In this paper we show that twist, defined in terms of rotation of the phase associated with quantum vortices and other physical defects effectively deprived of internal structure, is a property that has observable effects in terms of induced axial flow. For this we consider quantum vortices governed by the Gross–Pitaevskii equation (GPE) and perform a number of test cases to investigate and compare the effects of twist in two different contexts: (i) when this is artificially superimposed on an initially untwisted vortex ring; (ii) when it is naturally produced on the ring by the simultaneous presence of a central straight vortex. In the first case large amplitude perturbations quickly develop, generated by the unnatural setting of the initial condition that is not an analytical solution of the GPE. In the second case much milder perturbations emerge, signature of a genuine physical process. This scenario is confirmed by other test cases performed at higher twist values. Since the second setting corresponds to essential linking, these results provide new evidence of the influence of topology on physics.

Zuccher, S., Ricca, R. (2018). Twist effects in quantum vortices and phase defects. FLUID DYNAMICS RESEARCH, 50(1), 13 [10.1088/1873-7005/aa8164].

Twist effects in quantum vortices and phase defects

Ricca, R
2018

Abstract

In this paper we show that twist, defined in terms of rotation of the phase associated with quantum vortices and other physical defects effectively deprived of internal structure, is a property that has observable effects in terms of induced axial flow. For this we consider quantum vortices governed by the Gross–Pitaevskii equation (GPE) and perform a number of test cases to investigate and compare the effects of twist in two different contexts: (i) when this is artificially superimposed on an initially untwisted vortex ring; (ii) when it is naturally produced on the ring by the simultaneous presence of a central straight vortex. In the first case large amplitude perturbations quickly develop, generated by the unnatural setting of the initial condition that is not an analytical solution of the GPE. In the second case much milder perturbations emerge, signature of a genuine physical process. This scenario is confirmed by other test cases performed at higher twist values. Since the second setting corresponds to essential linking, these results provide new evidence of the influence of topology on physics.
Articolo in rivista - Articolo scientifico
helicity; phase defects; quantum vortices; twist; vortex rings; Mechanical Engineering; Physics and Astronomy (all); Fluid Flow and Transfer Processes
English
2018
50
1
13
011414
reserved
Zuccher, S., Ricca, R. (2018). Twist effects in quantum vortices and phase defects. FLUID DYNAMICS RESEARCH, 50(1), 13 [10.1088/1873-7005/aa8164].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/192820
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