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A darkless space-time

机译:无色的时空

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摘要

In cosmology it has become usual to introduce new entities as dark matter and dark energy in order to explain otherwise unexplained observational facts. Here, we propose a different approach treating space-time as a continuum endowed with properties similar to those of ordinary material continua, such as internal viscosity and strain distributions originated by defects in the texture. A Lagrangian modeled on the one valid for simple dissipative phenomena in fluids is built and used for empty space-time. The internal "viscosity" is shown to correspond to a four-vector field. The vector field is shown to be connected with the displacement vector field induced by a point defect in a four-dimensional continuum. Using the known symmetry of the universe, assuming the vector field to be divergenceless and solving the corresponding Euler-Lagrange equation, we directly obtain inflation and a phase of accelerated expansion of space-time. The only parameter in the theory is the "strength" of the defect. We show that it is possible to. x it in such a way as to also quantitatively reproduce the acceleration of the universe. We have finally verified that the addition of ordinary matter does not change the general behavior of the model and that the proper Newtonian limit exists.
机译:在宇宙学中,通常引入新的实体作为暗物质和暗能量,以解释原本无法解释的观测事实。在这里,我们提出了一种将时空视为连续体的不同方法,该连续体具有类似于普通材料连续体的特性,例如内部粘度和由纹理缺陷产生的应变分布。建立了一个对流体中简单耗散现象有效的拉格朗日模型,并将其用于空时空。内部“粘度”显示为对应于四矢量场。该矢量场显示为与由二维连续体中的点缺陷引起的位移矢量场有关。使用已知的宇宙对称性,假设矢量场是无散度的,并求解相应的Euler-Lagrange方程,我们直接获得膨胀和时空加速膨胀的相位。理论中唯一的参数是缺陷的“强度”。我们证明这是可能的。 x也可以定量地重现宇宙的加速度。我们最终证明,添加普通物质不会改变模型的一般行为,并且存在适当的牛顿极限。

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