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| alt = Maurice Allais
| alt = Maurice Allais
| birth_date = {{birth date|1911|05|31|mf=y}}
| birth_date = {{birth date|1911|05|31|mf=y}}
| death_date = {{birth date|2010|10|09|mf=y}}
| birth_place = Paris, France
| death_date = {{death date and age|2010|10|9|1911|5|31}}
| death_place = Saint-Cloud, France
| fields = [[Physicist]], [[Economist]]
| fields = [[Physicist]], [[Economist]]
| residence = Paris, France
| residence = Paris, France
| nationality = French
| nationality = French
| known_for = [[Allais Effect]], [[Dayton Miller]], [[Special Relativity]]
| known_for = [[Allais Effect]], [[Aether]], [[Special Relativity]]
}}
}}


'''Maurice F?lix Charles Allais'''&nbsp;is a French economist, and was the 1988 winner of the [http://en.wikipedia.org/wiki/Bank_of_Sweden_Prize_in_Economic_Sciences_in_Memory_of_Alfred_Nobel Nobel Memorial Prize in Economics] "for his pioneering contributions to the theory of markets and efficient utilization of resources." - <em>Wikipedia</em>
'''Maurice Félix Charles Allais''' (31 May 1911 &ndash; 9 October 2010) was a French economist and physicist. He was the 1988 winner of the [http://en.wikipedia.org/wiki/Bank_of_Sweden_Prize_in_Economic_Sciences_in_Memory_of_Alfred_Nobel Nobel Memorial Prize in Economics] "for his pioneering contributions to the theory of markets and efficient utilization of resources." Although he is best known for his work in economics, Allais also carried out extensive experimental and theoretical work in physics, and is remembered for the [[Allais Effect]], an anomalous behaviour of a pendulum reported during solar eclipses.


Born May 31, 1911,&nbsp;Maurice Allais came from a modest family: father shopkeeper, grandfather carpenter.&nbsp;&nbsp;His father, taken&nbsp;prisoner in the 1914-1918 war, died in Germany in 1915, affecting Allais deeply.&nbsp;&nbsp;In spite of his young age, he then swore to honour his father's name.&nbsp; He&nbsp;kept his word.
==Biography==


Late&nbsp;in life, Allais took an interest in the work of Dayton Miller, and produced a series of papers on the subject.&nbsp; All the scientific work of Maurice Allais relates to the field of the gravitation, the velocity of the light and the anisotropy of space.
Maurice Allais was born on 31 May 1911 in Paris, France, into a modest family; his father was a shopkeeper and his grandfather a carpenter. His father, taken prisoner during the First World War, died in Germany in 1915, an event that affected Allais deeply. Despite his young age, he resolved to honour his father's name.


Maurice Allais, initially, carried out his own experiments which led him to observe the existence of phenomena incompatible with the commonly accepted theories. He drew from them his own conclusions according to which the velocity of the light does not have a constant value but varies (slightly) according to the direction. What led him to show the existence of " aether " and of the anisotropy of space.
Allais studied at the Lycée Lakanal and then entered the École Polytechnique in Paris, from which he graduated at the top of his class. He continued his studies at the École Nationale Supérieure des Mines de Paris, and later obtained a doctorate in engineering from the University of Paris (Faculty of Science) in 1949. From 1944 he served as Professor of Economics at the École Nationale Supérieure des Mines de Paris, and in 1946 he became director of its Economic Analysis Centre. He also held teaching positions at other institutions, including the University of Paris X&ndash;Nanterre.


In a second time and to consolidate his own results, Maurice Allais was brought to reexamine&nbsp; the detail of the results of the experiments which had been carried out in the past on the same subject in the U.S.A. by Michelson and Morley in 1887, by Morley and Miller in 1902, 1904 and 1905, and by Miller in 1925, 1926 and 1930. He then could observe that these results contain the same anomalies which were not noticed at the time by the experimenters&nbsp; or were neglected.
Allais died on 9 October 2010 in Saint-Cloud, near Paris, at the age of 99.


