Analysis of Energy Saving Potential in High-Performance Building Technologies under Korean Climatic Conditions
Abstract
:1. Introduction
1.1. Background and Purpose
1.2. Literature Review
1.3. Method and Process
2. Climate Changes and Conditions in Korea
2.1. Incheon’s Area Average Annual Temperature Changes and Extreme Weather Events
2.2. Comparison of Incheon’s and Jeju’s Climate Conditions
3. Theoretical Framework
3.1. Definition of High-Performance Buildings
3.2. Primary Energy Consumptions and CO2 Emissions
3.2.1. Primary Energy Consumptions and Primary Energy Conversion Factors
3.2.2. CO2 Emissions and CO2 Emission Factors
4. Selection of Simulation Analysis Model and Energy-Saving Technologies
4.1. EnergyPlus Simulation Analysis Model and Input Conditions
4.2. Selection of Energy-Saving Technologies for High-Performance Building
4.2.1. Selection of Passive Systems (Cases 1–5)
4.2.2. Selection of Active Systems (Cases 6–13)
4.2.3. Selection of Renewable Energy Systems (Cases 14–15)
5. EnergyPlus Simulation Results
5.1. Analysis of the Primary Energy Consumptions in Passive Systems
5.1.1. Simulation Results for Case 1 and Case 2 (High-Performance Envelopes and Infiltration)
5.1.2. Simulation Results for Case 3, Case 4, and Case 5 (High-Efficiency Glazings and Shading Systems)
5.2. Analysis of the Primary Energy Consumptions in Active Systems
5.2.1. Simulation Result for Case 6 (VAV System with Dual Maximum Control Logic)
5.2.2. Simulation Results for Case 7 (Economizer Enthalpy Control) and Case 8 (Rotary ERV with VAV System)
5.2.3. Simulation Results for Case 9 (UFAD with VAV System) and Case 10 (Active Chilled Beam with DOAS)
5.2.4. Simulation Results for Cases 11–13 (High Efficiency Condensing HW Boiler And Centrifugal Chiller)
5.3. Analysis of the Primary Energy Consumptions in Renewable Energy Systems
Simulation Result for Case 14 (CAV+GSHP) and Case 15 (Active Chilled Beam with DOAS+GSHP)
5.4. Comprehensive Analysis of the Simulations (Primary Energy Consumptions and CO2 Emissions)
5.4.1. Overall Primary Energy Consumption and Comparisons with Benchmark Values
5.4.2. Each System’s CO2 Emissions and Reduction Rate Analysis
5.4.3. Analysis of the Correlation between the Primary Energy Consumptions and CO2 Emissions
5.4.4. Analysis of Heating and Cooling Energy Performance Ratio of Each System
6. Discussion
7. Summary and Conclusions
Supplementary Materials
Acknowledgments
Author Contributions
Conflicts of Interest
Abbreviations
ACH | Air Change per Hour |
ASHRAE | American Society of Heating, Refrigerating and Air-Conditioning Engineers |
CAV | Constant Air Volume |
CBECS | Commercial Buildings Energy Consumption Survey |
CDD | Cooling Degree Days |
COP | Coefficient of Performance |
DB | Data Base |
DOAS | Dedicated Outdoor Air System |
DOE | U.S. Department of Energy |
ECM | Energy Conservation measures |
EIA | Energy Information Administration |
ERV | Energy Recovery Ventilation |
EPBD | Energy Performance of Buildings Directive |
EPW | EnergyPlus Weather File |
GSHP | Ground Source Heat Pump |
HDD | Heating Degree Days |
HVAC | Heating, Ventilation and Air Conditioning |
HW Boiler | Hot Water Condensing Boiler |
IEA | International Energy Agency |
LCBP | Low Carbon Buildings Program |
NEDO | New Energy and Industrial Technology Development Organization |
