5-9 September 2016
Prague Congress Centre
Europe/Prague timezone

P2.007 The DTT device: systems for heating

6 Sep 2016, 14:20
1h 40m
Foyer 2A (2nd floor), 3A (3rd floor) (Prague Congress Centre)

Foyer 2A (2nd floor), 3A (3rd floor)

Prague Congress Centre

5. května 65, Prague, Czech Republic
Board: 7
Poster A. Experimental Fusion Devices and Supporting Facilities P2 Poster session

Speaker

Gustavo Granucci (IFP-CNR)

Description

The proposed Divertor Test Tokamak, DTT, aims at studying power exhaust and divertor load in an integrated plasma scenario. Additional heating systems have the task to provide heating to reach a reactor relevant power flow in the SOL and guarantee the necessary PSEP/R together adequate plasma performances. About 40 MW of heating power are foreseen to have PSEP/R ≥ 15 MW/m. A mix of the three heating systems presently proposed for ITER has been chosen, assuring the necessary flexibility in scenario development. An ECRH system at 170 GHz will provide 10 MW at plasma for several tasks, such as: bulk electron heating to bring the plasma in the high confinement regime, current profile tailoring by localized CD, avoidance of impurity accumulation, MHD control and current ramp up and ramp down assistance. Together with the EC system, 15MW of ICRH (in the range 60-90MHz) will provide the remaining bulk plasma heating power, on both electrons and ions. ICRH, in minority scheme, will produce fast ions, with an isotropic perpendicular distribution, allowing the study of fast particle driven instabilities like alphas in D-T burning plasmas. The heating schemes foreseen in DTT are 33He and H minority as well as Deuterium 2ndnd harmonic. The addition of 15 MW of NBI, later in the project, could provide a mainly isotropic parallel fast ion distribution to simulate the alpha heating scheme of a reactor. The NBI primary aim is to support plasma heating during the flat top phase when the need of central power deposition and the minimization of the shine-through risk suggest a beam energy around 300 keV. In the first phase of the DTT project the available power will be at least 25 MW, to be increased during the lifetime of the machine.

Co-authors

Alessandro Bruschi (IFP-CNR, via Cozzi, 53 - 20115 Milan, Italy) Alessandro Cardinali (Dipartimento FSN, ENEA, via E.Fermi 45, 00044 Frascati (Roma), Italy) Angelo Antonio Tuccillo (Dipartimento FSN, ENEA, via E.Fermi 45, 00044 Frascati (Roma), Italy) Carlo Sozzi (IFP-CNR, via Cozzi, 53 - 20115 Milan, Italy) Daniele Milanesio (Dipartimento Elettronica, Politecnico di Torino, Torino, Italy) Francesco Mirizzi (Consorzio CREATE, via Claudio 21, I-80125 Napoli, Italy) Gerardo Giruzzi (CEA-IRFM, F-13108 Saint-Paul-lez-Durance, France) Gian Luigi Ravera (Dipartimento FSN, ENEA, via E.Fermi 45, 00044 Frascati (Roma), Italy) Gustavo Granucci (IFP-CNR, via Cozzi, 53 - 20115 Milan, Italy) Lorenzo Figini (IFP-CNR, via Cozzi, 53 - 20115 Milan, Italy) Piergiorgio Sonato (Consorzio RFX, I-35127 Padova, Italy) Piero Agostinetti (Consorzio RFX, I-35127 Padova, Italy) Pietro Vincenzi (Consorzio RFX, I-35127 Padova, Italy) Riccardo Maggiora (Dipartimento Elettronica, Politecnico di Torino, Torino, Italy) Saul Garavaglia (IFP-CNR, via Cozzi, 53 - 20115 Milan, Italy) Silvana Nowak (IFP-CNR, via Cozzi, 53 - 20115 Milan, Italy) Silvio Ceccuzzi (Dipartimento FSN, ENEA, via E.Fermi 45, 00044 Frascati (Roma), Italy) Tomaso Bolzonella (Consorzio RFX, I-35127 Padova, Italy)

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