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Online since: May 2012
Authors: Anghel Cernescu, Liviu Marşavina, Mihaela Amarandei, Lucian Bogdan, Jenel Marian Pătraşcu, Dinu Vermeşan
Dempster, On the experimental testing of fine Nitinol wires for medical devices, Journal of Mechanical Behavior of Biomedical Materials 4 (2011) 261 - 268
Mitchell, Fatigue and durability of Nitinol stents, Journal of Mechanical Behavior of Biomedical Materials 1 (2008) 153 - 164
Stockel, An overview of nitinol medical applications, Materials Science and Engineering A, 1999, pp. 273-275, pp. 149-160
Materials Science Forum, in Martensitic Transformations II, MuddleBC, 1990, pp. 56-58, pp. 679-692
Duerig, Present and Future Applications of Shape Memory and Superelastic Materials, Materials Research Society Symposium, 1995, pp.360, pp.497-506
Online since: July 2014
Authors: Ying Cao, Ping Zhang
Green High Performance Concrete Based on Sustainable Development Ping Zhang 1, a, Ying Cao 2, b 1School of Civil Engineering, Henan University of Science and Technology, Luoyang 471023, China 2School of Civil Engineering, Henan University of Science and Technology, Luoyang 471023, China apjmsy@163.com, bcaoying1209@163.com Keywords: construction materials, sustainable development, green high performance concrete Abstract.
Introduction Cement concrete is the most widely used man-made building materials nowadays, which holds an extremely important position in modern architecture and play a role and function that cannot be replaced by other materials in civil engineering fields.
Sustainable development of construction materials A.
Construction materials and the sustainable development.
Developing and introducing green building materials technology, and researching and developing green building material products are the correct way to the sound development of building material industry.
Online since: October 2010
Authors: Ana Morán, Rubén Coto, Javier Belzunce, Jose Manuel Artímez
Journal of Nuclear Materials (2008).
Journal of Nuclear Materials (1998).
Journal of Nuclear Materials, (2000).
Journal of Nuclear Materials, (2009) Vol. 386-388; p. 236-240
Journal of Nuclear Materials (1986) Vol. 141-143; p. 1097-1101
Online since: May 2013
Authors: Shuang Xi Shao, Lan Jiang, Ya Juan Wang
Experimental Materials Chitin purchased from Haixin Biomaterials Co.
Swelling behavior The swelling process of native gelatin film and composite film materials was listed in Figure 4.
The swelling behavior of all materials include the following processes: the solvent molecules diffusing into the material lattice, and then the polymer chain become relaxation owing to the solvent effects, the third stage is the space extension of polymer chain.
That is to say, the thermal stability and swelling behavior of composite gelatin film has been improved remarkably, which enlarged the application fields of gelatin materials.
References [1] Marguerite Rinaudo: Progress in Polymer Science, Vol.31 (2006), p. 603-632
Online since: November 2010
Authors: Fu Dong Zhu, Yun Shan Wang, Neng Wen Liu
The coating materials used in the experiment was a Ni-based powder, Ni45 powder, with the characters of well fluidity, particle size 48-106 μm (140-320 mesh).
Materials Copper matrix Remelt layer Plasma sprayed layer Grinded volume 3.892 0.262 0.917 Figure 5.
Tao: Journal of University of Science and Technology Beijing Vol.13 (2006), p. 329
Liu: Journal of Northeastern University.
Zhu: Journal of Shenyang Arch. and Civ.
Online since: October 2013
Authors: Lin Zheng, Yan Zhang, Yuan Yuan, Wen Lin Cui, Wen Peng Song
Introduction In recent years, with the development and construction of the harbor, the dumping of dredged materials increased sharply.
Journal of Shanghai Fisheries University, 2000, 9(1): 65~68
Journal of Fishery Sciences of China, 1999, 6(5): 29~32
China Environmental Science, 1997, 17(6): 550~553
Journal of Fishery Sciences of China, 1999, 6(5): 20~23
Online since: February 2014
Authors: Xiang Peng, Yue Zhao, Yan Li Ding, Ming Tao Zhou, Jin He Shi, Li Rong Wang, Xiao Yan Liang, Jia Hua Min
It can fabricate thin film materials with controlled structure and have attracted the attention of researchers.
Acknowledgements: This work was supported by the National Natural Science Foundation of China (51102162).
Brett, Journal of Vacuum Science & Technology, 16 (1998) 1115
Arnell, Journal of Vacuum Science & Technology, 16 (1998) 2858
Kanzari, Journal of Materials Science, 40 (2005) 5751
Online since: January 2011
Authors: Hai Long Shen, Li Xue Yang, Shou Hai Na, Hai Nan Wang
Materials and methods Test materials.
Chen: Journal of Fruit Science,Vol. 13:233-236 (1996) [9] X.Q.
Gong: Journal of Biology, Vol.24:28-31 (2007) [11] G.Y.
Shen: Journal of Beijing Forestry University, Vol.26:5-10 (2004) [12] S.H.
Liu: Journal of Northeast Normal University, No.1:55-57 (1998) [19] C.V.
Online since: July 2011
Authors: Min Yu, You Wen Liu
Introduction A Dislocation and dipole are the common line defect in crystal materials.
The interaction of other defects in materials, such as cracks, holes, rigid lines, and so on, with dislocations and inhomogeneities is important for researching the strengthening and toughening mechanism and damage effect of materials.
The two materials are assumed to be perfectly bonded along the interface.
Fang: Journal of Hunan University (Natural Sciences) Vol. 34(9) (2007), p. 62-66
Yu, Y.W.Liu, H.P.Song: Journal of Centre South University of Forestry & Technology (Natural Sciences) Vol. 31(2) (2011), p. 115-121
Online since: April 2026
Authors: Carlo Bruni
Herranz, A novel printable high-speed steel filament: Towards the solution for wear-resistant customized tools by AM alternative, Journal of Materials Research and Technology, 11 (2021) 1534-1547. https://doi.org/10.1016/j.jmrt.2021.02.001
Journal of Materials Research and Technology 29 (2024) 5166–5179. https://doi.org/10.1016/j.jmrt.2024.02.182
Achieving ultra-high extrusion speed and strength-ductility synergy in a BAZ531 magnesium alloy via differential-thermal extrusion Materials Science and Engineering: A, 923 2025 147687. https://doi.org/10.1016/j.msea.2024.147687
Pan, Improved microstructures of AZ31 magnesium alloy by semi-solid extrusion, Materials Science & Engineering A 800 (2021) 140204. https://doi.org/10.1016/j.msea.2020.140204
Parashkevova, Thermomechanical modelling of hot extrusion of Al-alloys,followed by cooling on the press, Computational Materials Science 38 (2006) 83–89. https://doi.org/10.1016/j.commatsci.2006.01.009