Preview

Alternative Energy and Ecology (ISJAEE)

Advanced search
Open Access Open Access  Restricted Access Subscription or Fee Access

ON INTRODUCTION OF SCATTERING COEFFICIENT FOR SOLVING DIFFRACTION PROBLEMS

https://doi.org/10.15518/isjaee.2017.13-15.144-154

Abstract

The paper deals with diffraction theory with the most of diffraction problems solved nowadays. The authors proposed and carried out experiments that couldn’t be explained in terms of diffraction theory.

The results of experiments with diffraction image contrast varies from zero to the values exceeding those observed in classical diffraction experiments have been presented. It is discussed the possibility of creating an improved theory of diffraction in which real physical processes taking place when light beams are limited by diaphragms or mirrors. One of the potential ways of enhancing the method of solving diffraction problems is introduction of dispersion factor. The developed method can be used in solving the wide range of diffraction problems, as well as in calculating soft apertures for inertial confinement fusion laser systems – one of the main directions of alternative energy sources search.

The novel view on diffraction mechanisms may lead to understanding the other light phenomena and development of specific optical tools, e.g. unique soft apertures for inertial confinement fusion purposes. 

About the Authors

L. V. Goryachev
National Research Nuclear University MEPhI
Russian Federation

Ph.D. (physics and mathematics), Leading Researcher at Russian Federal Nuclear Center All-Russian Research Institute of Experimental Physics, Associate Professor of SarFTI NIYAU of MEPhI, Sarov,

6 Dukhov str., Sarov, Nizhny Novgorod reg., 607190



V. L. Goryachev
National Research Nuclear University MEPhI
Russian Federation

Leading Specialist of Communication Service Department of Russian Federal Nuclear Center AllRussian Research Institute of Experimental Physics; Chief of Group,

6 Dukhov str., Sarov, Nizhny Novgorod reg., 607190



G. S. Rogozhnikov
National Research Nuclear University MEPhI
Russian Federation

Senior Researcher at Russian Federal Nuclear Center AllRussian Research Institute of Experimental Physics, Chief Engineer of SarFTI NIYAU of MEPhI, Sarov,

6 Dukhov str., Sarov, Nizhny Novgorod reg., 607190



References

1. Goryachev L.V., Goryachev V.L. Removal of Diffraction of Light Beams (Ustranenie difraktsii v puchkakh sveta). Fundamental'naya i prikladnaya fizika, 2012:1(1):29–37 (in Russ.).

2. Goryachev L.V., Goryachev V.L. Photon-Photon Interaction – Mechanism of Formation of a Spot of Poisoson and others diffraction Phenomena (Fotonfotonnoe vzaimodeistvie – mekhanizm obrazovaniya pyatna Puassona i drugikh difraktsionnykh yavlenii). International Scientific Journal for Alternative Energy and Ecology (ISJAEE), 2013;(2):153–161 (in Russ.).

3. Goryachev L.V., Goryachev V.L., Rogozhnikov G.S. The Need of Consider edge Wave at the Solution on diffraction Tasks (Neobkhodimost' ucheta vliyaniya granichnoi volny pri reshenii difraktsionnykh zadac. International Scientific Journal for Alternative Energy and Ecology (ISJAEE), 2016;(07–08):103–112 (in Russ.).

4. Landsberg G.S. Optika. Moscow: Nauka Publ., 1976 (in Russ.).

5. Young T. Phil. Trans. Roy. Soc., 1802;20(26):496 (in Eng.).

6. Maggi G.A. Sulla propagazione libera e perturbata delle onde luminose in mezzo isotropo. Ann. di Matem., 1888;16:21–48 (in Ital.).

7. Sommerfeld A. Mathematische Theorie der Diffraction. Mathematische Annalen, 1896;47:317–374 (in Germ.).

8. Rubinowicz, A. Annalen der Physik, 1917;53: 257; 1924;73; 1926;81:153 (in Germ.).

9. Rubinowicz A. / A. Rubinowicz // Acta Phys. Polon.,1953;12:225 (in Germ.).

10. Rubinowicz A. Die Beugungswelle in der Kirchhoffschen Theorie der Beugung. Polska Akad. Nauk, 1957 (in Germ.).

11. Miyamoto K., Wolf E. Generalization of the Maggi-Rubinowicz Theory of the Boundary Diffraction Wave–Part I. J. Opt. Soc. Amer., 1962;52:615–625 (in Eng.).

12. Miyamoto K., Wolf E. Generalization of the Maggi-Rubinowicz Theory of the Boundary Diffraction Wave–Part II. J. Opt. Soc. Amer., 1962;52:626–636 (in Eng.).

13. Miyamoto K.E. New representation wave field. Proc. Phys. Soc., 1962;79:617–629 (in Eng.).

14. Born M. Osnovy optiki. M.: Nauka, 1973 (in Russ.).

15. Dagurov P.N. On the boundary diffraction wave in the Fresnel – Kirchgoff theory (O granichnoi difraktsionnoi volne v teorii Frenelya-Kirkhgofa) / P.N. Dagurov, A.V. Dmitriev // Pis'ma v ZhTF, 2009;35(10):49–57 (in Russ.).

16. Saari P., Bowlanb P., ValtnaLuknera H., Lohmusa M., Piksarva P., Trebinob R. Directly Recording Diffraction Phenomena in Time Domain. Laser Physics, 2010;20(5):948–953 (in Russ.).

17. Savelev I.V. Kurs obshchei fiziki. Volny. Optika. – Moscow: Izd-vo AST Publ., 2002 (in Russ.).

18. Sivukhin D.V. Obshchii kurs fiziki: vol. 4. – Moscow, 1985 (in Russ.).


Review

For citations:


Goryachev L.V., Goryachev V.L., Rogozhnikov G.S. ON INTRODUCTION OF SCATTERING COEFFICIENT FOR SOLVING DIFFRACTION PROBLEMS. Alternative Energy and Ecology (ISJAEE). 2017;(13-15):144-154. (In Russ.) https://doi.org/10.15518/isjaee.2017.13-15.144-154

Views: 502


ISSN 1608-8298 (Print)