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Online since: August 2021
Authors: Lian Yi Huo, Si Ming Chen, Meng Yao Zhang, Xue Tao Shi
As one of the three elements of tissue engineering, scaffolds are the framework materials used to support the growth of cells into a complete tissue [8].
At present, HPBs are mainly used in drug carriers, gene transfection, environmental purification, intelligent materials and other fields.
Journal of Applied Polymer Science. 2010;92(4):2612-20
Journal of applied polymer science. 2004;91(4):2143-50
New chemical materials. 2020;48(7):6-10.
At present, HPBs are mainly used in drug carriers, gene transfection, environmental purification, intelligent materials and other fields.
Journal of Applied Polymer Science. 2010;92(4):2612-20
Journal of applied polymer science. 2004;91(4):2143-50
New chemical materials. 2020;48(7):6-10.
Online since: March 2014
Authors: Yu Jun Zhang, Hai Bin Sun, Sha Li Tan, Ru Bin Wei, Shu He Ai
China
2 Key Laboratory of Special Functional Aggregated Materials, Ministry of Education, Shandong University, Jinan 250061, P.
China 3 School of environmental science and engineering, Shandong University, Jinan 250061, P.
Quirion, Study of B4C microstructure evolution under neutron irradiation by X-ray diffraction profiles analysis, Journal of Nuclear Materials. 264 (1999) 295-308
Aselage, A proposed boron-carbide-based solid-state neutron detector, Journal of applied physics. 97 (2005) 0135291-3
Suslov, Dysprosium titanate as an absorber material for control rods, Journal of Nuclear Materials. 281 (2000) 84-89.
China 3 School of environmental science and engineering, Shandong University, Jinan 250061, P.
Quirion, Study of B4C microstructure evolution under neutron irradiation by X-ray diffraction profiles analysis, Journal of Nuclear Materials. 264 (1999) 295-308
Aselage, A proposed boron-carbide-based solid-state neutron detector, Journal of applied physics. 97 (2005) 0135291-3
Suslov, Dysprosium titanate as an absorber material for control rods, Journal of Nuclear Materials. 281 (2000) 84-89.
Online since: April 2014
Authors: Xiao Lan Cai, Lei Zhou, Feng Yi, Zheng Li, Ming Jun Yu, Cui Hu
Computational Materials Science, 2010, 49: S239–S241
].
Journal of Materials Science: Materials in Electronics, 2011, 22 (3): 315-322. ].
Recently, CNTs/Cu composite became a kind of good functional materials with high application potential.
Materials Science and Engineering: A, 2006, 430(1): 27-33. ].
Progress in materials science, 2001, 46 (1): 1-184. ], plasma atomization[[] Tsantrizos P G, Entezarian M.
Journal of Materials Science: Materials in Electronics, 2011, 22 (3): 315-322. ].
Recently, CNTs/Cu composite became a kind of good functional materials with high application potential.
Materials Science and Engineering: A, 2006, 430(1): 27-33. ].
Progress in materials science, 2001, 46 (1): 1-184. ], plasma atomization[[] Tsantrizos P G, Entezarian M.
Online since: July 2019
Authors: Tri Wicaksono Sigit, Yohannes Marudut Tua Silaen, Hosta Ardyananta, Salma Halimah, Amaliya Rasyida, Haniffudin Nurdiansah
“PBAT based nanocomposites for medical and industrial applications” Materials Science and Engineering C 32 (2012) 1331–1351
“Journal of Biomaterials Science , Time-Dependent Alginate / Polyvinyl Alcohol Hydrogels as Injectable Cell Carriers,” no.
Materials Science and Engineering C 63: 274–84. https://doi.org/10.1016/j.msec.2016.02.071
Series: Materials Science and Engineering 338 (2018) 012055 doi:10.1088/1757-899X/338/1/012055 [11] Yan Shi, Dangsheng Xiong, Jianliang Li, Kun Wang and Nan Wang.
Alginate-Based Hybrid Nanocomposite Materials.
“Journal of Biomaterials Science , Time-Dependent Alginate / Polyvinyl Alcohol Hydrogels as Injectable Cell Carriers,” no.
Materials Science and Engineering C 63: 274–84. https://doi.org/10.1016/j.msec.2016.02.071
Series: Materials Science and Engineering 338 (2018) 012055 doi:10.1088/1757-899X/338/1/012055 [11] Yan Shi, Dangsheng Xiong, Jianliang Li, Kun Wang and Nan Wang.
Alginate-Based Hybrid Nanocomposite Materials.
