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Unitary Quantum Lattice Gas Algorithms for Quantum to Classical Turbulence

机译:量子到经典湍流的量子格气算法

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Using a set of interleaved unitary collision-stream operators, a three-dimensional (3D) quantum lattice gas algorithm is devised which, on taking moments, recovers the Gross-Pitaevskii (GP) equation. If a zero-temperature Bose-Einstein condensate (BEC) is trapped in an a magnetic well, the evolution of the ground-state wave function satisfies the scalar GP equation, while if the BEC is trapped in an optical trap the ground-state wave function satisfies spin or GP equations. Quantum turbulence is studied in a scalar GP system on 5,7603 grid yielding not only the classical Kolmogorov k-5/3 cascade but also the quantum vortex k-3 spectrum. For a certain class of initial conditions, one finds an intermittent loss of tangled quantum vortices as the vortex cores attain minimal size, and thus prevent the Kelvin wave cascade (due to helical wave-wave coupling on the vortex). A coupled set of GP equations are solved for spin or BEC. Skrymions, which describe topologically-linked quantum vortices, are examined. One finds, for certain initial conditions that the incompressible kinetic energy spectrum for the condensate component of a vortex ring core rapidly departs from the k-3 linear quantum vortex spectrum.
机译:使用一组交错的unit式碰撞流算子,设计了一种三维(3D)量子晶格气算法,该算法在耗时的情况下恢复了Gross-Pitaevskii(GP)方程。如果将零温度的玻色-爱因斯坦冷凝物(BEC)捕获在磁阱中,则基态波函数的演化满足标量GP方程,而如果将BEC捕获在光阱中,则基态波函数满足自旋或GP方程。在标量GP系统上的5,7603网格上研究了量子湍流,它不仅产生了经典的Kolmogorov k-5 / 3级联,而且还产生了量子涡旋k-3光谱。对于某一类的初始条件,人们发现纠缠的量子涡流会间歇性地损失,因为涡流核的尺寸达到最小,从而防止了开尔文波的级联(由于涡旋上的螺旋波-波耦合)。对旋转或BEC求解了一组耦合的GP方程。 Skrymion描述了拓扑相关的量子涡旋。人们发现,在某些初始条件下,涡旋环核的凝结组分的不可压缩动能谱迅速偏离k-3线性量子涡旋谱。

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