nZEBs | Nearly Zero Energy Buildings |
PTZ | Éco-Prêt à Taux Zéro |
REHVA | Federation of European Heating, Ventilation and Air Conditioning Associations |
SHCG | Solar Heat Gain Coefficient |
UFAD | Underfloor Air Distribution |
VAV | Variable Air Volume |
VLT | Visible Light Transmittance |
WMO | World Meteorological Organization |
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Regions | ASHRAE Climate | Köppen Climate | Latitude N (°) Longitude E (°) | Outdoor Air Temperature (Monthly Average) Min/Avg/Max (°C) | Relative Humidity (Monthly Average) Min/Avg/Max (%) | HDD (18 °C) | CDD (10 °C) |
---|---|---|---|---|---|---|---|
Incheon | 4A (Mixed-Moist) | Dwa | 37.45/126.70 | −2.2/12.7/27.5 | 46.5/68.8/87.6 | 2749 | 2327 |
Jeju | 3A (Warm-Moist) | Cfa | 33.49/126.46 | 4.1/18.6/31.4 | 53.1/73.5/92.1 | 1621 | 2632 |
Level | Primary Energy Consumption Per Unit Area (kWh/m²·a) | Level | Primary Energy Consumption Per Unit Area (kWh/m²·a) |
---|---|---|---|
1+++ | E < 80 | 3 | 320 ≤ E < 380 |
1++ | 80 ≤ E < 140 | 4 | 380 ≤ E < 450 |
1+ | 140 ≤ E < 200 | 5 | 450 ≤ E < 520 |
1 | 200 ≤ E < 260 | 6 | 520 ≤ E < 610 |
2 | 260 ≤ E < 320 | 7 | 610 ≤ E < 700 |
Energy Supply Sector | Primary Energy Factors in Korea |
---|---|
Fuel (coal, oil, gas) | 1.1 |
Electric power | 2.75 |
District heating | 0.728 |
District cooling | 0.937 |
World | 1990 | 1995 | 2000 | 2005 | 2010 | 2014 | 2015 | Growth Rate 1990–2015 |
---|---|---|---|---|---|---|---|---|
Korea | 231.7 | 357.1 | 431.7 | 457.5 | 550.7 | 567.8 | 586.0 | 152.9% |
OECD Asia Oceania | 1588.0 | 1821.2 | 1991.5 | 2099.6 | 2150.6 | 2218.0 | 2201.9 | 38.7% |
OECD Europe | 3924.1 | 3833.2 | 3899.4 | 4037.2 | 3801.6 | 3397.8 | 3447.6 | −12.1% |
OECD Americas | 5508.3 | 5850.4 | 6567.0 | 6710.2 | 6384.4 | 6232.4 | 6060.7 | 10.2% |
Energy Supply Sector | CO2 Emission Factors (kgCO2/TJ) | CO2 Emission Factors (kgCO2/kWh) |
---|---|---|
Electric power | 129,631 | 0.4663 |
LNG(Natural gas) | 56,467 | 0.2031 |
Gas/Diesel oil | 72,600 | 0.2612 |
Primary Energy Consumptions in Incheon and Jeju (kWh/m2a) | |||
---|---|---|---|
Incheon | Jeju | ||
Heating energy | 126.5 | Heating energy | 104.6 |
Cooling energy | 198.7 | Cooling energy | 247.9 |
Fan & Other energy | 76.8, 62.0 | Fan & Other energy | 74.0, 58.5 |
Total energy | 464.1 (Level 5) | Total energy | 485.1 (Level 5) |
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Kim, C.-H.; Lee, S.-E.; Kim, K.-S. Analysis of Energy Saving Potential in High-Performance Building Technologies under Korean Climatic Conditions. Energies 2018, 11, 884. https://doi.org/10.3390/en11040884
Kim C-H, Lee S-E, Kim K-S. Analysis of Energy Saving Potential in High-Performance Building Technologies under Korean Climatic Conditions. Energies. 2018; 11(4):884. https://doi.org/10.3390/en11040884
Chicago/Turabian StyleKim, Chul-Ho, Seung-Eon Lee, and Kang-Soo Kim. 2018. "Analysis of Energy Saving Potential in High-Performance Building Technologies under Korean Climatic Conditions" Energies 11, no. 4: 884. https://doi.org/10.3390/en11040884
APA StyleKim, C.-H., Lee, S.-E., & Kim, K.-S. (2018). Analysis of Energy Saving Potential in High-Performance Building Technologies under Korean Climatic Conditions. Energies, 11(4), 884. https://doi.org/10.3390/en11040884