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Online since: February 2012
Authors: Hua Qiang Liu, Zhen Li Mi, Zhe Wang, Shui Ping Hu
Introduction Magnesium alloys are the lightest structural metal materials which have high specific strength, low density and high thermal conductivity.
They are non-magnetic materials with very good damping and shielding capacities of electro magnetic interference.
Materials Science and Technology, 1994, 10: 1-16
[3] Ruden T J, Albright D L.High Ductility Magnesium Alloys in Automotive Applications [J].Advanced Materials & Processes,1998,145(6):28
Journal of Materials Processing Technology, 2001, 115(1): 14
Online since: August 2018
Authors: Jian Guo Yin, Wen Tang Xia, Wen Qiang Yang, Xiao Yan Xiang
Effect of Flow Pattern on Energy Consumption and Properties of Copper Powder in the Electrolytic Process Wentang Xiaa, Xiaoyan Xiangb, Wenqiang Yangc and Jianguo Yind School of Metallurgical and Materials Engineering, University of Science and Technology, Chongqing, 401331, China awentangx@163.com, bxxycsu@163.com, cyajiny@163.com, dyjg06@163.com Keywords: Electrolytic copper powder, new electrolysis cell, energy consumption, current efficiency, copper powder size.
Alex Luyima in School of Materials Science & Engineering of Missouri University of Science.
Indian journal of chemical technology, 2011, 18(1): 37-44
Journal of Electroanalytical Chemistry, 2008, 621(1):13-21
Journal of the Serbian Chemical Society, 2004, 69(1): 43-51
Online since: June 2009
Authors: Mototsugu Sakai, Yusuke Daiko, Atsunori Matsuda, Hiroyuki Muto, Tomohisa Kambayashi
Electrophoretic Deposition and Photocatalytic Activity of Titanate Nanosheets Tomohisa Kambayashi 1 , Yusuke Daiko2 , Hiroyuki Muto1 , Mototsugu Sakai 1 and Atsunori Matsuda1* 1 Department of Materials Science, Toyohashi University of Technology, 1-1 Hibarigaoka, Tempaku, Toyohashi, Aichi 441-8580, Japan Tel: 0532-44-6799 Fax: 0532-48-5833 2 Department of Materials Science and Chemistry, University of Hyogo, 2167 Syosya, Himeji, Hyogo 671-2201, Japan Tel: 079-267-4722 Fax: 079-267-4722 *Corresponding author E-mail: matsuda@tutms.tut.ac.jp Keywords: Titanate nanosheet, Electrophoretic deposition, Photocatalytic activity Abstract Titanate nanosheet thick films were prepared on indium-tin oxide (ITO)-coated glass substrates by electrophoretic deposition.
One of the well-known materials with noticeable photocatalytic activity is anatase TiO2-nanoparticles, which have several advantages such as high chemical resistance and durability against photodissolution.
In recent years, titanium oxide materials with new nanostructures such as nanorod[1], nanowire[2,3], and nanoflower[4] have been extensively studied and the promising functionalities of these materials have been reported.
References [1] Huogen Yu, Jiaguo Yu, Bei Cheng and Jun Lin, "Synthesis, characterization and photocatalytic activity of mesoporous titania nanorod/titanate nanotube composites", Journal of Hazardous Materials, 147, 1-2, (2007) p581-587 [2] Yu Lin, "Photocatalytic activity of TiO2 nanowire arrays", Materials Letters, 62, 8-9 (2008) p1246-1248 [3] Ryuhei Yoshida, Yoshikazu Suzuki, and Susumu Yoshikawa, "Syntheses of TiO2(B) nanowires and TiO2 anatase nanowires by hydrothermal and post-heat treatments", Journal of Solid State Chemistry, 178, 7, (2005) p2179-2185 [4] Jin-Ming Wu, Bing Huang, Min Wang and Akiyoshi Osaka, "Titania Nanoflowers with High Photocatalytic Activity", Journal of the American Ceramic Society, 89, 8, (2006) p2660-2663 ● H2Ti4O9 ・ 10 20 30 40 CuKα 2θ [°] Intensity (a.u.)
Online since: June 2014
Authors: Kai Yue Gong, Yun Zhi Liu, Pei Shi Qi
Materials and methods Study area.
Science of the Total Environment, 266, p. 195–202(2001)
Journal of Hazardous Materials, 134, p. 74–79(2006)
Journal of Hefei University of Technology(Natural Science), 28(11): p. 1419- 1423(2005)
Journal of East China Normal University (Natural Science), 1: p. 110-115(2005).