Maurice Allais affirms today with force that these anomalies are real and indisputable and that they call into question the laws of relativity, discovered by Lorentz and Poincar?, and more known under the name of Laws of Einstein.
==Scientific contributions==
 
===Economics===
 
Allais made pioneering contributions to mathematical economics, general equilibrium theory, capital theory, decision theory and monetary policy. He independently developed an early version of the overlapping generations model (1947) and formulated a version of the "golden rule" of optimal economic growth before it became widely known. He is also remembered for the "Allais paradox" (1953), an experimental result that challenged the expected utility hypothesis and anticipated later developments in behavioural economics. For this body of work he was awarded the Nobel Memorial Prize in Economics in 1988.
 
===Physics===
 
Allais came to physics from outside it, and late. Between 1952 and 1960, while holding a chair in economics, he ran one of the longest and most obsessively controlled experimental programmes in the history of the subject — and concluded from it that the theory of relativity was wrong and that space is anisotropic. He was awarded the Galabert Prize of the French Astronautical Society in 1959 for this work, and his principal paper appeared in ''Aero/Space Engineering'' at the request of Wernher von Braun.
 
====The paraconical pendulum====
 
His instrument was a short pendulum — an equivalent length of about 83 cm, some 12 kg in all — hung not from a wire but from a stirrup resting on a 6.5 mm steel ball free to roll on a flat plate. This "paraconical" support lets the bob trace an ellipse rather than hold a plane, and it is the orientation of that ellipse that Allais tracked. The protocol was relentless: the pendulum was released every 20 minutes by burning a thread, observed for 14 minutes, then stopped and re-released in the plane of the last observed azimuth, so that the readings formed one continuous chain — 72 series a day, day and night, for a month at a time. He carried out six such month-long runs between 1954 and 1960, changing the steel ball after every run and the bearing plate weekly to exclude wear. From July 1958 a second identical pendulum ran in parallel in a disused chalk quarry at Bougival, 57 m underground and 6.5 km away from his laboratory at Saint-Germain-en-Laye, built specifically to answer the objection that the results were thermal or vibrational artefacts.
 
====The Allais effect====
 
{{main|Allais Effect}}
 
The total eclipse of 30 June 1954 fell during one of these runs. The azimuth of the pendulum's plane of oscillation departed sharply from its trend, rising about 5 centesimal degrees above it at onset, reaching a maximum departure of about 15 centesimal degrees — 15 grads, or 13.5 ordinary degrees — some twenty minutes before the maximum of the eclipse, and decaying to about 1.2 grads before the eclipse ended. Allais noted that the forces implied were of the same order as those producing the Foucault effect itself, and wrote that the disturbance "gave the very definite impression of a screen effect". A second eclipse on 2 October 1959 caught another run in progress and produced a similar but distinctly weaker disturbance; only about 37 per cent of the solar disc was covered at Paris.
 
This is the observation that became known as the '''[[Allais Effect]]''', and it has been pursued, replicated and disputed for seventy years — with a torsion pendulum by [[Erwin J Saxl]] and [[Mildred Allen]] during the eclipse of 1970, with gravimeters in India in 1995 and China in 1997, and with torsion balances in Ukraine and Romania in 2009. Because a gravity that can be screened by an interposed Moon cannot be the geometry of spacetime, some researchers read the effect as evidence that gravity is corpuscular — a flux of particles or gravitons that matter partially absorbs, as in the [[Particle Model]] of [[Bob de Hilster]] and [[David de Hilster]] and in the [[Georges-Louis Le Sage|Le Sage]] tradition. That argument, its proponents, and the substantial disagreements among them are set out on the [[Allais Effect]] page.
 
