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Neutron fibres. II. Some improving alternatives and analysis of bending losses

dc.contributor.authorFernández Álvarez-Estrada, Ramón
dc.contributor.authorCalvo Padilla, María Luisa
dc.date.accessioned2023-06-21T02:07:55Z
dc.date.available2023-06-21T02:07:55Z
dc.date.issued1986-06-14
dc.description© 1986 The Institute of Physics We are grateful to Dr. J. W. Fowler, from Gray Laboratory, Mount Vernon Hospital, for an interesting correspondance containing useful comments.
dc.description.abstractFor pt.I see ibid., vol.17, p.475 (1984). The possible confined propagation of slow (thermal) neutrons along cladded waveguides of small cross section (fibres) is studied, in order to improve a previously published analysis. Quite suitable possibilities for the core of the waveguide could be either Al or Si (or vacuum), so as to allow for confined propagation of neutrons along reasonable lengths, without large scattering and absorption losses. Tentative possibilities for the cladding could be either Ni or Fe. The bending losses are analysed for a curved neutron fibre in two spatial dimensions. Such bending losses turn out to be completely negligible, except in the case of a small radius of curvature Rc. To quote some typical values, for any fibre diameter between 0.1 and 1 mu m and reasonable lengths for it (between 5 and 10 cm), bending losses can be neglected other than for Rc<or approximately=10 cm.
dc.description.departmentDepto. de Óptica
dc.description.facultyFac. de Ciencias Físicas
dc.description.refereedTRUE
dc.description.statuspub
dc.eprint.idhttps://eprints.ucm.es/id/eprint/25863
dc.identifier.doi10.1088/0022-3727/19/6/012
dc.identifier.issn0022-3727
dc.identifier.officialurlhttp://dx.doi.org/10.1088/0022-3727/19/6/012
dc.identifier.relatedurlhttp://iopscience.iop.org
dc.identifier.urihttps://hdl.handle.net/20.500.14352/64935
dc.issue.number6
dc.journal.titleJournal of Physics D: Applied Physics
dc.language.isoeng
dc.page.final973
dc.page.initial957
dc.publisherIOP Publishing Ltd
dc.rights.accessRightsopen access
dc.subject.cdu535
dc.subject.keywordApplied Physics
dc.subject.ucmÓptica (Física)
dc.subject.unesco2209.19 Óptica Física
dc.titleNeutron fibres. II. Some improving alternatives and analysis of bending losses
dc.typejournal article
dc.volume.number19
dcterms.references1. Abramowitz M. and Stegun, I. 1965 Handbook of Mathematical Functions (New York: Dover). 2. Álvarez-Estrada R. F. and Calvo M. L. 1984 J. Phys. D: Appl. Phys. 17 475. 3. Bacon G E 1962 Neutron Diffraction (Oxford: Clarendon). 4. Berry M. V. and Mount, K. E. 1972 Rep. Prog. Phys. 35 315. 5. Eisberg R. and Resnick R. 1974 Quantum Physics of Atoms, Molecules, Solids, Nuclei and Particles section. 6. Fowler J. F. 1981 Nuclear Particles in Cancer Treatment (Bristol: Adam Hilger). 7. Jacrot B. 1970 Proc. Symp. Instrumentation for Neutron Inelastic Scattering Research (Vienna) 1969 (Vienna: 8. Landau L. D. and Lifshitz E. M. 1965 Quantum Mechanics (Oxford: Pergamon). 9. Maghabghab S. F., Divadeenam M and Holden NE 1981 Neutron Cross Sections v01 1 (New York: Academic). 10. Marcatili E. A. J. 1969 Bell Syst. Tech. J. 48 2103. 11. Marcuse D. 1972 Light Transmission Optics (New York: Van Nostrand Reinhold). 12. Martin A. 1972 Helv. Phys. Acta 45 140. 13. Marx D. 1971 Nucl. Instrum. Meth. 94 533. 14. McCreight L. R., Rauch H. W. Sr. and Sutton W. H. 1965 Ceramic and Graphite Fibers and Whiskers, A Survey. 15. Schaerpf 0. and Eichler D. 1973 J. Phys. E: Sci. Instrum. 6 774. 16. Snyder A. W. 1969.IEEE Trans. Microwave Theory and Techniques MTT-17 1130. 17. White J. W. and Windsor C. G. 1984 Rep. Prog. Phys. 47 707.
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