TY - JOUR T1 - Calculation of energy deposited and stopping range through deuterium ignition beam and dynamical studies on the energy gain in D-3He mixtures TT - Original Research Paper AU - Hosseinimotlagh, S. N. AU - Jahedi, M. AU - Kianafraz, S. AU - Ghaderi, Sakineh PY - 2015 DA - March DO - 10.18100/ijamec.42819 JF - International Journal of Applied Mathematics Electronics and Computers PB - PLUSBASE AKADEMİ ORGANİZASYON VE DANIŞMANLIK WT - DergiPark SN - 2147-8228 SP - 113 EP - 118 VL - 3 IS - 2 LA - en AB - The fast ignition approach to ICF consists in first compressing the fuel to high density by a suitable driver and then creating the hot spot required for ignition by means of a second external pulse. If the ignition beam is composed of deuterons, an additional energy is delivered to the target with increased energy gain. Therefore ,in this innovative suggestion ,we consider deuterium beams for fast ignition in D+3He mixture and solve the dynamical balance equations under the available physical conditions by considering a new average reactivity formula ,then we compute the energy gain in this mixture .Our computational results show that we can get energy gain value larger than 1000 at resonant temperature (380keV)of D+3He mixture. We select D+3He fuel, because D+3He reaction is very attractive from a theoretical point of view since it does not produced neutrons. The D+3He benefits include full-lifetime materials, reduced radiation damage, less activation, absence of tritium breeding blankets, highly efficient direct energy conversion, easier maintenance, proliferation resistance. The deposited energy can reduce laser driver energy. Our calculations show that at 380 Kev (resonant temperature) the maximum numbers of fusion reactions are performed and the energy gain is maximized. KW - Fast Ignition; Deuteron Beam; Energy; Dynamics CR - J D Lindl Phys Plasmas 2 3933 (1995) and Phys Plasmas 11 339 (2004). CR - S E Bodner et al. Phys Plasmas 5, 1901 (1998) CR - N.G. Basov, S.Y. Guskov and L.P. Feokistov, J. Sov. Laser Res. 13, 396 (1992). CR - M Tabak et al Phys Plasmas 1 1626 (1994) CR - K. A. Tanaka, R. Kodama, H. Fujita, et al., Phys. Plas-mas 7, 2014 (2000). CR - Xing Z. Li, Qing M. Wei and Bin Liu, Nucl. Fusion 48, 125003 (5pp) (2008). CR - V. Bychenkov, W. Rozmus, A. Maksimchuk, D. Umstadter, and C.Capjack, Plasma Phys. Rep. 27, 1017 (2001). CR - H. Schwoerer, S. Pfotenhauer, O. Jackel, K. U. Amthor, Ziegler, R. Sauerbrey, K. W. D. Ledingham, and T. Esirkepov ,Nature London439,445 (2006). CR - C. Bathke, H. Towner, and G. H. Miley, Trans. Am. Nucl. UR - https://doi.org/10.18100/ijamec.42819 L1 - https://dergipark.org.tr/en/download/article-file/89449 ER -