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Online since: December 2023
Authors: Omer Nur, Sreymean Ngok, Magnus Willander, Xianjie Liu, Nasrin Razmi
Materials and Methods
Chemicals and Materials.
Journal of Materials Chemistry, 2011. 21(18): p. 6531-6540
Chemistry of Materials, 2016. 28(18): p. 6763-6769
The Journal of cell biology, 1981. 90(2): p. 533-536
Proceedings of the National Academy of Sciences, 2009. 106(13): p. 4981-4985
Journal of Materials Chemistry, 2011. 21(18): p. 6531-6540
Chemistry of Materials, 2016. 28(18): p. 6763-6769
The Journal of cell biology, 1981. 90(2): p. 533-536
Proceedings of the National Academy of Sciences, 2009. 106(13): p. 4981-4985
Depth Distribution of Temperature in Steel Parts during Surface Hardening by High Frequency Currents
Online since: August 2015
Authors: Vyacheslav Popov, Vladimir Ivancivsky, Kristina A. Titova
Davis, Surface Hardening of Steels: understanding the Basics, Materials Park, ASM International, Ohio, 2002
Ion, Laser processing of engineering materials: Principles, procedure and industrial application.
Henríquez, Surface hardening of steel by plasma-electrolysis boronizing, Materials and Design. 5 (2009) 1726-1728
Landeka, Computer simulation of induction hardening, Journal of Materials Processing Technology. 157–158 (2004) 55–60
Ivancivsky, Numerical modeling of temperature fields in materials hardening using concentrated volumetric heat sources, Science Bulletin of Novosibirsk State Technical University. 2 (2004) 161-172
Ion, Laser processing of engineering materials: Principles, procedure and industrial application.
Henríquez, Surface hardening of steel by plasma-electrolysis boronizing, Materials and Design. 5 (2009) 1726-1728
Landeka, Computer simulation of induction hardening, Journal of Materials Processing Technology. 157–158 (2004) 55–60
Ivancivsky, Numerical modeling of temperature fields in materials hardening using concentrated volumetric heat sources, Science Bulletin of Novosibirsk State Technical University. 2 (2004) 161-172
Online since: May 2006
Authors: Claudino Xavier, Manuela Oliveira, Isabel M. Martins, Maria Helena Mendonça
Both materials show a matrix of glassy phase with mullite and hercynite (a) or mullite
and α-alumina (b).
Vieira: Materials Science Forum, Vol. 455-456 (2004), p. 822
Oliveira: Key Engineering Materials, Vol. 230-232(2002), p.380
Martinez and J.M.Torralba: Journal of the European Ceramic Society Vol. 24 (2004), p.811
Materials Science, vol.36 (2001), p. 5917
Vieira: Materials Science Forum, Vol. 455-456 (2004), p. 822
Oliveira: Key Engineering Materials, Vol. 230-232(2002), p.380
Martinez and J.M.Torralba: Journal of the European Ceramic Society Vol. 24 (2004), p.811
Materials Science, vol.36 (2001), p. 5917
Online since: November 2025
Authors: Tauheed Shehbaz, Fahd Nawaz Khan, Massab Junaid, Muhammad Akif, Fazail Bangash
Singh, ‘Review on titanium and titanium based alloys as biomaterials for orthopaedic applications’, Materials Science and Engineering: C, vol. 102, pp. 844–862, 2019, doi: https://doi.org/10.1016/j.msec.2019.04.064
Ding, ‘Surface modification of titanium, titanium alloys, and related materials for biomedical applications’, Materials Science and Engineering: R: Reports, vol. 47, no. 3, pp. 49–121, 2004, doi: https://doi.org/10.1016/j.mser.2004.11.001
Saeed Hakeem, ‘Dissimilar tungsten inert gas welding between Inconel 718 and commercially pure titanium using a vanadium interlayer’, Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, vol. 236, no. 4, pp. 715–729, Apr. 2022, doi: 10.1177/14644207211054265
