Economic Assessment of Autonomous Electric Microtransit Vehicles
Abstract
:1. Introduction
2. Materials and Methods
- Internal Combustion Engine Vehicle (ICEV): 30-passenger maximum capacity internal combustion engine (ICE) powered non-automated microtransit vehicle with a length of 6 m.
- Electric Vehicle (EV): 30-passenger maximum capacity battery-electric non-automated microtransit vehicle with a length of 6 m. Currently, it requires a battery capacity of 120 kWh which was determined based on the schedule of the current buses. However, the lifetime of the battery pack may extend from 500 full cycles to 2000 full cycles by the year 2030 resulting in a smaller battery size for the same driving requirements [42]. Hence, a battery capacity of 80 kWh is estimated for the EVs for the year 2030 [43].
- Autonomous Electric Vehicle (AEV): 30-passenger maximum capacity fully autonomous (Level 4/5) electric microtransit vehicle with a length of 6 m. It has the same electric powertrain specifications as the EVs. The autonomous driving components include four LIDAR units, 2 cameras, additional units such as IMU (inertial measurement unit), ultrasonic sensors, multi-connectivity over Wi-Fi, 4G, and GPS, and an autonomous driving computer. Additionally, indoor and outdoor screens which allow for improved human-machine interaction (HMI) are included in the vehicle.
- Single-deck bus: 12 m ICE bus with a maximum passenger capacity of 90.
- Double-deck bus: 12 m ICE bus with a maximum passenger capacity of 130.
2.1. Acquisition Costs
2.2. Operating Costs
2.2.1. Road Tax
2.2.2. Energy Costs
2.2.3. Maintenance Costs
2.2.4. Insurance Costs
2.2.5. Cleaning Costs
2.2.6. Personnel Costs
2.3. End-of-life (EOL) Costs
3. Results
3.1. Acquisition Costs
3.2. TCO Analysis
3.3. Sensitivity Analysis
4. Discussion
5. Summary and Research Prospects
Author Contributions
Funding
Conflicts of Interest
References
- Arbib, J.; Seba, T. Rethinking Transportation 2020–2030: The Disruption of Transportation and the Collapse of the Internal-Combustion Vehicle and Oil Industries, RethinkX 2017. Available online: http://bit.ly/2pL0cZV (accessed on 12 July 2018).
- Li, T.; Kockelman, K.M. Valuing the Safety Benefits of Connected and Automated Vehicle Technologies. In Proceedings of the 95th Annual Meeting of the Transportation Research Board, Washington, DC, USA, 10–14 January 2016; Available online: https://trid.trb.org/view/1392528 (accessed on 15 July 2018).
- Fagnant, D.J.; Kockelman, K. Preparing a nation for autonomous vehicles: Opportunities, barriers and policy recommendations. Transp. Res. Part A Policy Pract. 2015, 7, 167–181. [Google Scholar] [CrossRef]
- Litman, T. Autonomous vehicle implementation predictions. Implications for Transport Planning. 2018. Available online: www.vtpi.org (accessed on 11 July 2018).
- Urban Mobility System Upgrade. How Shared Self-Driving Cars Could Change City Traffic; International Transport Forum Policy Papers, No. 6; OECD Publishing: Paris, France, 2015; Available online: https://doi.org/10.1787/5jlwvzdk29g5-en (accessed on 30 October 2017).
- UITP. Policy Brief. Autonomous Vehicles: A Potential Game Changer for Urban Mobility. 2016. Available online: http://www.uitp.org/sites/default/files/cck-focus-papers-files/PolicyBrief_Autonomous_Vehicles_LQ_20160116.pdf (accessed on 20 June 2018).
- Easymile. 2017. Available online: http://easymile.com (accessed on 19 November 2017).
- Local Motors, Meet Olli. 2017. Available online: https://localmotors.com/meet-olli (accessed on 20 November 2017).
- Navya, Navya Shuttle. 2017. Available online: http://navya.tech/en/ (accessed on 20 November 2017).
- Tuvie, AGV Bus: Autonomous Bus Concept by Vincent Chan. 2017. Available online: http://www.tuvie.com/agv-bus-autonomous-bus-concept-by-vincent-chan (accessed on 20 November 2017).
