Research on a Plan of Free Cooling Operation Control for the Efficiency Improvement of a Water-Side Economizer
Abstract
:1. Introduction
1.1. Background and Literature Review
1.2. Motivation and Goals
1.3. Research Scope
2. Methodology
2.1. Free Cooling Operation Conditions of a WSE System
2.2. Free Cooling Period Extension Plan
2.2.1. Plan 1: Increase in the CRAH Fan Air Flow
2.2.2. Plan 2: Reduction in the Chilled Water Flow
3. Simulation Modeling
3.1. HVAC Physics-Based Model
3.1.1. Cooling Tower
3.1.2. Water-Cooled Chiller
3.1.3. Heat Exchanger (Economizer)
3.1.4. CRAH Fan
3.1.5. Pumps
3.2. HVAC System Summary (Baseline)
4. Simulation Results and Discussion
4.1. Energy Usage and Free Cooling Operation Time
4.2. Detailed Analysis of the Operation Data
4.2.1. Increase in the CRAH Fan Air Flow
4.2.2. Reduction in the Chilled Water Flow
5. Conclusions and Future Work
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Model Variables | Physics Model Equations | ||
Upper limit of the wet bulb temperature during full free cooling operation (°C) | Temperature of cooling water (°C) | ||
Upper limit of wet bulb temperature during partial free cooling operation (°C) | Temperature of outdoor air web bulb (°C) | ||
Chilled water supply temperature (°C) | Cooling water return temperature (°C) | ||
Chilled water return temperature (°C) | Cooling water supply temperature (°C) | ||
Cooling tower approach temperature (°C) | Treatment calorie of the equipment (kW) | ||
Heat exchanger approach temperature (°C) | Load of rated condition (kW) | ||
Supply air temperature (°C) | Flow of cooling water (kg/s) | ||
Return air temperature (°C) | Air flow of the cooling tower fan (kg/s) | ||
Supply-side inlet temperature of the heat exchanger (°C) | Air flow of designed condition (kg/s) | ||
Demand-side inlet temperature of the heat exchanger (°C) | Air enthalpy of the cooling tower (J/kg) | ||
Temperature difference of water (K) | Specific heat of cooling water (kJ/kg·K) | ||
Treatment calorie of coil (kW) | Air flow of the CRAH fan (kg/s) | ||
Treatment calorie of the heat exchanger (kW) | Operation ratio of the CRAH fan | ||
Airflow of the air (kg/s) | Efficiency of the CRAH fan | ||
Supply-side flow of heat exchanger (kg/s) | Density of the air (kg/m3) | ||
Demand-side flow of heat exchanger (kg/s) | Electrical power of the chiller (kW) | ||
Specific heat of the air (kJ/kg·K) | Performance coefficient of rated condition | ||
Specific heat of water (kJ/kg·K) | Cooling capacity function of the temperature curve | ||
Specific heat of water at the supply side of the heat exchanger (kJ/kg·K) | Energy input to cooling output ratio function of the temperature curve | ||
Specific heat of water at the demand side of the heat exchanger (kJ/kg·K) | Energy input to cooling output ratio function of the part load ratio curve | ||
Efficiency of the crosstype heat exchanger | Part load ratio | ||
Heat capacity ratio | |||
Efficiency of the heat exchanger | |||
Number of transfer units |
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Aspect | Content | |
---|---|---|
Environmental Classes for Datacom Equipment Classes (ASHRAE 2015a) | Use | Data center |
Location/Climate zone | Seoul/4A | |
Operation | 24 h/7 days | |
Room dimension | 540 m2 (30 m × 18 m) | |
Ceiling height/Access floor | 4 m/0.8 m | |
IT load density | 5382 W/m2 | |
Cooling set temperature | 26 °C |
Equipment | Design Parameters | Value |
---|---|---|
Chiller [EA: 4] | Capacity | 847 kW |
COP | 5.5 | |
Chilled water flow rate | 0.0413 m3/s | |
Condenser water flow rate | 0.0537 m3/s | |
Chilled water outlet/inlet temperature | 7/12 | |
Cooling tower [EA: 4] | Capacity | 1100 kW |
Air flow rate | 44.75 m3/s | |
Fan power | 12 kW | |
Condenser water outlet/inlet temperature | 29/34 | |
Pump [CHW pump EA: 4/ Condenser pump EA: 4] | Chilled water pump Power | 15 kW |
Condenser water pump power | 19 kW | |
CRAH fan [Supply fan EA: 4/ Return fan EA: 4] | Air flow rate | 56.82 m3/s |
AHU air outlet/inlet temperature | 12.8/24 | |
Fan power | 68.6 kW | |
Heat Exchanger (WSE) [EA: 4] | Capacity | 847 kW |
Efficiency | 0.9 |
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Kim, Y.-J.; Kim, K.-H.; Ha, J.-W.; Song, Y.-H. Research on a Plan of Free Cooling Operation Control for the Efficiency Improvement of a Water-Side Economizer. Energies 2024, 17, 2804. https://doi.org/10.3390/en17122804
Kim Y-J, Kim K-H, Ha J-W, Song Y-H. Research on a Plan of Free Cooling Operation Control for the Efficiency Improvement of a Water-Side Economizer. Energies. 2024; 17(12):2804. https://doi.org/10.3390/en17122804
Chicago/Turabian StyleKim, Yu-Jin, Kwang-Hee Kim, Ju-Wan Ha, and Young-Hak Song. 2024. "Research on a Plan of Free Cooling Operation Control for the Efficiency Improvement of a Water-Side Economizer" Energies 17, no. 12: 2804. https://doi.org/10.3390/en17122804
APA StyleKim, Y. -J., Kim, K. -H., Ha, J. -W., & Song, Y. -H. (2024). Research on a Plan of Free Cooling Operation Control for the Efficiency Improvement of a Water-Side Economizer. Energies, 17(12), 2804. https://doi.org/10.3390/en17122804