Applications of generalized classical trajectories in nuclear physics
Description
A new semiclassical method, the so-called uniform semiclassical approximation, is described briefly and then applied to two nuclear physics problems. The basic features of this method are that the dynamics of the problem is treated completely classically (that is, one solves classical equations of motion), but the quantum mechanical superposition principle is retained by evaluating a phase along the classical trajectory and adding probability amplitudes for indistinguishable processes rather than probabilities themselves. The first problem considered is the backscattering from a deformed nucleus and the excitation of rotational states in the target at energies up to the Coulomb barrier. The multiple Coulomb excitation calculations are in quantitative agreement with a very different method (the de Boer-Winther code). A nuclear optical potential is also considered and the nuclear-Coulomb interference for heavy ions is studied. The second problem considered is the tunneling through a two-dimensional barrier. This problem (which is supposed to simulate the penetration through a two-dimensional fission barrier) is investigated by a fully quantum-mechanical coupled-channel calculation and by the uniform semiclassical approximation. A quantitative agreement is found
Additional details
Additional titles
- Augmented title (English)
- Semiclassical method, coupled-channel calculation
Publishing Information
- Imprint Pagination
- 194 p.
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 8282608
- Subject category
- S73: NUCLEAR PHYSICS AND RADIATION PHYSICS;
- Resource subtype / Literary indicator
- Thesis, Non-conventional Literature
- Descriptors DEI
- AMPLITUDES; BACKSCATTERING; COULOMB EXCITATION; COULOMB FIELD; DEFORMED NUCLEI; EQUATIONS OF MOTION; EXCITATION; FISSION BARRIER; HEAVY IONS; INTERFERENCE; KINETICS; NUCLEAR PHYSICS; NUCLEAR POTENTIAL; NUCLEAR REACTIONS; OPTICAL MODELS; PROBABILITY; QUANTUM MECHANICS; ROTATIONAL STATES; SEMICLASSICAL APPROXIMATION; TRAJECTORIES
- Descriptors DEC
- CHARGED PARTICLES; DIFFERENTIAL EQUATIONS; ELECTRIC FIELDS; ENERGY; ENERGY LEVELS; ENERGY-LEVEL TRANSITIONS; EQUATIONS; EXCITED STATES; IONS; MATHEMATICAL MODELS; MECHANICS; NUCLEI; POTENTIAL ENERGY; SCATTERING
Optional Information
- Notes
- University Microfilms Order No. 76-15,309.