- New Atlas, EasyMile’s Driverless Bus Rolls-Out in Singapore and California. 2017. Available online: https://newatlas.com/easymile-ez10-driverlessbus/39891/ (accessed on 20 November 2017).
- The Verge, Las Vegas Is Expanding Its Self-Driving Shuttle Experiment. 2017. Available online: https://www.theverge.com/2017/11/6/16614388/las-vegas-self-driving-shuttle-navya-keolis-aaa (accessed on 15 November 2017).
- Gulf News: Transport. Driverless Vehicle on Trial in Downtown Dubai. 2016. Available online: http://gulfnews.com/news/uae/transport/driverless-vehicle-on-trial-in-downtown-dubai-1.1888590 (accessed on 10 July 2018).
- Daimler, A.G. The Mercedes-Benz Future Bus: The Future of Mobility, (n.d.). Available online: https://www.daimler.com/innovation/autonomous-driving/future-bus.html (accessed on 15 November 2017).
- Tagesspiegel. Bahn Will Mit Mini-Bus ‘Olli’ uber Konkurrenz Machen. 2016. Available online: http://www.tagesspiegel.de/wirtschaft/autonomes-fahren-bahn-will-mit-mini-bus-olli-uber-konkurrenzmachen/14991328.html (accessed on 15 November 2017).
- The Washington Post. How to Get a Free Ride in a Self-Driving Shuttle This Summer. 2016. Available online: https://www.washingtonpost.com/news/innovations/wp/2016/06/16/how-to-get-a-free-ride-in-a-selfdriving-shuttle-this-summer/ (accessed on 15 November 2017).
- Stephens, T.; Gonder, J.; Chen, Z.L.; Liu, C.; Gohlke, D. Estimated Bounds and Important Factors for Fuel Use and Consumer Costs of Connected and Automated Vehicles; Technical Report; National Renewable Energy Laboratory, U.S. Department of Energy: Golden, CO, USA, 2016.
- Williams, M. Nvidia Talks Up Its $10,000 Autonomous Driving Computer, the Drive PX. 2017. Available online: https://www.pcworld.com/article/2898452/nvidia-unveils-10000-autonomous-driving-computer.html (accessed on 12 February 2018).
- Higgins, S. Velodyne Cuts VLP-16 Lidar Price to $4k. 2018. Available online: https://www.spar3d.com/news/lidar/velodyne-cuts-vlp-16-lidar-price-4k/ (accessed on 12 February 2018).
- Mosquet, X.; Dauner, T.; Lang, N.; Rüßmann, M.; Mei-Pochtler, A.; Agrawal, R.; Schmieg, F. Revolution in the Driver ’s Seat: The Road to Autonomous Vehicles. 2015. Available online: https://www.bcg.com/publications/2015/automotive-consumer-insight-revolution-drivers-seat-road-autonomous-vehicles.aspx (accessed on 10 February 2018).
- IHS Markit, Apple iPhone X (A1865) Preliminary Cost Summary. 2017. Available online: https://mms.businesswire.com/media/20171108005058/en/622977/5/iPhoneX_cost_summary.jpg (accessed on 10 February 2018).
- Transport Systems Catapult. Market Forecast for Connected and Autonomous Vehicles. 2017. Available online: https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/642813/15780_TSC_Market_Forecast_for_CAV_Report_FINAL.pdf (accessed on 10 July 2018).
- KPMG. Connected and Autonomous Vehicle—The UK Economic Opportunity. 2015. Available online: https://www.smmt.co.uk/wp-content/uploads/sites/2/CRT036586F-Connected-and-Autonomous-Vehicles-%E2%80%93-The-UK-Economic-Opportu...1.pdf (accessed on 10 July 2018).