It is worth stressing here that '''Allais himself did not hold the shielding interpretation'''. The eclipses were incidental to his main result, which was the periodic structure of the pendulum's motion over the long runs.
 
====Anisotropy of space and the "new field"====
 
The continuous runs revealed periodic components in the azimuth, including one at about 24 h 50 min — the mean lunar day. That a lunisolar period should appear is unremarkable; the amplitude was not. Allais calculated that conventional lunar and solar tidal action on his apparatus fell short of the observed effect by a factor he put at some 10<sup>8</sup>; a recomputation by his collaborators in 2022 gives a smaller but still extraordinary discrepancy of roughly six orders of magnitude for direct tidal action. He concluded that something else was acting:
 
{{quote|In its present status of the discussion, the abnormalities observed can be accounted for only by considering the existence of a new field, namely, by envisaging the existence of complementary terms which until now had remained unnoticed.|Maurice Allais, "Should the Laws of Gravitation Be Reconsidered?", ''Aero/Space Engineering'' 18 (1959)}}
 
He ran optical experiments in parallel — sightings on fixed marks and collimators at Saint-Germain in 1958 and at the IGN in 1959 — and reported a remarkable consistency between those deviations and the pendulum readings taken 6 km away and 57 m underground. From this he concluded that the velocity of light is not strictly constant but varies slightly with direction, and interpreted the whole body of results as evidence for an [[Aether|aether]] and for the anisotropy of space.
 
====The re-examination of Miller, Michelson and Esclangon====
 
Allais then turned to the historical record, arguing that the same anisotropy was already present in data collected decades earlier and dismissed. He re-examined the Michelson–Morley experiment of 1887, the Morley–Miller experiments of 1902–05, and above all [[Dayton C Miller]]'s Mount Wilson interferometry of 1925–26, together with Esclangon's observations on the dissymmetry of space.
 
Re-binning Miller's readings by sidereal rather than civil time, Allais reported a coherent sidereal-diurnal component and a geometric regularity in the data — the centres of the elliptical hodographs falling on a circle — that he argued was far too orderly to be thermal noise. He published this as two notes to the ''Comptes Rendus de l'Académie des Sciences'' in 1999, under the titles "Des régularités très significatives dans les observations interférométriques de Dayton C. Miller 1925–1926" and "Nouvelles régularités très significatives…", followed in 2000 by a third note addressing the question directly: were the regularities temperature effects, or anisotropy of space? That note is a sustained rebuttal of Shankland's 1955 temperature-gradient refutation of Miller, which Allais held to be statistically inadequate and contradicted by data inside Shankland's own paper. He set out the case at book length in ''L'Anisotropie de l'Espace'' (Clément Juglar, 1997), translated into English as ''The Anisotropy of Space'' (L'Harmattan, 2019), and pressed it further in ''L'Effondrement de la Théorie de la Relativité'' (2004).
 
Allais organised his case around four experimental domains he held to be windows on a single underlying anisotropy: the paraconical pendulum with anisotropic support, the same pendulum with isotropic support, the optical sightings on marks and collimators, and the re-examined Miller and Esclangon data.
 
====Reception====
 
Allais's physics is not accepted by mainstream science. Attempts to reproduce the eclipse anomaly have produced inconsistent results, and several well-instrumented campaigns — including four superconducting gravimeters during the eclipse of August 1999 — have returned nulls; the reported anomalies are generally attributed to environmental and instrumental factors. Miller's residuals are likewise still treated as thermal artefacts, and no mainstream rebuttal engaging Allais's statistical re-analysis by name appears to have been published. Among dissident researchers the reception has been warmer: [[James DeMeo]] cites Allais approvingly in his own re-examination of Miller's ether-drift data, and the eclipse work continues to be pursued by Thomas Goodey, Dimitrie Olenici and Allais's collaborator Jean-Bernard Deloly.
 
Allais put his own view of the stakes in the title of his 2003 article for the review of the École Polytechnique: the regularities in Miller's observations amounted, he argued, to "the fundamental and complete collapse of relativity theory."
 
