Technological Advancements in Electric Vehicles: Challenges and Opportunities for the Automotive Industry

Main Article Content

Ashwani Arora

Abstract

Technological progress, environmental worries, and regulatory demands have all contributed to the rapid expansion of the electric vehicle (EV) sector in the last several years. Innovation in electric mobility technologies is vital as car manufacturers aim to satisfy customer demand for cleaner, more efficient automobiles. cutting-edge developments in electric vehicle technology, with an emphasis on battery technology, charging infrastructure, vehicle performance, and renewable energy system integration. Also covered are the obstacles that the car industry must overcome in order to advance electric vehicle technology, such as exorbitant manufacturing prices, an inadequate charging infrastructure, and issues related to batteries, such as concerns about range and charge durations. Better energy efficiency, lower prices, and the possibility of connecting electric vehicles to smart grids and renewable power sources are just a few of the advantages that these technical advancements offer. The critical importance of technical advancement in removing obstacles to the widespread use of electric vehicles and attaining a sustainable, low-carbon future will be examined through an examination of present tendencies, forthcoming technology, and industry endeavours. suggestions for how the electric vehicle industry might overcome current obstacles and make the most of emerging opportunities.

Article Details

How to Cite
Arora, A. (2025). Technological Advancements in Electric Vehicles: Challenges and Opportunities for the Automotive Industry. Shodh Sagar Journal of Electric Vehicles, 2(1), 25–30. https://doi.org/10.36676/jev.v2.i1.23
Section
Original Research Articles

References

Bernard, M.J. 1996. Using NPTS data to indicate electric vehicle market potential in rural areas. Transportation Research Record 1537: 70-73.

Bunch, D.S., M. Bradley, T.F. Golob, R. Kitamura and G.P. Occhiuzzo. 1993. Demand for clean fuel vehicles in California: a discrete choice stated preference project. Transportation Research A 27(3): 237-253.

Cervero, R. 1997. Electric station cars in the San Francisco Bay Area. Transportation Quarterly 51(2): 51-61.

Cheron, E. and M. Zins. 1997. Electric vehicle purchasing intentions: the concern over battery charge duration. Transportation Research A 31(3): 235-243.

Chiu, Y.C. and G.H. Tzeng. 1999. The market acceptance of electric motorcycles in Taiwan: experience through a stated preference analysis. Transportation Research D 4(2): 127-146.

D’Arcier, B.F., O. Andan and C. Raux. 1998. Stated adaptation surveys and choice process: some methodological issues. Transportation 25(2): 169-185.

DeLucchi, M.A. and T.E. Lipman. 2001. An analysis of the retail and lifecycle cost of battery-powered electric vehicles. Transportation Research D 6(6): 371-404.

Golob, T.F. and J. Gould. 1998. Projecting use of electric vehicles from household vehicle trials. Transportation Research B 32(7): 441-454.

Jai Prakash. (2022). Implementation of Sustainable Reforms in the Indian Automobile Industry: From Vehicle Emission Perspective. Innovative Research Thoughts, 8(4), 280–286. Retrieved from https://irt.shodhsagar.com/index.php/j/article/view/1206

Kumar, D. R. (2024). Study of Supply Chain of Electric Vehicle Components. Shodh Sagar Journal of Electric Vehicles, 1(1), 17–24. https://doi.org/10.36676/jev.v1.i1.3

Ms. Minal Fiske, & Dr. Sunil B. Somani. (2019). LORA COMMUNICATION BASED ELECTRIC VEHICLE CHARGING. International Journal for Research Publication and Seminar, 10(2), 67–71. Retrieved from https://jrps.shodhsagar.com/index.php/j/article/view/1258

Singla, A. (2024). Study of Battery Technology: Advancements in Electric Vehicles. Darpan International Research Analysis, 12(3), 180–187. https://doi.org/10.36676/dira.v12.i3.65

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