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Monte-Carlo simulation of a stochastic differential equation

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【作者】 Arif ULLAHMajid KHANM KAMRANR KHAN盛正卯

【Author】 Arif ULLAH;Majid KHAN;M KAMRAN;R KHAN;Zhengmao SHENG;Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China;Department of Physics Quaid-i-Azam University;Department of Physics, Institute of Fusion Theory and Simulations, Zhejiang University;Department of Physics, COMSATS Institute of Information Technology;Department of Physics, Abdul Wali Khan University;

【机构】 Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of ChinaDepartment of Physics Quaid-i-Azam UniversityDepartment of Physics, Institute of Fusion Theory and Simulations, Zhejiang UniversityDepartment of Physics, COMSATS Institute of Information TechnologyDepartment of Physics, Abdul Wali Khan University

【摘要】 For solving higher dimensional diffusion equations with an inhomogeneous diffusion coefficient,Monte Carlo(MC) techniques are considered to be more effective than other algorithms, such as finite element method or finite difference method. The inhomogeneity of diffusion coefficient strongly limits the use of different numerical techniques. For better convergence, methods with higher orders have been kept forward to allow MC codes with large step size. The main focus of this work is to look for operators that can produce converging results for large step sizes. As a first step, our comparative analysis has been applied to a general stochastic problem.Subsequently, our formulization is applied to the problem of pitch angle scattering resulting from Coulomb collisions of charge particles in the toroidal devices.

【Abstract】 For solving higher dimensional diffusion equations with an inhomogeneous diffusion coefficient,Monte Carlo(MC) techniques are considered to be more effective than other algorithms, such as finite element method or finite difference method. The inhomogeneity of diffusion coefficient strongly limits the use of different numerical techniques. For better convergence, methods with higher orders have been kept forward to allow MC codes with large step size. The main focus of this work is to look for operators that can produce converging results for large step sizes. As a first step, our comparative analysis has been applied to a general stochastic problem.Subsequently, our formulization is applied to the problem of pitch angle scattering resulting from Coulomb collisions of charge particles in the toroidal devices.

【基金】 supported in part by the Higher Education Commission of Pakistan under PPCR program;supported by the National Magnetic Confinement Fusion Program under Grant No. 2013GB104004;Fundamental Research Fund for Chinese Central Universities
  • 【文献出处】 Plasma Science and Technology ,等离子体科学和技术(英文版) , 编辑部邮箱 ,2017年12期
  • 【分类号】O211.63
  • 【下载频次】35
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