Lu, ‘Multi-scale simulation of nanoindentation on cast Inconel 718 and NbC precipitate for mechanical properties prediction’, Materials Science and Engineering: A, vol. 662, pp. 385–394, Apr. 2016, doi: 10.1016/j.msea.2016.03.081
Ranzi, ‘Three-dimensional crystal plasticity finite element simulation of nanoindentation on aluminium alloy 2024’, Materials Science and Engineering: A, vol. 579, pp. 41–49, 2013, doi: 10.1016/j.msea.2013.05.009
Ding, ‘Surface modification of titanium, titanium alloys, and related materials for biomedical applications’, Materials Science and Engineering: R: Reports, vol. 47, no. 3, pp. 49–121, 2004, doi: https://doi.org/10.1016/j.mser.2004.11.001
Saeed Hakeem, ‘Dissimilar tungsten inert gas welding between Inconel 718 and commercially pure titanium using a vanadium interlayer’, Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, vol. 236, no. 4, pp. 715–729, Apr. 2022, doi: 10.1177/14644207211054265
Lu, ‘Multi-scale simulation of nanoindentation on cast Inconel 718 and NbC precipitate for mechanical properties prediction’, Materials Science and Engineering: A, vol. 662, pp. 385–394, Apr. 2016, doi: 10.1016/j.msea.2016.03.081
Ranzi, ‘Three-dimensional crystal plasticity finite element simulation of nanoindentation on aluminium alloy 2024’, Materials Science and Engineering: A, vol. 579, pp. 41–49, 2013, doi: 10.1016/j.msea.2013.05.009
Online since: August 2009
Authors: Wen Hui Ma, Xiang Yang Mei, Kui Xian Wei, Yong Nian Dai
Experiment Research on Purifying Metallurgical Grade Silicon and
Crystal Growth in Directional Solidification
Xiang-yang Mei a, Wen-hui Ma b*
, Kui-xian Weic , Yong-nian Daic
National Engineering Laboratory for Vacuum Metallurgy, Faculty of Materials and Metallurgical
Engineering, Kunming University of Science and Technology, Kunming, China
a
lan_xin_hai@hotmail.com, bmwhsilicon@163.com,c kxwei2008@hotmail.com
Keywords: Metallurgical grade silicon; Directional solidification; Crystal growth
Abstract: The main raw material of solar energy is multi-crystalline silicon.
The shortage of multi-crystalline silicon market has becoming increasingly prominent, and supply of raw materials has become a bottleneck during the development of photovoltaic industry.
The raw material was heated to 1743 K at 10-3-10-4 Pa and solidification rate was 10µm/s during the experiment.
Acknowledgements This work is supported by the National Natural Science Foundation of China (Grant No.50674050), the Ph.D.
Cells Vol.90(2006), p3285 [3] A.Muller, M.Ghosh: Materials science & engineering Vol.7(2006), p1 [4] Dominique Sarti and Roland Einhaus: Sol.
The shortage of multi-crystalline silicon market has becoming increasingly prominent, and supply of raw materials has become a bottleneck during the development of photovoltaic industry.
The raw material was heated to 1743 K at 10-3-10-4 Pa and solidification rate was 10µm/s during the experiment.
Acknowledgements This work is supported by the National Natural Science Foundation of China (Grant No.50674050), the Ph.D.
Cells Vol.90(2006), p3285 [3] A.Muller, M.Ghosh: Materials science & engineering Vol.7(2006), p1 [4] Dominique Sarti and Roland Einhaus: Sol.
Online since: May 2013
Authors: Jie Zhang, Yu Qiang Xiong, Qiong Qiong Li
Such materials are usually produced by raw materials of natural aluminum silicate minerals (or industrial solid waste), compounded under 20° ~ 200 ° C by alkaline elicitor excitation.
Chen Jie Yu et al. [7] took kaolin, water glass and NaOH as raw materials to produce mineral polymer materials, the compressive strength of mineral polymer materials could be up to 70MPa.
