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1

1925-, Riley William F., ed. Experimental stress analysis. 3rd ed. New York: McGraw-Hill, 1991.

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2

Wieringa, H., ed. Experimental Stress Analysis. Dordrecht: Springer Netherlands, 1986. http://dx.doi.org/10.1007/978-94-009-4416-9.

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1925-, Riley William F., ed. Experimental stress analysis. 3rd ed. New York: McGraw-Hill, 1991.

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4

Freddi, Alessandro, Giorgio Olmi, and Luca Cristofolini. Experimental Stress Analysis for Materials and Structures. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-06086-6.

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5

International Conference on Experimental Stress Analysis (8th 1986 Amsterdam, Netherlands). Experimental stress analysis: Proceedings of the VIIIth International Conference on Experimental Stress Analysis, Amsterdam, The Netherlands, May 12-16, 1986. Dordrecht: Martinus Nijhoff, 1986.

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6

F, Doyle James. Modern experimental stress analysis: The solution of partially specified problems. Hoboken, NJ: Wiley, 2004.

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7

Verderaime, V. Aluminum U-groove weld enhancement based on experimental stress analyses. Huntsville, Ala: George C. Marshall Space Flight Center, 1995.

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8

Wieringa, H. Experimental Stress Analysis: Proceedings of the VIIIth International Conference on Experimental Stress Analysis, Amsterdam, the Netherlands, May 12-16, 1986 Organized by: Netherlands Organization for Applied Scientific Research (TNO) on behalf of The Permanent Committee for Stress Analysis. Dordrecht: Springer Netherlands, 1986.

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9

editor, Marsavina Liviu, ed. Proceedings of the 14th Symposium on Experimental Stress Analysis and Materials Testing: Selected, peer reviewed papers from the 14th Symposium on Experimental Stress Analysis and Materials Testing with the Occasion of 90 Years of Strength of Materials Laboratory from POLITECHNICA University Timisoara, May 23-25, 2013, Timisoara, Romania. Durnten-Zurich, Switzerland: TTP, Trans Tech Publications Ltd, 2014.

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10

Berghaus, D. G. Calculations for experimental stress analysis, using the personal computer: A SEM Education Committee Program, SEM Spring Conference, June 14-19, 1987, Houston, Texas. [Bethel, CT?]: SEM, 1987.

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11

International Conference on Computational Methods and Experimental Measurements (4th 1989 Capri, Italy). Computers and experiments in stress analysis: Proceedings of the fourth International Conference on Computational Methods and Experimental Measurements, Capri, Italy, May 1989. Edited by Carlomagno G. M, Brebbia C. A, International Society for Computational Methods in Engineering., and Computational Mechanics Institute (Southampton, England). Southampton: Computational Mechanics, 1989.

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12

Eberhardshtayner, Yozef, Sergey Leonovich, and Valentin Dorkin. Design models of structural building materials under multiaxial stress. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1082947.

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The monograph presents the results of experimental and theoretical studies of the behavior of wood and concrete of various structures under biaxial and triaxial compression. It contains a systematic classification of existing models for concrete that link three-axis nonlinear elastic stresses and deformations, as well as research and subsequent evaluation of some basic models from the point of view of their possible use in the framework of spatial load analysis using FEM. It is intended for scientific and engineering workers of research and design organizations.
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13

Hansen, Robert. Experimental stress analysis. McGraw-Hill, 1994.

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14

Wieringa, H. Experimental Stress Analysis. Springer, 1986.

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15

Dally, James W. Experimental Stress Analysis. College House Enterprises Llc, 2001.

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16

Wieringa, H. Experimental Stress Analysis. Ingramcontent, 2011.

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17

Experimental Stress Analysis. College House Enterprises, 2005.

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18

1951-, Doyle James F., Phillips James W, and Society for Experimental Mechanics, eds. Manual on experimental stress analysis. 5th ed. Bethel: Society for Experimental Mechanics, 1989.

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19

Doyle, J. Manual on Experimental Stress Analysis. Society for Experimental, 1989.