Online since: December 2011
Authors: X.J. Li, D.L. Yang
Acoustic emission wave is a mechanical wave in essence, which have mechanical wave properties such as volatility and attenuation [[] 秦萍,阎兵,宋仁勇.滑动轴承接触摩擦故障的状态监测[J].中国机械工程,2002,13(8):689-691. ].When the acoustic emission waves are spread to the structure surface, and then received by acoustic emission sensor, by analyzing the detected acoustic emission signal can get acoustic emission source and spread path information, so, this methods can recognize the state of materials or equipment, which namely acoustic emission testing.
Because the sensor1 was installed on the bearing pedestal and near from the source of fault, the AE signal was more obvious, but sensor2 was installed on the base and far away form the source of fault, the AE signal become weaker when spread in the material, that make AE signal was drowned by a lot of noise.
Acknowledgement Financial support from Aid program for Science and Technology Innovative Research Team in Higher Educational Institutions of Hunan Province, the CEEUSRO special plan of Hunan province (2010XK6066), The Industrial Cultivation Program of Scientific and Technological Achievements in Higher Educational Institutions of Hunan Province (10CY008), New Century Excellent Talents (NCET-08-0677), Natural Science Foundation of Hunan Province Key Project (09JJ8005), National natural science foundation of China (51075140) are gratefully acknowledged.
Luo, AE based fault diagnosis of rolling bearings by use of ICA and SVM, Journal of Vibration and Shock, 27 ( 2008) 150-153
Guo, et al, Fault Diagnosis Method based on Multi-Sensor Installed on the Base and KPCA, Chinese Journal of Scientific Instrument,7(2011) 1551-1557
Online since: April 2014
Authors: Yu Tao Yan, Xin Bin Gan
For example, molds materials of auto[5], boiler manufacturing etc.
The minimum wear mass loss of 38CrMoAlA materials of test No.7 is 0.9mg.
[4] Pengtao LI, Peng Xiao and Zhuan LI: Materials Science and Engineering of Powder Metallurgy, 2011, 16(2): 1-5.
[6] Ming Dong, Ju Ni: Jiangsu Building Materials, 2001, (4): 24-25.
[7] Lin Zhu: Journal of Jilin Institute of Chemical Technology, 2007, (2): 81-82.
Online since: August 2013
Authors: En De Wang, Chao Shuai Li, Ye Kai Men, Jian Ming Xia, Ming Gang Wu
Experiment Part Experimental Raw Materials and Reagents.
Materials Science and Engineering A, 2007, 445:600-603
Journal of Northeastern University(Natural Science),2006, 27(6): 694-697
Rare Metal Materials and Engneering,2004,33(1):47-50
Chinese Journal of Inorganic Chemistry, 2008, 24(4): 665-669
Online since: April 2014
Authors: Ke Bo Li, Hui Ling Wang, Bao Ku Qi
Research status related low carbon housing Low-carbon residence is to point to in building materials and equipment manufacturing, construction and building use the whole life cycle, reduce the use of fossil energy, improving energy efficiency, reduce carbon dioxide emissions[1].
Method and Application of Evaluation for Green Building Based on BP Neural Work [J].Journal of Shenyang Jianzhu University(Social Science), 2012,2:152-156
Science Technology Progress and Policy, 2010, 19:12-15
Influencing Factors Analysis of Estate Enterprise Sustainable Development Based on DEMATEL [J].Journal of Shenyang Jianzhu University(Social Science), 2011,4:422-425
Journal of Transportation Systems Engineering and Information Technology, 2010,5:130-136.
Online since: July 2011
Authors: You Qi Zhu, Ying Liang Wei, Shi De Wu, Chao Li
Acknowledgement The financial support provided by the National Natural Science Foundation of China (No. 20871107), Henan Outstanding Youth Science Fund (No. 0612002700) and the Natural Science Foundation of the Education Department of Henan Province (2009A150031) is gratefully acknowledged.
Duta: Materials Chemistry and Physics Vol. 112 (2008), p. 1078 [6] M.
Ritala: Journal of Photochemistry and Photobiology A: Chemistry Vol. 204 (2009), p. 200 [7] T.
Fang: Journal of Power Sources Vol. 195 (2010), p. 2939 [10] H.L.
Mang: Journal of Environmental Sciences Vol. 19 (2007), p. 1141
Online since: October 2014
Authors: Xiao Diao Huang, Chun Jian Yu, Shuang Ding
Acknowledgements The work is supported by National Natural Science Foundation of China (Grant No.51175242) and Innovation Fund for Small Technology-based Firms (Grant No.13C26213202060).
Wang: Journal of Materials Processing Technology, Vol. 129 (2002) No.1-3, p.624
Fei: Journal of Beijing University of Technology, Vol. 36 (2010) No.4, p.433.
Yang: Chinese Journal of Mechanical Engineering, Vol. 40 (2004) No.2 p.55.
Lee: Journal of Manufacturing Processes, Vol. 2 (2000) No.2, p.131