Thermal Performance and Energy Saving Analysis of Indoor Air–Water Heat Exchanger Based on Micro Heat Pipe Array for Data Center

According to the temperature regulations and high energy consumption of air conditioning (AC) system in data centers (DCs), natural cold energy becomes the focus of energy saving in data center in winter and transition season. A new type of air−water heat exchanger (AWHE) for the indoor si...

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Main Authors: Heran Jing, Zhenhua Quan, Yaohua Zhao, Lincheng Wang, Ruyang Ren, Zichu Liu
Format: Article
Language:English
Published: MDPI AG 2020-01-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/2/393
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spelling doaj-ad0ca463159b4a3490e46e0a59a567422020-11-25T01:10:23ZengMDPI AGEnergies1996-10732020-01-0113239310.3390/en13020393en13020393Thermal Performance and Energy Saving Analysis of Indoor Air–Water Heat Exchanger Based on Micro Heat Pipe Array for Data CenterHeran Jing0Zhenhua Quan1Yaohua Zhao2Lincheng Wang3Ruyang Ren4Zichu Liu5Beijing Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing 100124, ChinaBeijing Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing 100124, ChinaBeijing Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing 100124, ChinaBeijing Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing 100124, ChinaBeijing Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing 100124, ChinaBeijing Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing 100124, ChinaAccording to the temperature regulations and high energy consumption of air conditioning (AC) system in data centers (DCs), natural cold energy becomes the focus of energy saving in data center in winter and transition season. A new type of air&#8722;water heat exchanger (AWHE) for the indoor side of DCs was designed to use natural cold energy in order to reduce the power consumption of AC. The AWHE applied micro-heat pipe arrays (MHPAs) with serrated fins on its surface to enhance heat transfer. The performance of MHPA-AWHE for different inlet water temperatures, water and air flow rates was investigated, respectively. The results showed that the maximum efficiency of the heat exchanger was 81.4% by using the effectiveness number of transfer units (&#949;-NTU) method. When the max air flow rate was 3000 m<sup>3</sup>/h and the water inlet temperature was 5 &#176;C, the maximum heat transfer rate was 9.29 kW. The maximum pressure drop of the air side and water side were 339.8 Pa and 8.86 kPa, respectively. The comprehensive evaluation index <i>j/f</i><sup>1/2</sup> of the MHPA-AWHE increased by 10.8% compared to the plate&#8722;fin heat exchanger with louvered fins. The energy saving characteristics of an example DCs in Beijing was analyzed, and when the air flow rate was 2500 m<sup>3</sup>/h and the number of MHPA-AWHE modules was five, the minimum payback period of the MHPA-AWHE system was 2.3 years, which was the shortest and the most economical recorded. The maximum comprehensive energy efficiency ratio (EER) of the system after the transformation was 21.8, the electric power reduced by 28.3% compared to the system before the transformation, and the control strategy was carried out. The comprehensive performance provides a reference for MHPA-AWHE application in data centers.https://www.mdpi.com/1996-1073/13/2/393data centernatural cold energymicro-heat pipe arrayheat transfer performanceenergy efficiency
collection DOAJ
language English
format Article
sources DOAJ
author Heran Jing
Zhenhua Quan
Yaohua Zhao
Lincheng Wang
Ruyang Ren
Zichu Liu
spellingShingle Heran Jing
Zhenhua Quan
Yaohua Zhao
Lincheng Wang
Ruyang Ren
Zichu Liu
Thermal Performance and Energy Saving Analysis of Indoor Air–Water Heat Exchanger Based on Micro Heat Pipe Array for Data Center
Energies
data center
natural cold energy
micro-heat pipe array
heat transfer performance
energy efficiency
author_facet Heran Jing
Zhenhua Quan
Yaohua Zhao
Lincheng Wang
Ruyang Ren
Zichu Liu
author_sort Heran Jing
title Thermal Performance and Energy Saving Analysis of Indoor Air–Water Heat Exchanger Based on Micro Heat Pipe Array for Data Center
title_short Thermal Performance and Energy Saving Analysis of Indoor Air–Water Heat Exchanger Based on Micro Heat Pipe Array for Data Center
title_full Thermal Performance and Energy Saving Analysis of Indoor Air–Water Heat Exchanger Based on Micro Heat Pipe Array for Data Center
title_fullStr Thermal Performance and Energy Saving Analysis of Indoor Air–Water Heat Exchanger Based on Micro Heat Pipe Array for Data Center
title_full_unstemmed Thermal Performance and Energy Saving Analysis of Indoor Air–Water Heat Exchanger Based on Micro Heat Pipe Array for Data Center
title_sort thermal performance and energy saving analysis of indoor air–water heat exchanger based on micro heat pipe array for data center
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-01-01
description According to the temperature regulations and high energy consumption of air conditioning (AC) system in data centers (DCs), natural cold energy becomes the focus of energy saving in data center in winter and transition season. A new type of air&#8722;water heat exchanger (AWHE) for the indoor side of DCs was designed to use natural cold energy in order to reduce the power consumption of AC. The AWHE applied micro-heat pipe arrays (MHPAs) with serrated fins on its surface to enhance heat transfer. The performance of MHPA-AWHE for different inlet water temperatures, water and air flow rates was investigated, respectively. The results showed that the maximum efficiency of the heat exchanger was 81.4% by using the effectiveness number of transfer units (&#949;-NTU) method. When the max air flow rate was 3000 m<sup>3</sup>/h and the water inlet temperature was 5 &#176;C, the maximum heat transfer rate was 9.29 kW. The maximum pressure drop of the air side and water side were 339.8 Pa and 8.86 kPa, respectively. The comprehensive evaluation index <i>j/f</i><sup>1/2</sup> of the MHPA-AWHE increased by 10.8% compared to the plate&#8722;fin heat exchanger with louvered fins. The energy saving characteristics of an example DCs in Beijing was analyzed, and when the air flow rate was 2500 m<sup>3</sup>/h and the number of MHPA-AWHE modules was five, the minimum payback period of the MHPA-AWHE system was 2.3 years, which was the shortest and the most economical recorded. The maximum comprehensive energy efficiency ratio (EER) of the system after the transformation was 21.8, the electric power reduced by 28.3% compared to the system before the transformation, and the control strategy was carried out. The comprehensive performance provides a reference for MHPA-AWHE application in data centers.
topic data center
natural cold energy
micro-heat pipe array
heat transfer performance
energy efficiency
url https://www.mdpi.com/1996-1073/13/2/393
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