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1

(Firm), Knovel, ed. Composite materials handbook: Metal matrix composites. [Washington, D.C.?]: U.S. Department of Defense, 2002.

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2

D, Rawlings R., ed. Composite materials: Engineering and science. Cambridge: Woodhead, 1999.

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3

D, Rawlings R., ed. Composite materials: Engineering and science. London: Chapman & Hall, 1994.

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4

Sultan, Mohamed Thariq Hameed, S. Arulvel, and K. Jayakrishna. Composite and Composite Coatings. New York: CRC Press, 2022. http://dx.doi.org/10.1201/9781003109723.

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5

Materials Technology Conference (7th 1991 Carbondale, Ill.). Composite technology. Carbondale, Ill: The Center, 1991.

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6

Gatenby, Ian. Composite and quasi-composite hereditaments. London: Estates Gazette Ltd, 1990.

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7

Talreja, Ramesh. Fatigue of composite materials. Lyngby, Denmark: Technical University of Denmark, 1985.

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8

Talreja, R. Fatigue of composite materials. Lancaster: Technomic Publishing, 1987.

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9

1944-, Michno Michael J., ed. Advanced composite materials. Berlin: New York, 1994.

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10

Mechanics of composite materials. 2nd ed. Philadelphia, PA: Taylor & Francis, 1999.

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11

Backman, B. F. (Bjorn F.). and ScienceDirect (Online service), eds. Composite structures: Safety management. 2nd ed. Oxford, UK: Elsevier, 2008.

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12

Koohgilani, Mehran. Advanced composite materials: Composite material's history. Poole: Bournemouth University, 2001.

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13

Koohgilani, Mehran. Advanced composite materials: Composite repair systems. Poole: Bournemouth University, 2001.

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14

(Firm), Knovel, ed. Fatigue life prediction of composites and composite structures. Oxford: Woodhead Publishing, 2010.

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15

International, Conference Composites in Construction-CCC2001 (2001 Porto Portugal). Composites in construction: Proceedings of the International Conference Composites in Construction--CCC2001, Porto, Portugal, 10-12 October 2001. Lisse: A.A. Balkema, 2001.

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16

American Society of Civil Engineers. Materials Engineering Division. Journal of composites for construction. New York, NY: American Society of Civil Engineers, 1997.

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17

Fatigue of composite materials. Lancaster: Technomic Pub. Co., 1987.

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18

Schwartz, Mel M. Composite materials. Upper Saddle River, N.J: Prentice Hall PTR, 1997.

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19

Materials Technology Conference (6th 1990 Carbondale, Ill.). Composite-technology. Carbondale, Ill: The Center, 1989.

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20

Havas, George D. Composite materials. Washington, D.C: Science Reference Section, Science and Technology Division, Library of Congress, 1986.

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21

Hardy, S. J. Composite benchmarks. East Kilbride, Glasgow: NAFEMS, 1995.

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22

Schwartz, M. M. Composite materials. Upper Saddle River, N.J: Prentice Hall PTR, 1997.

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23

Composite construction. New York: Spon Press, 2003.

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24

1942-, Osamura Kōzō, ed. Composite superconductors. New York: M. Dekker, 1994.

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25

Blake, Jill. Composite materials. Cambridge: Hobsons, 1989.

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26

Composite Materials. Alpha Science International, Ltd, 2000.

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27

Kelly, A., M. Ashby, Carl H. Zweben, A. A. Baker, and P. Beardmore. Comprehensive Composite Materials: Polymer Matrix Composites. Pergamon Pr, 2000.

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28

Composite Materials Handbook: Metal Matrix Composites. Society of Automotive Engineers, 2013.

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29

Rawlings, R. D., and F. L. Matthews. Composite Materials: Engineering and Science. Elsevier Science & Technology, 1999.

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30

Marca-Relli: Tensioni composte = composite tensions. Ospedaletto (Pisa): Pacini, 2004.

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31

Comprehensive Composite Materials II. Elsevier Science & Technology Books, 2017.

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32

Fatigue of Composite Materials. Destech Pubns Inc, 2012.

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33

Zweben, Carl H., and Beaumont Peter. Comprehensive Composite Materials II. Elsevier Science & Technology Books, 2017.

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34

Kreider, Kenneth G. Metallic Matrix Composites: Composite Materials, Vol. 4. Elsevier Science & Technology Books, 2016.

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35

Jordan, Baseman, and Arnolfini Gallery, eds. Composite. Bristol: Arnolfini Gallery, 1995.

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36

Composite Materials: Science and Engineering. Springer-Verlag Berlin and Heidelberg GmbH & Co. KG, 1987.

