TY - JOUR
T1 - Integrated operation scenarios
T2 - Chapter 6 of the special issue: on the path to tokamak burning plasma operation
AU - ITPA Integrated Operation Scenario topical group
AU - Na, Yong Su
AU - Schuster, Eugenio
AU - Budny, Robert V.
AU - Garofalo, Andrea M.
AU - Hahn, Sang Hee
AU - Kim, Hyun Tae
AU - Koechl, Florian
AU - Polevoi, Alexei R.
AU - Barr, Jayson
AU - Baruzzo, Matteo
AU - Battaglia, Devon
AU - Bobkov, Volodymyr
AU - Chung, Jinil
AU - Colas, Laurent
AU - de Vries, Peter C.
AU - Ding, Siye
AU - Dubrov, Maksim
AU - Esposito, Basilio
AU - Felici, Federico
AU - Fujita, Takaaki
AU - Garcia, Jeronimo
AU - Gong, Xianzu
AU - Granucci, Gustavo
AU - Gribov, Yuri
AU - Hanada, Kazuaki
AU - Hayashi, Nobuhiko
AU - Helou, Walid
AU - Hobirk, Jörg
AU - Huang, Juan
AU - Ide, Shunsuke
AU - Jacquet, Philippe
AU - Kang, Jisung
AU - Kavin, Andrey
AU - Khayrutdinov, Rustam
AU - Kim, Boseong
AU - Kim, Hyun Seok
AU - Kim, Sun Hee
AU - Lee, Youngho
AU - Lerche, Ernesto
AU - Lin, Yijun
AU - Lukash, Victor
AU - Mailloux, Joelle
AU - Mineev, Anatoly
AU - Martinez, Andres Pajares
AU - Park, Jin Myung
AU - Schneider, Mireille
AU - Snipes, Joseph A.
AU - Victor, Brian Scott
AU - Yoo, Min Gu
AU - Zhang, Bin
N1 - Publisher Copyright:
© 2025 The Author(s). Published by IOP Publishing Ltd on behalf of the IAEA.
PY - 2025/9/1
Y1 - 2025/9/1
N2 - Here we report the progress of the development and optimization of operational scenarios for ITER and beyond, focusing upon baseline, hybrid, and steady-state scenarios since 2007. This includes advancements made by the integrated operation scenarios (IOS) topical group of the international tokamak physical activity as well as contributions from the broader tokamak community. The key area of research involves developing IOSs that encompass tokamak physics, operation, and technology by utilizing integrated modeling and control strategies. This requires leveraging available actuators to simultaneously control plasma position and shape, MHD activities that could lead to disruptions, transport, plasma-wall interaction and power exhaust, fuel cycle, fusion burn, and tritium breeding. The control extends from the plasma initiation phase, through the current ramp-up, flattop, start and end of the fusion burn, and current ramp-down, to the plasma termination phase. A review of the currently developed scenarios and modeling is provided in terms of (i) optimizing plasma initiation in ITER, (ii) preparing for the low activation phase to fully commission all tokamak systems and establish and validate physics and scenario conditions in preparation for deuterim-tritium (DT) operation, (iii) developing and preparing baseline and hybrid scenarios to demonstrate the feasibility of achieving these regimes within device constraints, (iv) exploring steady-state scenarios to meet ITER’s steady-state goals, (v) evaluating and preparing actuators for ITER, (vi) developing integrated control solutions using shared actuators. The most notable achievements include; (i) the development of ITER demonstration discharges by matching various dimensionless parameters, (ii) the development of scenarios in an ITER-like tungsten environment and DT operation, and (iii) the development of scenarios in superconducting tokamaks, enabling long-pulse operations with similar coil constraints to ITER. Along with these significant achievements, outstanding issues and recommendations for further research and development are provided. Importantly, this study goes beyond simply updating the ITER Physics Basis; it carries profound implications for the broader field of burning plasma research, offering valuable insights and guidance for the next generation of fusion experiments and devices.
AB - Here we report the progress of the development and optimization of operational scenarios for ITER and beyond, focusing upon baseline, hybrid, and steady-state scenarios since 2007. This includes advancements made by the integrated operation scenarios (IOS) topical group of the international tokamak physical activity as well as contributions from the broader tokamak community. The key area of research involves developing IOSs that encompass tokamak physics, operation, and technology by utilizing integrated modeling and control strategies. This requires leveraging available actuators to simultaneously control plasma position and shape, MHD activities that could lead to disruptions, transport, plasma-wall interaction and power exhaust, fuel cycle, fusion burn, and tritium breeding. The control extends from the plasma initiation phase, through the current ramp-up, flattop, start and end of the fusion burn, and current ramp-down, to the plasma termination phase. A review of the currently developed scenarios and modeling is provided in terms of (i) optimizing plasma initiation in ITER, (ii) preparing for the low activation phase to fully commission all tokamak systems and establish and validate physics and scenario conditions in preparation for deuterim-tritium (DT) operation, (iii) developing and preparing baseline and hybrid scenarios to demonstrate the feasibility of achieving these regimes within device constraints, (iv) exploring steady-state scenarios to meet ITER’s steady-state goals, (v) evaluating and preparing actuators for ITER, (vi) developing integrated control solutions using shared actuators. The most notable achievements include; (i) the development of ITER demonstration discharges by matching various dimensionless parameters, (ii) the development of scenarios in an ITER-like tungsten environment and DT operation, and (iii) the development of scenarios in superconducting tokamaks, enabling long-pulse operations with similar coil constraints to ITER. Along with these significant achievements, outstanding issues and recommendations for further research and development are provided. Importantly, this study goes beyond simply updating the ITER Physics Basis; it carries profound implications for the broader field of burning plasma research, offering valuable insights and guidance for the next generation of fusion experiments and devices.
KW - ITER
KW - ITPA
KW - burning plasma
KW - integrated modeling
KW - operation scenario
KW - tokamak control
UR - https://www.scopus.com/pages/publications/105013038263
U2 - 10.1088/1741-4326/ade79f
DO - 10.1088/1741-4326/ade79f
M3 - Review article
AN - SCOPUS:105013038263
SN - 0029-5515
VL - 65
JO - Nuclear Fusion
JF - Nuclear Fusion
IS - 9
M1 - 093001
ER -