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1

Teng-fong, Wong, ed. Experimental rock deformation--the brittle field. 2a ed. Berlin: Springer, 2005.

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2

Paterson, Mervyn S. Experimental rock deformation: The brittle field. 2a ed. Berlin: Springer, 2004.

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3

Moshayedi, Nima. Kontsevich’s Deformation Quantization and Quantum Field Theory. Cham: Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-031-05122-7.

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4

Pierron, Fabrice. The Virtual Fields Method: Extracting Constitutive Mechanical Parameters from Full-field Deformation Measurements. Boston, MA: Springer US, 2012.

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5

Beus, Michael J. Application of field measurements and computer modeling to evaluate deep mine shaft stability in northern Idaho. [Washington, D.C.?]: U.S. Dept. of the Interior, Bureau of Mines, 1996.

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6

J, Beus Michael, ed. Real-time monitoring of field measurements for mine design: Greens Creek Mine, Admiralty Island, Alaska. [Washington, D.C.?]: U.S. Dept. of the Interior, Bureau of Mines, 1996.

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7

J, Beus Michael, ed. Real-time monitoring of field measurements for mine design: Greens Creek Mine, Admiralty Island, Alaska. [Washington, D.C.?]: U.S. Dept. of the Interior, Bureau of Mines, 1996.

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8

J, Beus Michael, ed. Real-time monitoring of field measurements for mine design: Greens Creek Mine, Admiralty Island, Alaska. [Washington, D.C.?]: U.S. Dept. of the Interior, Bureau of Mines, 1996.

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9

J, Beus Michael, ed. Real-time monitoring of field measurements for mine design: Greens Creek Mine, Admiralty Island, Alaska. [Washington, D.C.?]: U.S. Dept. of the Interior, Bureau of Mines, 1996.

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10

J, Beus Michael, ed. Real-time monitoring of field measurements for mine design: Greens Creek Mine, Admiralty Island, Alaska. [Washington, D.C.?]: U.S. Dept. of the Interior, Bureau of Mines, 1996.

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11

Al-Gasous, Khaled Abdallah. The deformation behaviour of the collapsing and destructured soils of the Sana'a area and their response to field treatment. Birmingham: Aston University. Department of Civil Engineering, 1995.

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12

Homburg, Janelle. Field and theoretical investigations of strain localization: Effects of mineralogy, shear heating and grain size evolution on deformation in the Earth. [New York, N.Y.?]: [publisher not identified], 2013.

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13

Beus, Michael J. Field measurement and finite-element modeling of circular and rectangular shaft shapes in the Coeur d'Alene mining district, Idaho. Pittsburgh, Pa. (4800 Forbes Ave., Pittsburgh 15213): U.S. Dept. of the Interior, Bureau of Mines, 1985.

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14

Kommission, Deutsche Geodätische, ed. Physically consistent system model for the study of the Earth's rotation, surface deformation and gravity field parameters: Scientific results of the DFG project. München: Verlag der Bayerischen Akademie der Wissenschaften, 2009.

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15

Fisher, Donald y Paola Vannucchi. Deformation, fluid flow, and mass transfer in the forearc of convergent margins: Field guides to the northern Apennines in Emilia and in the Apuan Alps (Italy). Geological Society of America: Boulder, Colo, 2012.

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16

Luu, Martin T. Deformation theory and local-global compatibility of langlands correspondences. Providence, Rhode Island: American Mathematical Society, 2015.

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17

Brandon, M. T. Deformational processes affecting unlithified sediments at active margins: A field study and a structuralmodel. ann Arbor, Mich: UMI Dissertation Inf. Service, 1987.

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18

Symposium, on Electro-Magneto-Mechanics (2002 Blacksburg Va ). Mechanics of electromagnetic material systems and structures. Southampton: WIT Press, 2003.

