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Online since: October 2011
Authors: De Wei Chen, Xiao Ling Ge, Quen Tin Shi, Jiu Wang Tian
Research on the Ultra-Fine Titanium Dioxide Suspension Stability and Fractal
Dewei Chen1, a, Xiaoling Ge1, b, Quentin Shi2, c and Jiuwang Tian2, d
1 School of Mechanical and Power Engineering, East China University of Science & Technology, No.130 Meilong Road, Shanghai, 200237, China
2 Shanghai Dongsheng New Materials Co., Ltd.
Experiment Materials and Equipments The main experimental materials include sub-micron titanium dioxide particles, deionized water, cationic dispersants and anionic dispersants.
While at the same magnification, fractal dimensions of different materials images are different.
Journal of Materials Processing Technology, 2006, 175(1-3): 446-451
Journal of Basic Engineering Science in China. 2003, 11(2): 167-172
Experiment Materials and Equipments The main experimental materials include sub-micron titanium dioxide particles, deionized water, cationic dispersants and anionic dispersants.
While at the same magnification, fractal dimensions of different materials images are different.
Journal of Materials Processing Technology, 2006, 175(1-3): 446-451
Journal of Basic Engineering Science in China. 2003, 11(2): 167-172
Online since: December 2012
Authors: S.S. Panda, Rupesh Kumar Pandey
Materials and Manufacturing processes 24:4 (2009) 509-516
Hara, Design optimization of surgical drills using the Taguchi method, Journal of biomechanical science and engineering (2010) Vol.5, No.5
Materials and Manufacturing Processes 25:8 (2010) 817-827
Palanikumar, Fuzzy Modelling and Analysis of Machining Parameters in Machining Titanium alloy, Materials and Manufacturing Processes 23 (2008) 439-447
Tarng, Optimization of the electrical discharge machining process based on the Taguchi method with fuzzy logic, Journal of Materials Processing Technology 102 (2000) 48–55
Hara, Design optimization of surgical drills using the Taguchi method, Journal of biomechanical science and engineering (2010) Vol.5, No.5
Materials and Manufacturing Processes 25:8 (2010) 817-827
Palanikumar, Fuzzy Modelling and Analysis of Machining Parameters in Machining Titanium alloy, Materials and Manufacturing Processes 23 (2008) 439-447
Tarng, Optimization of the electrical discharge machining process based on the Taguchi method with fuzzy logic, Journal of Materials Processing Technology 102 (2000) 48–55
Online since: March 2014
Authors: Dionizy Czekaj, Agata Lisińska-Czekaj, Joanna Micior, Małgorzata Adamczyk
Dielectric Properties of BiNbO4–Based Ceramic-Polymer Composites with 0-3 Connectivity
Agata Lisińska-Czekaja, Joanna Miciorb, Małgorzata Adamczykc
and Dionizy Czekajd
University of Silesia, Department of Materials Science, 2, Sniezna St.,41-200 Sosnowiec, Poland
aagata.lisinska-czekaj@us.edu.pl, cmalgorzata.adamczyk-habrajska@us.edu.pl ddionizy.czekaj@us.edu.pl
Keywords: BiNbO4, PVDF, dielectric properties, impedance spectroscopy, micromechatronic materials
Abstract.
Acknowledgement The present research has been supported by Polish National Science Centre (NCN) from the funds for science in 2011-2014 as a research project N N507 218540.
E.Newnham, D.P.Skinder, and L.E.Cross: Materials Research Bulletin, Vol. 13, 5 (1978) 325-336 [3] K.Osińska, M.Adamczyk, and D.Czekaj: Ceramika, Vol. 101 (2008) 125-131 [4] U.
Khakhar, Ashok Misra, Polymer, Vol. 49 (2008) 3486–3499 [5] D.Czekaj, J.Micior, and A.Lisińska-Czekaj: Archives of Metallurgy and Materials, (2014) in press [6] A.Lisinska-Czekaj and D.Czekaj: Key Engineering Materials, Vol. 512-515 (2012) 1212-1217 [7] M.Płońska, and D.Czekaj: Archives of Metallurgy and Materials, Vol. 56, 4 (2011) 1169-1175 [8] E.Barsukov, J.
West, Journal of Electroceramics, Vol. 10 (2003) 165–177 [10] A.Lisińska-Czekaj, Wielofunkcyjne materiały na osnowie tytanian bizmutu, Uniwersytet Śląski, Wydawnictwo Gnome, Katowice, 2012 [11] D.Czekaj: Fabrication and study of BST-based functional materials, Uniwersytet Śląski, Wydawnictwo Gnome, Katowice, 2010 [12] B.A.
Acknowledgement The present research has been supported by Polish National Science Centre (NCN) from the funds for science in 2011-2014 as a research project N N507 218540.
