Traditionally, the impact of charging electric vehicles in the electricity grid is determined through scenario-analysis and based on statistical data. In this paper, instead of making assumptions on driving behavior, the energy consumption was calculated with measured driving profiles of conventional vehicles in order to quantify the future impact on the grid in more detail. As a function of the penetration of the Plug-in Hybrid Electric Vehicles and Battery Electric Vehicles, the increase in the peak power requirement in the grid is assessed. © 2011 IEEE.status: publishe
The limited driving range of electric vehicles (EV) is one of the biggest deployment challenges for...
Internal combustion engines (ICE) are combined with electric motors and batteries in both hybrid ele...
Today, the transport sector is responsible for nearly one-quarter of global energy-related direct ca...
With the success of Hybrid Electric Vehicles (HEVs) in the automobile market, Plug-In Hybrid Electri...
Very little information is known about the impact electrification has on driving behavior, or how dr...
The constantly evolving western grid of the United States is characterized by complex generation dis...
Electric vehicles (EVs) have received massive consideration in the automotive industries due to thei...
This paper presents the results of an analysis of real-world trip and charge data from an electric v...
With an electrified passenger transportation fleet, carbon dioxide emissions could be reduced signif...
Automotive and energy researchers have made considerable efforts to predict the impact of plug-in hy...
Greenhouse gas emissions, air pollution in urban areas, and dependence on fossil fuels are among the...
Plug-in hybrid electric vehicles (PHEVs) consume both gasoline and grid electricity. The correspondi...
This chapter assesses the impact of different technical solutions and their impact on the ability of...
Thesis (Master's)--University of Washington, 2016-03As worldwide environmental consciousness grows, ...
The electrification of vehicles would be a reality in the coming decades. Statistical results on rea...
The limited driving range of electric vehicles (EV) is one of the biggest deployment challenges for...
Internal combustion engines (ICE) are combined with electric motors and batteries in both hybrid ele...
Today, the transport sector is responsible for nearly one-quarter of global energy-related direct ca...
With the success of Hybrid Electric Vehicles (HEVs) in the automobile market, Plug-In Hybrid Electri...
Very little information is known about the impact electrification has on driving behavior, or how dr...
The constantly evolving western grid of the United States is characterized by complex generation dis...
Electric vehicles (EVs) have received massive consideration in the automotive industries due to thei...
This paper presents the results of an analysis of real-world trip and charge data from an electric v...
With an electrified passenger transportation fleet, carbon dioxide emissions could be reduced signif...
Automotive and energy researchers have made considerable efforts to predict the impact of plug-in hy...
Greenhouse gas emissions, air pollution in urban areas, and dependence on fossil fuels are among the...
Plug-in hybrid electric vehicles (PHEVs) consume both gasoline and grid electricity. The correspondi...
This chapter assesses the impact of different technical solutions and their impact on the ability of...
Thesis (Master's)--University of Washington, 2016-03As worldwide environmental consciousness grows, ...
The electrification of vehicles would be a reality in the coming decades. Statistical results on rea...
The limited driving range of electric vehicles (EV) is one of the biggest deployment challenges for...
Internal combustion engines (ICE) are combined with electric motors and batteries in both hybrid ele...
Today, the transport sector is responsible for nearly one-quarter of global energy-related direct ca...