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(OV3/2) Advances of Direct Drive Schemes in Laser Fusion Research at ILE Osaka

T. Yamanaka1), K. Mima1), K. A. Tanaka2), Y. Kitagawa1), R. Kodama1), N. Izumi1), Y. Sentoku1), H. Azechi1), K. Nishihara1), H. Shiraga1), M. Nakai1), K. Fujita1), K. Shigemori1), M. Heya3), Y. Ochi1), T. Norimatsu1), K. Nagai1), Y. Izawa1), M. Nakatsuka1), N. Miyanaga1), H. Fujita1), T. Jitsuno1), S. Sakabe2), H. Takabe1), M. Murakami1), H. Nagatomo1), A. Sunahara1), T. Kawamura1), S. Nakai2), and C. Yamanaka4)
 
1) Institute of Laser Engineering, Osaka University, Osaka, Japan
2) Faculty of Engineering, and Institute of Laser Engineering, Osaka University, Osaka, Japan
3) Institute of Free Electron Laser, Osaka University, Osaka, Japan
4) Institute for Laser Technology, Osaka, Japan

Abstract.  ILE Osaka is concentrating on the physical elements of fast ignition aiming at the proof of principle for ignition-and-burn of direct-drive laser fusion. A 1PW laser will be introduced to fast ignition experiments by the middle of 2001. A high intensity plasma experimental research system, HIPER, has been in operation for obtaining scientific data base relevant to ignition target. By irradiating a intense short pulse onto a long scale length plasma observed are penetration of a relativistically self-focused laser beam into over-dense region without considerable energy loss in under-dense region, MeV electrons generation with conversion efficiency of 25%, heating of compressed core plasma by irradiating a 100 ps, 1017W/cm2 pulse and 1 ps, 1019W/cm2 pulse. In the hydrodynamic instability, the initial imprint of hydrodynamic instability and Rayleigh-Taylor growth rate at wavelength less than 10 $ \mu$m have been investigated extensively.

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IAEA 2001