Reducing Environmental Impact of Coal-Fired Power Plants by Building an Indoor Coal Storage: An Economic Analysis
Abstract
:1. Introduction
2. Background
2.1. Literature Review: Environmental Impacts of Coal Stockpile
2.2. Change to Be Valued: Indoor Coal Storage Facility
3. Methodology
3.1. Contingent Valuation Method
3.2. Double-Bounded Dichotomous Choice Spike Model (DBDC Spike Model)
3.3. Survey Design and Data Collection
4. Results and Discussion
4.1. Survey Results
4.2. Estimation Results of DBDC Spike Model
4.3. Cost–Benefit Analysis
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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No. of Respondents | Ratio (%) | ||
---|---|---|---|
Total number of respondents | 850 | 100% | |
Gender | Male | 447 | 52.6% |
Female | 403 | 47.4% | |
Age | 19–29 | 168 | 19.8% |
30–39 | 180 | 21.2% | |
40–49 | 218 | 25.6% | |
50–59 | 180 | 21.2% | |
60 or higher | 104 | 12.2% | |
Level of education | Less than high school | 124 | 14.6% |
More than university/college | 726 | 85.4% | |
Average monthly household income | Less than KRW 2 million (USD 1822) | 310 | 36.5% |
KRW 2–3 million (USD 1822–2733) | 223 | 26.2% | |
KRW 3–4 million (USD 2733–3643) | 174 | 20.5% | |
KRW 4–5 million (USD 3643–4554) | 85 | 10.0% | |
More than KRW 5 million (USD 4554) | 58 | 6.8% |
Initial Bid Amount (KRW) | No. of Responses | |||||
---|---|---|---|---|---|---|
Yes–Yes | Yes–No | No–Yes | No–No–Yes | No–No–No | Total | |
10,000 | 74 (42.3%) | 37 (21.1%) | 18 (10.3%) | 7 (4.0%) | 39 (22.3%) | 175 |
30,000 | 47 (27.3%) | 43 (25.0%) | 15 (8.7%) | 12 (7.0%) | 55 (32.0%)) | 172 |
50,000 | 44 (24.4%) | 30 (16.7%) | 21 (11.7%) | 18 (10.0%) | 67 (37.2%) | 180 |
70,000 | 21 (13.4%) | 35 (22.3%) | 24 (15.3%) | 19 (12.1%) | 58 (36.9%) | 157 |
100,000 | 31 (18.7%) | 26 (15.7%) | 21 (12.7%) | 26 (15.7%) | 62 (37.3%) | 166 |
Total | 217 (25.5%)) | 171 (20.1%) | 99 (11.6%) | 82 (9.6%) | 281 (33.1%) | 850 |
Variable | Definition | Mean | Standard Deviation |
---|---|---|---|
Gender | Respondent’s gender (1= female; 0 = male) | 0.47 | 0.50 |
Age | Respondent’s age in years | 42.91 | 12.90 |
Family | Size of the respondent’s household (unit: persons) | 3.09 | 1.19 |
Income | Monthly income level of the respondent’s household (from 1 to 10) | 5.00 | 4.06 |
Education | Respondent’s education level in years | 16.50 | 2.42 |
Interest in Environment | Interest in environmental issues (from 1 to 5) | 3.81 | 0.75 |
Region | Whether respondent lives in the area* where the six coal-fired power plants (research target) are located (1 = resident; 0 = non-resident) | 0.16 | 0.37 |
Model 1 (Without Covariates) | Model 2 (With Covariates) | |
---|---|---|
Constant | 0.5864 *** (0.0683) | −1.1690 * (0.6031) |
Bid amount | −0.000017 *** (0.00000086) | −0.000018 *** (0.00000089) |
Gender | - | −0.1372 (0.1267) |
Age | - | −0.0186 *** (0.0050) |
Family | - | 0.0115 (0.0554) |
Income | - | −0.0054 (0.0173) |
Education | - | 0.0321 (0.0277) |
Interest in Environment | - | 0.5509 *** (0.0915) |
Region | - | −0.0167 (0.1683) |
Spike | 0.3575 *** (0.0156) | 0.3540 *** (0.0156) |
Log likelihood | −1342.076 | −1318.793 |
Wald statistics (p-values) | 409.700 (0.000) | 427.283 (0.000) |
Average WTP per Household | Confidence Interval |
---|---|
KRW 59,242.08 *** (USD 53.97) | 95%: KRW 53,749.54–65,250.79 (USD 48.97–59.44) |
99%: KRW 52,053.46–67,271.26 (USD 47.42–61.28) |
Coal-Fired Power Plants in Korea | Coal Storage Capacity (Thousand Tons) | Site Area (Thousand m2) | Expected Cost of Building Indoor Coal Stockpiles |
---|---|---|---|
Incheon Yeongheung | 880 | 170 | KRW 530,000 million (USD 482.83 million) |
Chungnam Boryeong | 1270 | 250 | KRW 490,000 million (USD 446.39 million) |
Gyeongnam Samcheonpo | 550 | 200 | KRW 114,000 million (USD 103.85 million) |
Chungnam Dangjin | 730 | 140 | KRW 470,000 million (USD 428.17 million) |
Chungnam Taean | 1140 | 220 | KRW 143,000 million (USD 130.27 million) |
Gyeongnam Hadong | 900 | 170 | KRW 530,000 million (USD 482.83 million) |
Total | 5470 | 1150 | KRW 2,277,000 million (USD 2073.36 million) |
Size of Coal Stockpiles | Aggregated Benefit (A) | Cost (B) | Cost–Benefit (B-A) | Benefit–Cost Ratio (A/B) |
---|---|---|---|---|
Coal stockpiles of six major coal-fired power plants in Korea (5.47 million tons of coal, the total site area of 1.15 million m2). | KRW 1,183,657 million (USD 1078.32 million) | KRW 2,277,000 million (USD 2074.36 million) | KRW 1,093,300 million (USD 996.00 million) | 0.520 |
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Woo, J.; Shin, J.; Yoo, S.-H.; Huh, S.-Y. Reducing Environmental Impact of Coal-Fired Power Plants by Building an Indoor Coal Storage: An Economic Analysis. Energies 2023, 16, 511. https://doi.org/10.3390/en16010511
Woo J, Shin J, Yoo S-H, Huh S-Y. Reducing Environmental Impact of Coal-Fired Power Plants by Building an Indoor Coal Storage: An Economic Analysis. Energies. 2023; 16(1):511. https://doi.org/10.3390/en16010511
Chicago/Turabian StyleWoo, JongRoul, Jungwoo Shin, Seung-Hoon Yoo, and Sung-Yoon Huh. 2023. "Reducing Environmental Impact of Coal-Fired Power Plants by Building an Indoor Coal Storage: An Economic Analysis" Energies 16, no. 1: 511. https://doi.org/10.3390/en16010511
APA StyleWoo, J., Shin, J., Yoo, S.-H., & Huh, S.-Y. (2023). Reducing Environmental Impact of Coal-Fired Power Plants by Building an Indoor Coal Storage: An Economic Analysis. Energies, 16(1), 511. https://doi.org/10.3390/en16010511