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Cavitation Erosion Resistance Influence of Material Properties

-72. 9. Karimi A., Martin J. L.: Cavitation erosion of materials. International Metals Reviews 31 (1986) 1-26. 10. Espitia L. A., Dong H., Li X. Y., Pinedo C. E., Tschiptschin A. P.: Cavitation erosion resistance and wear mechanisms of active Green low temperature plasma nitrided AISI 410 martensitic stainless steel, 332-333 (2015) 1070-1079. 11. Jasionowski R., Zasada D., Grabin J.: Mechanizm niszczenia stopów intermetalicznych poddanych erozji kawitacyjnej, Zeszyty Naukowe Akademii Morskiej w Szczecinie, 5 (2005) 257-266. 12. Feller H. G., Kharrazi

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Studies on new material: carbon dot-graphene oxide-zinc oxide nanocomplex

. Asian J ., 71 (2015),101731. [34] H anada T., Advanced Materials Research , in: Y ao T., H ong S.K. (Ed.), Oxide and Nitrite Semiconductors , Springer, Berlin Heidelberg, 2009, p. 1. [35] L iang Y., W u D., F eng X., M ullen K., Adv. Mater ., 21 (2009), 1679. [36] S hen J., H u Y., S hi M., L i N., M a H., Y e M., J. Phys. Chem . C, 114 (2010), 1498. [37] K henfouch M., B aitoul M., M aaza M., Opt. Mater ., 34 (2012), 1320. [38] Z hu C., G uo S., W ang P., X ing L., F ang Y., Z hai Y., D ong S., Chem. Commun

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Advances in Carbon Fiber Reinforced Polyamide-Based Composite Materials

REFERENCE 1. Drobny, J.G.: Handbook of thermoplastic elastomers. Elsevier (2014). 2. Kausar, A.: Polyamide 1010/polythioamide blend reinforced with graphene nanoplatelet for automotive part application. Advances in Materials Science 17 (2017) 24-36. 3. Katunin, A., Krukiewicz, K., Herega, A. and Catalanotti, G.: 2016. Concept of a conducting composite material for lightning strike protection. Advances in Materials Science 16 (2016) 32-46. 4. Musztyfaga-Staszuk, M., Czupryński, A. and Kciuk, M.: Investigation of mechanical and anti

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Photoluminescence and piezoelectricity investigation of La1.98Nd0.02Ti2O7, Sm1.98Ce0.02Ti2O7 and Er1.98Gd0.02Ti2O7 multifunctional materials


Nd3+ doped La2Ti2O7, Ce4+ doped Sm2Ti2O7 and Gd3+ doped Er2Ti2O7 have been synthesized at different reaction temperatures using solid state reaction method, and characterized using X-ray diffraction (XRD), scanning electron microscopy (SEM), differential thermal analysis (DTA), thermogravimetric analysis (TG). Excitation spectra, emission spectra and decay time curves of the samples were investigated by photoluminescence spectrophotometer (PL) and typical transitions of rare earth ions were observed. Dielectric properties, piezoelectric properties and Curie temperature of the obtained luminescent materials were measured for electrical characterization. The results showed that all materials have both photoluminescent and piezoelectric properties and show high Curie temperature.

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Development of a Composite Material for Impact Load

References [1] Ashby M. F., Jones D. R. H.: Engineering Materials 1. An Introduction to Properties , Applications and Design . Third Edition, Elsevier Butter-worth-Heineman, Cambridge, UK P.K., 2005. [2] Szakali M., Szűcs E.: The defence planning model formation and development / Védelmi tervezésimodellek kialakulása és fejlődése . Hadmérnök, 12/1. (2017) 24–40. ISSN 1788-1919 [3] Malick P. K.: Fiber-reinforces composites. Third edition. Taylor and Francis, Boca Raton, USA, 2008. [4] Ráthy I., Pinke P., Huszák Cs.: PP mátrixú

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Music and Youth in Brazilian Contemporary Society

, Identity and Place . London: Macmillan. Bourdieu, P. (1984) Distinction: A Social Critique of the Judgement of Taste. London: Routledge & Kegan Paul. Buchholtz, M. (2002). ‘Youth and cultural practice.’ Annual Review of Anthropology , 31: 525-552. Buechli, V. (2002) (ed.) The Material Culture Reader . Oxford: Berg. Caiafa, J. (1989). O Movimento Punk na Cidade: A Invasão dos Bandos Sub . Rio de Janeiro, Brazil: Jorge Zahar Editora. Dayrell, J. (2002). ‘O rap e o funk na socialização da juventude.’ Educação e Pesquisa , 28(1): 117

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Auxetic materials — A review

] Coenen V.L., Alderson K.L., Phys. Stat. Sol. B, 248 (2011), 66. [64] Alderson A., Chem Ind., 10 (1999), 384. [65] Liu Q., Literature Review: Materials with Negative Poisson’s Ratios and Potential Applications to Aerospace and Defense, Defense Science and Technology Organization, Victoria, Australia, 2006 [66] Critchley R., Corni I., Wharton J.A., Walsh F.C., Wood R.J.K., Stokes K.R., Phys. Stat. Sol. B, (2013), 1. [67

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DFT study of optoelectronic spectra of barium cadmium chalcogenides (Ba2CdX3, X = S, Se and Te)

), 12783. [7] R eshak A.H., N ouneh K., K ityk I.V., B ila J iri , A uluck S., K amarudin H., S ekkat Z., Int. J. Electrochem. Sci. , 9 (2014), 955. [8] K rzton -M aziopa A., P omjakushina E., P omjakushin V., S heptyakov D., C hernyshov D., S vitlyk V. and C onder K., J. Phys. Condens. Mater. , 23 (2011), 402201. [9] S oliman S., J. Phys. Chem. Solids , 75 (2014), 927. [10] A ndrew D., The preparation and characterization of mixed-anion and non-oxide materials , Ph.D. thesis, 2009. [11] S chwarz K., B laha P

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Synthesis of new mesostructured cellular foams (MCFs) with NaY zeolite and their application to sorption of thorium ions

. Colloid Interface Sci., 332 (2009), 298. [26] K ilincarslan K aygun A., A kyil S., Materials, 147 (2007), 357. [27] S harma P., T omar R., J. Colloid Interface Sci., 362 (2011), 144.

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Synthesis, Characterization and Some Biological Properties of PVA/PVP/PN Hydrogel Nanocomposites: Antibacterial and Biocompatibility

of PMMA/nHAp and PMMA/3-APT-nHAp nanocomposites. International Journal of Polymeric Materials and Polymeric Biomaterials, 67(13) (2018), 783-791. 18. Wang, M.O., Etheridge, J.M., Thompson, J.A., Vorwald, C.E., Dean, D., Fisher, J.P. Evaluation of the in vitro cytotoxicity of cross-linked biomaterials. Biomacromolecules, 14(5) (2013), 1321-1329. 19. Promega Corporation, www.Promega.Com/Protocols/ , 12, (2012). 20. Motlagh, D., Allen, J., Hoshi, R., Yang, J., Lui, K., Ameer, G. Hemocompatibility evaluation of poly(diol citrate) in vitro for

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