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1

Shaker, Atif F. The effective modulus of elasticity of concrete in tension. Edmonton, Alta., Canada: Dept. of Civil Engineering, University of Alberta, Canada, 1991.

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2

Standards, Association of Australia Committee BD/42 Methods of Testing Concrete. Methods of testing concrete: Determination of the modulus of rupture. 3rd ed. [North Sydney, N.S.W.]: Standards Australia, 1985.

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3

K, Kokula Krishna Hari, ed. Determination of Modulus of Elasticity of Hybrid composite material with reinforcement of Coconut coir: ICIEMS 2014. India: Association of Scientists, Developers and Faculties, 2014.

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4

Prestressed bodies. Harlow, Essex, England: Longman Scientific, 1989.

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5

Ubysz, Andrzej. Odkształcenia plastyczne i samonaprężenia w żelbetowych konstrukcjach prętowych. Wrocław: Wydawn. Politechniki Wrocławskiej, 1999.

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6

Juirnarongrit, Teerawut. Effect of pile diameter on the modulus of sub-grade reaction. La Jolla, Calif: Department of Structural Engineering, University of California, San Diego, 2005.

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7

Dutt, Pravir. A spline-based parameter estimation technique for static models of elastic structures. Hampton, Va: ICASE, 1986.

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8

Lee, Hosin David. Validation of the mix design process for cold in-place rehabilitation using foamed asphalt. Iowa City, Iowa: Public Policy Center, University of Iowa, 2007.

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9

Bansal, Narottam P. Solid state synthesis and properties of monoclinic celsian. [Washington, D.C: National Aeronautics and Space Administration, 1996.

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10

Li, Jian. Simplified data reduction methods for the ECT test for mode III interlaminar fracture toughness. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1995.

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11

1940-, Wolfenden Alan, ASTM Committee E-28 on Mechanical Properties., ASTM Committee E-28 on Mechanical Properties. Task Group E28.03.05 on Dynamic Modulus Measurements., and Symposium on Dynamic Modulus Measurements (1988 : Kansas City, Mo.), eds. Dynamic elastic modulus measurements in materials. Philadelphia, PA: ASTM, 1990.

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12

John, Youngquist, and United States Forest Service, eds. Density, modulus of elasticity, creep, and durability of hardboard: A bibliography. Washington, D.C: U.S. Dept. of Agriculture, Forest Service, 1994.

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13

John, Youngquist, and United States Forest Service, eds. Density, modulus of elasticity, creep, and durability of hardboard: A bibliography. Washington, D.C: U.S. Dept. of Agriculture, Forest Service, 1994.

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14

John, Youngquist, and United States Forest Service, eds. Density, modulus of elasticity, creep, and durability of hardboard: A bibliography. Washington, D.C: U.S. Dept. of Agriculture, Forest Service, 1994.

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15

364.5T-10: Importance of Modulus of Elasticity in Surface Repair Materials. American Concrete Institute, 2010. http://dx.doi.org/10.14359/51663986.

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16

Soongswang, Prasit. Field and laboratory study of modulus of rupture and permeability of structural concretes in Florida. 1989.

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17

Guyer, Robert A., and Paul A. Johnson. Nonlinear Mesoscopic Elasticity: The Complex Behaviour of Rocks, Soil, Concrete. Wiley & Sons, Incorporated, John, 2009.

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18

Soleus fiber force and maximal shortening velocity after non-weight bearing with intermittent activity. [Washington, DC: National Aeronautics and Space Administration, 1996.

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19

Establishment, Building Research, ed. Masonry and concrete structures: Measuring in-situ stress and elasticity using flat jacks. Watford: Building Research Establishment, 1995.

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20

1947-, Miller Robert A., and NASA Glenn Research Center, eds. Thermal conductivity and elastic modulus evolution of thermal barrier coatings under high heat flux conditions. [Cleveland, Ohio]: National Aeronautics and Space Administration, Glenn Research Center, 1999.

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21

Long-term effects of elevated carbon dioxide concentration on sour orange wood specific gravity, modulus of elasticity, and microfibril angle. [Madison, WI]: U.S. Dept. of Agriculture, Forest Service, Forest Products Laboratory, 2007.

