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Nuclear Air-Brayton Power Cycles with Thermodynamic Topping Cycles, Assured Peaking Capacity, and Heat Storage for Variable Electricity and Heat

机译:核空气 - 布雷顿电源周期,热力学顶部周期,放心容量,可变电力和热量的蓄热量

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摘要

Electricity markets are changing because of (1) the addition of wind and solar generating capacity and (2) the goal of a low-carbon electricity grid. The large-scale addition of wind and solar photovoltaics results in low wholesale electricity prices at times of high wind and solar output and high prices at times of low wind and solar input. Today, gas turbine combined cycle (GTCC) plants burning natural gas or oil provide dispatchable electricity and provide the most economic method to match electricity production with demand. Nuclear Air-Brayton Combined Cycles (NACCs) with heat storage and a thermodynamic topping cycle enable base-load nuclear plants with sodium or salt coolants to provide dispatchable electricity to the grid and heat to industry. This capability maximizes nuclear plant revenue and enables a base-load nuclear reactor with NACCs to be a low-carbon replacement for a GTCC. The NACC power cycle, alternative heat storage technologies, and development status of the different technologies are described. The technology applies to other heat generating technologies including high-temperature concentrated solar power and future fusion systems.
机译:电力市场正在发生变化(1)(1)增加风和太阳能发电量和(2)低碳电网的目标。风和太阳能光伏的大规模添加在风和太阳能输出的高风和太阳能电量高度批发电价下,较低的价格低。如今,燃气轮机联合循环(GTCC)植物燃烧天然气或油提供可调度的电力,并提供最经济的方法,以满足电力生产需求。核空气Brayton组合循环(NACC)具有蓄热和热力学顶部循环,使碱载核植物具有钠或盐冷却剂,以向电网和热量提供调度电力。这种能力最大化核植物收入,使碱基载荷核反应堆能够成为GTCC的低碳替代品。描述了NACC电力循环,替代蓄热技术以及不同技术的开发状态。该技术适用于其他发热技术,包括高温集中的太阳能和未来融合系统。

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