- Bansal, P.; Kockelman, K.M. Forecasting Americans’ long-term adoption of connected and autonomous vehicle technologies. Transp. Res. Part A Policy Pract. 2017, 95, 49–63. [Google Scholar] [CrossRef]
- Teoh, L.E.; Khoo, H.L.; Goh, S.Y.; Chong, L.M. Scenario-based electric bus operation: A case study of Putrajaya, Malaysia. Int. J. Transp. Sci. Technol. 2018, 7, 10–25. [Google Scholar] [CrossRef]
- Laizāns, A.; Graurs, I.; Rubenis, A.; Utehin, G. Economic viability of electric public busses: Regional perspective. Procedia Eng. 2016, 134, 316–321. [Google Scholar] [CrossRef]
- Nurhadi, L.; Borén, S.; Ny, H. A sensitivity analysis of total cost of ownership for electric public bus transport systems in Swedish medium sized cities. Transp. Res. Procedia 2014, 3, 818–827. [Google Scholar] [CrossRef]
- Tong, F.; Hendrickson, C.; Biehler, A.; Jaramillo, P.; Seki, S. Life cycle ownership cost and environmental externality of alternative fuel options for transit buses. Transp. Res. Part D Transport Environ. 2017, 57, 287–302. [Google Scholar] [CrossRef]
- Lajunen, A. Energy consumption and cost-benefit analysis of hybrid and electric city buses. Transp. Res. Part C Emerg. Technol. 2014, 38, 1–15. [Google Scholar] [CrossRef]
- Aber, J. Electric Bus Analysis for New York City Transit; Columbia University: New York, NY, USA, 2016; Available online: http://www.columbia.edu/~ja3041/Electric%20Bus%20Analysis%20for%20NYC%20Transit%20by%20J%20Aber%20Columbia%20University%20-%20May%202016.pdf (accessed on 10 May 2017).
- Quarles, N.; Kockelman, K.M. Costs and Benefits of Electrifying and Automating U.S. Bus Fleets. In Proceedings of the 97th Annual Meeting of the Transportation Research Board, Washington, DC, USA, 7–11 January 2018; Available online: https://trid.trb.org/view/1494351 (accessed on 12 July 2018).
- Fries, M.; Kerler, M.; Rohr, S.; Sinning, M.; Schickram, S.; Lienkamp, M. An Overview of Costs for Vehicle Components, Fuels, Greenhouse Gas Emissions and Total Cost of Ownership—Update 2017. 2017. Available online: https://www.researchgate.net/publication/260339436_An_Overview_of_Costs_for_Vehicle_Components_Fuels_and_Greenhouse_Gas_Emissions (accessed on 20 December 2017).
- Wadud, Z. Fully automated vehicles: A cost of ownership analysis to inform early adoption. Transp. Res. Part A Policy Pract. 2017, 101, 163–176. [Google Scholar] [CrossRef] [Green Version]
- BCG Group Will Autonomous Vehicles Derail Trains? BCG Perspectives. 2016. Available online: https://www.bcg.com/publications/2016/transportation-travel-tourism-automotive-will-autonomous-vehicles-derail-trains.aspx (accessed on 10 April 2018).
- Friedrich, M.; Hartl, M. MEGAFON—Modellergebnisse Geteilter Autonomer Fahrzeugflotten des Oeffentlichen Nahverkehrs. Universitaet Stuttgart, Institut für Strassen- und Verkehrswesen, 2016. Available online: https://www.ptvgroup.com/de/mobilitynext/public/media/PDF/MEGAFON_Abschlussbericht.pdf (accessed on 5 April 2018).
- Bosch, P.M.; Becker, F.; Becker, H.; Axhausen, K.W. Cost-based analysis of autonomous mobility services. Transport Policy 2018, 64, 76–91. [Google Scholar] [CrossRef]
- Department of Statistics Singapore. Singapore in Figures 2017. Available online: https://www.singstat.gov.sg/-/media/files/publications/reference/sif2017.pdf (accessed on 10 January 2018).
- World Bank, Population Density. 2017. Available online: https://data.worldbank.org/indicator/EN.POP.DNST?year_high_desc=true (accessed on 20 December 2017).
- Land Transport Authority Singapore. Land Transport Master Plan 2013. 2013. Available online: https://www.lta.gov.sg/content/dam/ltaweb/corp/PublicationsResearch/files/ReportNewsletter/LTMP2013Report.pdf (accessed on 10 January 2018).
