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Ernst Mach

From Natural Philosophy Wiki
Ernst Mach
Born(1838-02-18)February 18, 1838
Chirlitz, Moravia, Austrian Empire
DiedFebruary 19, 1916(1916-02-19) (aged 78)
Haar, near Munich, Germany
NationalityAustrian
Known forMach's principle, critique of absolute space and time, Mach number, shock-wave photography, phenomenalist philosophy of science
Scientific career
FieldsPhysics, physiology of perception, philosophy of science
InstitutionsUniversity of Graz, Charles University (Prague), University of Vienna

Ernst Mach (18 February 1838 – 19 February 1916) was an Austrian physicist and philosopher of science whose criticism of Newton's absolute space and absolute time is one of the deepest and longest-running threads in the literature collected on this wiki.

Mach held chairs at Graz, Prague and finally Vienna, where his professorship was in the history and theory of the inductive sciences. As an experimentalist he is remembered for the photographic study of supersonic projectiles — he and Peter Salcher published images of the shock cone in 1887, and the ratio of a body's speed to the speed of sound in the medium was later named the Mach number in his honour. He also did extensive work on the physiology of sensation, including the visual contrast effect known as Mach bands.

His lasting influence, however, is philosophical. In Die Mechanik in ihrer Entwicklung, historisch-kritisch dargestellt (1883, translated as The Science of Mechanics) Mach argued that physics should confine itself to relations among observable quantities, and that Newton's absolute space and absolute time were metaphysical additions doing no empirical work. His most famous target was Newton's rotating-bucket argument. Newton took the rise of water up the sides of a spinning bucket as evidence of rotation with respect to absolute space; Mach replied that the only rotation we ever actually observe is rotation relative to the fixed stars, and that the experiment had never been performed — and could not be performed — with the rest of the universe removed. Inertia, on this reading, is not a property a body has in isolation but an expression of its relation to all the other matter in the universe.

Einstein took this idea seriously, adopted it as a guiding heuristic while constructing general relativity, and in 1918 gave it the name Mach's principle. Whether general relativity actually satisfies the principle has been disputed ever since, and Mach himself appears not to have accepted relativity: a preface published under his name in Die Prinzipien der physikalischen Optik (1921) repudiates it, though the authorship and dating of that passage have been questioned. Mach was also a sceptic about atoms, which he regarded for most of his career as an unverified hypothesis rather than a physical reality.

Mach's principle on this wiki

Mach's principle is a live research programme here rather than a historical curiosity, and it has its own category: Category:Mach's Principle.

The most fully developed version is André Assis's Relational Mechanics, which attempts to implement Mach's principle quantitatively by replacing Newtonian gravitation with a Weber-type force law — see Relational Mechanics and Implementation of Mach's Principle with Weber's Gravitational Force and Webers Electrodynamics. In The Relationship Between Mach's Principle and the Principle of Physical Proportions (2002) Assis connects the principle to the requirement that the laws of physics depend only on dimensionless ratios, and in Arguments in Favour of Action at a Distance he defends the instantaneous relational picture that such a mechanics requires. The work of Wilhelm Eduard Weber is central to this line.

Other researchers catalogued here approach it from different directions:

The disagreements among them are real. Some, following Assis, treat Mach's principle as a positive dynamical law to be written down; others, such as Georg Galeczki in Mach's Principle and the True Continuum, treat it primarily as a constraint on what a theory of space is allowed to assume. What they share is Mach's refusal to grant explanatory power to an unobservable absolute frame.

It should be said plainly that the status of Mach's principle in mainstream physics is itself unsettled. There is no agreed formulation of it, general relativity satisfies some versions and not others, and frame-dragging effects such as those measured by Gravity Probe B are usually described as partially Machian at best. This is a genuine open question, not a manufactured one.

See also