Advancing shock ignition for direct-drive inertial fusion
Advancing shock ignition for direct-drive inertial
Calls:
Start date: 2021-04-01 End date: 2024-03-31
Total Budget: 833.500,00€ INO share of the total budget: 0,00€
Scientific manager: Dimitri Batani and for INO is: Cristoforetti Gabriele
Organization/Institution/Company main assignee: Centre Lasers Intenses et Applications, UMR 5107, F-33405 Talence, France
          other Organization/Institution/Company involved: 
 Central Laser Facility, Rutherford Appleton Laboratory
 Czech Technical University, Prague
 ENEA Ag Naz. per le nuove tecnologie, l’energia e sviluppo economico sostenibile
 Hellenic Mediterranean University of Crete
 IPPLM, Warsaw
 IST, Lisbon, Portugal
 Imperial College, London
 Instituto Fusión Nuclear “Guillermo Velarde”
 LULI, Ecole Polytechnique, Palaiseau
 PALS, IPP.CR, Prague
 PIIM, Université de Marseille, Marseille
 Politecnico di Milano
 Polytechnic University of Madrid
 Queen’s University Belfast
 USAL Salamanca
 Universidad de Las Palmas de Gran Canaria
 University of Strathclyde
 University of Valladolid
 University of Warwick
 University of York
 Università degli Studi di Roma 1 “La Sapienza”
 Università di Milano Bicocca, Milano
 Wigner RCP
          other INO’s people involved: Gizzi Leonida AntonioKoester Petra
present-day laser technology and, with some modifications, target areas. In this respect, SI is one of the few IFE schemes that can be tested at ignition-scale within the next decade on facilities like NIF, LMJ, SGIII. The project is organized in five Work Packages, each including experiments and theory:
• WP1: characterization of hot electrons and hot-electron-driven SI;
• WP2: hydrodynamic instabilities and mitigation strategies in DD-SI, including use of foams;
• WP3: bipolar SI: direct drive compression and bipolar spike irradiation;
• WP4: parametric instabilities and cross beam energy transfer, and their mitigation using broadband lasers;
• WP5: magnetic-field-assisted inertial fusion implosion and ignition.
We emphasize the coupling of theory and experiments, especially the development of theoretically-based simulation tools relevant to DD and SI. In addition to usual radiation-hydrodynamics and nuclear packages, these include self-consistent description of parametric instabilities, hot electron generation, non-local electron transport, magnetic flux compression, etc. State-of-the-art codes, developed by the proponents (CHIC, DUED, IFRIIT) or made available to the proponents (ASTER, FLASH) will be used. We plan to perform experiments at European laser facilities, in particular PALS, currently the only facility in Europe allowing intensities of 1e16 W/cm2 in a sub-ns pulse, VULCAN, offering the possibility of multibeam irradiation, and LMJ/PETAL which will allow realizing experiments at full IFE scale. In addition, we
will collaborate with overseas groups and Large facilities: Omega (LLE, Rochester), Gekko (Osaka), SG II and III (China).
The present project builds on physics and community building achievements of our previous Enabling Research project ENR-IFE19.CEA-01 “Study of Direct Drive and Shock Ignition for IFE: Theory, Simulations, Experiments, Diagnostics development”. In particular, we will continue the fruitful collaboration with Rochester University, the birthplace of SI. Our objectives are answering key physics issues on SI and DD, consolidating the European community doing DD research, with the longer-term objective of designing and performing SI demonstration on NIF or LMJ.

