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相关论文: Gravitational Redshift Experiment with the Space R…

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A test of a cornerstone of general relativity, the gravitational redshift effect, is currently being conducted with the RadioAstron spacecraft, which is on a highly eccentric orbit around Earth. Using ground radio telescopes to record the…

We present an approach to testing the gravitational redshift effect using the RadioAstron satellite. The experiment is based on a modification of the Gravity Probe A scheme of nonrelativistic Doppler compensation and benefits from the…

We report on our efforts to test the Einstein Equivalence Principle by measuring the gravitational redshift with the VLBI spacecraft RadioAstron, in an eccentric orbit around Earth with geocentric distances as small as $\sim$ 7,000 km and…

广义相对论与量子宇宙学 · 物理学 2019-04-03 N. V. Nunes , N. Bartel , M. F. Bietenholz , M. V. Zakhvatkin , D. A. Litvinov , V. N. Rudenko , L. I. Gurvits , G. Granato , D. Dirkx

RadioAstron satellite admits in principle a testing the gravitational redshift effect with an accuracy of better than $10^{-5}$. It would surpass the result of Gravity Probe A mission at least an order of magnitude. However, RadioAstron's…

天体物理仪器与方法 · 物理学 2015-06-09 A. V. Birukov , V. L. Kauts , D. A. Litvinov , N. K. Porayko , V. N. Rudenko

We propose a new method to measure gravitational redshift effect using simultaneous interferometric observations of a distant radio source to synchronize clocks. The first order by $v/c$ contribution to the signal (the classical Doppler…

天体物理仪器与方法 · 物理学 2018-12-04 S. V. Pilipenko , D. A. Litvinov , A. I. Filetkin , V. N. Rudenko

At present the Radioastron (RA) Earth's satellite having very elliptic orbit is used for probing of the gravitational red shift effect [1, 2]. Objective of this test consists in the enhancing accuracy of measurement to check the…

数据分析、统计与概率 · 物理学 2018-12-05 A. V. Gusev , V. N. Rudenko

We report on a new test of the gravitational redshift and thus of local position invariance, an integral part of the Einstein equivalence principle, which is the foundation of general relativity and all metric theories of gravitation. We…

In 2022 China Space Station (CSS) will be equipped with atomic clocks and optical clocks with stabilities of $2 \times 10^{-16}$ and $8 \times 10^{-18}$, respectively, which provides an excellent opportunity to test gravitational redshift…

天体物理仪器与方法 · 物理学 2022-04-27 Wenbin Shen , Pengfei Zhang , Ziyu Shen , Rui Xu , Xiao Sun , Mostafa Ashry , Abdelrahim Ruby , Wei Xu , Kuangchao Wu , Yifan Wu , An Ning , Lei Wang , Lihong Li , Chenghui Cai

We investigate the performance of the upcoming ACES (Atomic Clock Ensemble in Space) space mission in terms of its primary scientific objective, the test of the gravitational redshift. Whilst the ultimate performance of that test is…

天体物理仪器与方法 · 物理学 2020-01-08 Etienne Savalle , Christine Guerlin , Pacôme Delva , Frédéric Meynadier , Christophe le Poncin-Lafitte , Peter Wolf

The Einstein Equivalence Principle (EEP) is a cornerstone of general relativity and predicts the existence of gravitational redshift. We report on new results of measuring this shift with RadioAstron (RA), a space VLBI spacecraft launched…

Einstein's theory of general relativity predicts that a clock at a higher gravitational potential will tick faster than an otherwise identical clock at a lower potential, an effect known as the gravitational redshift. Here we perform a…

原子物理 · 物理学 2023-07-28 Xin Zheng , Jonathan Dolde , Matthew C. Cambria , Hong Ming Lim , Shimon Kolkowitz

We consider the problem of joint analysis of two-way laser range and one-way frequency measurements in high-precision tests of general relativity with spacecrafts. Of main interest to such tests is the accuracy of the computed values of the…

空间物理 · 物理学 2018-12-13 M. V. Zakhvatkin , D. A. Litvinov

On August 22, 2014, the satellites GSAT-0201 and GSAT-0202 of the European GNSS Galileo were unintentionally launched into eccentric orbits. Unexpectedly, this has become a fortunate scientific opportunity since the onboard hydrogen masers…

Einstein's theory of general relativity states that clocks at different gravitational potentials tick at different rates - an effect known as the gravitational redshift. As fundamental probes of space and time, atomic clocks have long…

We present the results of the analysis of the GREAT (Galileo gravitational Redshift test with Eccentric sATellites) experiment from SYRTE (Observatoire de Paris), funded by the European Space Agency. An elliptic orbit induces a periodic…

A recent measurement of the gravitational redshift was based on interference of matter waves. Operation in microgravity can improve it by a factor of $10^5$ and, in some models, even $10^{10}$.

广义相对论与量子宇宙学 · 物理学 2017-08-23 Holger Mueller , Michael A. Hohensee , Nan Yu

Redshift drift provides a direct kinematic measurement of cosmic acceleration but it occurs with a characteristic time scale of a Hubble time. Thus redshift observations with a challenging precision of $10^{-9}$ require a 10 year time span…

宇宙学与河外天体物理 · 物理学 2015-05-01 Alex G. Kim , Eric V. Linder , Jerry Edelstein , David Erskine

The possibility of compensating atmospheric influence in an experiment on precision measurement of gravitational redshift using the "RadioAstron" spacecraft (SC) is discussed. When a signal propagates from a ground-based tracking station to…

天体物理仪器与方法 · 物理学 2019-12-11 Valentin Rudenko , Sergei Popov , Aleksei Belonenko

General relativity (GR) is a highly successful theory that describes gravity as a geometric phenomenon. The gravitational redshift, a classic test of GR, can potentially be violated in alternative gravity theories, and experimental tests on…

广义相对论与量子宇宙学 · 物理学 2025-02-26 Cheng-Gang Qin , Tong Liu , Xiao-Yi Dai , Peng-Bin Guo , Weisheng Huang , Xiang-Pei Liu , Yu-Jie Tan , Cheng-Gang Shao

We consider the problem of testing the Einstein Equivalence Principle (EEP) by measuring the gravitational redshift with two Earth-orbiting stable atomic clocks. For a reasonably restricted class of orbits we find an optimal experiment…

广义相对论与量子宇宙学 · 物理学 2021-08-24 D. A. Litvinov , S. V. Pilipenko
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