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1

Thomas, Basso, California Energy Commission. Public Interest Energy Research., Northern Power Systems Inc, Virginia Polytechnic Institute and State University., and National Renewable Energy Laboratory (U.S.), eds. Modeling and testing of unbalanced loading and voltage regulation: PIER final project report. California Energy Commission, 2009.

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2

Thomas, Basso, California Energy Commission. Public Interest Energy Research., Northern Power Systems Inc, Virginia Polytechnic Institute and State University., and National Renewable Energy Laboratory (U.S.), eds. Modeling and testing of unbalanced loading and voltage regulation: PIER final project report. California Energy Commission, 2009.

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3

Barczak, Thomas M. Assessment of longwall roof behavior and support loading by linear elastic modeling of the support structure. U.S. Dept. of the Interior, Bureau of Mines, 1987.

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4

Black, Cameron J. Viscous heating of fluid dampers under wind and seismic loading: Experimental studies, mathematical modeling and design formulae. Dept. of Civil and Environmental Engineering, University of California, 2005.

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5

Black, Cameron J. Viscous heating of fluid dampers under wind and seismic loading: Experimental studies, mathematical modeling and design formulae. Dept. of Civil and Environmental Engineering, University of California, 2005.

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6

Black, Cameron J. Viscous heating of fluid dampers under wind and seismic loading: Experimental studies, mathematical modeling and design formulae. Dept. of Civil and Environmental Engineering, University of California, 2005.

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7

S, Virdi K., ed. Abnormal loading on structures: Experimental and numerical modelling. E & FN Spon, 2000.

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8

Bressers, J., L. Rémy, M. Steen, and J. L. Vallés, eds. Fatigue under Thermal and Mechanical Loading: Mechanisms, Mechanics and Modelling. Springer Netherlands, 1996. http://dx.doi.org/10.1007/978-94-015-8636-8.

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9

Meyer, Christian, ed. Modelling and Analysis of Reinforced Concrete Structures for Dynamic Loading. Springer Vienna, 1998. http://dx.doi.org/10.1007/978-3-7091-2524-3.

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10

Nieminen, Hannu. Analysis of musculo-skeletal loading using electromyography and biomechanical modelling. Technical Research Centre of Finland, 1994.

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11

Raveendran, Somasundaram. Modelling of reinforced concrete beams subject to both static and dynamic loading. PEL, 1988.

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12

Chuang, Tsai-Fu. Numerical modelling of reinforced concrete structure under monotonic and earthquake-like dynamic loading. University of Birmingham, 2001.

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13

Chang, W. K. G. Centrifugal and numerical modelling of a single pileinsandsubjected to axial loading or combined axialandlateralloading. UMIST, 1994.

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14

Sosiak, A. J. Modelling of the response of Pine Lake to reduced internal and external loadings. Alberta Environmental Protection, Natural Resources Service, Water Management Division, Water Sciences Branch], 1997.

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15

J, Bressers, Rémy L, and International Symposium "Fatigue under Thermal and Mechanical Loading" (1995 : Petten, Netherlands), eds. Fatigue under thermal and mechanical loading: Mechanism, mechanics, and modelling : proceedings of the Symposium held at Petten, The Netherlands, 22-24 May 1995. Kluwer Academic Publishers, 1996.

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16

Bressers, J. Fatigue under Thermal and Mechanical Loading: Mechanisms, Mechanics and Modelling: Proceedings of the Symposium held at Petten, The Netherlands, 22-24 May 1995. Springer Netherlands, 1996.

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17

Centrifugal Modeling of Underground Structures Subjected to Blast Loading. Creative Media Partners, LLC, 2018.

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18

Tabatabai, Habibollah. Centrifugal Modeling of Underground Structures Subjected to Blast Loading. Creative Media Partners, LLC, 2018.

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19

Tabatabai, Habibollah. Centrifugal modeling of underground structures subjected to blast loading. 1987.

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20

Modeling the Process of the Development of Loading Units. Cambridge Scholars Publishing, 2024.

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21

Centrifugal Modeling of Underground Structures Subjected to Blast Loading. Creative Media Partners, LLC, 2022.

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22

Finite Element Modeling of Metal Foam Structures Subject to Compressive Loading. Storming Media, 2001.

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23

High Velocity Impact and Blast Loading - Field Data and Modeling [Working Title]. IntechOpen, 2020. http://dx.doi.org/10.5772/intechopen.83295.

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24

Continuum fatigue damage modeling for critical design, control, and fault prognosis. National Aeronautics and Space Administration, 1996.

