Noncommutative fluid dynamics in the K\"{a}hler parametrization
In this paper, we propose a first order action functional for a large class of systems that generalize the relativistic perfect fluids in the K\"{a}hler parametrization to noncommutative spacetimes. We calculate the equations of motion for the fluid potentials and the energy-momentum tensor in...
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Zusammenfassung: | In this paper, we propose a first order action functional for a large class
of systems that generalize the relativistic perfect fluids in the K\"{a}hler
parametrization to noncommutative spacetimes. We calculate the equations of
motion for the fluid potentials and the energy-momentum tensor in the first
order in the noncommutative parameter. The density current does not receive any
noncommutative corrections and it is conserved under the action of the
commutative generators $P_{\mu}$ but the energy-momentum tensor is not.
Therefore, we determine the set of constraints under which the energy-momentum
tensor is divergenceless. Another set of constraints on the fluid potentials is
obtained from the requirement of the invariance of the action under the
generalization of the volume preserving transformations of the noncommutative
spacetime. We show that the proposed action describes noncommutative fluid
models by casting the energy-momentum tensor in the familiar fluid form and
identifying the corresponding energy and momentum densities. In the commutative
limit, they are identical to the corresponding quantities of the relativistic
perfect fluids. The energy-momentum tensor contains a dissipative term that is
due to the noncommutative spacetime and vanishes in the commutative limit.
Finally, we particularize the theory to the case when the complex fluid
potentials are characterized by a function $K(z,\bar{z})$ that is a deformation
of the complex plane and show that this model has important common features
with the commutative fluid such as infinitely many conserved currents and a
conserved axial current that in the commutative case is associated to the
topologically conserved linking number. |
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DOI: | 10.48550/arxiv.1109.1688 |