论文标题

LISE软件包:用于静态和时间依赖的超级流体局部密度近似方程的求解器

The LISE package: solvers for static and time-dependent superfluid local density approximation equations in three dimensions

论文作者

Jin, Shi, Roche, Kenneth J., Stetcu, Ionel, Abdurrahman, Ibrahim, Bulgac, Aurel

论文摘要

密度功能理论(DFT)的核实施目前是适用于整个核景观的唯一微观框架。在Kohn-Sham方法的精神上将DFT扩展到超流体系统,超氟的局部密度近似(SLDA)及其扩展到时间依赖的情况,时间依赖于时间依赖的局部密度近似(TDSLDA),已广泛地用于描述各种静态和动态问题,以描述各种静态和动态性问题,在核物理学中,核心系统中的核心系统,以及中性零星和冷静的状态。在本文中,我们介绍了在三维坐标空间中求解静态和时间依赖的SLDA方程的代码,而无需任何对称限制。这些代码与消息传递接口(MPI)库完全平行,并利用图形处理单元(GPU)来加速执行。动态代码具有检查点/重新启动功能,对于初始条件,可以使用任何通用的Slater决定符类型的波浪函数。 The code can describe a large number of physical problems: nuclear fission, collisions of heavy ions, the interaction of quantized vortices with nuclei in the nuclear star crust, excitation of superfluid fermion systems by time dependent external fields, quantum shock waves, domain wall generation and propagation, the dynamics of the Anderson-Bogoliubov-Higgs mode, dynamics of fragmented condensates, vortex rings dynamics, generation and dynamics of量化涡旋,交叉和重组以及量子湍流的初始阶段。

Nuclear implementation of the density functional theory (DFT) is at present the only microscopic framework applicable to the whole nuclear landscape. The extension of DFT to superfluid systems in the spirit of the Kohn-Sham approach, the superfluid local density approximation (SLDA) and its extension to time-dependent situations, time-dependent superfluid local density approximation (TDSLDA), have been extensively used to describe various static and dynamical problems in nuclear physics, neutron star crust, and cold atom systems. In this paper, we present the codes that solve the static and time-dependent SLDA equations in three-dimensional coordinate space without any symmetry restriction. These codes are fully parallelized with the message passing interface (MPI) library and take advantage of graphic processing units (GPU) for accelerating execution. The dynamic codes have checkpoint/restart capabilities and for initial conditions one can use any generalized Slater determinant type of wave function. The code can describe a large number of physical problems: nuclear fission, collisions of heavy ions, the interaction of quantized vortices with nuclei in the nuclear star crust, excitation of superfluid fermion systems by time dependent external fields, quantum shock waves, domain wall generation and propagation, the dynamics of the Anderson-Bogoliubov-Higgs mode, dynamics of fragmented condensates, vortex rings dynamics, generation and dynamics of quantized vortices, their crossing and recombinations and the incipient phases of quantum turbulence.

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