- Rau, A.; Tiana, L.; Jaina, M.; Xiea, M.; Zhou, T.L.Y. Dynamic autonomous road transit (DART) for use-case capacity more than bus. Transp. Res. Procedia 2018, in press. [Google Scholar]
- Borroni-Bird, C. Automotive Fuel Cell Requirements. In Proceedings of the 1996 Automotive Technology Development Customers’ Coordination Meeting, Detroit, MI, USA, 30 October 1996; U.S. Department of Energy, Office of Transportation Technologies: Washington, DC, USA, 1996. [Google Scholar]
- Jiang, Y.; Yu, S.; Wang, B.; Li, Y.; Sun, W.; Lu, Y.; Yan, B.; Song, S. Dou. Prussian Blue© composite as an ultrahigh-rate and long-life Sodium-Ion battery cathode. Adv. Funct. Mater. 2016, 26, 5315–5321. [Google Scholar] [CrossRef]
- Teichert, O.; Chang, F.; Ongel, A.; Lienkamp, M. Joint optimization of vehicle battery pack capacity & charging infrastructure for electrified public transport bus systems. IEEE Trans. Transport Electrif. 2018. under review. [Google Scholar]
- Singapore Consumer Price Index (CPI). Available online: https://tradingeconomics.com/singapore/consumer-price-index-cpi (accessed on 15 January 2018).
- Monetary Authority of Singapore (MAS). Monetary Policy and Economics. Available online: http://www.mas.gov.sg/Monetary-Policy-and-Economics/Monetary-Policy/Monetary-Policy-Framework/FAQs/Section-1.aspx (accessed on 20 June 2018).
- Double Deck Bus. Available online: https://www.lta.gov.sg/apps/news/page.aspx?c=2&id=a62a6b2e-cadf-4c06-bf45-b2a40c5a802b. July 2018 (accessed on 10 July 2018).
- Land Transport Authority (LTA). Available online: https://landtransportguru.net/volvo-diesel-hybrid-buses-procured-by-lta/ (accessed on 11 November 2017).
- World Bank Group. Commodity Markets Outlook. October 2017. Available online: http://www.worldbank.org/commodities (accessed on 20 July 2018).
- Samsung. Available online: http://www.samsung.com/de/business/business-products/large-format-display/professional-display/LH43PMHPBGC/EN (accessed on 15 November 2017).
- Velodyne; San Francisco, CA, USA. Personal Communication, 2018.
- Daimler, A.G. Erfolgreichster Stadtbus aller Zeiten. 30.000 Citaro in zwölf Jahren. 2011. Available online: https://www.mercedes-benz.de/content/germany/mpc/mpc_germany_website/de/home_mpc/bus/home/buses_world/awards/2011/30000_citaro.html (accessed on 20 October 2017).
- Daimler, A.G. Jubiläum für den erfolgreichsten Stadtbus aller Zeiten: 50 000 Mercedes-Benz Citaro. 2017. Available online: https://www.mercedes-benz.de/content/germany/mpc/mpc_germany_website/de/home_mpc/bus/home/buses_world/update/news_2017/50000_mercedes-benz_citaro.html (accessed on 15 October 2017).
- Torenli, A. Assembly Line Design and Optimization. Master’s Thesis, Chalmers University of Technology, Göteborg, Sweden, 2009. [Google Scholar]
- PWC. Global Wage Projections to 2030. 2013. Available online: https://www.pwc.co.uk/assets/pdf/global-wage-projections-sept2013.pdf (accessed on 10 April 2018).
- Daimler. Mercedes-Benz Sprinter Minibuses. Available online: http://media.daimler.com/marsMediaSite/en/instance/ko/Mercedes-Benz-Sprinter-minibuses-new-look-new-technology-new-models-emission-standard-Euro-VI.xhtml?oid=9904787 (accessed on 10 January 2018).
- Manyika, J.; Chui, M.; Miremadi, M.; Bughin, J.; George, K.; Willmott, P.; Dewhurst, M. A Future That Works: Automation, Employment, and Productivity; McKinsey Global Institute: San Francisco, CA, USA, 2017. [Google Scholar]
- Ecoinvent Centre. Transport Services. Data v2.0. Ecoinvent Report No.14. Villigen and Uster. 2017. Available online: https://db.ecoinvent.org/reports/14_transport.pdf (accessed on 15 May 2018).
- Electricity Prices, Second Semester of 2015–2017. Available online: http://ec.europa.eu/eurostat/statistics-explained/images/7/7d/Electricity_prices%2C_Second_semester_of_2015-2017_%28EUR_per_kWh%29.png (accessed on 23 April 2018).
