Development of a Passive and Active Technology Package Standard and Database for Application to Zero Energy Buildings in South Korea
Abstract
:1. Introduction
2. Zero Energy Building in Korea
2.1. Current Status of Zero Energy Building in Korea
2.2. Database for Implementing Zero Energy Building
2.3. Energy Performance Evaluation Tool of Zero Energy Building
2.4. Technology Packaging for Zero Energy Building
2.5. Performance Test Method of Building Materials and Equipment for the Construction of the Zero Energy Building Technology Package
3. Proposed Technology Package Composition
3.1. Structure of the Passive Technology Package
3.2. Structure of the Passive Technology Package Module
3.3. Structure of the Active Technology Package
3.4. Structure of the Active Technology Package Module
3.5. Passive and Active Technology Packaging Materials and Equipment DB Composition
4. Proposed Performance Standard of Passive and Active Technology Packages
4.1. Performance Classification of the Passive Technology Package
4.2. Method of Measureing the Performance of the Passive Technology Package and Minimum Performance Standard
4.3. Performance Classification of the Active Technology Package
4.4. Method of Measuring the Performance of the Active Technology Package and Minimum Performance Standard
5. Conclusions
- (1)
- In Korea, ECO2 is used in building design. Therefore, in order to construct a technology package and express energy performance, it is necessary to indicate the performance value required by ECO2. Therefore, this study proposes measures to improve ECO2 by comparing analysis tools. The zero energy building concept in Korea and the energy performance evaluation tool for constructing zero energy buildings were confirmed. Then, the performance of the building materials and building equipment required for zero energy buildings was derived. Based on these results, it was necessary to unify the method used to test the performance of building materials and building equipment by utilizing the energy performance evaluation tool for buildings. Also confirmed was the necessity of declaring the method used to test the performance. We also confirmed that it is necessary to consider the extensibility by introducing technology packaging to convert DBs of building materials and building facilities.
- (2)
- Based on building materials, we provided passive technology packages, and proposed active technology packages based on building equipment. Using passive and active technology packages, we confirmed that the technology of each technology parameter is necessary, and confirmed the detailed requirements of each technology. We implemented passive and active technology packages using the proposed configuration, and we proposed the necessary DB configuration for this.
- (3)
- We analyzed and classified the Korean building materials testing methods and performance standards, and proposed passive and active technology packages, modules, material performance testing methods and minimum requirement performance standards. Based on these results, we proposed the technical performance required for a zero energy building—not a simple energy saving technology description.
Author Contributions
Funding
Conflicts of Interest
References
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Category | ECO2 | PHPP | EnergyPlus |
---|---|---|---|
Weather data | Monthly (Non modification) | Hourly (Modification) | Hourly (Modification) |
Insulation thermal bridge | Non user input | Detail calculation | Non user input |
Window thermal bridge | Non user input | Detail calculation | Non user input |
Infiltration | Fix | Detail calculation | Detail calculation |
Human | Sensible heat | Simple input | Detail calculation |
