Yeni çözümler her zaman yeni sorunları beraberinde getirir. Yeşil araçların yükselişi, ulaşımın çevresel etkisini azaltmaya yönelik önemli bir adım olarak müjdelendi. Elektrikli araçlar, hibritler ve diğer çevre dostu alternatifler, emisyon azaltımı ve daha yeşil bir gelecek vaatleriyle son yıllarda popülerlik kazandı. Ancak soru hala ortada: Yeşil araçlar gerçekten çevre dostu mu? Bu kapsamlı akademik makale, üretim, enerji kaynakları, araçların gerçek pratik kullanımı ve genel karbon ayak izi gibi faktörleri göz önünde bulundurarak yeşil araçların çevresel etkilerini incelemektedir. Yeşil araçların yaşam döngüsünü analiz ederek çevresel faydaları ve zorlukları konusunda dengeli bir değerlendirme sağlanması amaçlanmaktadır.
ADBG. (2023, October 24). Rich in green minerals, African countries eye booming electric vehicle and clean energy market worth trillions of dollars. Retrieved from African Development Bank Group: https://www.afdb.org/en/news-and-events/rich-green-minerals-african-countries-eye-booming-electric-vehicle-and-clean-energy-market-worth-trillions-dollars-65241#:~:text=Many%20of%20the%20minerals%20needed,million%20tonnes%20of%20lithium%20reserves.
Athanasopoulou, L., Bikas, H., Papacharalampopoulos, A., Stavropoulos, P., & Chryssolouris, G. (2023). An industry 4.0 approach to electric vehicles. International Journal of Computer Integrated Manufacturing, 36(2), 334–348. https://doi.org/10.1080/0951192X.2022.2081363
Blanco-Muruzábal, M., Martín-Gómez, C., Zuazua-Ros, A., Trabada Echarri, T., Valdivieso De Las Heras, J., & Mambrilla-Herrero, N. (n.d.). From Combustion Vehicle to Electric Vehicle Parking, Through a Review of Legislation and Publications. Architecture Research, 2022(1), 1–11. https://doi.org/10.5923/j.arch.20221201.01
Gharbaoui, M. &. (2012). An Advanced Smart Management System for Electric Vehicle Recharge. . Retrieved from 2012 IEEE International Electric Vehicle Conference: IEVC 2012. 10.1109/IEVC.2012.6183171.
Gómez Vilchez, J. J., Pasqualino, R., & Hernandez, Y. (2023). The new electric SUV market under battery supply constraints: Might they increase CO2 emissions? Journal of Cleaner Production, 383. https://doi.org/10.1016/j.jclepro.2022.135294
Griffin, S. M. (2008). Diesel fumes do kill: a case of fatal carbon monoxide poisoning directly attributed to diesel fuel exhaust with a 10-year retrospective case and literature review*. Journal of forensic sciences, 53(5), https://doi.org/10.1111/j.1556-4029.2008.00804.x , 1206–1211.
Ismail, A. A., Mbungu, N. T., Elnady, A., Bansal, R. C., Hamid, A. K., & Alshabi, M. A. (2023). Impact of electric vehicles on smart grids and future predictions: A survey.
Jaeger, J. (2023, september 14). www.wri.org. Retrieved from Word Resources İnstitue : These Countries Are Adopting Electric Vehicles the Fastest
Kang, S., Kwon, M., Yoon Choi, J., & Choi, S. (2023). Full-scale fire testing of battery electric vehicles. Applied Energy, 332. https://doi.org/10.1016/j.apenergy.2022.120497
Leong, W. C. (2017). Siphoning diesel: a fatal mistake. The Medical journal of Malaysia, 72(5), , 314–315.
Machedon-Pisu, M., & Borza, P. N. (2023). Is the Transition to Electric Passenger Cars Sustainable? A Life Cycle Perspective. Sustainability (Switzerland), 15(3). https://doi.org/10.3390/su15032614
Mpoi, G., Milioti, C., & Mitropoulos, L. (2023). Factors and incentives that affect electric vehicle adoption in Greece. International Journal of Transportation Science and Technology, 12(4), 1064–1079. https://doi.org/10.1016/j.ijtst.2023.01.002
Paradies, G. L., Usmani, O. A., Lamboo, S., & van den Brink, R. W. (2023). Falling short in 2030: Simulating battery-electric vehicle adoption behaviour in the Netherlands. Energy Research and Social Science, 97. https://doi.org/10.1016/j.erss.2023.102968
Pirmana, V., Alisjahbana, A. S., Yusuf, A. A., Hoekstra, R., & Tukker, A. (2023). Economic and environmental impact of electric vehicles production in Indonesia. Clean Technologies and Environmental Policy, 25(6), 1871–1885. https://doi.org/10.1007/s10098-023-02475-6
R P Chilcott, h. p. (2007). https://assets.publishing.service.gov.uk. Retrieved from https://assets.publishing.service.gov.uk/media/5a7eb7e140f0b62305b82bbb/hpa_diesel__toxicological_overview_v2.pdf
Rapson, D. S., & Muehlegger, E. (2021). THE ECONOMICS OF ELECTRIC VEHICLES. http://www.nber.org/papers/w29093
Safarian, S. (2023). Environmental and energy impacts of battery electric and conventional vehicles: A study in Sweden under recycling scenarios. Fuel Communications, 14, 100083. https://doi.org/10.1016/j.jfueco.2022.100083
Evaluation of Green-Electric Vehicles in Terms of "Environmentalism" with a Social Anthropological Perspective
The new solutions always come with new problems. The rise of green vehicles has been heralded as a significant step towards reducing the environmental impact of transportation. Electric vehicles, hybrids, and other eco-friendly alternatives have gained popularity in recent years, with promises of reduced emissions and a greener future. However, the question remains: Are green vehicles truly environmentally friendly? This comprehensive academic article delves into the environmental impact of green vehicles, considering factors such as manufacturing, energy sources, real practical use of vehicles, and their overall carbon footprint. By examining the lifecycle of green vehicles, we aim to provide a balanced assessment of their environmental benefits and challenges.
