In many metrics of physical interest, the gravitational field can be rep resented as an optical medium with an effective index of refraction. We show that, in such a metric, the orbits of both massive and massless particles are governed by a Variational principle which involves the index of refraction and which assumes the form of Fermat\u27s principle or of Maupertuis\u27s principle. From this variational principle we derive exact equations of motion of Newtonian form which govern both massless and massive particles. These equations of motion are applied to some problems of physical interest
Abstract: Fermat’s principle applied to a flat metric in the plane yields the phase of a Bessel func...
The Einstein theory of general relativity reduces as a first approximation to the old N...
We consider the propagation of massive-particle de Broglie waves in a static, isotropic metric in Ge...
In many metrics of physical interest, the gravitational field can be represented as an optical mediu...
The optical-mechanical analogy involves the expression of geometrical optics and particle mechanics ...
We study the analog of Snell's law for particles moving across the interface of two regions with two...
Fermat’s principle may be used to derive an equation, of the form F=m a, governing the shape of a li...
A variational principle is applied to 4D Euclidean space provided with a tensor refractive index, de...
In a recent series of papers, the authors introduced a new Relativistic Newtonian Dynamics (RND) and...
We attempt to see how closely we can formally obtain the planetary and light path equations of gener...
Galileo studied bodies falling under gravity and Tycho Brahe made extensive astronomical observation...
Through the use of the optical-mechanical analogy, Newton\u27s law of motion may be cast into the sa...
Kovner has observed that Fermat's principle can be used to describe the motion of light rays in arbi...
The Newtonian approximation in the gravitational field description not necessarily involves admissio...
A pseudo-field theoretic reformulation of the Newton--Euler dynamics of isolated, gravitating fluids...
Abstract: Fermat’s principle applied to a flat metric in the plane yields the phase of a Bessel func...
The Einstein theory of general relativity reduces as a first approximation to the old N...
We consider the propagation of massive-particle de Broglie waves in a static, isotropic metric in Ge...
In many metrics of physical interest, the gravitational field can be represented as an optical mediu...
The optical-mechanical analogy involves the expression of geometrical optics and particle mechanics ...
We study the analog of Snell's law for particles moving across the interface of two regions with two...
Fermat’s principle may be used to derive an equation, of the form F=m a, governing the shape of a li...
A variational principle is applied to 4D Euclidean space provided with a tensor refractive index, de...
In a recent series of papers, the authors introduced a new Relativistic Newtonian Dynamics (RND) and...
We attempt to see how closely we can formally obtain the planetary and light path equations of gener...
Galileo studied bodies falling under gravity and Tycho Brahe made extensive astronomical observation...
Through the use of the optical-mechanical analogy, Newton\u27s law of motion may be cast into the sa...
Kovner has observed that Fermat's principle can be used to describe the motion of light rays in arbi...
The Newtonian approximation in the gravitational field description not necessarily involves admissio...
A pseudo-field theoretic reformulation of the Newton--Euler dynamics of isolated, gravitating fluids...
Abstract: Fermat’s principle applied to a flat metric in the plane yields the phase of a Bessel func...
The Einstein theory of general relativity reduces as a first approximation to the old N...
We consider the propagation of massive-particle de Broglie waves in a static, isotropic metric in Ge...