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Estelle Asmodelle

Publications and source records attributed to Estelle Asmodelle.

3 recordsLinked to original sources

The collaboration of Mileva Maric and Albert Einstein

This is a contemporary review of the involvement of Mileva Maric, Albert Einsteins first wife, in his theoretical work between the period of 1900 to 1905. Separate biographies are outlined for both Mileva and Einstein, prior to their attendance at the Swiss Federal Polytechnic in Zurich in 1896. Then, a combined journal is described, detailing significant events. In additional to a biographical sketch, comments by various authors are compared and contrasted concerning two narratives: firstly, the sequence of events that happened and the couples relationship at particular times. Secondly, the contents of letters from both Einstein and Mileva. Some interpretations of the usage of pronouns in those letters during 1899 and 1905 are re-examined, and a different hypothesis regarding the usage of those pronouns is introduced. Various papers are examined and the content of each subsequent paper is compared to the work that Mileva was performing. With a different take, this treatment further suggests that the couple continued to work together much longer than other authors have indicated. We also evaluate critics and supporters of the hypothesis that Mileva was involved in Einsteins work, and refocus this within a historical context, in terms of women in science in the late 19th century. Finally, the definition of, collaboration (co-authorship, specifically) is outlined. As a result, recommendations are stated, the first of which is that Mileva should be seriously considered as an honorary co-author of one, possibly two, papers, and secondly, of which it is recommended that a serious inquiry should be made, concerning the extent of Mileva Marićs involvement in Albert Einsteins published works between 1902 and 1905.

physics.hist-ph

Relativistic Bohmian trajectories of photons via weak measurements

Bohmian mechanics is a nonlocal hidden-variable interpretation of quantum theory which predicts that particles follow deterministic trajectories in spacetime. Historically, the study of Bohmian trajectories has mainly been restricted to nonrelativistic regimes due to the widely held belief that the theory is incompatible with special relativity. Here we derive expressions for the relativistic velocity and spacetime trajectories of photons in a Michelson-Sagnac-type interferometer. The trajectories satisfy quantum-mechanical continuity and the relativistic velocity addition rule. Our new velocity equation is operationally defined in terms of weak measurements of momentum and energy. We finally propose a modified Alcubierre metric which could give rise to these trajectories within the paradigm of general relativity.

quant-ph

Tests of General Relativity: A Review

This report is a literature review of significant and successful tests of general relativity [GR]. The GR predicted value for the perihelion advance of Mercury was Deltaf = 43.03 arcsec century^-1 and fit well with observation, being the first success of GR. The GR result for the bending of light around the Sun dGR = 1.75 arcsec, confirmed by observation, marked the second successful validation of GR. Gravitational Redshift [GvR] was first detected 1925 and is the third successful classical test. The parametrized post-Newtonian PPN employs b and g for GR testing. Shapiro delay was also confirmed with g = 1.000021 +/- 0.000023, against GR value g = 1, some consider this to be the fourth classical test. So too gravitational time dilation GvT was experimentally confirmed in 1971, while GvT for GPS is a daily validation of GR. Frame-dragging and the Geodetic effect have also been confirmed. The strong equivalence principle SEP has been confirmed to h = 4.4 x 10^-4, to GR h = 0. Gravitational slip has been constrained to EG = 0.48 +/- 0.10 at z = 0.32, against the GR value, EG = 0.30 +/- 0.07. The first gravitational wave detection from GW150914, in 2015, has confirmed a long-awaited phenomenon that has taken GR testing to higher precision. Gravitational lensing has also confirmed GR to better than 1%. GR continues to be tested, eliminating competing gravity theories.

gr-qc