Advancement of Optical Methods in Experimental Mechanics, by Helena Jin, Cesar Sciammarella, Sanichiro Yoshida, Luciano

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By Helena Jin, Cesar Sciammarella, Sanichiro Yoshida, Luciano Lamberti

Advancement of Optical equipment in Experimental Mechanics, quantity three: lawsuits of the 2014 Annual convention on Experimental and utilized Mechanics, the 3rd quantity of 8 from the convention, brings jointly contributions to this significant region of study and engineering. the gathering provides early findings and case experiences on a variety of optical tools starting from conventional photoelasticity and interferometry to more moderen DIC and DVC strategies, and comprises papers within the following basic technical examine areas:

· complicated optical tools for frontier applications

· complex optical interferometry

· Optical dimension platforms utilizing polarized light

· Optical tools for complicated production

· electronic photo correlation

· Optical equipment on the micro/nano-scale

· 3-dimensional imaging and volumetric correlation

· Imaging tools for thermomechanics applications

· Opto-acoustical tools in experimental mechanics

· Optical measurements in not easy environments

· Optical equipment for inverse problems

· Advances in optical methods

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Extra info for Advancement of Optical Methods in Experimental Mechanics, Volume 3: Proceedings of the 2014 Annual Conference on Experimental and Applied Mechanics

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8 < a ¼ a1 þ ia2 b ¼ b1 þ ib2 : g ¼ c1 þ ic2 ð3:2Þ k  r ¼ k½Àða2 x þ b2 y þ c2 zÞ þ iða1 x þ b1 y þ c1 zފ ð3:3Þ ! the dotted k  r product gives: ! Let us apply the above derivations to the problem of total reflection (Fig. 1). For simplicity, the analysis is reduced to a two dimensional problem by analyzing the process in the incidence plane of a propagating beam from medium 1 to medium 2 such that n1 > n2, where n1 and n2 are the indices of refraction of the two media. Considering the total internal reflection condition, introducing the refraction equation and calling yi the angle of incidence and yt the angle of the transmitted light one arrives to the following conclusions: 1.

The methodology initiated with the phenomenon of planar surface waves produced by surface plasmon polaritons. By direct experimental observations in 2009 the method was extended to ceramic surfaces in the micron and sub-micron range. Since the ceramics are dielectric materials the plasmon polariton model cannot explain the observed phenomena. For almost a century researchers have analyzed surface electromagnetic waves observed in planar interfaces that involve metallic surfaces, or metallic surfaces and dielectric media.

Toraldo di Francia G (1952) Super-gain antennas and optical resolving power. Nuovo Cimento 9(S3):426–435 25. Toraldo di Francia G (1958) La diffrazione della luce. Edizioni Scientifiche Einaudi, Torino 26. Vigoureux JM (2003) De l’onde e´vanescente de Fresnel au champ proche optique. Annales de la Fondation Luis de Broglie 28(3–4):525–548 27. Papoulis A (1962) The Fourier integral and its applications. McGraw-Hill, New York 28. Kretschmann E (1974) Die Bestimmung der Oberfl€achenrauhigkeit du¨nner schichten durch Messung der Winkelabh€angigkeit der Streustrahlung von Oberfl€achen Plasma Schwingungen.

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