==Honors==
 
* 1959 &ndash; Galabert Prize of the French Astronautical Society (for his work in physics).
* 1978 &ndash; Gold Medal of the [http://en.wikipedia.org/wiki/CNRS_Gold_Medal Centre National de la Recherche Scientifique (CNRS)], the first time this distinction, France's highest scientific award, was given to an economist.
* 1988 &ndash; [http://en.wikipedia.org/wiki/Bank_of_Sweden_Prize_in_Economic_Sciences_in_Memory_of_Alfred_Nobel Nobel Memorial Prize in Economics].
 
==Abstracts==


'''Papers by Maurice Allais:'''
'''Papers by Maurice Allais:'''
Line 36: Line 90:
'''Papers&nbsp;by Others (related to&nbsp;Maurice Allais):'''
'''Papers&nbsp;by Others (related to&nbsp;Maurice Allais):'''


* [http://allais.maurice.free.fr/English/Einstein2.htm Albert Einstein's opinion about the&nbsp; interferometric experiments of&nbsp; Dayton C. Miller.&nbsp; A communication to "Science"]. New Series, Vol 62, N? 1596 du 31 juillet 1925.
* [http://allais.maurice.free.fr/English/Einstein2.htm Albert Einstein's opinion about the&nbsp; interferometric experiments of&nbsp; Dayton C. Miller.&nbsp; A communication to "Science"]. New Series, Vol 62, 1596 du 31 juillet 1925.
* Jean-Pierre Bouyssonnie &amp; Henry Aujard, "[http://allais.maurice.free.fr/English/media1-1.htm About Unforeseen&nbsp; Repercussions&nbsp;of the Eclipse of August 11th, 1999&nbsp;in the Field of Gravitation]".&nbsp; Translation of an article published in the review of&nbsp; C.N.I.S.F. (National Council of the Engineers and Scientists of France),&nbsp; Feb 20,&nbsp;2000.
* Jean-Pierre Bouyssonnie &amp; Henry Aujard, "[http://allais.maurice.free.fr/English/media1-1.htm About Unforeseen&nbsp; Repercussions&nbsp;of the Eclipse of August 11th, 1999&nbsp;in the Field of Gravitation]".&nbsp; Translation of an article published in the review of&nbsp; C.N.I.S.F. (National Council of the Engineers and Scientists of France),&nbsp; Feb 20,&nbsp;2000.
* Laurence Hecht, "Letters to Editor and Reply: Rethinking the Laws of Gravitation",&nbsp;<em>21st Century Science &amp; Technology</em> (Fall 1998).
* Laurence Hecht, "Letters to Editor and Reply: Rethinking the Laws of Gravitation",&nbsp;<em>21st Century Science &amp; Technology</em> (Fall 1998).
* Henry Aujard,&nbsp;"[http://allais.maurice.free.fr/English/media18-1.htm The 'Allais Effect' Is Real!]",&nbsp;<em>21st Century Science &amp; Technology</em>, V14, N2, p. 70 (Sum&nbsp;2001).
* Henry Aujard,&nbsp;"[http://allais.maurice.free.fr/English/media18-1.htm The 'Allais Effect' Is Real!]",&nbsp;<em>21st Century Science &amp; Technology</em>, V14, N2, p. 70 (Sum&nbsp;2001).
* R?mi Saumont, "[http://allais.maurice.free.fr/English/media11-1.htm Undermining the Foundations of Relativity, the Work: L'Anisotropie de l'Espace (The Anisotropy of Space)]",&nbsp; published in french by Maurice Allais in 1997 with Editions Cl?ment Juglar, 62 Avenue de Suffren, 75015 PARIS,&nbsp;<em>21st Century Science &amp; Technology</em> (Sum 1998).
* Rémi Saumont, "[http://allais.maurice.free.fr/English/media11-1.htm Undermining the Foundations of Relativity, the Work: L'Anisotropie de l'Espace (The Anisotropy of Space)]",&nbsp; published in french by Maurice Allais in 1997 with Editions Clément Juglar, 62 Avenue de Suffren, 75015 PARIS,&nbsp;<em>21st Century Science &amp; Technology</em> (Sum 1998).
* Laurence Hetch, "[http://allais.maurice.free.fr/English/media8-1.htm Optical Theory in the 19th Century, and the Truth about Michelson-Morley-Miller]", <em>21st Century Science &amp; Technology</em> (Spr 1998) p. 35.
* Laurence Hetch, "[http://allais.maurice.free.fr/English/media8-1.htm Optical Theory in the 19th Century, and the Truth about Michelson-Morley-Miller]", <em>21st Century Science &amp; Technology</em> (Spr 1998) p. 35.
* Richard Moody, Jr., "[http://allais.maurice.free.fr/English/Einstein1.htm Albert Einstein, Plagiarist of the Century]", <em>Nexus Magazine</em>, V11, N1 (Dec-Jan 2004).
* Richard Moody, Jr., "[http://allais.maurice.free.fr/English/Einstein1.htm Albert Einstein, Plagiarist of the Century]", <em>Nexus Magazine</em>, V11, N1 (Dec-Jan 2004).
Line 46: Line 100:
==Books==
==Books==


