Technology solutions to mitigate electricity cost for electric vehicle DC fast charging
Creators
- 1. National Renewable Energy Laboratory (NREL), 15013 Denver West Parkway, Golden, CO 80401 (United States)
- 2. Idaho National Laboratory (INL), 2525 Fremont Ave, Idaho Falls, ID 83402 (United States)
Description
Highlights: • Electric vehicle DCFC stations can incur high electricity costs at low utilization. • Least-cost DCFC for over 7000 electricity rates and 4 empirical charging loads. • Batteries mitigate demand charges, especially for "peaky" or low-utilization loads. • PV mitigate energy charges, especially for solar-correlated loads. • Energy storage and PV can deploy synergistically to provide cost reductions for DCFC. -- Abstract: Widespread adoption of alternative fuel vehicles is being hindered by high vehicle costs and refueling or range limitations. For plug-in electric vehicles, direct-current fast charging (DCFC) is proposed as a solution to support long-distance travel and relieve range anxiety. However, DCFC has also been shown to be potentially more expensive compared to residential or workplace charging. In particular, electricity demand charges can significantly impact electricity cost for fast charging applications. Here we explore technological solutions that can help reduce the electricity cost for electric vehicle fast charging. In particular, we consider thousands of electricity rates available in the United States and real-world vehicle charging load scenarios to assess opportunities to reduce the cost of DCFC by deploying solar photovoltaics (PV) panels and energy storage (battery), and implementing a co-location configuration where a DCFC station is connected to an existing meter within a commercial building. Results show that while the median electricity cost across more than 7000 commercial retail rates remains less than $0.20/kWh for all charging load scenarios considered, cost varies greatly, and some locations do experience significantly higher electricity cost. Co-location is almost always economically viable to mitigate fixed cost and demand charges, but the relative benefit of co-locating diminishes as station size and utilization increase. Energy storage alone can help mitigate demand charges and is more effective at reducing costs for "peaky" or low-utilization loads. On the other hand, PV systems primarily help mitigate energy charges, and are more effective for loads that are more correlated with solar production, even in areas with lower solar resource. PV and energy storage can deploy synergistically to provide cost reductions for DCFC, leveraging their ability to mitigate demand and energy charges.
Additional details
Identifiers
- DOI
- 10.1016/j.apenergy.2019.03.061;
- PII
- S0306261919304581;
Publishing Information
- Journal Title
- Applied Energy
- Journal Volume
- 242
- Journal Page Range
- p. 415-423
- ISSN
- 0306-2619
- CODEN
- APENDX
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 55012688
- Subject category
- S29: ENERGY PLANNING, POLICY AND ECONOMY;
- Descriptors DEI
- ALTERNATIVE FUELS; DIRECT CURRENT; ECONOMIC ANALYSIS; ELECTRIC BATTERIES; ELECTRICITY; ELECTRIC-POWERED VEHICLES; ENERGY DEMAND; ENERGY STORAGE; METERS; PHOTOVOLTAIC EFFECT; SOLAR CELLS
- Descriptors DEC
- CURRENTS; DEMAND; DIRECT ENERGY CONVERTERS; ECONOMICS; ELECTRIC CURRENTS; ELECTROCHEMICAL CELLS; ENERGY STORAGE SYSTEMS; ENERGY SYSTEMS; EQUIPMENT; FUELS; MEASURING INSTRUMENTS; PHOTOELECTRIC CELLS; PHOTOELECTRIC EFFECT; PHOTOVOLTAIC CELLS; SOLAR EQUIPMENT; STORAGE; VEHICLES
Optional Information
- Copyright
- Copyright (c) 2019 Elsevier Ltd. All rights reserved.