具有级联加热应用的核动力综合能源系统的设计、建模和仿真

IF 1.9 4区 工程技术 Q4 ENERGY & FUELS Journal of Renewable and Sustainable Energy Pub Date : 2023-09-01 DOI:10.1063/5.0163557
Bikash Poudel, Mukesh Gautam, Binghui Li, Jianqiao Huang, Jie Zhang
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引用次数: 0

摘要

核可再生综合能源系统(IES)由各种能源产生和转换技术组成,可用于满足不同的最终用途(例如,电力、热力和制冷需求)。除了供需平衡外,终端热需求通常要求一定温度范围的热供应。因此,有效和高效地利用IES内产生的热量是一个关键的挑战。本文考察了包括多个温度等级加热过程的IES的设计选择。我们研究了一个级联设计配置,其中高级加热过程(例如,通过高温蒸汽电解(HTSE)制氢)后的剩余余热被回收,以满足低级加热需求(例如,区域供热(DH))。此外,在DH系统中集成了一个热能存储系统,以解决供热供需不平衡的问题。本文主要关注拟议系统的设计和建模,并使用小时分辨率的DH需求剖面进行24小时瞬态过程模拟,评估其运行情况。结果表明,高温热液排放的余热不足以满足DH需求,需要直接从反应器工艺蒸汽中获得额外的顶热。此外,在DH系统中包含热能储存提供了产热和需求之间的必要平衡,从而确保DH供水的额定温度一致。这种方法有助于减少反应堆侧所需的控制动作。
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Design, modeling and simulation of nuclear-powered integrated energy systems with cascaded heating applications
Nuclear-renewable integrated energy systems (IES) consist of a variety of energy generation and conversion technologies and can be used to meet heterogeneous end uses (e.g., electricity, heat, and cooling demands). In addition to supply-demand balance, end-use heat demands usually require heat supply of certain temperature ranges. The effective and efficient utilization of heat produced within an IES is, therefore, a critical challenge. This paper examines design options of an IES that includes heating processes of multiple temperature grades. We investigate a cascaded design configuration, where the remaining residual heat after high-grade heating processes [e.g., hydrogen production through high-temperature steam electrolysis (HTSE)] is recovered to meet the low-grade heating needs [e.g., district heating (DH)]. Additionally, a thermal energy storage system is integrated into the DH system to address the imbalance between heat supply and demand. This paper primarily focuses on the design and modeling of the proposed system and evaluates its operation with a 24-h transient process simulation using a DH demand profile with hourly resolution. The results indicate that the residual heat from the HTSE exhaust is insufficient for the DH demand, and additional topping heat directly from the reactor process steam is needed. Furthermore, the inclusion of thermal energy storage within the DH system provides the necessary balance between thermal generation and demand, thereby ensuring a consistent rated temperature of the DH supply water. This approach helps minimize the control actions needed on the reactor side.
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来源期刊
Journal of Renewable and Sustainable Energy
Journal of Renewable and Sustainable Energy ENERGY & FUELS-ENERGY & FUELS
CiteScore
4.30
自引率
12.00%
发文量
122
审稿时长
4.2 months
期刊介绍: The Journal of Renewable and Sustainable Energy (JRSE) is an interdisciplinary, peer-reviewed journal covering all areas of renewable and sustainable energy relevant to the physical science and engineering communities. The interdisciplinary approach of the publication ensures that the editors draw from researchers worldwide in a diverse range of fields. Topics covered include: Renewable energy economics and policy Renewable energy resource assessment Solar energy: photovoltaics, solar thermal energy, solar energy for fuels Wind energy: wind farms, rotors and blades, on- and offshore wind conditions, aerodynamics, fluid dynamics Bioenergy: biofuels, biomass conversion, artificial photosynthesis Distributed energy generation: rooftop PV, distributed fuel cells, distributed wind, micro-hydrogen power generation Power distribution & systems modeling: power electronics and controls, smart grid Energy efficient buildings: smart windows, PV, wind, power management Energy conversion: flexoelectric, piezoelectric, thermoelectric, other technologies Energy storage: batteries, supercapacitors, hydrogen storage, other fuels Fuel cells: proton exchange membrane cells, solid oxide cells, hybrid fuel cells, other Marine and hydroelectric energy: dams, tides, waves, other Transportation: alternative vehicle technologies, plug-in technologies, other Geothermal energy
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