ADBG. (2023, October 24). Rich in green minerals, African countries eye booming electric vehicle and clean energy market worth trillions of dollars. Retrieved from African Development Bank Group: https://www.afdb.org/en/news-and-events/rich-green-minerals-african-countries-eye-booming-electric-vehicle-and-clean-energy-market-worth-trillions-dollars-65241#:~:text=Many%20of%20the%20minerals%20needed,million%20tonnes%20of%20lithium%20reserves.
Athanasopoulou, L., Bikas, H., Papacharalampopoulos, A., Stavropoulos, P., & Chryssolouris, G. (2023). An industry 4.0 approach to electric vehicles. International Journal of Computer Integrated Manufacturing, 36(2), 334–348. https://doi.org/10.1080/0951192X.2022.2081363
Blanco-Muruzábal, M., Martín-Gómez, C., Zuazua-Ros, A., Trabada Echarri, T., Valdivieso De Las Heras, J., & Mambrilla-Herrero, N. (n.d.). From Combustion Vehicle to Electric Vehicle Parking, Through a Review of Legislation and Publications. Architecture Research, 2022(1), 1–11. https://doi.org/10.5923/j.arch.20221201.01
Gharbaoui, M. &. (2012). An Advanced Smart Management System for Electric Vehicle Recharge. . Retrieved from 2012 IEEE International Electric Vehicle Conference: IEVC 2012. 10.1109/IEVC.2012.6183171.
Gómez Vilchez, J. J., Pasqualino, R., & Hernandez, Y. (2023). The new electric SUV market under battery supply constraints: Might they increase CO2 emissions? Journal of Cleaner Production, 383. https://doi.org/10.1016/j.jclepro.2022.135294
Griffin, S. M. (2008). Diesel fumes do kill: a case of fatal carbon monoxide poisoning directly attributed to diesel fuel exhaust with a 10-year retrospective case and literature review*. Journal of forensic sciences, 53(5), https://doi.org/10.1111/j.1556-4029.2008.00804.x , 1206–1211.
Ismail, A. A., Mbungu, N. T., Elnady, A., Bansal, R. C., Hamid, A. K., & Alshabi, M. A. (2023). Impact of electric vehicles on smart grids and future predictions: A survey.
Jaeger, J. (2023, september 14). www.wri.org. Retrieved from Word Resources İnstitue : These Countries Are Adopting Electric Vehicles the Fastest
Kang, S., Kwon, M., Yoon Choi, J., & Choi, S. (2023). Full-scale fire testing of battery electric vehicles. Applied Energy, 332. https://doi.org/10.1016/j.apenergy.2022.120497
Leong, W. C. (2017). Siphoning diesel: a fatal mistake. The Medical journal of Malaysia, 72(5), , 314–315.
Machedon-Pisu, M., & Borza, P. N. (2023). Is the Transition to Electric Passenger Cars Sustainable? A Life Cycle Perspective. Sustainability (Switzerland), 15(3). https://doi.org/10.3390/su15032614
Mpoi, G., Milioti, C., & Mitropoulos, L. (2023). Factors and incentives that affect electric vehicle adoption in Greece. International Journal of Transportation Science and Technology, 12(4), 1064–1079. https://doi.org/10.1016/j.ijtst.2023.01.002
Paradies, G. L., Usmani, O. A., Lamboo, S., & van den Brink, R. W. (2023). Falling short in 2030: Simulating battery-electric vehicle adoption behaviour in the Netherlands. Energy Research and Social Science, 97. https://doi.org/10.1016/j.erss.2023.102968
Pirmana, V., Alisjahbana, A. S., Yusuf, A. A., Hoekstra, R., & Tukker, A. (2023). Economic and environmental impact of electric vehicles production in Indonesia. Clean Technologies and Environmental Policy, 25(6), 1871–1885. https://doi.org/10.1007/s10098-023-02475-6
R P Chilcott, h. p. (2007). https://assets.publishing.service.gov.uk. Retrieved from https://assets.publishing.service.gov.uk/media/5a7eb7e140f0b62305b82bbb/hpa_diesel__toxicological_overview_v2.pdf
Rapson, D. S., & Muehlegger, E. (2021). THE ECONOMICS OF ELECTRIC VEHICLES. http://www.nber.org/papers/w29093
Safarian, S. (2023). Environmental and energy impacts of battery electric and conventional vehicles: A study in Sweden under recycling scenarios. Fuel Communications, 14, 100083. https://doi.org/10.1016/j.jfueco.2022.100083
Hayırlı, O. (2024). Evaluation of Green-Electric Vehicles in Terms of "Environmentalism" with a Social Anthropological Perspective. Kent Akademisi, 17(6), 2270-2281. https://doi.org/10.35674/kent.1510129