* 2005 - "[[Albert Einstein un Extraordinaire Paradoxe: Contributions de Maurice Allais ? la physique exp?rimentale et th?orique]]" ([http://www.lavoisier.fr/notice/frKFOO3A2ZLSVO63.html Read in full])
* 2005 - "[[Albert Einstein un Extraordinaire Paradoxe: Contributions de Maurice Allais ? la physique exp?rimentale et th?orique|Albert Einstein, un Extraordinaire Paradoxe: Contributions de Maurice Allais à la physique expérimentale et théorique]]" ([http://www.lavoisier.fr/notice/frKFOO3A2ZLSVO63.html Read in full])
 
==See also==
 
* [[Allais Effect]]
* [[Dayton C Miller]]
* [[Aether]]
* [[Particle Model]]
* [[Georges-Louis Le Sage]]
* [[Gravity]]
 
==External links==
 
* [http://en.wikipedia.org/wiki/Maurice_Allais Maurice Allais] at Wikipedia
* [https://www.nobelprize.org/prizes/economic-sciences/1988/allais/facts/ Maurice Allais] at NobelPrize.org


[[Category:Scientist]]
[[Category:Scientist|Allais Maurice]]
[[Category:Worldwide List of Dissident Scientists]]
[[Category:Gravity|Allais Maurice]]
[[Category:Aether|Allais Maurice]]

Latest revision as of 21:26, 20 July 2026

Maurice Allais
Maurice Allais
Born(1911-05-31)May 31, 1911
Paris, France
DiedOctober 9, 2010(2010-10-09) (aged 99)
Saint-Cloud, France
ResidenceParis, France
NationalityFrench
Known forAllais Effect, Aether, Special Relativity
Scientific career
FieldsPhysicist, Economist

Maurice Félix Charles Allais (31 May 1911 – 9 October 2010) was a French economist and physicist. He was the 1988 winner of the Nobel Memorial Prize in Economics "for his pioneering contributions to the theory of markets and efficient utilization of resources." Although he is best known for his work in economics, Allais also carried out extensive experimental and theoretical work in physics, and is remembered for the Allais Effect, an anomalous behaviour of a pendulum reported during solar eclipses.

Biography

Maurice Allais was born on 31 May 1911 in Paris, France, into a modest family; his father was a shopkeeper and his grandfather a carpenter. His father, taken prisoner during the First World War, died in Germany in 1915, an event that affected Allais deeply. Despite his young age, he resolved to honour his father's name.

