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Geometric classification of the torsion tensor of space-time

机译:时空扭转张量的几何分类

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Torsion appears in literature in quite different forms. Generally, spin is considered to be the source of torsion, but there are several other possibilities in which torsion emerges in different contexts. In some cases a phenomenological counterpart is absent, in some other cases torsion arises from sources without spin as a gradient of a scalar field. Accordingly, we propose two classification schemes. The first one is based on the possibility to construct torsion tensors from the product of a covariant bivector and a vector and their respective space-time properties. The second one is obtained by starting from the decomposition of torsion into three irreducible pieces. Their space-time properties again lead to a complete classification. The classifications found are given in a U_4, a four dimensional space-time where the torsion tensors have some peculiar properties. The irreducible decomposition is useful since most of the phenomenological work done for torsion concerns four dimensional cosmological models. In the second part of the paper two applications of these classification schemes are given. The modifications of energy-momentum tensors are considered that arise due to different sources of torsion. Furthermore, we analyze the contributions of torsion to shear, vorticity, expansion and acceleration. Finally the generalized Raychaudhuri equation is discussed.
机译:扭曲在文学中以完全不同的形式出现。通常,旋转被认为是扭转的根源,但是在其他情况下,扭转也会出现在其他几种可能性中。在某些情况下,不存在现象学上的对应关系,在另一些情况下,扭转是由于标量场的梯度而没有自旋的源引起的。因此,我们提出了两种分类方案。第一个是基于从协变双矢量和矢量的乘积及其各自的时空特性构造扭转张量的可能性。第二个是从扭转分解为三个不可还原的部分开始的。它们的时空特性再次导致了完整的分类。发现的分类以U_4给出,这是一个四维时空,其中扭转张量具有一些特殊的特性。不可约分解是有用的,因为为扭转所做的大多数现象学工作都涉及三维宇宙学模型。在论文的第二部分中,给出了这些分类方案的两个应用。能量动量张量的修改被认为是由于不同的扭转源而引起的。此外,我们分析了扭转对剪切,涡度,膨胀和加速度的贡献。最后讨论了广义Raychaudhuri方程。

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