Constructing a Database of Reference Hydrothermal Sources for a Zero-Energy Building Certification Rating in South Korea and Analyzing the Renewable Energy Self-Sufficiency Rate Achieved by Water-Source Heat Pumps
Abstract
:1. Introduction
2. Materials and Methods
2.1. Seasonal Temperature Analysis of Hydrothermal Sources
2.1.1. Architecture of a WSHP
2.1.2. Relationship between Water Temperature and Outside Temperature
2.1.3. Seasonal Temperature Data Collection of River Water Heat Sources
2.1.4. Methodology for Deriving Pipeline Data
2.2. ECO2-Based Calculation of Geothermal/Hydrothermal Energy Self-Sufficiency Rate
2.2.1. ECO2 Program
2.2.2. Renewable Energy Self-Sufficiency Rate Calculation Standard for Evaluation Purposes
2.2.3. Selection of WSHPs
3. Results and Discussion
3.1. Extraction of Reference Meteorological Data from River and Pipeline Water
3.2. Self-Sufficiency Rates of WSHPs by ECO2 Rating
4. Conclusions
- (1)
- Compared to outside air temperature, water heat sources showed no significant variations in the daily average and hourly temperatures. Based on the findings of previous research, stating that, in areas with no hourly water temperature data, system design is possible with daily or monthly average data, river water data provided by each region were taken and averaged, and a reference hydrothermal source database was constructed by matching the averaged data with the currently available standard meteorological data in 66 areas for them to be linked to the selected building rating area in the ECO2 program.
- (2)
- Among ZEB-certified buildings, those with GSHPs were selected. Applying the standard meteorological data and reference hydrothermal data to the ECO2 rating yielded the following findings: in all cases (reference: Seoul), GSHPs had a higher self-sufficiency rate than WSHPs (ground source > pipeline water > river water), whereby GSHPs outperformed WSHPs by 11–33%, possibly because the water source temperature in Seoul is higher in summer and lower in winter, compared to the constant annual ground-source temperature of 15 °C. Pipeline water appeared to be less sensitive than river water, depending on single-standard hydrothermal source data.
- (3)
- A one-case regional comparison, which was performed in the cold (Jeongseon), central (Seoul), and southern (Jeju) regions to estimate the regional differences, revealed that in areas with good reference hydrothermal conditions (i.e., higher water temperature in winter and lower water temperature in summer, compared to the geothermal temperature), WSHPs yield a higher self-sufficiency rate than GSHPs.
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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DB Collection | DB Processing | DB Matching | ||
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No. | Use | Structure | Gross Area | Region | Ground-Source Heat Pump Capacity (kW) | Primary Pump Power (W) | Geothermal Expansion Tank Volume (L) |
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1 | Non-residential (Sports) | RC, SF, SRC a | 4517.54 | Gyeonggi-do (Gimpo) | 354.90 | 14,700 | 200 |
2 | Non-residential (Offices) | RC | 7971.42 | Seoul | 732 | 22,000 | 1000 |
3 | Non-residential (Culture/Gathering) | RC, SRC | 28,442.65 | Gyeongsangbuk-do (Andong) | 1071.582/ 1170.036 | 33,000 /33,000 | 1600 /1600 |
4 | Non-residential (Accommodation) | RC | 107,220.55 | Incheon | 978.419/313.464/903.156/246.909 | 18,500/7500/18,500/7500 | 800/800/800/800 |
5 | Non-residential (Education) | RC | 9512.81 | Sejong | 463.62 | 16,500 | 300 |
6 | Non-residential (Offices) | RC | 10,960.00 | Seoul | 402.807 | 16,500 | 300 |
7 | Non-residential (Education/Research) | RC, SF | 3207.68 | Gangwon-do (Wonju) | 166.5 | 11,100 | 200 |
8 | Non-residential (Education/Research) | SRC, M, LSF b | 2925.66 | Chungcheongbuk-do (Cheongju) | 105.210 | 5900 | 200 |
9 | Non-residential (Offices) | SRC | 28,442.65 | Gyeongsangbuk-do (Andong) | 1170.036 | 33,000 | 1600 |
10 | Non-residential (Offices) | SRC | 3760.17 | Chungcheongbuk-do (Cheongju) | 1071.582 | 33,000 | 1600 |
(a) River water heat source data | ||||||||||||
Region | Jan | Feb | Mar | Apr | May | Jun | Jul | Aug | Sep | Oct | Nov | Dec |
Seoul | 3.9 | 5.0 | 9.0 | 14.6 | 19.9 | 23.9 | 25 | 26.5 | 23.5 | 18.2 | 12.5 | 6.3 |
Jeju | 13.8 | 13.5 | 14.4 | 15.8 | 16.7 | 17.1 | 17.8 | 18.1 | 16.9 | 16.2 | 15.2 | 14.4 |
Jeongseon | 1.6 | 2.4 | 5.3 | 11.1 | 17.7 | 22.8 | 21.4 | 23.4 | 19.7 | 15 | 8.2 | 2.5 |
(b) Regional raw water heat source data | ||||||||||||
Jan | Feb | Mar | Apr | May | Jun | Jul | Aug | Sep | Oct | Nov | Dec | |
5.6 | 5.1 | 7.8 | 11.5 | 15.7 | 19.2 | 21.0 | 22.9 | 21.5 | 18.9 | 14.2 | 8.6 |
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Kim, Y.; Yu, K.-H. Constructing a Database of Reference Hydrothermal Sources for a Zero-Energy Building Certification Rating in South Korea and Analyzing the Renewable Energy Self-Sufficiency Rate Achieved by Water-Source Heat Pumps. Energies 2023, 16, 543. https://doi.org/10.3390/en16010543
Kim Y, Yu K-H. Constructing a Database of Reference Hydrothermal Sources for a Zero-Energy Building Certification Rating in South Korea and Analyzing the Renewable Energy Self-Sufficiency Rate Achieved by Water-Source Heat Pumps. Energies. 2023; 16(1):543. https://doi.org/10.3390/en16010543
Chicago/Turabian StyleKim, Yeweon, and Ki-Hyung Yu. 2023. "Constructing a Database of Reference Hydrothermal Sources for a Zero-Energy Building Certification Rating in South Korea and Analyzing the Renewable Energy Self-Sufficiency Rate Achieved by Water-Source Heat Pumps" Energies 16, no. 1: 543. https://doi.org/10.3390/en16010543
APA StyleKim, Y., & Yu, K. -H. (2023). Constructing a Database of Reference Hydrothermal Sources for a Zero-Energy Building Certification Rating in South Korea and Analyzing the Renewable Energy Self-Sufficiency Rate Achieved by Water-Source Heat Pumps. Energies, 16(1), 543. https://doi.org/10.3390/en16010543