Citywide Energy-Related CO2 Emissions and Sustainability Assessment of the Development of Low-Carbon Policy in Chiang Mai, Thailand
Abstract
:1. Introduction
2. Materials and Methods
2.1. Case Study
2.2. Boundaries of Energy-Related CO2 Emissions
2.3. Estimation of Energy-Related CO2 Emissions
2.4. Potential Options for Mitigating Citywide GHG Emissions
2.4.1. GHG Mitigation Potential in 2030
2.4.2. Multi-Criteria Assessment of Climate Mitigation Policy in the Energy Sector
3. Results
3.1. Total Citywide Energy-Related CO2 Emissions
3.2. GHG Mitigation Scenarios
3.3. Sustainability Assessment of GHG Mitigation Scenarios and Mitigation Policy-Based AHP
4. Discussion
4.1. CO2 Mitigation Potential
4.2. Climate Change Mitigation Policy Based on Multicriteria Decision AHP Analysis
4.3. Technical and Policy Implications
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Aspects of Sustainability | Indicators | References |
---|---|---|
Environmental performance | • Direct contribution to environmental benefits | [13] |
• Direct contribution to climate benefits as GHG reduction | [13,18] | |
Political, technical and economic feasibility | • Costs and benefits of implementing climate mitigation measures | [13] |
• Policy possibility/stringency for non-compliance | [13] | |
• Technological feasibility of implementing climate mitigation measures | [13] | |
Human and social dimensions | • Added value creation from energy efficiency measures in households | [13] |
• Participation in societal decision-making processes | [13,18] | |
• Society’s ability of self-organization | [13] |
Energy-Related GHG Mitigation Measures | Weight | Ranking |
---|---|---|
LED lighting | 0.380 | 1 |
High-efficiency air conditioning system | 0.278 | 2 |
Energy-efficient appliances | 0.203 | 3 |
Solar cell power | 0.072 | 4 |
Biogas energy | 0.042 | 5 |
High-efficiency cooking stoves | 0.026 | 6 |
Sustainability Aspects | Factors | Weight | Ranking |
---|---|---|---|
Environmental performance (0.073) | • Direct contribution to environmental benefits | 0.042 | 6 |
• Direct contribution to climate benefits as GHG reduction | 0.030 | 8 | |
Political, technical, and economic feasibility (0.798) | • Costs and benefits of implementing climate mitigation measures | 0.230 | 3 |
• Policy possibility | 0.322 | 1 | |
• Technological feasibility of implementing climate mitigation measures | 0.247 | 2 | |
Human and social dimensions (0.129) | • Added value creation from energy efficiency measures in households | 0.036 | 7 |
• Participation in societal decision-making processes | 0.045 | 5 | |
• Society’s ability of self-organization | 0.048 | 4 |
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Sugsaisakon, S.; Kittipongvises, S. Citywide Energy-Related CO2 Emissions and Sustainability Assessment of the Development of Low-Carbon Policy in Chiang Mai, Thailand. Sustainability 2021, 13, 6789. https://doi.org/10.3390/su13126789
Sugsaisakon S, Kittipongvises S. Citywide Energy-Related CO2 Emissions and Sustainability Assessment of the Development of Low-Carbon Policy in Chiang Mai, Thailand. Sustainability. 2021; 13(12):6789. https://doi.org/10.3390/su13126789
Chicago/Turabian StyleSugsaisakon, Sittisak, and Suthirat Kittipongvises. 2021. "Citywide Energy-Related CO2 Emissions and Sustainability Assessment of the Development of Low-Carbon Policy in Chiang Mai, Thailand" Sustainability 13, no. 12: 6789. https://doi.org/10.3390/su13126789
APA StyleSugsaisakon, S., & Kittipongvises, S. (2021). Citywide Energy-Related CO2 Emissions and Sustainability Assessment of the Development of Low-Carbon Policy in Chiang Mai, Thailand. Sustainability, 13(12), 6789. https://doi.org/10.3390/su13126789