马赫原理与暗物质

IF 4.3 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
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引用次数: 0

摘要

在本文中,我们采用了一种马赫式的设定,即局部物理学受到整个宇宙的非局部影响,并擅自将局部("牛顿的水桶")与我们可见的宇宙相提并论,而将整个宇宙(马赫的 "定星")与我们视界之外的全球宇宙相提并论。最重要的是,我们允许这两者具有不同的属性,这样我们就超越了传统的 FRW 设定。为了明确起见,我们把重点放在非局域性产生于物理定律演变的理论上,即与自然常数对偶的空间全局时间变量。由于非局域理论依赖于褶皱,因此失去了局域(而非全局)哈密顿约束。不仅在非局部性发生时如此,在非局部性停止后也是如此:局部哈密顿约束只能恢复到一个时间常数,保持对过去非局部性整合的记忆。我们证明,这个积分常数等同于在保留本地哈密顿约束的基础上,增加了一种额外的流体,其宇宙学性质与传统的无压暗物质相同。这种等效性在聚类特性上被打破了,新的成分会吸引其他物质,但不会离开它的位置。这就是终极的 "涂抹式 "暗物质,吸引但不被吸引,并固定了一个首选框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mach's principle and dark matter

In this paper we entertain a Machian setting where local physics is non-locally affected by the whole Universe, taking the liberty to identify the local (“Newton's bucket”) with our visible Universe, and the whole Universe (Mach's “fixed stars”) with the global Universe beyond our horizon. Crucially, we allow for the two to have different properties, so that we are beyond the traditional FRW setting. For definiteness we focus on theories where non-locality arises from evolution in the laws of physics in terms of spatially global time variables dual to the constants of Nature. Since non-local theories are foliation-dependent, the local (but not the global) Hamiltonian constraint is lost. This is true not only while non-locality is taking place, but also after it ceases: the local Hamiltonian constraint is only recovered up to a constant in time, keeping a memory of the integrated past non-locality. We show that this integration constant is equivalent to preserving the local Hamiltonian constraint and adding an extra fluid with the same cosmological properties as conventional pressureless dark matter. The equivalence breaks down in terms of clustering properties, with the new component attracting other matter, but not budging from its location. This is the ultimate “painted-on” dark matter, attracting but not being attracted, and nailing down a preferred frame.

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来源期刊
Physics Letters B
Physics Letters B 物理-物理:综合
CiteScore
9.10
自引率
6.80%
发文量
647
审稿时长
3 months
期刊介绍: Physics Letters B ensures the rapid publication of important new results in particle physics, nuclear physics and cosmology. Specialized editors are responsible for contributions in experimental nuclear physics, theoretical nuclear physics, experimental high-energy physics, theoretical high-energy physics, and astrophysics.
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