The Viability of Providing 24-Hour Electricity Access to Off-Grid Island Communities in the Philippines
Abstract
:1. Introduction
2. Viability of Rural Electrification Initiatives
3. Materials and Methods
3.1. Research Environment
3.2. Research Methodology
3.3. Load Profiling
3.4. Techno-Economic Viability Assessment
3.5. Socio-Economic Viability Assessment
3.6. Validation
4. Results and Discussion
4.1. Energy Market and Load Profile
4.2. Techno-Economic Viability Assessment
4.3. Socio-Economic Viability Assessment
4.4. Validation
5. Significance of Productive Uses of Electricity
6. Policy Implications
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Demographic Parameters | Pangan-an |
---|---|
Educational Background | |
Did not graduate elementary | 49% |
Elementary graduate | 24% |
Did not graduate high school | 0% |
High school graduate | 18% |
College level | 5% |
College graduate | 3% |
Post-college studies | 1% |
Household size | |
Small-sized (1 to 3 members) | 23% |
Average-sized (4 to 6 members) | 47% |
Large-sized (above 6 members) | 30% |
Average household monthly income (according to income cluster) [48] | |
Poor (less than US$158 per mo.) | 69% |
Lower income (US$158–316 per mo.) | 26% |
Lower middle income (US$317–632 per mo.) | 5% |
Load Scenario | Hours of Access | Households Connected | With or Without Fridge |
---|---|---|---|
LS 1 | 24 | 100% | With fridge |
LS 2 | 24 | 100% | Without fridge |
Attribute | Average | Std. | Min. | Max. |
---|---|---|---|---|
Monthly Income (in US$) | ||||
2015 data | 52.81 | 51.21 | 0 | 164.00 |
2018 data | 125.37 | 90.30 | 0 * | 540.00 |
Monthly Electricity bill (in US$) | ||||
2015 data | 6.42 | 2.12 | 5.00 | 15.00 |
2018 data | 5.86 | 3.59 | 0 ** | 13.50 |
Parameters | Pangan-an Island Load Scenarios | |
---|---|---|
LS 1 | LS 2 | |
Solar PV size | 50 kW | 30 kW |
Generator | Yes | Yes |
Battery qty | 200 strings | 100 strings |
Inverter size | 22 kW | 10 kW |
Levelized cost of electricity | US$0.366 | US$0.405 |
Net present cost | US$1.83 M | US$725,969 |
Operating cost per year | US$86,971 | US$33,558 |
Initial capital investment | US$110,977 | US$63,885 |
Renewable energy fraction | 29.1% | 32.8% |
Load served (in kWh) | 252,764 | 90,772 |
Economics at 10% profit margin | ||
Payback period | 6.43 years | 8.13 years |
ROI | 13.5% | 10.8% |
Economics at 20% profit margin | ||
Payback period | 3.16 years | 4.44 years |
ROI | 21.8% | 16.6% |
Electricity Load Scenario | Pe (in USD) | Pa (in USD) | Qe (Annual) | Qa (Annual) | D (in USD) |
---|---|---|---|---|---|
LS 1 | |||||
At 10% profit margin | 0.4026 | 0.715 | 252,764 | 13,490 | 41,626.97 |
At 20% profit margin | 0.4392 | 0.715 | 252,764 | 13,490 | 36,754.52 |
LS 2 | |||||
At 10% profit margin | 0.4455 | 0.715 | 90,722 | 13,490 | 14,057.51 |
At 20% profit margin | 0.4860 | 0.715 | 90,722 | 13,490 | 11,947.21 |
Income Classification/Load Scenarios | Average Consumption (in kWh per Day) | Electricity Cost (US$ per Day) | Percentage of Income Spent on Electricity |
---|---|---|---|
LS 1 | |||
At 10% profit margin | |||
Poor | 0.45 | 0.18 | 7% |
Low income | 2.15 | 0.86 | 13% |
Lower middle class | 2.41 | 0.97 | 8% |
At 20% profit margin | |||
Poor | 0.45 | 0.20 | 7% |
Low income | 2.15 | 0.94 | 14% |
Lower middle class | 2.41 | 1.06 | 8% |
LS 2 | |||
At 10% profit margin | |||
Poor | 0.45 | 0.20 | 7% |
Low income | 0.95 | 0.42 | 6% |
Lower middle class | 1.21 | 0.54 | 4% |
At 20% profit margin | |||
Poor | 0.45 | 0.22 | 8% |
Low income | 0.95 | 0.46 | 7% |
Lower middle class | 1.21 | 0.59 | 5% |
Parameters | Values |
---|---|
Solar PV System | US$9400.00 |
Distribution and installation | US$8699.11 |
Annual operations and maintenance | US$464.00 |
Annual energy output | 10,713.60 kWh |
Levelized cost of electricity | US$0.264 |
Net present cost | $38,438.99 |
Economics at 10% profit margin | |
Payback period | 9.14 years |
ROI | 10.93% |
Economics at 20% profit margin | |
Payback period | 8.39 years |
ROI | 11.93% |
Electricity Load Scenario | Pe (in USD) | Pa (in USD) * | Qe (Annual) | Qa (Annual) | D (in USD) |
---|---|---|---|---|---|
At 10% profit margin | 0.2904 | 1.21 | 4742 | 3259 | 3679.02 |
At 20% profit margin | 0.3618 | 1.21 | 4742 | 3259 | 3573.40 |
Income Classification/Load Scenarios | Average Consumption (in kWh per Day) | Electricity Cost (US$ per Day) | Percentage of Income Spent on Electricity |
---|---|---|---|
At 10% profit margin | |||
Poor | 0.96 | 0.2788 | 12% |
Low income | 1.02 | 0.2969 | 5% |
At 20% profit margin | |||
Poor | 0.96 | 0.3041 | 13% |
Low income | 1.02 | 0.3239 | 5% |
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Lozano, L.; Querikiol, E.M.; Taboada, E.B. The Viability of Providing 24-Hour Electricity Access to Off-Grid Island Communities in the Philippines. Energies 2021, 14, 6797. https://doi.org/10.3390/en14206797
Lozano L, Querikiol EM, Taboada EB. The Viability of Providing 24-Hour Electricity Access to Off-Grid Island Communities in the Philippines. Energies. 2021; 14(20):6797. https://doi.org/10.3390/en14206797
Chicago/Turabian StyleLozano, Lorafe, Edward M. Querikiol, and Evelyn B. Taboada. 2021. "The Viability of Providing 24-Hour Electricity Access to Off-Grid Island Communities in the Philippines" Energies 14, no. 20: 6797. https://doi.org/10.3390/en14206797
APA StyleLozano, L., Querikiol, E. M., & Taboada, E. B. (2021). The Viability of Providing 24-Hour Electricity Access to Off-Grid Island Communities in the Philippines. Energies, 14(20), 6797. https://doi.org/10.3390/en14206797