Equipment | Sensible heat | Simple input | Detail calculation |
Input level | Simple input and default input | Simple input | Detailed user input |
Usability | User-friendly | User-friendly | Complex user interface |
Category | Material Type | Name of Performance | Type of Performance * |
---|---|---|---|
Wall-Material | Insulation | Thermal conductivity | E.P |
Fireproof | O.P | ||
Water absorption | O.P | ||
Interior/Exterior | Thermal conductivity | E.P | |
U-value | E.P | ||
Thermal resistance | E.P | ||
Bond strength | O.P | ||
Length change | O.P | ||
Fireproof | O.P | ||
Peel resistance | O.P | ||
Water absorption | O.P | ||
Salt spray resistance | O.P | ||
Impact resistance | O.P | ||
Window-Glazing | Glazing | U-value | E.P |
Solar heat gain coefficient (SHGC) | E.P | ||
Flame interruption performance (LIP) | O.P | ||
Window-Frame | Frame | U-value | E.P |
Door-Material | Insulation | Thermal conductivity | E.P |
Solar Control Device-Material | Slat/Louver/Blind (Exterior) | Solar heat gain coefficient (SHGC) | E.P |
Wind pressure | O.P | ||
Salt spray resistance | O.P | ||
Tensile strength | O.P | ||
Yield strength | O.P | ||
Elongation | O.P | ||
Accelerated weathering | O.P | ||
Slat/Louver/Blind (Interior) | Solar heat gain coefficient (SHGC) | E.P | |
Tensile strength | O.P | ||
Yield strength | O.P | ||
Elongation | O.P | ||
Accelerated weathering | O.P | ||
Weight load | O.P | ||
Head stuck | O.P | ||
Durability | O.P | ||
Prevention of tangling | O.P | ||
Accumulation device | O.P | ||
Solar Control Device-Motor | Motor | Repetitive operation | O.P |
Category | Name of Performance | Type of Performance |
---|---|---|
Wall-Module | U-value | E.P |
Linear transmittance | E.P | |
Window Set-Module | U-value | E.P |
Air flow rate | E.P | |
Solar heat gain coefficient (SHGC) | E.P | |
Condensation prevention (TDR) | O.P | |
Wind pressure | O.P | |
Water-tightness | O.P | |
Discoloration/Bleach prevention (DBP) | O.P | |
Handle strength | O.P | |
Opening and closing forces (OCF) | O.P | |
Repetitive operation of opening and closing (ROOC) | O.P | |
Sound insulation(R) | O.P | |
Door Set-Module | U-value | E.P |
Air flow rate | E.P | |
Condensation prevention (TDR) | O.P | |
Wind pressure | O.P | |
Water-tightness | O.P | |
Fireproof | O.P | |
Smoke penetration prevention (SPP) | O.P | |
Stability | O.P | |
Opening and closing forces (OCF) | O.P | |
Discoloration/Bleach prevention (DBP) | O.P | |
Sound insulation(R) | O.P | |
Solar Control Device-Module | Solar heat gain coefficient (SHGC) | E.P |
Wind pressure | O.P | |
Proof against climate performance (PACP) | O.P | |
Durability | O.P | |
Repetitive operation (RO) | O.P | |
Stability | O.P |
Material Type | Name of Performance (Unit) | Performance | Test Method | Performance Standard |
---|---|---|---|---|
Insulation | Thermal conductivity (W/m·K) | ▼ 0.034 | KS L 9106 | BEDS |
Fireproof (-) | Pass | KS F ISO 1182 KS F ISO 5660-1 KS F 2271 | BEFS | |
Water absorption (%)-EPS | ▼ 6 | KS M ISO 2896 | KS M ISO 4898 | |
Water absorption (%)-XPS | ▼ 1 | |||
Water absorption (%)-PUR | ▼ 4 | |||
Water absorption (%)-PF | ▼ 4 | |||
Interior/Exterior material | Thermal conductivity (W/m·K) | ▼ 0.15 | KS F 2277 | BEDS |
U-value (W/m2·K) | ▼ 0.071 | KS L 9016 | KS F 4040 | |
Thermal resistance (m2·K/W) | ▲ 0.043 | KS F 2277 | KS F 3504 | |
Bond strength (N/mm2) | ▲ 0.1 | KS F 4716 | KS F 4040 | |
Length change (%) | ▼ 0.5 | KS F 2424 | KS F 4040 | |
Fireproof (-) | Pass | KS F ISO 1182 KS F ISO 5660-1 KS F 2271 | BEFS | |
Peel resistance (-) | Pass | KS F 3504 | KS F 3504 | |
Water absorption (%) | ▼ 3 | KS F 3504 | KS F 3504 | |
Salt spray resistance (-) | Pass | KS F 9502 | KS F 4760 | |
