TCV experiments and novel theoretical studies have addressed key questions regarding the operational space of negative triangularity (NT) plasmas in view of an L-mode NT reactor, in terms of stability, performance properties and core-edge integration. We show that reducing the top triangularity (?top) to more negative values induces an H-L back transition, confirming the direct dependence between H-mode existence and access to 2nd ballooning stability region. We also show that the X-point ? can prohibit H-mode access if sufficiently negative. Using these conditions to stay in L-mode, we show the sustainment of a stationary high ?N NT plasma, with H98y2 > 1, using real-time ? control with NBI as an actuator. This plasma has Ti > Te over the whole profile. Gyrokinetic simulations show that the benefit of NT might be lost for aspect ratio <2.5, in the TEM-dominated microturbulence regime and that the improved confinement is primarily due to the non X-point triangularity (top ? in single-null down divertor, SND). Global gyrokinetic studies also show that this improvement does not change with machine size (independent of ?*). These studies as well as other results presented at this conference allow us to propose in the conclusion a procedure for predicting and optimizing NT reactor plasmas which can be tested in present NT experiments.

Negative triangularity tokamak operation in TCV

Mantica P;Mariani A;
2023

Abstract

TCV experiments and novel theoretical studies have addressed key questions regarding the operational space of negative triangularity (NT) plasmas in view of an L-mode NT reactor, in terms of stability, performance properties and core-edge integration. We show that reducing the top triangularity (?top) to more negative values induces an H-L back transition, confirming the direct dependence between H-mode existence and access to 2nd ballooning stability region. We also show that the X-point ? can prohibit H-mode access if sufficiently negative. Using these conditions to stay in L-mode, we show the sustainment of a stationary high ?N NT plasma, with H98y2 > 1, using real-time ? control with NBI as an actuator. This plasma has Ti > Te over the whole profile. Gyrokinetic simulations show that the benefit of NT might be lost for aspect ratio <2.5, in the TEM-dominated microturbulence regime and that the improved confinement is primarily due to the non X-point triangularity (top ? in single-null down divertor, SND). Global gyrokinetic studies also show that this improvement does not change with machine size (independent of ?*). These studies as well as other results presented at this conference allow us to propose in the conclusion a procedure for predicting and optimizing NT reactor plasmas which can be tested in present NT experiments.
2023
Istituto per la Scienza e Tecnologia dei Plasmi - ISTP
Inglese
29th IAEA Fusion Energy Conference (FEC 2023)
https://www.iaea.org/events/fec2023
16-21 October 2023
London, United Kingdom
Negative triangularity tokamak
TCV
Contribution ID: IAEA-CN-316-1863
29
info:eu-repo/semantics/conferenceObject
restricted
274
04 Contributo in convegno::04.02 Abstract in Atti di convegno
Sauter, O; Bagnato, F; Balestri, A; Ball, J; Brunner, S; Coda, S; Di Giannatale, G; Duval, B; Fevrier, O; Merle, A; Murugappan, M; Pau, A; Porte, L; S...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/434025
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