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19

Seh, Lee Jong, Maugin G. A. 1944-, Shindo Yasuhide, American Society of Chemical Engineers. Engineering Mechanics Division., American Society of Mechanical Engineers. Applied Mechanics Division., American Society of Mechanical Engineers. Materials Division. y Joint Mechanics Meeting of ASME, ASCE, SES (1st : 1993 : Charlottesville, Va.), eds. Mechanics of electromagnetic materials and structures: Presented at the 1st Joint Mechanics Meeting of ASME, ASCE, SES, MEET'N '93, Charlottesville, Virginia, June 6-9, 1993. New York: American Society of Mechanical Engineers, 1993.

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20

International Symposium on Waste Mechancs (2008 New Orleans, La.). Geotechnical characterization, field measurement, and laboratory testing of municipal solid waste: Proceedings of the 2008 International Symposium on Waste Mechanics, March 13, 2008, New Orleans, Louisiana. Reston, Va: American Society of Civil Engineers, 2011.

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21

Vykhovanko, S. V. Essence and the structurally functional organization of the matter and its displays as deformation and wave processes: "particles", "fields" and "interactions". Volgograd, Russia: "Print Terra", 2007.

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22

Vykhovanko, S. V. Essence and the structurally functional organization of the matter and its displays as deformation and wave processes: "particles", "fields" and "interactions". Volgograd, Russia: "Print Terra", 2007.

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23

1973-, Johnson Mark W., ed. A foundation for PROPs, algebras, and modules. Providence, Rhode Island: American Mathematical Society, 2015.

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24

Burgos Gil, José I. (José Ignacio), 1962- editor, ed. Feynman amplitudes, periods, and motives: International research conference on periods and motives : a modern perspective on renormalization : July 2-6, 2012, Institute de Ciencias Matematicas, Madris, Spain. Providence, Rhode Island: American Mathematical Society, 2015.

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25

editor, Donagi Ron, Katz Sheldon 1956 editor, Klemm Albrecht 1960 editor y Morrison, David R., 1955- editor, eds. String-Math 2012: July 16-21, 2012, Universität Bonn, Bonn, Germany. Providence, Rhode Island: American Mathematical Society, 2015.

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26

author, Conrad Brian 1970 y Oort Frans 1935 author, eds. Complex multiplication and lifting problems. Providence, Rhode Island: American Mathematical Society, 2014.

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27

Tensor categories. Providence, Rhode Island: American Mathematical Society, 2015.

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28

Doran, Robert S., 1937- editor of compilation, Friedman, Greg, 1973- editor of compilation y Nollet, Scott, 1962- editor of compilation, eds. Hodge theory, complex geometry, and representation theory: NSF-CBMS Regional Conference in Mathematics, June 18, 2012, Texas Christian University, Fort Worth, Texas. Providence, Rhode Island: American Mathematical Society, 2013.

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29

1938-, Griffiths Phillip y Kerr Matthew D. 1975-, eds. Hodge theory, complex geometry, and representation theory. Providence, Rhode Island: Published for the Conference Board of the Mathematical Sciences by the American Mathematical Society, 2013.

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30

Experimental Rock Deformation — The Brittle Field. Berlin/Heidelberg: Springer-Verlag, 2005. http://dx.doi.org/10.1007/b137431.

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31

Paterson, M. S. S. y Teng-fong Wong. Experimental Rock Deformation - The Brittle Field. Springer, 2010.

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32

Paterson, M. S. y Teng-Fong Wong. Experimental Rock Deformation - the Brittle Field. Springer London, Limited, 2005.

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33

Paterson, M. S. Experimental Rock Deformation - the Brittle Field. Springer, 2013.

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34

M. S. Paterson,Teng-Fong Wong. Experimental Rock Deformation - The Brittle Field. Springer, 2008.

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35

Moshayedi, Nima. Kontsevich's Deformation Quantization and Quantum Field Theory. Springer International Publishing AG, 2022.

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36

Grédiac, Michel y Fabrice Pierron. Virtual Fields Method: Extracting Constitutive Mechanical Parameters from Full-Field Deformation Measurements. Springer New York, 2014.

