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1

A mathematical analysis of bending of plates with transverse shear deformation. Harlow, Essex, England: Longman Scientific & Technical, 1990.

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2

Obaia, K. H. Inelastic transverse shear capacity of large fabricated steel tubes. Edmonton, Alta., Canada: Dept. of Civil Engineering, University of Alberta, 1991.

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3

Whyatt, J. K. Numerical exploration of shear-fracture-related rock bursts using a strain-softening constitutive law. Washington: U.S. Dept. of the Interior, Bureau of Mines, 1991.

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4

Wang, C. M. Shear deformable beams and plates: Relationships with classical solutions. Amsterdam: Elsevier, 2000.

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5

Hou, Changbao. Rechnerische Untersuchungen zum Querkrafttragverhalten bei verbundlos vorgespannten Betonbalken. Aachen: Verlag Shaker, 1992.

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6

Reddy, J. N. A refined shear deformation theory for the analysis of laminated plates. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1986.

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7

Sturm, Terry W. Estimating critical shear stress of bed sediment for improved prediction of bridge contraction scour in Georgia: Final report. Forest Park, Ga.]: Dept. of Transportation, Office of Materials and Research, 2008.

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8

Priour, D. Genèse des zones de cisaillement: Application de la méthode des éléments finis à la simulation numérique de la déformation des roches. Rennes, France: Centre armoricain d'étude structurale des socles, Université de Rennes I, 1985.

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9

Andaluzia, Matei, ed. Mathematical models in contact mechanics. New York: Cambridge University Press, 2012.

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10

Mathematical models in applied mechanics. Oxford: Clarendon Press, 1986.

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11

Tayler, Alan B. Mathematical models in applied mechanics. Oxford: Clarendon Press, 2001.

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12

Trevino, G. Structure of wind-shear turbulence. Hampton, Va: Langley Research Center, 1989.

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13

Groundwater mechanics. Englewood Cliffs, N.J: Prentice Hall, 1989.

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14

G, Huang P., MacInnes J. M, and United States. National Aeronautics and Space Administration., eds. Time-accurate simulations of a shear layer forced at a single frequency. [Washington, DC]: National Aeronautics and Space Administration, 1988.

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15

Rodrigo Diez, José Luis, 1977-, ed. Mathematical aspects of fluid mechanics. Cambridge, UK: Cambridge University Press, 2012.

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16

Allen, Myron B. Continuum mechanics: The birthplace of mathematical models. Hoboken, New Jersey: John Wiley & Sons, Inc., 2015.

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17

Generalized point models in structural mechanics. Singapore: World Scientific, 2002.

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18

Creep mechanics. 2nd ed. Berlin: Springer, 2005.

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19

Physikalische Simulation von Staublawinen: Experimente zur Dynamik im dreidimensionalen Auslauf. Zürich: Versuchsanstalt für Wasserbau, Hydrologie und Glaziologie der Eidgenössischen Technischen Hochschule Zürich, 1996.

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20

Ushveridze, Alexander G. Quasi-exactly solvable models in quantum mechanics. Bristol [England]: Institute of Physics Pub., 1994.

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21

Matolcsi, Tamás. Models in mechanics: A concept of mathematical physics. Budapest: Akadémiai Kiadó, 1986.

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22

Problem solving in soil mechanics. Lisse: Balkema, 2003.

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23

Aysen, A. Problem solving in soil mechanics. Lisse: Balkema, 1999.

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24

Spivak, Michael. Physics for mathematicians: Mechanics I. [Houston, Tex.]: Publish or Perish, 2010.

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25

New solutions in contact mechanics. Southampton: WIT, 2005.

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26

Temam, Roger. Mathematical modeling in continuum mechanics. Cambridge, UK: Cambridge University Press, 2001.

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27

Alain, Miranville, ed. Mathematical modeling in continuum mechanics. 2nd ed. Cambridge: Cambridge University Press, 2005.

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28

Girifalco, L. A. Statistical mechanics of solids. Oxford: Oxford University Press, 2000.

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29

Computational contact mechanics. 2nd ed. Berlin, Germany: Springer, 2005.

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30

Santaoja, Kari. Mathematical modelling of deformation mechanisms in ice. Espoo, Finland: Valtion teknillinen tutkimuskeskus, 1990.

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31

Mathematical models for elastic structures. Cambridge: Cambridge University Press, 1997.

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32

Neimark, Juri I. Mathematical Models in Natural Science and Engineering. Berlin, Heidelberg: Springer Berlin Heidelberg, 2003.

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33

H, Handelman G., ed. Mathematics applied to continuum mechanics. New York: Dover Publications, 1987.

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34

Walsh, David. A model of a Mediterranean salt lens in external shear. Woods Hole, Mass: Woods Hole Oceanographic Institution, 1992.

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35

Shear Deformable Beams and Plates. Elsevier Science, 2000.

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36

Constanda, Christian, and I. Chudinovich. Variational and Potential Methods in the Theory of Bending of Plates with Transverse Shear Deformation. Taylor & Francis Group, 2000.

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37

Constanda, Christian, and I. Chudinovich. Variational and Potential Methods in the Theory of Bending of Plates with Transverse Shear Deformation (Chapman and Hall /Crc Monographs and Surveys in Pure and Applied Mathematics). Chapman & Hall/CRC, 2000.

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38

Constanda, Christian, and I. Chudinovich. Variational and Potential Methods in the Theory of Bending of Plates with Transverse Shear Deformation. Taylor & Francis Group, 2000.

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39

Variational and Potential Methods in the Theory of Bending of Plates with Transverse Shear Deformation. Taylor & Francis Group, 2000.

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40

Lee, K. H., J. N. Reddy, and C. M. Wang. Shear Deformable Beams and Plates: Relationships with Classical Solutions. Elsevier Science & Technology Books, 2000.

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41

Boundary Element Analysis of Cracks in Shear Deformable Plates and Shells (Topics in Engineering). Computational Mechanics, Inc., 2002.

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42

Skaugset, Arne E. Modeling root reinforcement in shallow forest soils. 1997.

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43

H, Hoffmann P., and Joint Institute for Aeronautics and Acoustics., eds. A study of the factors affecting boundary layer two-dimensionality in wind tunnels. Stanford, CA: Stanford University, Dept. of Aeronautics and Astronautics, 1986.

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44

Rishi, Raj, Gatski T. B, and Institute for Computer Applications in Science and Engineering., eds. Modeling the dissipation rate in rotating turbulent flows. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, Institute for Computer Applications in Science and Engineering, 1990.

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45

1944-, Boyce Lola, and United States. National Aeronautics and Space Administration., eds. Probabilistic material strength degradation model for Inconel 718 components subjected to high temperature, high-cycle and low-cycle mechanical fatigue, creep, and thermal fatigue effects. [Washington, D.C.]: National Aeronautics and Space Administration, 1995.

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46

Sofonea, Mircea, and Andaluzia Matei. Mathematical Models in Contact Mechanics. Cambridge University Press, 2012.

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47

Sofonea, Mircea, and Andaluzia Matei. Mathematical Models in Contact Mechanics. Cambridge University Press, 2012.

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48

Sofonea, Mircea, and Andaluzia Matei. Mathematical Models in Contact Mechanics. Cambridge University Press, 2012.

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49

Berkery, Lynn A. Shear waves in a circular wave basin. 1995.

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50

Władysław, Fiszdon, and Wilmański Krzysztof, eds. Mathematical models and methods in mechanics. Warszawa: PWN--Polish Scientific Publishers, 1985.

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