Online since: November 2013
Authors: Suriani Abu Bakar, Azira Abd. Aziz, A.I.H. Habibah Dayang, Mohamad Rusop Mahmood
Silicone composites, Journal of Applied Polymer Science, 93 (2004) 2095-2104
Bokobza, The reinforcement of elastomeric networks by fillers, Macromolecular Materials and Engineering, 289 (2004) 607-621
Bose, Carbon nanotube based composites - A review, Journal of Minerals and Materials Characterization and Engineering, 4 (2005) 31-46
Kolodziej, On the use of carbon nanotubes as reinforcing fillers for elastomeric materials, Polymer International, 55 (2006) 1090-1098
The effect of strain, Journal of Polymer Science Part B: Polymer Physics, 41 (2003) 2079-2089
Bokobza, The reinforcement of elastomeric networks by fillers, Macromolecular Materials and Engineering, 289 (2004) 607-621
Bose, Carbon nanotube based composites - A review, Journal of Minerals and Materials Characterization and Engineering, 4 (2005) 31-46
Kolodziej, On the use of carbon nanotubes as reinforcing fillers for elastomeric materials, Polymer International, 55 (2006) 1090-1098
The effect of strain, Journal of Polymer Science Part B: Polymer Physics, 41 (2003) 2079-2089
Online since: January 2012
Authors: Hédi Hamdi, Sawsen Youssef, O. Calonne, P. Gilles, E. Feulvarch
Bergheau, Residual stresses computation in a grinding process, Journal of Materials Processing Technology, VOL. 147, issue 3, 2004, pp. 277-285
Bergheau, A numerical study of phase transformation during grinding,International Journal for Machining and Machinability of Materials, Vol. 4, Issue 2/3, 2008, pp. 148-157
McCormack, Analysis of the transitional temperature for tensile residual stress in grinding, Journal of Materials Processing Technology, 107:216–221, 2000
Bergheau, Temperature measurement and heat flux characterization in grinding using thermography, Journal of Materials Processing Technology, vol. 201, pp. 590–595, 2008
Malkin, Heat transfer in grinding, Journal of materials processing & manufacturing science – Vol. 1 ; July 1992 ; PP. 16-27
Bergheau, A numerical study of phase transformation during grinding,International Journal for Machining and Machinability of Materials, Vol. 4, Issue 2/3, 2008, pp. 148-157
McCormack, Analysis of the transitional temperature for tensile residual stress in grinding, Journal of Materials Processing Technology, 107:216–221, 2000
Bergheau, Temperature measurement and heat flux characterization in grinding using thermography, Journal of Materials Processing Technology, vol. 201, pp. 590–595, 2008
Malkin, Heat transfer in grinding, Journal of materials processing & manufacturing science – Vol. 1 ; July 1992 ; PP. 16-27
Online since: September 2003
Authors: Qiang Shen, Chuan Bin Wang, Lian Meng Zhang, Rui Xing Li
Zhang
State Key Lab of Advanced Technology for Materials Synthesis And Processing, Wuhan University
of Technology, Wuhan 430070, China
Keywords: Short Carbon Fiber, Silicon Carbide, Spark Plasma Sintering, Densification
Abstract.
Experimental Procedures � -SiC powders with an average particle size of 0.13� m and short carbon fibers with average length of 1-1.2mm were used as the experimental materials.
Acknowledgment This work is partially supported by the National Natural Science Foundation of China under the grant number of 50232020.
[4] G.E.Hilmas and T.Y.Tien: Journal Materials Science, Vol. 34 (1999), p, 5613
[7] X.B.He: Materials Chemistry and Physics, Vol. 74 (2002), p. 300
Experimental Procedures � -SiC powders with an average particle size of 0.13� m and short carbon fibers with average length of 1-1.2mm were used as the experimental materials.
Acknowledgment This work is partially supported by the National Natural Science Foundation of China under the grant number of 50232020.
[4] G.E.Hilmas and T.Y.Tien: Journal Materials Science, Vol. 34 (1999), p, 5613
[7] X.B.He: Materials Chemistry and Physics, Vol. 74 (2002), p. 300
Online since: December 2024
Authors: Mukhlis Abdul Rahman, Khairul Hamimah Abas, Nurul Fazlin Hasnul Hafiz, Juhana Jaafar, Mohd Hafiz Dzarfan Othman
Seed materials have a specific surface structure that may provide nucleation sites for the struvite and enhance its growth [7].
Furthermore, seeding techniques involve the use of specific materials to promote struvite crystallization.
[23] Critical Raw Materials - CRM Alliance [WWW Document] (2022).
Ultrasonic power combined with seed materials for recovery of phosphorus from swine wastewater via struvite crystallization process.
Materials, 14(19), 5822
Furthermore, seeding techniques involve the use of specific materials to promote struvite crystallization.
[23] Critical Raw Materials - CRM Alliance [WWW Document] (2022).
Ultrasonic power combined with seed materials for recovery of phosphorus from swine wastewater via struvite crystallization process.
Materials, 14(19), 5822
Online since: March 2006
Authors: Dyi Cheng Chen
Yu: Materials Science and Technology Vol. 5 (1989), p. 934
Melander: Materials Science and Technology Vol. 5 (1989), p. 940
Lee: Materials Science and Technology Vol. 7 (1991), p. 1042
Li: Journal of Materials Processing Technology Vol. 105 (2000), p. 32
Wu: Journal of Materials Processing Technology Vol. 125-126 (2002), p. 664
Melander: Materials Science and Technology Vol. 5 (1989), p. 940
Lee: Materials Science and Technology Vol. 7 (1991), p. 1042
Li: Journal of Materials Processing Technology Vol. 105 (2000), p. 32
Wu: Journal of Materials Processing Technology Vol. 125-126 (2002), p. 664
Online since: July 2003
Authors: Daniel J. Inman
First a quick review of smart materials is provided.
Smart Materials Smart materials is the name given to a class of materials that exhibit the ability to change mechanical force and motion into some other form of energy and visa versa.
More detailed descriptions of smart materials can be found in [1-3].
Culshaw: Smart structures and Materials (Artech House, 1996) [4] C.
Sohn: "Structural Health Monitoring Using Wireless Sensing Systems with Embedded Processing," Journal of Intelligent Materials Systems and Structures, to appear.
Smart Materials Smart materials is the name given to a class of materials that exhibit the ability to change mechanical force and motion into some other form of energy and visa versa.
More detailed descriptions of smart materials can be found in [1-3].
Culshaw: Smart structures and Materials (Artech House, 1996) [4] C.
Sohn: "Structural Health Monitoring Using Wireless Sensing Systems with Embedded Processing," Journal of Intelligent Materials Systems and Structures, to appear.