A Review of Studies on Heat Transfer in Buildings with Radiant Cooling Systems

Author:

Hu Rong1ORCID,Sun Shilin1,Liang Jincan1ORCID,Zhou Zhiping1,Yin Yingde1

Affiliation:

1. School of Architecture and Traffic Engineering, Guilin University of Electronic Technology, Guilin 541000, China

Abstract

Due to their benefits in interior thermal comfort, energy saving, and noise reduction, radiant cooling systems have received wide attention. Radiant cooling systems can be viewed as a part of buildings’ maintenance structure and a component of cooling systems, depending on their construction. This article reviews studies on heat exchange in rooms utilizing radiant cooling systems, including research on conduction in radiant system structures, system cooling loads, cooling capacity, heat transfer coefficients of cooling surfaces, buildings’ thermal performance, and radiant system control strategy, with the goal of maximizing the benefits of energy conservation. Few studies have examined how radiant cooling systems interact with the indoor environment; instead, earlier research has focused on the thermal performance of radiant cooling systems themselves. Although several investigations have noted variations between the operating dynamics of radiant systems and conventional air conditioning systems, the cause has not yet been identified and quantified. According to heat transfer theory, the authors suggest that additional research on the performance of radiant systems should consider the thermal properties of inactive surfaces and that buildings’ thermal inertia should be used to coordinate radiant system operation.

Funder

Guangxi Science and Technology Base

Guangxi Natural Science Foundation

Science Foundation of Guilin University of Electronic Technology

Publisher

MDPI AG

Subject

Building and Construction,Civil and Structural Engineering,Architecture

Reference112 articles.

1. Cdb, P. (2023, July 30). 2022 Global Status Report for Buildings and Construction. Available online: https://www.unep.org/resources/publication/2022-global-status-report-buildings-and-construction.

2. China Association of Building Energy Efficiency (2023, July 30). China Building Energy Consumptionand Carbon Emissions Research Report. Available online: https://www.google.com/url?sa=i&rct=j&q=&esrc=s&source=web&cd=&cad=rja&uact=8&ved=0CAIQw7AJahcKEwjQ5quskbmAAxUAAAAAHQAAAAAQAg&url=https%3A%2F%2Fcarbon.landleaf-tech.com%2Fwp-content%2Fuploads%2F2022%2F12%2F2022%25E5%25BB%25BA%25E7%25AD%2591%25E8%2583%25BD%25E8%2580%2597%25E4%25B8%258E%25E7%25A2%25B3%25E6%258E%2592%25E6%2594%25BE%25E7%25A0%2594%25E7%25A9%25B6%25E6%258A%25A5%25E5%2591%258A.pdf&psig=AOvVaw18750ZDqQPhNhlvtu1tJpf&ust=1690899382497291&opi=89978449.

3. Babiak, J., Olesen, B.W., and Petras, D. (2009). Low Temperature Heating and High Temperature Cooling: REHVA Guidebook No. 7, Federation of European Heating, Ventilation and Air Conditioning Associations.

4. Cooling Load Differences between Radiant and Air Systems;Feng;Energy Build.,2013

5. A 50 Year Review of Basic and Applied Research in Radiant Heating and Cooling Systems for the Built Environment;Rhee;Build. Environ.,2015

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