E.Newnham, D.P.Skinder, and L.E.Cross: Materials Research Bulletin, Vol. 13, 5 (1978) 325-336 [3] K.Osińska, M.Adamczyk, and D.Czekaj: Ceramika, Vol. 101 (2008) 125-131 [4] U.
Khakhar, Ashok Misra, Polymer, Vol. 49 (2008) 3486–3499 [5] D.Czekaj, J.Micior, and A.Lisińska-Czekaj: Archives of Metallurgy and Materials, (2014) in press [6] A.Lisinska-Czekaj and D.Czekaj: Key Engineering Materials, Vol. 512-515 (2012) 1212-1217 [7] M.Płońska, and D.Czekaj: Archives of Metallurgy and Materials, Vol. 56, 4 (2011) 1169-1175 [8] E.Barsukov, J.
West, Journal of Electroceramics, Vol. 10 (2003) 165–177 [10] A.Lisińska-Czekaj, Wielofunkcyjne materiały na osnowie tytanian bizmutu, Uniwersytet Śląski, Wydawnictwo Gnome, Katowice, 2012 [11] D.Czekaj: Fabrication and study of BST-based functional materials, Uniwersytet Śląski, Wydawnictwo Gnome, Katowice, 2010 [12] B.A.
Online since: July 2014
Authors: P. Nantha Kumar, A. Rajadurai
Fiber materials are added in composites to increase the strength, whereas filler materials are generally inert materials which are added to reduce material cost and to improve the mechanical properties such as hardness and wear resistance to some extent.
Epoxy resin with silica sand composite materials for impact strength Fig 17.
Polyester resin with silica sand composite materials for impact strength Fig 18.
International Journal of Environmental Science and Development, Vol. 3, No. 5, October 2012
HUNTSMAM, Advanced materials, Structural composites, User Manual
Epoxy resin with silica sand composite materials for impact strength Fig 17.
Polyester resin with silica sand composite materials for impact strength Fig 18.
International Journal of Environmental Science and Development, Vol. 3, No. 5, October 2012
HUNTSMAM, Advanced materials, Structural composites, User Manual
Online since: May 2014
Authors: John N. Mundy
Unfortunately when I sat down to write I discovered two problems: in the majority of materials that I investigated atoms did follow a random walk; and the history of random walk has been well documented and shows little connection to diffusion.
In 1892 Pearson wrote “The Grammar of Science”.
Science changed rapidly in the twentieth century.
Vacancies occur naturally in all crystalline materials.
For twelve years at the end of my career I was an associate editor with the Journal of Applied Physics and for the last five years I worked as a consultant at the Office of Basic Energy Sciences, U.S.
In 1892 Pearson wrote “The Grammar of Science”.
Science changed rapidly in the twentieth century.
Vacancies occur naturally in all crystalline materials.
For twelve years at the end of my career I was an associate editor with the Journal of Applied Physics and for the last five years I worked as a consultant at the Office of Basic Energy Sciences, U.S.
Online since: November 2016
Authors: Yong Yan Wang, Zhen Guo Ma
Therefore, size is very important to model materials.
If continue to increase the dimension, we should simulate the material of the prototype and model better, but at the same time the request for the similar material will be more strict.
Acknowledgements This work is financially supported by National Natural Science Foundation (51074094) and National Natural Science Foundation (51374134).
References []Sun Jun,Rock Rheological Mechanics and Its Advance In Engineering Applications,Chinese Journal of Rock Mechanics and EngineeringVOL.26(2007),1081-1106 [2]Gu Dazhao,Similar Material and Similar Model, China University of Mining and Technology Press,China(1995),1-78
[5] Zhou Jifu and Li Jiachun, An optimization approach to the similarity criteria of flows and its application,Progress in nature Science,2006,16,(3):241-247 [6] Wang Yongyan and Li Yuan: On the Deduction and the Application of Similarity Criteria of Soft Rock Rheological Model Experiment, Journal of Liaoning Technical University Nature Science,31(2012),354-357
If continue to increase the dimension, we should simulate the material of the prototype and model better, but at the same time the request for the similar material will be more strict.
Acknowledgements This work is financially supported by National Natural Science Foundation (51074094) and National Natural Science Foundation (51374134).
References []Sun Jun,Rock Rheological Mechanics and Its Advance In Engineering Applications,Chinese Journal of Rock Mechanics and EngineeringVOL.26(2007),1081-1106 [2]Gu Dazhao,Similar Material and Similar Model, China University of Mining and Technology Press,China(1995),1-78
[5] Zhou Jifu and Li Jiachun, An optimization approach to the similarity criteria of flows and its application,Progress in nature Science,2006,16,(3):241-247 [6] Wang Yongyan and Li Yuan: On the Deduction and the Application of Similarity Criteria of Soft Rock Rheological Model Experiment, Journal of Liaoning Technical University Nature Science,31(2012),354-357
Online since: July 2022
Authors: Tobias Kloska, Daniel Heidrich, Xiang Fan Fang
Importantly, GMT materials may even have much longer fiber lengths, and properties.
