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Magnetohydrodynamic Calculations of Toroidal Fusion Reactor to Ensure Stable Control

Magnetohydrodynamic Calculations of Toroidal Fusion Reactor to Ensure Stable Control
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摘要 The development of magnetic configurations to confine the stability fluid plasmas for fusion energy is a challenge that is a mixture of basic fusion engineering and invention. In order to keep the fusion reactions in the plasma to be continuing in the fusion reactors, the speed of tritium breeding (TBR) should be kept above a certain value. At the Apex fusion reactor, a fast flowing thin liquid wall has replaced the solid first wall concept of the traditional reactors. Behind the fast flowing thin liquid wall, a slower and thicker second liquid wall (coat) is present. Monte Carlo Random method (MCRS) is the general name for the solution of experimental and statistical problems with a random approach. This method is dependent upon the theory of probability. In the present work, Mhd impacts are investigated quite unimportant for Flibe salt solutions. In this study, the fissile fuel production calculations are done for a neutron wall load of 10 MW/m<sup>2</sup> fissile fuel production rates of <sup>238</sup>U(n, γ)<sup>239</sup>Pu and <sup>232</sup>Th(n,γ)<sup>233</sup>U increases almost linearly with increased heavy metal content. The development of magnetic configurations to confine the stability fluid plasmas for fusion energy is a challenge that is a mixture of basic fusion engineering and invention. In order to keep the fusion reactions in the plasma to be continuing in the fusion reactors, the speed of tritium breeding (TBR) should be kept above a certain value. At the Apex fusion reactor, a fast flowing thin liquid wall has replaced the solid first wall concept of the traditional reactors. Behind the fast flowing thin liquid wall, a slower and thicker second liquid wall (coat) is present. Monte Carlo Random method (MCRS) is the general name for the solution of experimental and statistical problems with a random approach. This method is dependent upon the theory of probability. In the present work, Mhd impacts are investigated quite unimportant for Flibe salt solutions. In this study, the fissile fuel production calculations are done for a neutron wall load of 10 MW/m<sup>2</sup> fissile fuel production rates of <sup>238</sup>U(n, γ)<sup>239</sup>Pu and <sup>232</sup>Th(n,γ)<sup>233</sup>U increases almost linearly with increased heavy metal content.
作者 Aybaba Hançerlioğullari Asli Kurnaz Yosef G. Ali Madee Aybaba Hançerlioğullari;Asli Kurnaz;Yosef G. Ali Madee(Department of Physics, Faculty of Arts and Sciences, Kastamonu University, Kastamonu, Turkey)
机构地区 Department of Physics
出处 《Open Journal of Applied Sciences》 2016年第7期402-408,共8页 应用科学(英文)
关键词 Fusion Reactor Monte Carlo MAGNETOHYDRODYNAMIC Tritium Breeding (TBR) Fusion Reactor Monte Carlo Magnetohydrodynamic Tritium Breeding (TBR)
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