Preliminary Design of the Electrical Power Systems for DTT Nuclear Fusion Plant

Author:

Caldora Marzia,Falvo Maria CarmenORCID,Lampasi AlessandroORCID,Marelli Gianluca

Abstract

The realization of the Divertor Tokamak Test (DTT) facility is one of the key milestones of the European Roadmap, aiming to explore alternative power exhaust solutions for DEMO, the first nuclear-fusion power plant that will be connected to the European grid. For the actual implementation of the DTT and DEMO plants, it is necessary to define the structure of the internal electric power distribution system, able to supply unconventional loads with a sufficient level of reliability. The present paper reports the preliminary studies for the feasibility and realization of the electrical power systems of DTT, describing the methodology adopted to obtain a first distribution configuration and providing some simulation results. In particular, the first stage of the study deals with the survey and characterization of the electrical loads, which allows defining a general layout of the facility and size the main electrical components. To verify the correctness of the assumptions, simulation models of the grid were implemented in the DIgSILENT PowerFactory software in order to carry out power flow and fault analyses.

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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1. Analysis for the Integration of the Toroidal Field Power Supply in the DTT Nuclear Fusion Facility;2023 AEIT International Annual Conference (AEIT);2023-10-05

2. Final design of the DTT Toroidal power supply circuit;Fusion Engineering and Design;2023-07

3. Preliminary Sizing and Operation Analysis of the DTT Electrical Network System;2023 IEEE International Conference on Environment and Electrical Engineering and 2023 IEEE Industrial and Commercial Power Systems Europe (EEEIC / I&CPS Europe);2023-06-06

4. Cascaded multilevel inverter for vertical stabilization and radial control power supplies;Fusion Engineering and Design;2023-04

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