Impact resistance (-) | Pass | KS F 4760 | KS F 4760 | |
Glazing | U-value (W/ m2·K) | ▼ 0.9 | KS F 2278 | BEDS |
SHGC (-) | ▲ 0.5 | KS L 9107 | PHI | |
F.I.P (min) | - | KS F 2845 | - | |
Frame | U-value (W/m2·K) | ▼ 0.9 | KS F 2278 | BEDS |
Door Insulation | Thermal conductivity (W/m·K) | ▼ 0.034 | KS L 9106 | BEDS |
Slat/Louver/ blind (Exterior) | SHGC (-) | - | KS L 9107 | - |
Wind pressure (-) | Pass | ASTM 331 | ASTM 331 | |
Salt spray resistance (RN) | ▲ 8 | KS D 9502 | KS D8334 | |
Tensile strength (N/ mm2) | 200 ~ 260 | KS B 0802 | KS B 0802 | |
Yield strength (N/ mm2) | 200 ~ 240 | KS B 0802 | KS B 0802 | |
Elongation (%) | 5 ± 3 | KS B 0802 | KS B 0802 | |
Accelerated weathering (-) | Pass | KS C 8568 | KS C 8568 | |
Slat/Louver/ blind (Interior) | SHGC (-) | - | KS L 9107 | - |
Tensile strength (N/mm2) | 200 ~ 260 | KS B 0802 | KS B 0802 | |
Yield strength (N/ mm2) | 200 ~ 240 | |||
Elongation (%) | 5 ± 3 | |||
Accelerated weathering (-) | Pass | KS C 8568 | KS C 8568 | |
Weight load (-) | Pass | APP.7 | APP.7 | |
Head stuck (-) | Pass | |||
Durability (-) | Pass | |||
Prevention of tangling (-) | Pass | |||
Accumulation device (-) | Pass | |||
Motor | Repetitive operation (Time) | ▲ 100,000 | KS C 6021 | KS C 6021 |
Category | Name of Performance (Unit) | Performance | Test Method | Performance Standard |
---|---|---|---|---|
Wall-Module | U-value (W/m2·K) | ▼ 0.15 | KS F 2277 | BEDS |
Linear U-value (W/m·K) | ▼ 0.4 | ISO 10221-1 | BEDS | |
Window Set-Module | U-value (W/m2·K) | ▼ 0.9 | KS F 2278 | BEDS |
Air flow rate (m3/h·m2) | ▼ 1.0 | KS F 2292 | ESL | |
SHGC (-) | ▲ 0.5 | KS L 9107 | PHI | |
TDR (-)-by each local area | ▼ Standard | KS F 2295 | DCCP | |
Wind pressure (-) | Pass | KS F 2296 | KS F 3117 | |
Watertightnes s(-) | Pass | KS F 2293 | KS F 3117 | |
DBP (-) | Pass | KS C 8568 | KS C 8568 | |
Handle strength (-) | Pass | KS F 2239 | KS F 3117 | |
OCF(N) | ▼ 50 | KS F 2237 | KS F 3117 | |
ROOC (time) | ▲ 10,000 | KS F 3109/4534 | KS F 3117 | |
R (dB, 500 Hz) | ▼ 40 | KS F ISO 10140-2 | KS F ISO 10140-2 | |
Door Set-Module | U-value (W/m2·K)-Door | ▼ 0.9 | KS F 2278 | BEDS |
U-value (W/m2·K)-Fire door | ▼ 1.4 | |||
Air flow rate (m3/h·m2) | ▼ 1.0 | KS F 2292 | HEC | |
TDR (-)-by each local area | ▼ Standard | KS F 2295 | DCCP | |
Wind pressure (-) | Pass | KS F 2296 | KS F 3109 | |
Watertightness (-) | Pass | KS F 2293 | KS F 3109 | |
Fireproof (-) | Pass | KS F 2268-1 | KS F 2268-1 | |
SPP (m3/min·m2, △25 Pa) | ▼ 0.9 | KS F 2846 | KS F 2846 | |
Stability (-) | Pass | KS F 3109 | KS F 3109 | |
OCF (N) | ▼ 50 | KS F 2237 | KS F 3109 | |
DBP (-) | Pass | KS C 8568 | KS C 8568 | |
R (dB, 500 Hz) | ▼ 40 | KS F ISO 10140-2 | KS F ISO 10140-2 | |
Solar Control Device-Module | SHGC (-) | - | KS L 9107 | - |
Wind pressure (-) | Pass | ASTM 331 | ASTM 331 | |
Salt spray resistance (RN) | ▲ 8 | KS D 9502 | KS D8334 | |
Tensile strength (N/mm2) | 200 ~ 260 | KS B 0802 | KS B 0802 | |
Yield strength (N/mm2) | 200 ~ 240 | KS B 0802 | KS B 0802 | |
Elongation (%) | 5 ± 3 | KS B 0802 | KS B 0802 | |
Accelerated weathering (-) | Pass | KS C 8568 | KS C 8568 | |
Weight load (-) | Pass | APP.7 | APP.7 | |
Head stuck (-) | Pass | |||
Durability (-) | Pass | |||
Prevention of tangling (-) | Pass | |||
Accumulation device (-) | Pass | |||
Repetitive operation (Time) | ▲ 100,000 | KS C 6021 | KS C 6021 |
Category | Equipment Name | Name of Performance |
---|---|---|
Heat Source | Domestic gas-fired boilers | Heating thermal efficiency |
Electric chillers and heaters | HSPF | |
Multi electric heat pump system | COP | |
Gas-fired boilers for industry and buildings | Thermal efficiency | |
Direct fired absorption cold and hot water dispensers | IPLV | |
