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exponent137 said:Object is stationary in one inertial system. Photons are not stationary in any inertial system.
Thats not what stationary state means:
http://en.wikipedia.org/wiki/Stationary_state
Thanks
Bill
exponent137 said:Object is stationary in one inertial system. Photons are not stationary in any inertial system.
bhobba said:That's untrue.
Its a statement about non-commuting observables and applies to any state - stationary or otherwise.
carllooper said:The use of non-commuting variables follows from the principle, not the other way around. There's nothing in mathematics that requires that two variables be non-commuting.
bhobba said:It is a theorem of non-commuting observables.
carllooper said:What motivates the use of non-commuting variables? It is the concept of non-commuting observables.
carllooper said:Have a read of the thread. It becomes obvious from the discussion that by "stationary particle" is meant a particle at rest. And it is in this context (not some other) that the Uncertainty Principle is being elaborated as ruling out such a proposed particle, ie. where mathematics itself does not.
bhobba said:What has motivation got to do with validity? When I muck around investigating a mathematical structure trying to prove something, or simply out of curiosity, all sorts of things motivate me - or maybe nothing at all. Either way its got nothing to do with its implication.
In QM words have a definite meaning. Stationary state is entirely different from stationary particle. Indeed a state where a particle is at rest with a definite position is impossible.
carllooper said:I think you'll find the Heisenberg Uncertainty Principle is more than just a mathematical proposition. It has it's origin in experimental physics. Bohr sums it up quite well in this 1949 section of "Discussions with Einstein on Epistemological Problems in Atomic Physics" (highlights mine):
carllooper said:In this theory, a formalism is introduced, in which the kinematical and dynamical variables of classical mechanics are replaced by symbols subjected to a non-commutative algebra.
bhobba said:Things have moved on a lot since the famous, and it must be said magnificent, Einstein Bohr debates where pictorial visualisations were often used. They were mostly incorrect BTW - its really got nothing to do with firing photons at objects etc - that's just for pictorial vividness. But that was the early days of QM - much water has gone under the bridge since then - and wasn't really Einsteins deepest objection to the theory anyway which was detailed in EPR.
carllooper said:While a lot has certainly happened since those days, it's still as relevant today as it was then. The Uncertainty Principle remains the same principle. It hasn't changed.
carllooper said:Also, Bohr might have used pictures but he certainly didn't encourage them. Indeed he famously had a go at Feynman for using a pictorial representation of quantum mechanics. But as Feynman demonstrated you can indeed use pictures (or diagrams) to represent a useful concept, ie. as much as any other way. And Feynman's integral path is a very clever way of elaborating the physics in a pictorial way.
carllooper said:The basics of physics is still very much the same as it ever was
carllooper said:And as a side project, of course, is always the ongoing fascination with the weirdness - what are we missing? Are we missing anything? The interpretative game.
bhobba said:Its physical basis has changed - its simply a theroem abnout non-commuting onservables. Observables can be commuting or not - the uncertainly principle applies to non-commuting observables as a general therorem.
bhobba said:Actually the basic rock bottom essence of any science, including physics, is its all provisional, subject to one thing, and one thing only - correspondence with experiment.