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37

Noton, Bryan R. Engineering Applications of Composites: Composite Materials, Vol. 3. Elsevier Science & Technology Books, 2016.

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38

Composite Materials Handbook, Volume 6: Structural Sandwich Composites. SAE International, 2013.

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39

Choo, Vincent K. Fundamentals of Composite Materials. Knowen Academic Press, Incorporated, 1990.

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40

Choo, Vincent K. Fundamentals of Composite Materials. Knowen Academic Pr, 1990.

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41

M, Jones Robert. Mechanics of Composite Materials. Taylor & Francis Group, 2018.

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42

M, Jones Robert. Mechanics of Composite Materials. Taylor & Francis Group, 2018.

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43

M, Jones Robert. Mechanics of Composite Materials. Taylor & Francis Group, 2018.

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44

M, Jones Robert. Mechanics of Composite Materials. Taylor & Francis Group, 2018.

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45

MacHt, Norman. Composite Guide to Baseball (Composite Guides). Tandem Library, 1999.

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46

Panigrahi, Muktikanta, and Arpan Kumar Nayak. Polyaniline based Composite for Gas Sensors. IOR PRESS, 2021. http://dx.doi.org/10.34256/ioriip212.

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In this research work, we have demonstrated the synthesis, spectroscopic characteristics, thermal behaviour and DC conductivity of a few nanostructured composites, substituted conducting polymers (ICPs) and composites of ICPs. The physical properties of aforementioned composites are significantly changed by the doping with HCl, H2SO4, HNO3, H3PO4, or acrylic acid. The charge transport properties of these polymeric materials have been studied in detail because of their potential application in gas sensors. In the current work, varieties of conducting polymer based materials such as PANI-ES/Cloisite 20A nanostructured composite, acrylic acid (AA) doped PANI polymer, N-substituted conducting polyaniline polymer, DL−PLA/PANI-ES composites, poly methyl methacrylate (PMMA) based polyaniline composite, and inorganic acid doped polyaniline are sucessfuly synthesized using aniline/aniline hydrochloride as precursors in acidic medium. Particularly, AA based synthesised PANI polymer was found with higher solubility The spectroscopic, thermal stability, enthalpy of fusion, room temperature DC conductivity and temperature dependent DC conductivity measurements with and without magnetic was carried out with as-synthesized materials. The FTR/ATR−FTIR spectra indicated the presence of different functional groups in the as-prepared composite materials. The UV−Visible absorption spectroscopic analysis showed the presence of polaron band suggesting PANI-ES form. The Room temperature DC conductivity, temperature variation DC conductivity (in presence and absence of magnetic field), and magnetoresistance (MR) of as-prepared conducting polyaniline based were analysed. The highest room temperature DC conductivity value was obtained from H2SO4 doped based composite materials and all prepared conductive composites were followed ohms law. The low temperature DC conductivity was carried out in order to study the semiconducting nature of prepared materials. The Mott type VRH model was found to be well fitted the conductivity data and described the density of states at the Fermi level which is constant in this temperature range. From MR plots, a negative MR was observed, which described the quantum interference effect on hopping conduction. We discuss different gas analytes i.e., NO2, LPG, H2, NH3, CH4, and CO of conducting polymer based materials.
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47

Stanev, Roger. Inductive Risk and Values in Composite Outcome Measures. Oxford University Press, 2017. http://dx.doi.org/10.1093/acprof:oso/9780190467715.003.0009.

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Composite outcomes are becoming widespread in clinical trials. By combining individual outcome measures (e.g., death, non-fatal heart attack, non-fatal stroke, re-hospitalization) as a single composite measure, composites can increase statistical precision and trial efficiency, consequently enabling researchers to answer questions that could not otherwise be answered and providing more patient-relevant information. Critics, however, argue that a composite threatens the scientific objectivity of the trial by introducing new risks. This chapter examines common use of composites in cardiovascular trials and highlights the inductive risks involved in employing them. It shows that the inductive risk associated with a particular methodology (such as the use of a composite outcome) is not always clear in advance, so non-epistemic values are relevant to deciding whether or not it is worth using them. It also illustrates the importance of being explicit about which methodological choices were made and why.
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48

Fridliander, I. N. Metallic and Metallopolymeric Composites (Russian Composite Materials Series). Elsevier Science Pub Ltd, 1993.

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49

Composite Materials Handbook Volume 5: Ceramic Matrix Composites. SAE International, 2017.

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50

Vassilopoulos, Anastasios P. Fatigue life prediction of composites and composite structures. Woodhead Publishing Limited, 2010. http://dx.doi.org/10.1533/9781845699796.

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