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Online since: August 2016
Authors: Júlio César Gomes Santos, Daniele Cristina Chagas, Jéssica Fernanda Azevedo, Ana Claudia Costa Oliveira, Viviane Teleginski, Getúlio de Vasconcelos
Jamali: Ceramics International Vol. 39 (2013), p. 2473
Carter: Engineering Failure Analysis Vol. 12 (2005), p. 237
Ganeev: Journal of Materials Processing Technology Vol. 121 (2002), p. 414
Machado: Journal of Materials Processing Technology Vol. 172 (2006), p. 160
Nath: Journal of Materials Processing Technology Vol. 91 (1999), p. 29
Online since: October 2010
Authors: Chang He Li, Ya Li Hou, Guo Yu Liu
Modeling and Simulation of Temperature Field of Nano-zirconia Ceramics Precision Grinding Yali Hou1,a, Changhe Li1,b, Guoyu Liu2,c 1School of Mechanical Engineering, Qingdao Technological University, 266033, China 2Inner Mongolia university for Nationalities, Tongliao, 028042 China ahouyalichina@163.com, bSy_lichanghe@163.com, cliuguoyutliao@126.com Keywords: Nano-zirconia ceramics, Grinding, Temperature field, Finite element simulation Abstract.
Introduction Because of the hardness and brittleness of the engineering ceramics and the completely different nature compared with metal materials, it is difficult to use conventional cutting methods for metal processing; most of the ceramic materials are poor conductors of electricity, and their electrical processing methods such as electrical discharge machining (EDM) are generally not applicable, which makes the processing of ceramic materials greatly limited and prevents the ceramic materials from being widely used.
Tribology international Vol.30(1997), p.575-581 [3] Bo Zhang, Akira Nakajima.
Journal of Tribology Vol. 122(2000), p.603-608 [4] Li Changhe, Hou Yali, Xiu Shichao, et al.
Key Engineering Materials Vols. 375-376 (2008), p. 449-453.
Online since: November 2013
Authors: Ali Mohammad Hadian, Elham Montakhab
Hadian2 1Graduate Student, School of Metallurgy and Materials Engineering, University of Tehran, Tehran, Iran. 2 Associate Professor, School of Metallurgy and Materials Engineering, University of Tehran, Tehran, Iran.
Deqing, Effects of additives on combustion synthesis of Al2O3-TiB2 ceramic composite, Journal of the European Ceramic Society, 2009, Vol. 29, pp. 1485- 1492
Nasiri- Tabrizi, Mechanochemical synthesis of Al2O3-TiB2 nanocomposite powder from Al-TiO2-H3BO3 mixture, International Journal of Refractory Metals and Hard Materials, 2011, Vol. 29, pp. 244-249
Li, Formation of TiB2-Al2O3 and NbB2-Al2O3 composites by combustion synthesis involving thermite reactions, Chemical Engineering Journal, 2009, Vol. 147, pp. 405-411
Meyers, Combustion synthesis/densification of an Al2O3-TiB2 composite, Materials Science and Engineering A, 2001, Vol. 311, pp. 83-99
Online since: February 2004
Authors: Yi Zhi Liu, Fei Hu Zhang, J.C. Gui, H.J. Wang
The nano ceramics provides a new view to solve the problem of the brittleness of ceramic material.
Comparing the grinding force of nano ceramics with that of common ceramics, the conclusion can be drawn that the grinding force of nano ceramics and common ceramics increases with the feed rate Vw in a big variation, and the grinding force of nano ceramics is higher than that of common ceramics on the same condition.
Deng: International Journal of Machine Tools & Manufacture, Vol. 42 (2002), p. 1665
Qiu: Key Engineering Materials, Vol. 238-239 (2003), p. 71.� [5] F.
Luan: Key Engineering Materials, Vol. 202-203 (2001), p. 103
Online since: October 2021
Authors: Hossein Aghajani, Sanaz Sattarnezhad Golchin
[10] Ahmadi, M. and Aghajani, H., Ceramics International, 43(9), (2017), 7321-7328
[11] Ahmadi, M. and Aghajani, H., Ceramics International, 44(6), (2018), 5988-5995
[17] Shahriari, A. and Aghajani, H., Journal of Materials Engineering and Performance, 25(10), (2016), 4369-4382
[31] Rastkerdar, E., Shamanian, M., and Saatchi, A., Journal of Materials Engineering and Performance, 22(4), (2013), 1149-1160
[32] Rastkerdar, E., Aghajani, H., Kianvash, A., and Sorrell, C., INTERNATIONAL JOURNAL OF ENGINEERING, 31(7), (2018), 1146-1151
Online since: June 2011
Authors: Iis Sopyan, A. Zuraida, A.R. Fariza
Zuraidab and I.Sopyanc Department of Manufacturing and Materials Engineering, Faculty of Engineering, International Islamic University Malaysia, P.O.