Oil-fired hot water boilers | Heating efficiency | |
Gas-fired heat pumps | Heating COP | |
Gas-fired vacuum hot water boilers | Heating efficiency | |
Cooling Source | Refrigerators | CSPF |
Electric chillers and heaters | CSPF | |
Multi electric heat pump system | IEER | |
Centrifugal and screw chillers | Energy efficiency | |
Direct fired absorption cold and hot water dispensers | IPLV | |
Gas-fired heat pumps | Cooling COP | |
Medium-temperature absorption chillers | IPLV | |
Pump | Pump | Efficiency |
Fan | Energy recovery ventilators | Heat transfer efficiency |
Centrifugal fans | Efficiency | |
Lighting | External convertor type LED lamps | Luminous efficiency |
Recessed LED luminaires and fixed LED luminaires | Luminous efficiency | |
Tubular LED lamps | Luminous efficiency | |
LED lamps for replacing fluorescent lamps | Luminous efficiency | |
Renewable Heat Source | Solar thermal collectors | Collector performance |
Ground Source Heat Pump Unit | COP |
Equipment Name | Name of Performance (Unit) | Performance | Reference Standard |
---|---|---|---|
Domestic gas-fired boilers | Heating thermal efficiency (%) | ▲ 91.0 | ELS |
Electric chillers and heaters | HSPF (-) | ▲ 5.0 | ELS |
Multi electric heat pump system | COP (-) | ▲ 5.0 | ELS |
Gas-fired boilers for industry and buildings | Thermal efficiency (%) | ▲ 88 | HEC |
Direct fired absorption cold and hot water dispensers | IPLV (-) | ▲ 1.41 | HEC |
Oil-fired hot water boilers | Heating efficiency (%) | ▲ 82 | HEC |
Gas-fired heat pumps | Heating COP (-) | ▲ 1.4 | HEC |
Gas-fired vacuum hot water boilers | Heating efficiency (%) | ▲ 88 | HEC |
Refrigerators | CSPF (-) | ▲ 5.0 | ESL |
Electric chillers and heaters | CSPF (-) | ▲ 5.0 | ESL |
Multi electric heat pump system | IEER (-) | ▲ 5.0 | ESL |
Centrifugal and screw chillers | Energy efficiency (-) | ▼ 0.7 | HEC |
Direct fired absorption cold and hot water dispensers | IPLV (-) | ▲ 1.41 | HEC |
Gas-fired heat pumps | Cooling COP (-) | ▲ 1.2 | HEC |
Medium-temperature absorption chillers | IPLV (-) | ▲ 0.83 | HEC |
Pump | Efficiency (-) | Pass | HEC |
Energy recovery ventilators | Heat transfer efficiency (%) | ▲ 45 (Cooling) ▲ 70 (Heating) | HEC |
Centrifugal fans | Efficiency (-) | Pass | HEC |
External convertor type LED lamps | Luminous efficiency (lm/W) | ▲ 85 | HEC |
Recessed LED luminaires and fixed LED luminaires | Luminous efficiency (lm/W) | ▲ 95 | HEC |
Tubular LED lamps | Luminous efficiency (lm/W) | ▲ 130 | HEC |
LED lamps for replacing fluorescent lamps | Luminous efficiency (lm/W) | ▲ 105 | HEC |
Solar thermal collectors | Collector performance (MJ/m2) | ▲ 7.64 | KS B 8295 |
Ground Source Heat Pump Unit | COP (-) | ▲ 3.78 | KS B 8292 |
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Sung, U.-J.; Kim, S.-H. Development of a Passive and Active Technology Package Standard and Database for Application to Zero Energy Buildings in South Korea. Energies 2019, 12, 1700. https://doi.org/10.3390/en12091700
Sung U-J, Kim S-H. Development of a Passive and Active Technology Package Standard and Database for Application to Zero Energy Buildings in South Korea. Energies. 2019; 12(9):1700. https://doi.org/10.3390/en12091700
Chicago/Turabian StyleSung, Uk-Joo, and Seok-Hyun Kim. 2019. "Development of a Passive and Active Technology Package Standard and Database for Application to Zero Energy Buildings in South Korea" Energies 12, no. 9: 1700. https://doi.org/10.3390/en12091700
APA StyleSung, U.-J., & Kim, S.-H. (2019). Development of a Passive and Active Technology Package Standard and Database for Application to Zero Energy Buildings in South Korea. Energies, 12(9), 1700. https://doi.org/10.3390/en12091700