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首页> 外文期刊>Galaxies >Theoretical Derivation of the Cosmological Constant in the Framework of the Hydrodynamic Model of Quantum Gravity: Can the Quantum Vacuum Singularity Be Overcome?
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Theoretical Derivation of the Cosmological Constant in the Framework of the Hydrodynamic Model of Quantum Gravity: Can the Quantum Vacuum Singularity Be Overcome?

机译:在量子引力流体力学模型框架内的宇宙常数的理论推导:能否克服量子真空奇点?

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摘要

In the present work, it is shown that the problem of the cosmological constant (CC) is practically the consequence of the inadequacy of general relativity to take into account the quantum property of the space. The equations show that the cosmological constant naturally emerges in the hydrodynamic formulation of quantum gravity and that it does not appear in the classical limit because the quantum energy-impulse tensor gives an equal contribution with opposite sign. The work shows that a very large local value of the CC comes from the space where the mass of a quasi-punctual particle is present but that it can be as small as measured on cosmological scale. The theory shows that the small dependence of the CC from the mean mass density of the universe is due to the null contribution coming from the empty space. This fact gives some hints for the explanation of the conundrum of the cosmic coincidence by making a high CC value of the initial instant of universe compatible with the very small one of the present era.
机译:在目前的工作中,表明宇宙常数(CC)实际上是广义相对论不足以将空间的量子特性考虑在内的结果。这些方程式表明,宇宙常数自然出现在量子引力的流体力学公式中,并且它没有出现在经典极限中,因为量子能量脉冲张量以相反的符号给出了相等的贡献。这项工作表明,CC的很大局部值来自存在准点粒子质量的空间,但是它可以小到宇宙尺度上的大小。该理论表明,CC对宇宙的平均质量密度的依赖性较小,这是由于来自空白空间的零贡献所致。这一事实通过使宇宙初始时刻的高CC值与当今很小的时代相适应,为解释宇宙巧合之谜提供了一些暗示。

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