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20

Karuppasamy, Karthik Selva Kumar, and Balaji P. S. Applications and Techniques for Experimental Stress Analysis. IGI Global, 2019.

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21

Karuppasamy, Karthik Selva Kumar, and Balaji P. S. Applications and Techniques for Experimental Stress Analysis. IGI Global, 2019.

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22

B, Lazor R. Experimental Stress Analysis of Pipeline Girth Welds. Amer Gas Assn, 1985.

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23

Srinivas, J. Stress Analysis and Experimental Techniques: An Introduction. Alpha Science International, Limited, 2012.

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24

Freddi, Alessandro, Giorgio Olmi, and Luca Cristofolini. Experimental Stress Analysis for Materials and Structures: Stress Analysis Models for Developing Design Methodologies. Springer, 2015.

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25

Freddi, Alessandro, Giorgio Olmi, and Luca Cristofolini. Experimental Stress Analysis for Materials and Structures: Stress Analysis Models for Developing Design Methodologies. Springer, 2015.

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26

Brebbia, C. A. Computational Methods and Experimental Measurements VI: Stress Analysis. Computational Mechanics, 1993.

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27

Experimental stress analysis: Proceedings of the VIIIth International Conference on Experimental Stress Analysis, Amsterdam, The Netherlands, May 12-16, 1986. Martinus Nijhoff, 1986.

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28

Berghaus. Calculations for Experimental Stress Analysis Using the Personal Computer. Society for Experimental, 1987.

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29

DOYLE, JF. MODERN EXPERIMENTAL STRESS ANALYSIS - COMPLETING THE SOLUTION OF PARTIALLY SPECIFIED PROBLEMS. JOHN WILEY AND SONS LTD, 2004.

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30

F, Doyle James. Modern Experimental Stress Analysis: Completing the Solution of Partially Specified Problems. Wiley & Sons, Incorporated, John, 2007.

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31

Doyle, James F. Modern Experimental Stress Analysis: Completing the Solution of Partially Specified Problems. Wiley, 2005.

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32

Doyle, James F. Modern Experimental Stress Analysis: Completing the Solution of Partially Specified Problems. Wiley, 2004.

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33

Sirkis, James Sanford. A two-dimensional hybrid experimental-numerical technique for elastic-plastic stress analysis. 1988.

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34

R, Vaughan, and George C. Marshall Space Flight Center., eds. Aluminum U-groove weld enhancement based on experimental stress analyses. MSFC, Ala: National Aeronautics and Space Administration, Marshall Space Flight Center, 1995.

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35

R, Vaughan, and George C. Marshall Space Flight Center., eds. Aluminum U-groove weld enhancement based on experimental stress analyses. MSFC, Ala: National Aeronautics and Space Administration, Marshall Space Flight Center, 1995.

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36

R, Vaughan, and George C. Marshall Space Flight Center., eds. Aluminum U-groove weld enhancement based on experimental stress analyses. MSFC, Ala: National Aeronautics and Space Administration, Marshall Space Flight Center, 1995.

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37

Minden, Michael Minster. An experimental analysis of a self-help/instructional program for improving quality of working life. 1986.

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38

Minden, Michael Minster. An experimental analysis of a self help/instructional program for improving quality of working life. 1987.

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39

McManus, Hugh L. N., 1958- and United States. National Aeronautics and Space Administration., eds. Thermally induced damage in composite space structure: Predictive methodology and experimental correlation. [Washington, D.C: National Aeronautics and Space Administration, 1994.

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40

Thermally induced damage in composite space structure: Predictive methodology and experimental correlation. [Washington, D.C: National Aeronautics and Space Administration, 1994.

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41

Kirlin, Chad P. Experimental and finite-element analysis of stress distributions near the end of reinforcement in partially reinforced glulam. 1996.

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42

Kirlin, Chad P. Experimental and finite-element analysis of stress distributions near the end of reinforcement in partially reinforced glulam. 1996.