Allais studied at the Lycée Lakanal and then entered the École Polytechnique in Paris, from which he graduated at the top of his class. He continued his studies at the École Nationale Supérieure des Mines de Paris, and later obtained a doctorate in engineering from the University of Paris (Faculty of Science) in 1949. From 1944 he served as Professor of Economics at the École Nationale Supérieure des Mines de Paris, and in 1946 he became director of its Economic Analysis Centre. He also held teaching positions at other institutions, including the University of Paris X–Nanterre.

Allais died on 9 October 2010 in Saint-Cloud, near Paris, at the age of 99.

Scientific contributions

Economics

Allais made pioneering contributions to mathematical economics, general equilibrium theory, capital theory, decision theory and monetary policy. He independently developed an early version of the overlapping generations model (1947) and formulated a version of the "golden rule" of optimal economic growth before it became widely known. He is also remembered for the "Allais paradox" (1953), an experimental result that challenged the expected utility hypothesis and anticipated later developments in behavioural economics. For this body of work he was awarded the Nobel Memorial Prize in Economics in 1988.

Physics

Allais came to physics from outside it, and late. Between 1952 and 1960, while holding a chair in economics, he ran one of the longest and most obsessively controlled experimental programmes in the history of the subject — and concluded from it that the theory of relativity was wrong and that space is anisotropic. He was awarded the Galabert Prize of the French Astronautical Society in 1959 for this work, and his principal paper appeared in Aero/Space Engineering at the request of Wernher von Braun.

The paraconical pendulum

His instrument was a short pendulum — an equivalent length of about 83 cm, some 12 kg in all — hung not from a wire but from a stirrup resting on a 6.5 mm steel ball free to roll on a flat plate. This "paraconical" support lets the bob trace an ellipse rather than hold a plane, and it is the orientation of that ellipse that Allais tracked. The protocol was relentless: the pendulum was released every 20 minutes by burning a thread, observed for 14 minutes, then stopped and re-released in the plane of the last observed azimuth, so that the readings formed one continuous chain — 72 series a day, day and night, for a month at a time. He carried out six such month-long runs between 1954 and 1960, changing the steel ball after every run and the bearing plate weekly to exclude wear. From July 1958 a second identical pendulum ran in parallel in a disused chalk quarry at Bougival, 57 m underground and 6.5 km away from his laboratory at Saint-Germain-en-Laye, built specifically to answer the objection that the results were thermal or vibrational artefacts.

The Allais effect

The total eclipse of 30 June 1954 fell during one of these runs. The azimuth of the pendulum's plane of oscillation departed sharply from its trend, rising about 5 centesimal degrees above it at onset, reaching a maximum departure of about 15 centesimal degrees — 15 grads, or 13.5 ordinary degrees — some twenty minutes before the maximum of the eclipse, and decaying to about 1.2 grads before the eclipse ended. Allais noted that the forces implied were of the same order as those producing the Foucault effect itself, and wrote that the disturbance "gave the very definite impression of a screen effect". A second eclipse on 2 October 1959 caught another run in progress and produced a similar but distinctly weaker disturbance; only about 37 per cent of the solar disc was covered at Paris.

This is the observation that became known as the Allais Effect, and it has been pursued, replicated and disputed for seventy years — with a torsion pendulum by Erwin J Saxl and Mildred Allen during the eclipse of 1970, with gravimeters in India in 1995 and China in 1997, and with torsion balances in Ukraine and Romania in 2009. Because a gravity that can be screened by an interposed Moon cannot be the geometry of spacetime, some researchers read the effect as evidence that gravity is corpuscular — a flux of particles or gravitons that matter partially absorbs, as in the Particle Model of Bob de Hilster and David de Hilster and in the Le Sage tradition. That argument, its proponents, and the substantial disagreements among them are set out on the Allais Effect page.