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25

Christ, Hans-Jürgen. Fatigue of Materials at Very High Numbers of Loading Cycles: Experimental Techniques, Mechanisms, Modeling and Fatigue Life Assessment. Springer, 2018.

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26

EMI, Fraunhofer, Stefan Hiermaier, Klaus Thoma, and Markus Nöldgen. Modeling of Ultra-High Performance Concrete under Impact Loading: Design of a High-Rise Building Core Against Aircraft Impact. Fraunhofer IRB Verlag, 2011.

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27

Bühler, Michael Max. Soil Dynamics and Foundation Modeling: Experimental and Numerical Investigation of Soil-Foundation-Structure Interaction During Monotonic, Alternating and Dynamic Loading. Independently Published, 2017.

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28

Solving Non-Standard Packing Problems by Global Optimization and Heuristics. Springer International Publishing AG, 2014.

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29

Grilli, Susannah Louise. Spinal modelling to investigate postural loading and stability. 1997.

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30

Abnormal Loading on Structures: Experimental and Numerical Modelling. Routledge, 2000.

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31

Clarke, J. L., K. S. Virdi, R. Matthews, and Fikry Garas. Abnormal Loading on Structures: Experimental and Numerical Modelling. Taylor & Francis Group, 2000.

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32

Garas, Fikry Y. Abnormal Loading on Structures: Experimental and Numerical Modelling. Taylor & Francis Group, 2000.

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33

Garas, Fikry K. Abnormal Loading on Structures: Experimental and Numerical Modelling. Taylor & Francis, 2000.

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34

Clarke, J. L., K. S. Virdi, R. Matthews, and Fikry Garas. Abnormal Loading on Structures: Experimental and Numerical Modelling. Taylor & Francis Group, 2000.

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35

Meyer, Christian. Modelling and Analysis of Reinforced Concrete Structures for Dynamic Loading. Springer London, Limited, 2014.

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36

Modelling and Analysis of Reinforced Concrete Structures for Dynamic Loading. Springer, 1998.

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37

(Editor), J. Bressers, and L. Rémy (Editor), eds. Fatigue under Thermal and Mechanical Loading: Mechanisms, Mechanics and Modelling. Springer, 1996.

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38

Paevere, Phillip J. Full-scale testing, modelling and analysis of light-frame structure under lateral loading. 2002.

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39

Finite-Element Modelling of Structural Concrete: Short-Term Static and Dynamic Loading Conditions. Taylor & Francis Group, 2015.

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40

Kotsovos, Michael D. Finite-Element Modelling of Structural Concrete: Short-Term Static and Dynamic Loading Conditions. Taylor & Francis Group, 2017.

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41

Kotsovos, Michael D. Finite-Element Modelling of Structural Concrete: Short-Term Static and Dynamic Loading Conditions. Taylor & Francis Group, 2015.

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42

Kotsovos, Michael D. Finite-Element Modelling of Structural Concrete: Short-Term Static and Dynamic Loading Conditions. Taylor & Francis Group, 2015.

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43

Stevens, Nicholas John. Analytical modelling of reinforced concrete subjected to monotonic and reversed loadings. 1987.

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44

Golewski, Przemysław, and Tomasz Sadowski. Loadings in Thermal Barrier Coatings of Jet Engine Turbine Blades: An Experimental Research and Numerical Modeling. Springer London, Limited, 2016.

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45

Sadowski, Tomasz, and Przemysław Golewski. Loadings in Thermal Barrier Coatings of Jet Engine Turbine Blades: An Experimental Research and Numerical Modeling. Springer, 2016.

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46

Sadowski, Tomasz, and Przemysław Golewski. Loadings in Thermal Barrier Coatings of Jet Engine Turbine Blades: An Experimental Research and Numerical Modeling. Springer, 2016.

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47

Multiphase Flow Internal Corrosion Direct Assessment (MP-ICDA) Methodology for Pipelines. AMPP, 2022. https://doi.org/10.5006/nace_sp0116-2022.

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Scope This standard practice outlines a methodology to assess pipeline integrity because of the threat internal corrosion in onshore and offshore pipelines and other piping systems that normally carry multiphase fluids (gas, water, and oil) termed multiphase flow internal corrosion direct assessment (MP-ICDA). Liquid separators (drips), compressing stations, vessels, and other equipment not related to pipelines are not included in this standard. This standard applies to pipelines, and piping systems both onshore and offshore, containing carbon dioxide (CO2), hydrogen sulfide (H2S), oxygen (O2)
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