, ammonia and thermal energy carriers. An iterative solution approach is further developed to schedule the hub-internal multi-energy conversion and storage devices for high-efficiency utilization of available hybrid solar-wind renewables. Numerical studies on a stand-alone microgrid over a 24-hour scheduling periods are presented to confirm the effectiveness and superiority of the proposed methodology over regular battery and power-to-gas (P2G) storages on system operational economy and renewable energy accommodation.
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