Article, 2024

Coordination of coupled electrified road systems and active power distribution networks with flexibility integration

Applied Energy, ISSN 0306-2619, 1872-9118, Volume 369, Page 123546, 10.1016/j.apenergy.2024.123546

Contributors

Najafi, Arsalan 0000-0002-5383-5103 [1] [2] Tsaousoglou, Georgios 0000-0002-8222-7027 [3] Gao, Kun 0000-0002-4175-850X (Corresponding author) [2] Parishwad, Omkar 0000-0001-5389-099X [2]

Affiliations

  1. [1] Wrocław University of Science and Technology
  2. [NORA names: Poland; Europe, EU; OECD];
  3. [2] Chalmers University of Technology
  4. [NORA names: Sweden; Europe, EU; Nordic; OECD];
  5. [3] Technical University of Denmark
  6. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

Electric road systems (ERS) constitute a promising technology for mobile charging and relieving mandatory stops to recharge electric vehicles. However, the ERS operation is constrained by the limitations of the Power Distribution Network (PDN) that provides electricity. This study proposes a integrated optimization of a coupled ERS-PDN system (including traffic assignment and power flow modeling), in the presence of self-interested electric vehicle drivers, diverse flexibility resources and uncertainty of energy supplies (e.g. uncertainty from renewable energy). The security of the PDN while supporting ERS can be ensured by using active and flexible energy storage and flexible power loads. A semi-dynamic model is adopted for the traffic assignment. A stochastic bi-level optimization based on Stackelberg game under uncertainty is proposed to model the joint optimization problem to minimize the general cost of coupled ERS-PDN system and maximize the profit of the energy flexibility provider. Then, the Karush Kuhn Tucker conditions are deployed to convert the bi-level model to the equivalent single level model. The results demonstrate the effectiveness and benefits of the proposed framework using numerical experiments. The results show that the proposed optimization can reduce the burden of an ERS on the underlying PDN in improving the violated voltage by 3.66%, demonstrating the effect of joint consideration of diverse sources of flexibility.

Keywords

Karush, Karush Kuhn Tucker conditions, Kuhn Tucker conditions, Stackelberg, Stackelberg game, Tucker conditions, active power distribution network, assignment, benefits, bi-level model, bi-level optimization, burden, charge, conditions, considerations, coordination, distribution network, diverse sources, drivers, effect, electric road system, electric vehicle drivers, electric vehicles, electricity, electrified road systems, energy, energy storage, energy supply, experiments, flexibility, flexibility providers, flexible energy storage, flexible integration, flexible resources, framework, game, integration, joint consideration, joint optimization problem, limitations, load, mobile charges, model, network, numerical experiments, operation, optimization, optimization problem, power, power distribution network, power load, presence, problem, profit, providers, recharging electric vehicles, resources, results, road system, security, semi-dynamic model, sources of flexibility, storage, study, supply, system, technology, traffic, traffic assignment, uncertainty, vehicle, vehicle drivers, voltage

Funders

  • Swedish Energy Agency

Data Provider: Digital Science