- European Commission. EU Energy Trends to 2030. 2010. Available online: https://ec.europa.eu/energy/sites/ener/files/documents/trends_to_2030_update_2009.pdf (accessed on 5 April 2018).
- Land Transport Authority (LTA). Tax Structure for Buses. Available online: https://www.lta.gov.sg/content/ltaweb/en/roads-and-motoring/owning-a-vehicle/costs-of-owning-a-vehicle/tax-structure-for-buses.html (accessed on 15 October 2017).
- Land Transport Authority (LTA); Singapore. Personal Communication, 2017.
- Chang, F.; Khoo, R.; Ongel, A.; Lienkamp, M. Rapid Energy Consumption Assessment of Vehicle Concepts for Public Transport Systems without Detailed Deployment Data. In Proceedings of the International Conference on Innovative Smart Grid Technologies 2018 (ISGT Asia 2018), Singapore, 22–25 May 2018; pp. 1–4. [Google Scholar]
- Teichert, O. Battery and Charging Infrastructure Sizing of Electric Buses. Master’s Thesis, Technical University of Munich, Munich, Germany, 2017. [Google Scholar]
- Lai, J.; Yu, L.; Song, G.; Guo, P.; Chen, X. Development of city-specific driving cycles for transit buses based on VSP distributions: Case of Beijing. J. Transp. Eng. 2013, 139, 749–757. [Google Scholar] [CrossRef]
- Tzirakis, E.; Pitsas, K.; Zannikos, F.; Stournas, S. Vehicle emissions and driving cycles: Comparison of the Athens Driving Cycle (ADC) with ECE-15 and European Driving Cycle (EDC). Glob. NEST J. 2006, 8, 282–290. [Google Scholar]
- Mitropoulos, L.K.; Prevedouros, P.D.; Kopelias, P. Total cost of ownership and externalities of conventional, hybrid, and electric vehicle. Transp. Res. Procedia 2017, 24, 267–274. [Google Scholar] [CrossRef]
- Ministry of Manpower. Singapore Yearbook of Manpower Statistics. Available online: https://stats.mom.gov.sg/Pages/Singapore-Yearbook-Of-Manpower-Statistics-2018-Income-Earnings-and-Wages.aspx (accessed on 12 January 2019).
- Bain & Co. Labor 2030: The Collision of Demographics, Automation and Inequality. 2018. Available online: https://www.bain.com/contentassets/fa89826544934e429f7b6441d6a5c542/bain_report_labor_2030.pdf (accessed on 18 December 2018).
- Vermeulen, B.; Kesselhut, J.; Pyka, A.; Saviotti, P. The Impact of Automation on Employment: Just the Usual Structural Change? Sustainability 2018, 10, 1661. [Google Scholar] [CrossRef]
- SP Group. Electricity Tariff 2014–2018. Available online: https://www.spgroup.com.sg/wcm/connect/spgrp/e0b9800a-c39b-4f41-8664-2bbe8e2ca826/%5BInfo%5D+Historical+Electricity+Tariff.xlsx?MOD=AJPERES (accessed on 10 April 2018).
- Chen, L. Design of duty-varied voltage pulse charger for improving Li-Ion battery-charging response. IEEE Trans. Ind. Electron. 2009, 56, 480–487. [Google Scholar] [CrossRef]
- SBT Global Car Exporter. Toyota Coaster Bus Review—Price, Specs and Fuel Consumption in MPG. 2018. Available online: https://www.sbtjapan.com//kp-toyota-coaster-bus-review (accessed on 10 January 2018).
- Kochhan, R.P. Techno-Economic Evaluation of Battery-Electric Taxis. Ph.D. Thesis, Institute of Sustainable Corporate Management, Ulm University, Ulm, Germany, 2017. [Google Scholar]
- USDOT Volpe Center. Bus Lifecycle Cost Model. Available online: https://www.volpe.dot.gov/sites/volpe.dot.gov/files/.../bus_lifecycle_cost_model.xlsm (accessed on 14 April 2018).
- Average Maintenance Technician Salary- Singapore. Available online: https://www.payscale.com/research/SG/Job=Maintenance_Technician/Salary (accessed on 1 July 2018).
- Average Maintenance Technician Salary- United States. Available online: https://www.payscale.com/research/US/Job=Maintenance_Technician/Hourly_Rate (accessed on 1 July 2018).
