A Novel Mathematical Model for Infrastructure Planning of Dynamic Wireless Power Transfer Systems for Electric Vehicles
Afshin Ghassemi, Laura Soares, Hao Wang, Zhimin Xi

TL;DR
This paper introduces a new mathematical model for planning wireless charging infrastructure for electric vehicles, emphasizing renewable energy integration to optimize costs and system reliability.
Contribution
It proposes a novel mixed-integer linear decision model for infrastructure planning of DWPT systems, incorporating renewable energy sources and analyzing their impact.
Findings
Renewable energy significantly reduces system costs.
The model identifies near-optimal infrastructure allocation.
Renewable integration improves EV reliability.
Abstract
About 26% of total U.S. energy consumption is used in the transportation sector. Conventional vehicles use fuels such as gasoline, emit harmful gases, and have adverse effects on the environment. Electric vehicles (EVs) provide an alternative solution that decreases the dependency on traditional fuels such as gasoline and reduces hazardous gas emissions. EVs can drive longer distances by employing dynamic wireless power transfer systems (DWPT) without increasing their battery size or having stopovers. Additionally, developing a decision system that avoids an excessive load on the power grid is essential. These decision systems are particularly beneficial for autonomous driving for personal and public transportation. This study briefly reviews the available literature in dynamic wireless power transfer systems and proposes a novel system-level mathematical decision model to find the…
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Taxonomy
TopicsEnergy Harvesting in Wireless Networks · Wireless Power Transfer Systems · Electric Vehicles and Infrastructure
MethodsElectric