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43

Experimental and analytical analysis of stress-strain behavior in a [90/̊0]̊s, SiC/Ti-15-3 laminate. [Washington, DC]: National Aeronautics and Space Administration, 1991.

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44

Experimental and analytical analysis of stress-strain behavior in a [90/̊0]̊s, SiC/Ti-15-3 laminate. [Washington, DC]: National Aeronautics and Space Administration, 1991.

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45

Carlomagno, G. M. Computers and Experiments in Stress Analysis: Proceedings of the Fourth International Conference on Computational Methods and Experimental Measurement. Springer-Verlag, 1989.

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46

S, Walker, W. H. B. Cooper, and T. A. Slesenger. A 2-D Analysis of Particle Velocity and Stress of SH Waves from a Strip Radiator: An Experimental Verification of Both Amplitude and Phase Using EMA Transducers (Reports). AEA Technology Plc, 1989.

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47

Free Radicals in Diagnostic Medicine: A Systems Approach to Laboratory Technology, Clinical Correlations and Antioxidant Therapy (Advances in Experimental Medicine and Biology). Springer, 1995.

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48

Bokstein, Boris S., Mikhail I. Mendelev, and David J. Srolovitz. Thermodynamics and Kinetics in Materials Science. Oxford University Press, 2005. http://dx.doi.org/10.1093/oso/9780198528036.001.0001.

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This text presents a concise and thorough introduction to the main concepts and practical applications of thermodynamics and kinetics in materials science. It is designed with two types of uses in mind: firstly for one or two semester university course for mid- to - upper level undergraduate or first year graduate students in a materials-science-oriented discipline and secondly for individuals who want to study the materials on their own. The following major topics are discussed: basic laws of classical and irreversible thermodynamics, phase equilibria, theory of solutions, chemical reaction thermodynamics and kinetics, surface phenomena, stressed systems, diffusion and statistical thermodynamics. A large number of example problems with detailed solutions are included as well as accompanying computer-based self-tests, consisting of over 400 questions and 2000 answers with hints for students. Computer-based laboratories are provided, in which a laboratory problem is posed and the experiment described. The student can "perform" the experiments and change the laboratory conditions to obtain the data required for meeting the laboratory objective. Each "laboratory" is augmented with background material to aid analysis of the experimental results.
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49

Wong, Michael King Wai. Experiments and analysis to understand the response of lateral piezoresistance gauges under dynamic loading. 1991.

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50

Hughes, Jeremy. Proteinuria as a direct cause of progression. Edited by David J. Goldsmith. Oxford University Press, 2015. http://dx.doi.org/10.1093/med/9780199592548.003.0137.

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Proximal tubular cells reabsorb any filtered proteins during health via cell surface receptors such as megalin and cubulin so that very low levels of protein are present in the excreted urine. Significant proteinuria is a common finding in patients with many renal diseases. Proteinuria is a marker of glomerular damage and podocyte loss and injury in particular. The degree of proteinuria at presentation or during the course of the disease correlates with long-term outcome in many renal diseases. Proteinuria per se may be nephrotoxic and thus directly relevant to the progression of renal disease rather than simply acting as a marker of the severity of glomerular injury and podocytes loss. Seminal studies used the atypical renal anatomy of the axolotl to instill proteins directly into the tubular lumen without requiring passage through the glomerulus. This indicated that tubular protein could be cytotoxic and induce interstitial inflammation and fibrosis in the peritubular region. Cell culture studies demonstrate that exposure to proteins results in proximal tubular cell activation and the production of pro-inflammatory and pro-fibrotic mediators. Proximal tubular cell death occurred in some studies reinforcing the potential of protein to exert cytotoxic effects via oxidative stress or endoplasmic reticulum stress. Analysis of renal biopsy material from both experimental studies using models of proteinuric disease or patients with various proteinuric diseases provided evidence of activation of transcription factors and production of chemokines and pro-inflammatory mediators by proximal tubular cells. These data strongly suggest that although proteinuria is the result of glomerular disease it also represents an important cause of progression in patients with chronic kidney disease associated with proteinuria.
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