Revenue Requirements Method for Assessing the Cost Impact of Fuel Cladding Corrosion in a Supercritical Water-Cooled Small Modular Reactor: A Methodological Review on Life Cycle Costing Corrosion

IF 0.5 Q4 NUCLEAR SCIENCE & TECHNOLOGY Journal of Nuclear Engineering and Radiation Science Pub Date : 2024-01-31 DOI:10.1115/1.4064639
A. D. Mendoza España
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Abstract

Canadian Nuclear Laboratories is collaborating in the Joint European Canadian Chinese Development of Small Modular Reactor Technology (ECC-SMART) project to understand the corrosion behavior of the most promising candidate materials for a future supercritical water cooled - small modular reactor (SCW-SMR). To support this aim and the project's requirements, the present study develops a costing method for assessing the impact of corrosion in a power generation cost model. This cost model builds on a methodological study of various corrosion engineering economics topics in nuclear power generation, such as the expected fuel cladding corrosion phenomena in an SCWR concept and estimating the main corrosion costs categories. This understanding is incorporated in a power generation cost model that applies the revenue requirements approach to life cycle costing (LCC). The LCC includes the main corrosion cost categories and a reliability factor used in assessing power generation costs, the costing of chemical species for controlling corrosion, and the present worth of revenue requirements. The method and model, therefore, provide a framework for understanding the kind of information available and needed for taking economical preventative corrosion measures for the current generation of water-cooled reactors and advanced reactors, such as the SCWR.
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评估超临界水冷小型模块化反应堆燃料包壳腐蚀成本影响的收益要求法:腐蚀寿命周期成本计算方法综述
加拿大核实验室正在与中欧联合开发小型模块化反应堆技术(ECC-SMART)项目合作,以了解未来超临界水冷小型模块化反应堆(SCW-SMR)最有希望的候选材料的腐蚀行为。为了支持这一目标和项目要求,本研究开发了一种成本计算方法,用于评估发电成本模型中腐蚀的影响。该成本模型建立在对核能发电中各种腐蚀工程经济学主题的方法研究基础之上,例如在 SCWR 概念中预期的燃料包壳腐蚀现象,以及对主要腐蚀成本类别的估算。这一理解被纳入发电成本模型中,该模型采用收益要求法进行寿命周期成本计算(LCC)。寿命周期成本包括主要腐蚀成本类别、用于评估发电成本的可靠性系数、控制腐蚀的化学物质的成本计算以及收益要求的现值。因此,该方法和模型提供了一个框架,可用于了解对当前一代水冷反应堆和先进反应堆(如重水反应堆)采取经济的预防性腐蚀措施所需的信息种类。
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来源期刊
CiteScore
1.30
自引率
0.00%
发文量
56
期刊介绍: The Journal of Nuclear Engineering and Radiation Science is ASME’s latest title within the energy sector. The publication is for specialists in the nuclear/power engineering areas of industry, academia, and government.
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