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22

E, Kretschmann David, and Forest Products Laboratory (U.S.), eds. Long-term effects of elevated carbon dioxide concentration on sour orange wood specific gravity, modulus of elasticity, and microfibril angle. [Madison, WI]: U.S. Dept. of Agriculture, Forest Service, Forest Products Laboratory, 2007.

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23

Y, Baaklini George, and NASA Glenn Research Center, eds. Thermoelastic stress analysis: The mean stress effect in metallic alloys. [Cleveland, Ohio]: National Aeronautics and Space Administration, Glenn Research Center, 1999.

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24

Shlomo, Ta'asan, and Institute for Computer Applications in Science and Engineering., eds. A spline-based parameter estimation technique for static models of elastic structures. Hampton, VA: Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1986.

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25

Shlomo, Taasan, and Institute for Computer Applications in Science and Engineering, eds. A spline-based parameter estimation technique for static models of elastic structures. Hampton, VA: Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1986.

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26

A spline-based parameter estimation technique for static models of elastic structures. Hampton, VA: Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1986.

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27

Shlomo, Taasan, and Institute for Computer Applications in Science and Engineering, eds. A spline-based parameter estimation technique for static models of elastic structures. Hampton, VA: Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1986.

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28

D, Kiser James, United States. Army Aviation Research and Technology Activity., and United States. National Aeronautics and Space Administration., eds. Matrix density effects on the mechanical properties of SiC/RBSN composites. [Washington, D.C.]: National Aeronautics and Space Administration, 1990.

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29

Center, Lewis Research, ed. Low cost manufacturing approach of high temperature PMC components. Cleveland, Ohio: National Aeronautics and Space Administration, Lewis Research Center, 1997.

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30

Center, Lewis Research, and United States. National Aeronautics and Space Administration., eds. Low cost manufacturing approach of high temperature PMC components. Cleveland, Ohio: National Aeronautics and Space Administration, Lewis Research Center, 1997.

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31

A, Miller Robert, and Lewis Research Center, eds. Determination of creep behavior of thermal barrier coatings under laser imposed temperature and stress gradients. [Cleveland, Ohio]: National Aeronautics and Space Administration, Lewis Research Center, 1997.

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32

C, Smith, Lumban-Tobing F, and Langley Research Center, eds. Analysis of thick sandwich shells with embedded ceramic tiles. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1996.

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33

Property evaluation of LTM25 composite materials. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1996.

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34

Generalized Plasticity. Springer, 2005.

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35

1935-, Wightman James P., and Langley Research Center. Materials Division., eds. Fracture surface analysis in composite and titanium bonding: Semi-annual report. Blacksburg, VA: Chemistry Dept., Virginia Polytechnic Institute & State University, 1985.

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36

Center, Lewis Research, ed. Modfications of system for elevated temperature testing and stress-strain measurement of metal matrix composites. [Cleveland, Ohio: National Aeronautics and Space Administration, Lewis Research Center, 1985.

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37

Center, Lewis Research, ed. Theoretical analysis of compatibility of several reinforcement materials with NiAl and FeAl matrices. Cleveland, Ohio: National Aeronautics and Space Administration, Lewis Research Center, 1989.

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38

Escudier, Marcel. Fluids and fluid properties. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198719878.003.0002.

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Abstract:
In this chapter it is shown that the differences between solids, liquids, and gases have to be explained at the level of the molecular structure. The continuum hypothesis makes it possible to characterise any fluid and ultimately analyse its response to pressure difference Δ‎p and shear stress τ‎ through macroscopic physical properties, dependent only upon absolute temperature T and pressure p, which can be defined at any point in a fluid. The most important of these physical properties are density ρ‎ and viscosity μ‎, while some problems are also influenced by compressibility, vapour pressure pV, and surface tension σ‎. It is also shown that the bulk modulus of elasticity Ks is a measure of fluid compressibility which determines the speed at which sound propagates through a fluid. The perfect-gas law is introduced and an equation derived for the soundspeed c.
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