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Design process of the nanofluid injection mechanism in nuclear power plants

机译:核电厂纳米流体注入机理的设计过程

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摘要

Nanofluids, which are engineered suspensions of nanoparticles in a solvent such as water, have been found to show enhanced coolant properties such as higher critical heat flux and surface wettability at modest concentrations, which is a useful characteristic in nuclear power plants (NPPs). This study attempted to provide an example of engineering applications in NPPs using nanofluid technology. From these motivations, the conceptual designs of the emergency core cooling systems (ECCSs) assisted by nanofluid injection mechanism were proposed after following a design framework to develop complex engineering systems. We focused on the analysis of functional requirements for integrating the conventional ECCSs and nanofluid injection mechanism without loss of performance and reliability. Three candidates of nanofluid-engineered ECCS proposed in previous researches were investigated by applying axiomatic design (AD) in the manner of reverse engineering and it enabled to identify the compatibility of functional requirements and potential design vulnerabilities. The methods to enhance such vulnerabilities were referred from TRIZ and concretized for the ECCS of the Korean nuclear power plant. The results show a method to decouple the ECCS designs with the installation of a separate nanofluids injection tank adjacent to the safety injection tanks such that a low pH environment for nanofluids can be maintained at atmospheric pressure which is favorable for their injection in passive manner.
机译:已发现纳米流体是纳米颗粒在溶剂(例如水)中的工程悬浮液,在中等浓度下显示出增强的冷却剂性能,例如更高的临界热通量和表面润湿性,这在核电厂(NPP)中是有用的特性。这项研究试图提供使用纳米流体技术在核电厂中工程应用的实例。基于这些动机,在遵循设计框架开发复杂的工程系统之后,提出了以纳米流体注入机制为辅助的应急堆芯冷却系统(ECCS)的概念设计。我们专注于功能需求分析,以在不损失性能和可靠性的情况下整合常规ECCS和纳米流体注射机制。通过以逆向工程的方式应用公理化设计(AD),对先前研究中提出的三种纳米流体工程ECCS候选物进行了研究,从而可以确定功能需求的兼容性和潜在的设计漏洞。 TRIZ提到了增强此类漏洞的方法,并将其具体化为韩国核电厂的ECCS。结果表明,通过在安全注入箱附近安装独立的纳米流体注入箱,可以使ECCS设计脱钩,从而可以在大气压力下将纳米流体的低pH环境保持在大气压下,这有利于以被动方式注入纳米流体。

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