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虚拟产品设计在仁川国际机场模块化新冠病毒检测中心暖通空调解决方案开发中的应用。

Application of virtual product design to the development of HVAC solution for Incheon International Airport Modular COVID-19 testing center.

作者信息

Noh Sun Jong, Park Mansu, Chin Sim Won, Choi Changyoung, Ha Man Yeong

机构信息

Air Solution R&D Laboratory, LG Electronics, Changwon, 51554, Republic of Korea.

H&A R&D Center, LG Electronics, Changwon, 51533, Republic of Korea.

出版信息

Case Stud Chem Environ Eng. 2022 Dec;6:100257. doi: 10.1016/j.cscee.2022.100257. Epub 2022 Sep 18.

Abstract

Owing to the spread of COVID-19, the need for an inspection center that can quickly determine whether travelers using the airport are infected has emerged. For rapid determination, not only polymerase chain reaction tests but also antigen-antibody tests and on-site analysis systems are required. However, because it is time- and cost-intensive to construct a building that meets the standards for negative pressure facilities, modular negative pressure facilities are being installed as alternatives. Existing negative pressure facilities have problems such as increased energy consumption due to outdoor air load and condensation due to differences in indoor and outdoor temperatures and humidities caused by excessive external air inflow to achieve the target negative pressure and air change rate (ACH). In addition, owing to the installation of additional devices, additional construction is required to use them for other purposes in the future. To solve these problems, in this study, energy recovery ventilation (ERV) was employed to develop a heating, ventilation and air conditioning (HVAC) solution for the Incheon International Airport COVID-19 Testing Center. To shorten the development period, virtual product design (VPD) using computational fluid dynamics analysis-based design of experiments was performed. Owing to the application of VPD, the Incheon International Airport Modular COVID-19 Testing Center was completed in 2 weeks. The target pressure was measured in all spaces by applying the optimal conditions derived through VPD. In addition, owing to the application of ERV, the ACH of an airborne infectious isolation room exceeded the value suggested by international organizations.

摘要

由于新冠病毒病(COVID-19)的传播,出现了对能够快速确定使用机场的旅客是否被感染的检测中心的需求。为了快速做出判定,不仅需要聚合酶链反应检测,还需要抗原-抗体检测和现场分析系统。然而,由于建造符合负压设施标准的建筑既耗时又成本高昂,模块化负压设施正作为替代方案被安装使用。现有的负压设施存在一些问题,比如由于室外空气负荷导致能源消耗增加,以及为了达到目标负压和换气次数(ACH),过多的外部空气流入导致室内外温度和湿度差异而产生冷凝现象。此外,由于安装了额外的设备,未来若要将其用于其他目的还需要进行额外的建设。为了解决这些问题,在本研究中,采用了能量回收通风(ERV)技术来为仁川国际机场新冠病毒病检测中心开发一种供暖、通风和空调(HVAC)解决方案。为了缩短开发周期,利用基于计算流体动力学分析的实验设计进行了虚拟产品设计(VPD)。由于应用了VPD,仁川国际机场模块化新冠病毒病检测中心在两周内建成。通过应用VPD得出的最佳条件,对所有空间的目标压力进行了测量。此外,由于应用了ERV,空气传播感染隔离室的ACH超过了国际组织建议的值。

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