Since FRPs may not be able to fulfil these requirements but metals, metals are the only materials used in serial production vehicles for these parts. 2.
In the first step, the long fibers with ca. 50 mm length are mixed with the extruded short fiber materials at the end of the extrusion process.
The LFT/GMT materials can be purchased as raw materials and heated by an IR heater, which is inexpensive.
However, the LFT/GMT materials can be very easily pressed out due to the open ends.
Since FRPs may not be able to fulfil these requirements but metals, metals are the only materials used in serial production vehicles for these parts. 2.
In the first step, the long fibers with ca. 50 mm length are mixed with the extruded short fiber materials at the end of the extrusion process.
The LFT/GMT materials can be purchased as raw materials and heated by an IR heater, which is inexpensive.
However, the LFT/GMT materials can be very easily pressed out due to the open ends.
Online since: July 2014
Authors: Cai Wu, Zhao Yang
Journal of Building Structures. 2010, 31(12):64~73 (in Chinese)
Journal of Jiangsu University. 2010, 31(1):98~103 (in Chinese)
Advanced Materials Research, 2014, 908: 89-92
Advanced Materials Research, 2014, 908: 59-62
Journal of Building Structures. 2003, 33(5): 54-58.
Journal of Jiangsu University. 2010, 31(1):98~103 (in Chinese)
Advanced Materials Research, 2014, 908: 89-92
Advanced Materials Research, 2014, 908: 59-62
Journal of Building Structures. 2003, 33(5): 54-58.
Online since: August 2013
Authors: Pornsak Sriamornsak, Maneerat Juttulapa, Suchada Piriyaprasarth
Materials and Methods
Materials.
Fang, Complexation of bovine serum slbumin and sugar beet pectin: Stabilizing oil-in-water emulsions, Journal of Colloid and Interfacial Science, 388 (2012) 103-111
, International Journal of Pharmaceutics, 436 (2012) 359-378
Sriamornsak, Chemistry of pectin and its pharmaceutical uses: A review, Silpakorn University International Journal, 3 (2003) 206-228
Sriamornsak, Effect of zein concentration on the formation of pectin-zein complexes, Advanced Materials Research, 506 (2012) 319-322
Fang, Complexation of bovine serum slbumin and sugar beet pectin: Stabilizing oil-in-water emulsions, Journal of Colloid and Interfacial Science, 388 (2012) 103-111
, International Journal of Pharmaceutics, 436 (2012) 359-378
Sriamornsak, Chemistry of pectin and its pharmaceutical uses: A review, Silpakorn University International Journal, 3 (2003) 206-228
Sriamornsak, Effect of zein concentration on the formation of pectin-zein complexes, Advanced Materials Research, 506 (2012) 319-322
Online since: March 2008
Authors: Bin Shi Xu, Yong Xiong Chen, Jin Yuan Bai, Xiu Bing Liang, Jiang Bo Cheng
An automatic high velocity arc spraying system
Jin-Yuan Bai1,a, Yong-Xiong Chen
1, Jiang-Bo Cheng2 , Xiu-Bing Liang1, Bin-Shi Xu1,b
1 National Key Laboratory for Remanufacturing, Academy of Armored Forces Engineering, Beijing
100072, China
2 School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai
200240, China
a
bjy_206zdhz@sina.com, bxubinshi@vip.sina.com
Keywords: Automatic; High velocity arc spraying; Remanufacture; Maintenance
Abstract A new automatic high velocity arc spraying system was developed.
Acknowledgements This work was supported by Chinese National "973" Project (2007CB607601), Chinese National Scientific and Technical support project (2006BAF0219) and Key project of China Natural Science Foundation (50735006).
ASME Journal of Tribology. 2000,122(7):646-649 [2] B.S.
Journal of Materials Processing Technology 138 (2003) 443-448 [4] A.P.
Journal of Materials Processing Technology 178 (2006) 259-269 [5] S.H.
Acknowledgements This work was supported by Chinese National "973" Project (2007CB607601), Chinese National Scientific and Technical support project (2006BAF0219) and Key project of China Natural Science Foundation (50735006).
ASME Journal of Tribology. 2000,122(7):646-649 [2] B.S.
Journal of Materials Processing Technology 138 (2003) 443-448 [4] A.P.
Journal of Materials Processing Technology 178 (2006) 259-269 [5] S.H.