The Journal of Bone and Joint Surgery, 82 (2001) 3-8
Journal of Materials Science, (2005) [6] K.
Sharma, Preparation of macroporous alumina ceramics using wheat particles as gelling and pore forming agent, Ceramics International, 33 (2007) 77-81
Feza, Fabrication and characterization of porous tri-calcium phosphate ceramics, Ceramics International, 30 (2004) 205-211
Online since: July 2019
Authors: Tanja Lube, Tjokorda Gde Tirta Nindhia
This work was approved as international standard [3].
Damani: Advanced Engineering Materials, 10 (4), (2008), pp. 275-298
Damani, C.Schuster, and R.Danzer: Journal of The European Ceramic Society, 17, (1997), pp. 1685-1689 [3] ISO/FDIS 23146.
Thun: Engineering Fracture Mechanics, 68, (2001), pp.29-38
Dorčáková, J.Dusza and C.Balázsi: Journal of the European Ceramic Society, 33, (2013), pp. 2299-2304 [12] N.Nishiyama.
Online since: March 2008
Authors: Larry L. Hench, Julia M. Polak
Hench,'Factors Affecting the Structure and Properties of Bioactive Foam Scaffolds for Tissue Engineering', Journal of Biomedical Materials Research Part B-Applied Biomaterials, 68B (2004), 36-44. 64.
Hench, 'Optimising Bioactive Glass Scaffolds for Bone Tissue Engineering', Biomaterials, 27 (2006), 964-73. 66.
Hench, 'Hierarchical Porous Materials for Tissue Engineering', Philosophical Transactions of the Royal Society A 364 (2006) 263-281. 68.
Hench, 'Surface-Modified 3d Scaffolds for Tissue Engineering', Journal of Materials Science-Materials in Medicine, 13 (2002), 837-42. 69.
Hench, Key Engineering Materials Vols. 192-195: 575-588 , TransTech Publications, Switzerland (2001). 72.
Online since: June 2018
Authors: Yilmaz Yildirim, Usman Habu Taura, Alhaji Shehu Grema, Shehu Abdulrahman, Mohammed Nasir Kajama
Silica Modified Membrane for Carbon Dioxide Separation from Natural Gas Mohammed Nasir Kajama1*, Professor Yilmaz Yildirim2, Usman Habu Taura3, Alhaji Shehu Grema4, and Shehu Abdulrahman5 1,5Department of Mechanical Engineering, University of Maiduguri, Nigeria 2Department of Environmental Engineering, Bulent Ecevit University, Zonguldak, Turkey 3,4Department of Chemical Engineering, University of Maiduguri, Nigeria am.n.kajama@rgu.ac.uk*, byilmaz.yildirim@beun.edu.tr, cusmantaura@gmail.com, dashehugrema@yahoo.com, ekadiri0802@yahoo.com Keywords: Dip-coating technique; silica membrane; single gas permeation and selectivity; carbon dioxide separation.
IIUM Engineering Journal, vol. 5, pp. 17-33, 2004
International Journal of Hydrogen Energy, Vol. 32 pp. 2010-2021, 2007
Korean Journal of Chemical Engineering, 18, pp. 106-112, 2001
Recent Patents on Chemical Engineering, vol. 1, pp. 52-66, 2008
Online since: January 2012
Authors: Binsar Hariandja, Iswandi Imran, Ivindra Pane, Jon Bi
Material Development of Nano Silica Indonesia for Concrete Mix Jonbi1, a, Binsar Hariandja 1,b, Iswandi Imran1,c, Ivindra Pane1,d 1Civil Engineering, Faculty of Civil and Environmental Engineering, ITB, Indonesia 3ajbg@cbn.net.id, bwdidi28@yahoo.com, ciswandiimran@gmail.com, divpane@gmail.com Keywords: Nanotechnology, Nano silica, Characterization, Polishing Liquid Milling Technology Abstract.
The sand are subjected to the so called Polishing Liquid Milling Technology developed in Center for Ceramics, Indonesia.
PLMT is a method developed a process to produce nanopowder from Indonesia Center of Ceramics, as shown in Figure 1.
[6] Ashwani K.Rana, Shashi B Rana, Anjna Kumari, and Vaishnav Kiran: Significance of Nanotechnology in Construction Engineering, International Journal of Recent Treands in Engineering,Vol.1 (2009)No. 4,46-48
Sivakumar : Extraction, Synthesis and Characterization of Nano silica from Rice Husk Ash, International Journal of Nanotechnology and applications , Vol. 4 Number ( 2010), pp. 61-66.
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