- SBS Transit. Annual Report 2016. Singapore. Available online: https://www.sbstransit.com.sg/generalinfo/financial.aspx?year=2016 (accessed on 10 October 2017).
- Schiavone, J. Transit Bus Service Line and Cleaning Functions—A Synthesis of Transit Practice; Transportation Research Board National Research Council, Transit Cooperative Research Program: Washington, DC, USA, 1995; Available online: http://onlinepubs.trb.org/onlinepubs/tcrp/tsyn12.pdf (accessed on 12 October 2017).
- Ministry of Manpower. Progressive Wage Model for the Cleaning Sector. 2017. Available online: http://www.mom.gov.sg/employment-practices/progressive-wage-model/cleaning-sector (accessed on 24 February 2018).
- Schaufenster Elektromobilitat. Studie: Second-Life-Konzepte für Lithium-Ionen-Batterien aus Elektrofahrzeugen—Analyse von Nachnutzungsanwendungen, ökonomischen und ökologischen Potenzialen—Ergebnispapier der Begleit- und Wirkungsforschung. VDE Verband der Elektrotechnik Elektronik Informationstechnik e. V.—Begleit- und Wirkungsforschung Schaufenster Elektromobilität, 2016. Available online: https://www.ffe.de/download/article/620/StudieSecondLifeKonzepte.pdf (accessed on 10 May 2018).
- Monetary Authority of Singapore. Economics Explorer Series Inflation. 2018. Available online: http://www.mas.gov.sg/~/media/MAS/Monetary%20Policy%20and%20Economics/Education%20and%20Research/Education/Explorer/Economics%20Explorer%202%20Inflation.pdf (accessed on 18 December 2018).
Cost Variables | Description |
---|---|
Bill of Materials | |
Vehicle body and chassis components | 2030 prices of the raw materials including metals, plastics, lubricants, and chemicals were estimated based on the World Bank Commodities Price Forecast [48]. |
Powertrain | 2030 battery pack prices were estimated based on the study by Fries et al. [32]. For rest of the powertrain/drivetrain components, 2017 prices were raised using CPI. |
Autonomous driving technology | A learning curve with a learning rate of 90% was used to estimate the relationship between cumulative uptake and manufacturing cost reduction rates by 2030 [22]. |
HMI system | A learning curve with a learning rate of 90% was used for estimating the relationship between cumulative uptake and manufacturing cost reduction rates by the year 2030 [22]. |
Assembly Labor | It was assumed that vehicles are produced in low volume in continuous assembly lines with little automation in eastern Europe. 2017 wages [53] increased based on the change in the labor wages in eastern Europe [54]. A compound growth rate of 0.3% in productivity was used to calculate the assembly labor hours in 2030 [56]. |
Energy Costs (assembly) | Energy costs were calculated as a function of electricity consumption [57] and 2030 electricity price forecasts in Europe [59]. |
Taxes and fees [60] | |
Excise Duty | Exempt. |
Good and Services Tax | Calculated as 7% of the 2030 OMV of each vehicle. |
Registration Fee | 2017 value of S$ 140 was raised using CPI. |
Additional Registration Fee | Calculated as 5% of the 2030 OMV of each vehicle. |
Certificate of Entitlement | Exempt. |
Carbon Emissions-based Vehicle Scheme | Exempt. |
Parameters | 12 m Buses | ICEV | EV | AEV |
---|---|---|---|---|
Average days of operation per year | 329 | 329 | 347 | 347 |
Average distance travelled /day, km | 162 | 213 | 213 | 213 |
Journey speed, km/h | 8.76 | 21.67 | 21.67 | 21.67 |
Annual use, days | 329 | 329 | 347 | 347 |
Occupancy, passengers | 15 for single-deck bus 22 for double-deck bus | 5 | 5 | 5 |
Cost Variables | Operating and End-of-Life Cost Estimations |
---|---|
Operating Costs | |
Road tax | The 2017 road taxes for microtransit vehicles and buses were estimated as S$524 for the AEV and EV which fall under the category “Green, 3.5–7 tons”, S$658 for the ICE which falls under the category “Diesel, 3.5–7 tons”, and S$1530 for buses which fall under the category “Diesel, 20–26 tons” [60]. 2017 road taxes specified for buses increased by the CPI to estimate the taxes for the years 2030 and beyond. |
