• English
    • français
    • Deutsch
    • español
    • português (Brasil)
    • Bahasa Indonesia
    • русский
    • العربية
    • 中文
  • English 
    • English
    • français
    • Deutsch
    • español
    • português (Brasil)
    • Bahasa Indonesia
    • русский
    • العربية
    • 中文
  • Login
View Item 
  •   Home
  • OAI Data Pool
  • OAI Harvested Content
  • View Item
  •   Home
  • OAI Data Pool
  • OAI Harvested Content
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.

Browse

All of the LibraryCommunitiesPublication DateTitlesSubjectsAuthorsThis CollectionPublication DateTitlesSubjectsAuthorsProfilesView

My Account

Login

The Library

AboutNew SubmissionSubmission GuideSearch GuideRepository PolicyContact

Statistics

Most Popular ItemsStatistics by CountryMost Popular Authors

Influence of Dark Matter on Light Propagation in Solar System

  • CSV
  • RefMan
  • EndNote
  • BibTex
  • RefWorks
Thumbnail
Name:
Publisher version
View Source
Access full-text PDFOpen Access
View Source
Check access options
Check access options
Author(s)
Arakida, Hideyoshi
Keywords
Astrophysics
General Relativity and Quantum Cosmology

Full record
Show full item record
URI
http://hdl.handle.net/20.500.12424/1029953
Online Access
http://arxiv.org/abs/0810.2827
Abstract
We investigated the influence of dark matter on light propagation in the solar system. We assumed the spherical symmetry of spacetime and derived the approximate solution of the Einstein equation, which consists of the gravitational attractions caused by the central celestial body, i.e. the Sun, and the dark matter surrounding it. We expressed the dark matter density in the solar system in the following simple power-law form, $\varrho(t, r) = \rho(t)(\ell/r)^k$, where $t$ is the coordinate time; $r$, the radius from the central body; $\ell$, the normalizing factor; $k$, the exponent characterizing $r$-dependence of dark matter density; and $\rho(t)$, the arbitrary function of time $t$. On the basis of the derived approximate solution, we focused on light propagation and obtained the additional corrections of the gravitational time delay and the relative frequency shift caused by the dark matter. As an application of our results, we considered the secular increase in the astronomical unit reported by Krasinsky and Brumberg (2004) and found that it was difficult to provide an explanation for the observed $d{\rm AU}/dt = 15 \pm 4 ~[{\rm m/century}]$.
Comment: 18 pages, 4 figures, accepted for publication in Advances in Space Research
Date
2008-10-15
Type
text
Identifier
oai:arXiv.org:0810.2827
http://arxiv.org/abs/0810.2827
Advances in Space Research, Volume 45, Issue 8, p. 1007-1014 (2010)
doi:10.1016/j.asr.2009.11.012
DOI
10.1016/j.asr.2009.11.012
ae974a485f413a2113503eed53cd6c53
10.1016/j.asr.2009.11.012
Scopus Count
Collections
OAI Harvested Content

entitlement

 
DSpace software (copyright © 2002 - 2022)  DuraSpace
Quick Guide | Contact Us
Open Repository is a service operated by 
Atmire NV
 

Export search results

The export option will allow you to export the current search results of the entered query to a file. Different formats are available for download. To export the items, click on the button corresponding with the preferred download format.

By default, clicking on the export buttons will result in a download of the allowed maximum amount of items.

To select a subset of the search results, click "Selective Export" button and make a selection of the items you want to export. The amount of items that can be exported at once is similarly restricted as the full export.

After making a selection, click one of the export format buttons. The amount of items that will be exported is indicated in the bubble next to export format.