Geopolymers:inorganic polymeric new materials [J].Therm Anal., 1991, 37(8): 1633-1656
Journal of Materials Science & Engineering. 2003,21(3):431-436
New Building Materials, 2006,2:14-16
Chen Jie Yu et al. [7] took kaolin, water glass and NaOH as raw materials to produce mineral polymer materials, the compressive strength of mineral polymer materials could be up to 70MPa.
Geopolymers:inorganic polymeric new materials [J].Therm Anal., 1991, 37(8): 1633-1656
Journal of Materials Science & Engineering. 2003,21(3):431-436
New Building Materials, 2006,2:14-16
Online since: July 2014
Authors: Yu Shan Zhang, Jian An Hao, Jing Wang, Ai Jun Zhang, Bo Yang, Tian Xiang Jiang, Xiu Zhi Zhang, Xiao Qing Zhang
Introduction
Flocculation (in polymer science): Reversible formation of aggregates in which the particles are not in physical contact [1].
Acknowledgement In this paper, the research was sponsored by the Marine nonprofit and special research funding (201105026), Tianjin marine science and technology project (KJXH2011-01).
Journal of Materials Science, 2014 49(8) 3196-3204
Advanced Materials Research, 2013 781-784 2170-2173
Journal of Huazhong University of Science and Technology (Urban Science Edition), 2008 25(2) 78-82.
Acknowledgement In this paper, the research was sponsored by the Marine nonprofit and special research funding (201105026), Tianjin marine science and technology project (KJXH2011-01).
Journal of Materials Science, 2014 49(8) 3196-3204
Advanced Materials Research, 2013 781-784 2170-2173
Journal of Huazhong University of Science and Technology (Urban Science Edition), 2008 25(2) 78-82.
Online since: July 2011
Authors: X. Liao, Bei Peng, W. Zhou, Z.Y. Guo
Acknowledgement
The authors acknowledge the supporting from the National Natural Science Foundation of China No. 50801009, Chinese Postdoctoral Foundation 20090461327, EPSRC (UK) EP/H016619, and the UESTC award for Excellent Young Scientists.
Nayfeh: Wiley Series in Nonlinear Science Wiley.
A. de Heer: Science 283 (1999), pp 1513
Harsha: International Journal of Engineering Science and Technology Vol. 2(5) (2010), pp 993-1000
Aluru: Journal of Engineering Materials and Technology 126 (2004), pp. 230
Nayfeh: Wiley Series in Nonlinear Science Wiley.
A. de Heer: Science 283 (1999), pp 1513
Harsha: International Journal of Engineering Science and Technology Vol. 2(5) (2010), pp 993-1000
Aluru: Journal of Engineering Materials and Technology 126 (2004), pp. 230
Online since: August 2013
Authors: De Li Wu, Hong Ping He
Materials and Methods
1.1 Wastewater Quality
The raw wastewater is taken from a secondary sedimentation tank of a papermaking factory and the water is in pale yellow, the effluent quality indicators are shown in Table 1.
Chinese Journal of Papermaking, 2006, 21(3):34—37
Environmental Science, 2000, 21(4): 52-56
Journal of Hazardous Materials, 2003, 98(123): 33-50
Environmental Science, 2000, 21(3): 93~98.
Chinese Journal of Papermaking, 2006, 21(3):34—37
Environmental Science, 2000, 21(4): 52-56
Journal of Hazardous Materials, 2003, 98(123): 33-50
Environmental Science, 2000, 21(3): 93~98.
Online since: September 2013
Authors: Wu Sheng Luo, Sheng Fei Yu
Phosphorescent Luminescent Materials and Products [M].
Materials Chemistry and Physics, 2001, 70(2): 156-159
Materials Letters, 2007, 61: 3185–3188
Photochemical Fundamentals and Photonics Materials Science [M].
Beijing: Science Press, 2001,5-9
Materials Chemistry and Physics, 2001, 70(2): 156-159
Materials Letters, 2007, 61: 3185–3188
Photochemical Fundamentals and Photonics Materials Science [M].
Beijing: Science Press, 2001,5-9