It is worth stressing here that Allais himself did not hold the shielding interpretation. The eclipses were incidental to his main result, which was the periodic structure of the pendulum's motion over the long runs.

Anisotropy of space and the "new field"

The continuous runs revealed periodic components in the azimuth, including one at about 24 h 50 min — the mean lunar day. That a lunisolar period should appear is unremarkable; the amplitude was not. Allais calculated that conventional lunar and solar tidal action on his apparatus fell short of the observed effect by a factor he put at some 108; a recomputation by his collaborators in 2022 gives a smaller but still extraordinary discrepancy of roughly six orders of magnitude for direct tidal action. He concluded that something else was acting:

In its present status of the discussion, the abnormalities observed can be accounted for only by considering the existence of a new field, namely, by envisaging the existence of complementary terms which until now had remained unnoticed.

— Maurice Allais, "Should the Laws of Gravitation Be Reconsidered?", Aero/Space Engineering 18 (1959)

He ran optical experiments in parallel — sightings on fixed marks and collimators at Saint-Germain in 1958 and at the IGN in 1959 — and reported a remarkable consistency between those deviations and the pendulum readings taken 6 km away and 57 m underground. From this he concluded that the velocity of light is not strictly constant but varies slightly with direction, and interpreted the whole body of results as evidence for an aether and for the anisotropy of space.

The re-examination of Miller, Michelson and Esclangon

Allais then turned to the historical record, arguing that the same anisotropy was already present in data collected decades earlier and dismissed. He re-examined the Michelson–Morley experiment of 1887, the Morley–Miller experiments of 1902–05, and above all Dayton C Miller's Mount Wilson interferometry of 1925–26, together with Esclangon's observations on the dissymmetry of space.

Re-binning Miller's readings by sidereal rather than civil time, Allais reported a coherent sidereal-diurnal component and a geometric regularity in the data — the centres of the elliptical hodographs falling on a circle — that he argued was far too orderly to be thermal noise. He published this as two notes to the Comptes Rendus de l'Académie des Sciences in 1999, under the titles "Des régularités très significatives dans les observations interférométriques de Dayton C. Miller 1925–1926" and "Nouvelles régularités très significatives…", followed in 2000 by a third note addressing the question directly: were the regularities temperature effects, or anisotropy of space? That note is a sustained rebuttal of Shankland's 1955 temperature-gradient refutation of Miller, which Allais held to be statistically inadequate and contradicted by data inside Shankland's own paper. He set out the case at book length in L'Anisotropie de l'Espace (Clément Juglar, 1997), translated into English as The Anisotropy of Space (L'Harmattan, 2019), and pressed it further in L'Effondrement de la Théorie de la Relativité (2004).

Allais organised his case around four experimental domains he held to be windows on a single underlying anisotropy: the paraconical pendulum with anisotropic support, the same pendulum with isotropic support, the optical sightings on marks and collimators, and the re-examined Miller and Esclangon data.

Reception

Allais's physics is not accepted by mainstream science. Attempts to reproduce the eclipse anomaly have produced inconsistent results, and several well-instrumented campaigns — including four superconducting gravimeters during the eclipse of August 1999 — have returned nulls; the reported anomalies are generally attributed to environmental and instrumental factors. Miller's residuals are likewise still treated as thermal artefacts, and no mainstream rebuttal engaging Allais's statistical re-analysis by name appears to have been published. Among dissident researchers the reception has been warmer: James DeMeo cites Allais approvingly in his own re-examination of Miller's ether-drift data, and the eclipse work continues to be pursued by Thomas Goodey, Dimitrie Olenici and Allais's collaborator Jean-Bernard Deloly.

Allais put his own view of the stakes in the title of his 2003 article for the review of the École Polytechnique: the regularities in Miller's observations amounted, he argued, to "the fundamental and complete collapse of relativity theory."

Honors

Abstracts

Papers by Maurice Allais:

Papers by Others (related to Maurice Allais):

Books

See also

External links