Socio-Economic and Environmental Analyses of Sustainable Public Transport in the Philippines
Abstract
:1. Introduction
2. Methodology
2.1. Case Study Background
2.2. Financial Valuation
2.3. Environmental Impact Assessment
2.4. Social Acceptance
3. Results and Discussion
3.1. Environmental Impact
3.2. Social Acceptance and Outlook
4. Conclusions
- Stronger financing supporting mechanisms such as investment subsidy, tax benefit for using electric vehicle, and old vehicle scrapping scheme.
- Establishing strategic areas for the adoption of electric public transport in short and flat routes in central business districts, using combustion vehicles with EURO-4 emission standards or better in routes where electric vehicles cannot initially be adopted.
- Investing in public charging infrastructures optimally located in strategic places such as public terminals, parking areas, and gas stations.
- Clearer and stricter implementation of government policies related to fleet consolidation and management, public utility vehicle operational age limit, emissions test, route rationalization, loading and unloading areas, traffic rules and regulations, and labor codes.
- Upgrading the drivers’ and mechanics’ skills on operating electric vehicles and traffic rules.
- Information dissemination on the benefits of using more sustainable modes of transportation and its relevance on energy transition and climate change.
- Developing locally made electric vehicles to boost the economy, lower the investment costs, and create more jobs.
- Promoting non-motorized mode of transportation such as cycling and walking by assigning pedestrian and bicycle lanes.
- Intensifying the investment in mass transportation infrastructures such as light trains, trams, and subway trains.
- Increasing the percentage of renewables in the power generation mix by investing in more sustainable sources of energy.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Profile | Number |
---|---|
Commuters | 538 |
Drivers | 465 |
Other Stakeholders | 152 |
Experts | 164 |
TOTAL RESPONDENTS | 1319 |
Tricycle | e-Trike | ||||
---|---|---|---|---|---|
Unit | Boundary | PUVMP | Boundary | PUVMP | |
Driver salary | USD/yr | 1360–2500 | 1300–2250 | 3090–5370 | 1610–2250 |
Owner profit | USD/yr | 970–1250 | 1200–1600 | 1300–1920 | 2800–5170 |
Net present value (NPV) * | USD | 7450–9500 | 9600–12800 | 8600–10350 | 21,620–37,760 |
Payback period (PBP) * | Year | 1.05–1.12 | 0.83–0.86 | 2.12–3.33 | 0.99–1.42 |
Return on investment (ROI) * | % | 890–950 | 1160–1200 | 300–50 | 706–1010 |
Jeepney | e-Jeepney | ||||
---|---|---|---|---|---|
Unit | Boundary | PUVMP | Boundary | PUVMP | |
Driver salary | USD/yr | 3180–4670 | 2580–3540 | 4410–6710 | 2580–3540 |
Owner profit | USD/yr | 2580–3540 | 4470–6210 | 5300–6560 | 7190–9850 |
NPV * | USD | 25,500–33,330 | 30,980–42,070 | 27,240–33,500 | 43,720–62,150 |
PBP * | Year | 2.26–2.34 | 1.79–1.84 | 3.58–3.62 | 2.41–2.64 |
ROI * | % | 427–442 | 540–560 | 276–280 | 380–420 |
Unit | Tricycle | e-Trike | Jeepney | e-Jeepney | |
---|---|---|---|---|---|
Greenhouse gas (GHG) emissions | t CO2 eq/yr per vehicle | 4.16–6.24 | 1.08–1.51 | 20.81–29.14 | 2.78–3.70 |
GHG fleet emissions * | Mt CO2 eq/yr | 2.50–3.75 | 0.65–0.91 | 12.49–17.48 | 1.67–2.22 |
Electricity demand * | GWh/yr | 1050–1470 | 900–1200 | ||
Fuel demand * | Million barrels/yr | 5.28–7.93 | 8.81–12.33 | ||
Particulate matter (PM) | Kg CO2 eq/yr | 68.35–102.52 | 2.45–3.43 | 18.23–25.53 | 1.08–1.44 |
Nitrogen oxides (NOx) | Kg CO2 eq/yr | 6.83–10.25 | 1.47–2.02 | 61.38–85.93 | 10.95–14.60 |
Sulfur oxides (SOx) | Kg CO2 eq/yr | 1.37–2.05 | 0.49–0.69 | 4.79–6.70 | 2.11–2.82 |
CO | Kg CO2 eq/yr | 88.85–133.28 | 4.85–6.79 | 111.5–156.0 | 9.80–13.06 |
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Agaton, C.B.; Collera, A.A.; Guno, C.S. Socio-Economic and Environmental Analyses of Sustainable Public Transport in the Philippines. Sustainability 2020, 12, 4720. https://doi.org/10.3390/su12114720
Agaton CB, Collera AA, Guno CS. Socio-Economic and Environmental Analyses of Sustainable Public Transport in the Philippines. Sustainability. 2020; 12(11):4720. https://doi.org/10.3390/su12114720
Chicago/Turabian StyleAgaton, Casper Boongaling, Angelie Azcuna Collera, and Charmaine Samala Guno. 2020. "Socio-Economic and Environmental Analyses of Sustainable Public Transport in the Philippines" Sustainability 12, no. 11: 4720. https://doi.org/10.3390/su12114720
APA StyleAgaton, C. B., Collera, A. A., & Guno, C. S. (2020). Socio-Economic and Environmental Analyses of Sustainable Public Transport in the Philippines. Sustainability, 12(11), 4720. https://doi.org/10.3390/su12114720