Energy costs | The 2030 commercial electricity price was estimated applying the forecasted average change in the natural gas price in Europe, Japan, and the US [48] to the 2017 value of the commercial electricity price [68] in Singapore. The bus depot diesel price in 2030 was estimated applying the forecasted change in the crude oil prices [48] to the 2017 diesel price [73]. It was assumed that AVs would consume 10% less energy due to smoother driving compared to human driven vehicles [17]. The 2030 energy prices increased by the CPI to estimate the prices beyond the year 2030. |
Maintenance costs | The autonomous driving components, including the LIDAR, cameras, processing unit, and HMI hardware, as well as the interior fittings and seats were assumed to go under mid-life refurbishment. The service costs for EVs were estimated as half of those of the ICE vehicles [64]. The estimated 2030 autonomous driving and furniture hardware costs increased by the CPI to estimate the costs beyond the year 2030. |
Insurance costs | It was assumed the insurance costs would be correlated with the acquisition costs and AVs’ insurance costs would be half of those with human drivers due to the expected increased safety with autonomous driving [36]. 2017 insurance costs increased by the CPI to estimate the future costs. |
Cleaning costs | It was assumed that the vehicles are cleaned only the days when they are operating, and the cleaning time required is proportional to the vehicle floor size. Singapore applies Progressive Wage Model for the low-wage earners including the cleaning sector [79]. However, there is no monthly minimum salary defined by MOM of Singapore after the year of 2019. Therefore, the wages for the years beyond 2019 were adjusted using the CPI. |
Personnel costs | 2017 bus captain salaries increased by the CPI for the years 2030 and beyond. |
End-of-life costs | It was assumed that the revenue of selling vehicle scrap material from vehicle components would be equal to the costs of scrapping. However, for the EVs, remaining battery value was added as a negative cost to the operational costs for the years when the battery is replaced. It was assumed that the price for the second-life batteries with 70–80% of its original capacity would be 50% of the new battery [80]. The estimated 2030 battery costs increased by the CPI for the years beyond 2030. |
Vehicle Type | Acquisition Cost | Bus Captain Costs | Energy Costs | Maintenance Costs | Discount Rate | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
10% | 20% | 30% | 10% | 20% | 30% | 10% | 20% | 30% | 10% | 20% | 30% | From 3% to 7% | |
AEV | 3% | 5% | 8% | - | - | - | 4% | 7% | 11% | 3% | 7% | 10% | 20% |
EV | 1% | 1% | 2% | 7% | 14% | 21% | 1% | 2% | 4% | 1% | 2% | 3% | 25% |
ICEV | 1% | 1% | 2% | 6% | 13% | 19% | 1% | 2% | 3% | 2% | 4% | 5% | 26% |
12 m SD | 2% | 3% | 5% | 4% | 9% | 13% | 2% | 4% | 6% | 1% | 3% | 4% | 23% |
12 m DD | 2% | 4% | 6% | 4% | 8% | 12% | 2% | 4% | 6% | 2% | 3% | 5% | 22% |
© 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Ongel, A.; Loewer, E.; Roemer, F.; Sethuraman, G.; Chang, F.; Lienkamp, M. Economic Assessment of Autonomous Electric Microtransit Vehicles. Sustainability 2019, 11, 648. https://doi.org/10.3390/su11030648
Ongel A, Loewer E, Roemer F, Sethuraman G, Chang F, Lienkamp M. Economic Assessment of Autonomous Electric Microtransit Vehicles. Sustainability. 2019; 11(3):648. https://doi.org/10.3390/su11030648
Chicago/Turabian StyleOngel, Aybike, Erik Loewer, Felix Roemer, Ganesh Sethuraman, Fengqi Chang, and Markus Lienkamp. 2019. "Economic Assessment of Autonomous Electric Microtransit Vehicles" Sustainability 11, no. 3: 648. https://doi.org/10.3390/su11030648
APA StyleOngel, A., Loewer, E., Roemer, F., Sethuraman, G., Chang, F., & Lienkamp, M. (2019). Economic Assessment of Autonomous Electric Microtransit Vehicles. Sustainability, 11(3), 648. https://doi.org/10.3390/su11030648