Experimental Study on Thermal Response Characteristics of Indoor Environment with Modular Radiant Cooling System

The radiant cooling system has a substantial energy-saving effect and can be widely applied in different kinds of low-energy buildings. This article reports the experimental study of the design strategy of the radiant cooling system in low-energy buildings from the perspective of thermal response ch...

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Main Authors: Zhengrong Li, Dongkai Zhang, Cui Li
Format: Article
Language:English
Published: MDPI AG 2020-09-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/19/5012
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author Zhengrong Li
Dongkai Zhang
Cui Li
author_facet Zhengrong Li
Dongkai Zhang
Cui Li
author_sort Zhengrong Li
collection DOAJ
description The radiant cooling system has a substantial energy-saving effect and can be widely applied in different kinds of low-energy buildings. This article reports the experimental study of the design strategy of the radiant cooling system in low-energy buildings from the perspective of thermal response characteristics of an indoor environment. Two types of a modular radiant cooling system, namely, the copper tube radiant cooling (CTRC) and the capillary radiant cooling (CRC) systems, were investigated. The experiments were conducted in two office rooms characterized by low energy consumption. In total, 16 cases (eight for CTRC and eight for CRC) were analyzed, covering supply water temperature with a range of 12–19 °C. The experimental results show that the supply water temperature has a more substantial effect on the temperature distribution of the envelope for CTRC, than that of CRC. The indoor air temperature stratification is acceptable in the active area of the occupant with a modular radiant cooling system. Moreover, the thermal response of the envelope is highly sensitive to the lower supply water temperature (below 16 °C) using CTRC and to the higher supply water temperature (above 15 °C) using CRC. The low supply water temperature (below 15 °C) can improve the thermal stability speed of indoor air to a greater degree using CTRC, than that of CRC. The supply water temperature for CTRC with 15–16 °C, and 18–19 °C for CRC in low-energy buildings can exert an optimal cooling benefit.
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spelling doaj.art-66e8bad8b5ff49ae85e962514472f3fa2023-11-20T14:53:53ZengMDPI AGEnergies1996-10732020-09-011319501210.3390/en13195012Experimental Study on Thermal Response Characteristics of Indoor Environment with Modular Radiant Cooling SystemZhengrong Li0Dongkai Zhang1Cui Li2School of Mechanical Engineering, Tongji University, Shanghai 201804, ChinaSchool of Mechanical Engineering, Tongji University, Shanghai 201804, ChinaSchool of Mechanical Engineering, Tongji University, Shanghai 201804, ChinaThe radiant cooling system has a substantial energy-saving effect and can be widely applied in different kinds of low-energy buildings. This article reports the experimental study of the design strategy of the radiant cooling system in low-energy buildings from the perspective of thermal response characteristics of an indoor environment. Two types of a modular radiant cooling system, namely, the copper tube radiant cooling (CTRC) and the capillary radiant cooling (CRC) systems, were investigated. The experiments were conducted in two office rooms characterized by low energy consumption. In total, 16 cases (eight for CTRC and eight for CRC) were analyzed, covering supply water temperature with a range of 12–19 °C. The experimental results show that the supply water temperature has a more substantial effect on the temperature distribution of the envelope for CTRC, than that of CRC. The indoor air temperature stratification is acceptable in the active area of the occupant with a modular radiant cooling system. Moreover, the thermal response of the envelope is highly sensitive to the lower supply water temperature (below 16 °C) using CTRC and to the higher supply water temperature (above 15 °C) using CRC. The low supply water temperature (below 15 °C) can improve the thermal stability speed of indoor air to a greater degree using CTRC, than that of CRC. The supply water temperature for CTRC with 15–16 °C, and 18–19 °C for CRC in low-energy buildings can exert an optimal cooling benefit.https://www.mdpi.com/1996-1073/13/19/5012radiant coolingmodularlow-energy buildingthermal responsedesign strategy
spellingShingle Zhengrong Li
Dongkai Zhang
Cui Li
Experimental Study on Thermal Response Characteristics of Indoor Environment with Modular Radiant Cooling System
Energies
radiant cooling
modular
low-energy building
thermal response
design strategy
title Experimental Study on Thermal Response Characteristics of Indoor Environment with Modular Radiant Cooling System
title_full Experimental Study on Thermal Response Characteristics of Indoor Environment with Modular Radiant Cooling System
title_fullStr Experimental Study on Thermal Response Characteristics of Indoor Environment with Modular Radiant Cooling System
title_full_unstemmed Experimental Study on Thermal Response Characteristics of Indoor Environment with Modular Radiant Cooling System
title_short Experimental Study on Thermal Response Characteristics of Indoor Environment with Modular Radiant Cooling System
title_sort experimental study on thermal response characteristics of indoor environment with modular radiant cooling system
topic radiant cooling
modular
low-energy building
thermal response
design strategy
url https://www.mdpi.com/1996-1073/13/19/5012
work_keys_str_mv AT zhengrongli experimentalstudyonthermalresponsecharacteristicsofindoorenvironmentwithmodularradiantcoolingsystem
AT dongkaizhang experimentalstudyonthermalresponsecharacteristicsofindoorenvironmentwithmodularradiantcoolingsystem
AT cuili experimentalstudyonthermalresponsecharacteristicsofindoorenvironmentwithmodularradiantcoolingsystem