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37

Triaxial deformation of unstable nuclei in the relativistic mean field theory. Wako, Saitama, Japan: Institute of Physical and Chemical Research (RIKEN), 1996.

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38

Yoshida, Sanichiro. Deformation and Fracture of Solid-State Materials: Field Theoretical Approach and Engineering Applications. Springer, 2016.

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39

Yoshida, Sanichiro. Deformation and Fracture of Solid-State Materials: Field Theoretical Approach and Engineering Applications. Springer, 2014.

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40

Yoshida, Sanichiro. Deformation and Fracture of Solid-State Materials: Field Theoretical Approach and Engineering Applications. Springer, 2014.

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41

Jaswal, Tariq Majeed. Structure and evolution of the Dhurnal oil field, northern Potwar deformed zone, Pakistan. 1990.

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42

Faulkner, D. R. Rock Deformation from Field, Experiments and Theory: A Volume in Honour of Ernie Rutter. Geological Society, 2015.

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43

Bouchez, Jean-Luc y Adolphe Nicolas. Principles of Rock Deformation and Tectonics. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780192843876.001.0001.

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This book, based on laboratory, teaching and field experience, has a strong focus towards hard rocks and magmatic rocks, from both the continental crust worldwide, where quartz and granites are dominant, and the mantle dominated by olivine in peridotites. With more than 250 figures, most of them original, the book develops, in addition to classical structural geology objects, the fundamentals of brittle fracturing of materials, plastic deformation of ice, quartz and olivine, and fabric acquisition in rocks and magmas. Measurement and orientation of stress axes, bases of neotectonics and geophysics, and practical tools such as magnetic fabrics not commonly treated in geological books, are also provided. Emblematic tectonic and geodynamic sites are presented, both from the oceanic and continental crust, for instance the Oman ophiolites, and the India-Eurasia collision and its associated shear zones. Since the targeted readers are present-day young students, a few structural geology exercises are also included in order to improve their abilities.
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44

Fisher, David. A Compendium of Deformation-Mechanism Maps for Metals. Materials Research Forum LLC, 2022. http://dx.doi.org/10.21741/9781644901694.

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Deformation-mechanism maps represent an invaluable guide to predicting the optimum processing conditions for a material. They are also useful in matching a material to a given engineering application. The present book summarizes recent research results in the field. The book references 106 original resources and includes their direct web link for in-depth reading.
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45

Real-time monitoring of field measurements for mine design: Greens Creek Mine, Admiralty Island, Alaska. [Washington, D.C.?]: U.S. Dept. of the Interior, Bureau of Mines, 1996.

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46

Deruelle, Nathalie y Jean-Philippe Uzan. Deformations of celestial bodies. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0014.

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This chapter studies various gravitational effects arising from the non-sphericity of celestial bodies. It first considers the quadrupole expansion of the potential, as well as the causes of the non-sphericity of the bodies. Finally, it turns to the figure of the Earth. To calculate the proper potential of the Earth, it attempts to determine its deformation due to a perturbing potential. Doing this accurately requires knowledge of the internal structure of the Earth and use of the techniques of the mechanics of continuous media. In this approach, the internal stress–strain relationships of a body are described by various phenomenological parameters and it becomes possible to study the response of the body (deformation, oscillations, etc.) to the field of an external force.
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47

Deformation, Fluid Flow, and Mass Transfer in the Forearc of Convergent Margins: Field Guides to the Northern Apennines in Emilia and in the Apuan Alps (Italy). Geological Society of America, 2012. http://dx.doi.org/10.1130/9780813700281.

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48

Geophysics today: A survey of the field as the journal celebrates its 75th anniversary. Tulsa, OK: Society of Exploration Geophysicists, 2010.

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49

Geometry and Deformation Fabrics in the Central and Southern Appalachian Valley and Ridge and Blue Ridge: Frederick, Maryland to Altoona Dam, Georgia July ... 1989 (Igc Field Trip Guidebooks Series). American Geophysical Union, 1989.

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50

Fridman, Ya B. Strength and Deformation in Nonuniform Temperature Fields. Springer, 2014.

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