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Online since: December 2014
Authors: Li Ping Liu, Chun Hong Piao, Jun Mei Liu, Han Song Yu, Yao Hui Hu, Yu Hua Wang
Materials and methods
raw material The powder and hull of common buckwheat purchased in Inner Mongolia
Processing method of buckwheat hull and extract preparation After the removal was done with natural buckwheat hull lay open on the tray, put baking in the Constant temperature drying box so that it can be evenly heated.
Baked buckwheat hull added 1.5 times of the quality of raw materials water, resurgence 2h at room temperature.
Food Science , 2009, 30(3): 118-122
Journal of Southern Agriculture, 2012, 43(5):675-678
Journal of Wuxi Univercity of Light Indusry, 2003, 22 (2):98-101
Baked buckwheat hull added 1.5 times of the quality of raw materials water, resurgence 2h at room temperature.
Food Science , 2009, 30(3): 118-122
Journal of Southern Agriculture, 2012, 43(5):675-678
Journal of Wuxi Univercity of Light Indusry, 2003, 22 (2):98-101
Online since: May 2014
Authors: Feng Sheng Li, Wei Jiang, Ling Yun Hao, Run Hua Qin
Adsorption Mechanism Study of Magnetic EDTA-Chitosan on Cu(Ⅱ) Ions of Solution
Run-Hua QIN1,a , Feng-Sheng LI2,b, Wei JIANG 2,c and Ling-Yun HAO1,d,*
1School of Materials Engineering, Jinling Institute of Technology, Nanjing 211169, China
2 National Special Superfine Powder Engineering Research Center, Nanjing University of Science & Technology, Nanjing 210094, China
aqinrunh@126.com, dhly@jit.edu.cn
*Corresponding author
Keywords: Magnetic adsorbent, Adsorption mechanism, Cu (Ⅱ) ions, Chelation.
Journal of Hazardous Materials, 2006 136: 317-323 [4] Vieira RHSF, Volesky B.
International Journal of Biological Macromolecules, 2006, 39: 222-227 [8] Pillai C K S, Paul W, Sharma C P.
Progress in Polymer Science, 2009, 34(7): 641-678 [9] Elwakeel K Z, Atia A A, Donia A M.
Water Science and Technology, 1997, 35 (2): 25~31 [12] Zhou Z L, Qiu R L, Zhang W H, et al.
Journal of Hazardous Materials, 2006 136: 317-323 [4] Vieira RHSF, Volesky B.
International Journal of Biological Macromolecules, 2006, 39: 222-227 [8] Pillai C K S, Paul W, Sharma C P.
Progress in Polymer Science, 2009, 34(7): 641-678 [9] Elwakeel K Z, Atia A A, Donia A M.
Water Science and Technology, 1997, 35 (2): 25~31 [12] Zhou Z L, Qiu R L, Zhang W H, et al.
Online since: October 2013
Authors: Mariana Moreira, Mônica Cristina Teixeira, Silvana de Queiroz Silva
Critical Reviews in Environmental Science and Technology, vol. 28 (1998), p. 41-88
Environmental Science & Technology, v. 39, p. 895-900, 2005
Journal of Colloid and Interface Science vol. 315(1) (2007), p. 128-134
Journal of Hazardous Materials. 2008
New York, NY: Springer Science business Media, Llc; vol. 6 (2006), p. 197-214
Environmental Science & Technology, v. 39, p. 895-900, 2005
Journal of Colloid and Interface Science vol. 315(1) (2007), p. 128-134
Journal of Hazardous Materials. 2008
New York, NY: Springer Science business Media, Llc; vol. 6 (2006), p. 197-214
Online since: July 2013
Authors: Hai Yan Ji, Ling Bin Tan
Measurement Science and Technology, 2006, 17: 2294-2298
The test and effect of dielectric properties to agricultural material [J].
Journal of agricultural machinery, 1995, 26 (2) : 73-77
Journal of sensor technology, 2003, 22 (4) : 56-56
Journal of analytical instruments, 2009, 1:49-52
The test and effect of dielectric properties to agricultural material [J].
Journal of agricultural machinery, 1995, 26 (2) : 73-77
Journal of sensor technology, 2003, 22 (4) : 56-56
Journal of analytical instruments, 2009, 1:49-52
Online since: February 2026
Authors: Pitchayaporn Sunsanarat, Wanlop Kitisatorn, Pornlada Pongmuksuwan
Microcapsules were synthesized by polymerizing isocyanate-based shell materials (pTDI, pMDI, and TDI) with HDI derivatives as the core substances.
Self-healing materials represent an innovative approach that allows damage to be repaired autonomously.
Among the shell materials tested, TDI with an %NCO value of 13.3% was found to be the most suitable.
Carastan (2021) Microencapsulation of reactive isocyanates for application in self-healing materials: a review, Journal of Microencapsulation, 38:5, 338-356, DOI: 10.1080/02652048.2021.1921068 [4] Jinglei Yang, Michael W.
Journal of Microencapsulation, 21(4), 389–408, https://doi.org/10.1016/j.tifs.2003.10.005 [12] Jégat, C., Taverdet, J.
Self-healing materials represent an innovative approach that allows damage to be repaired autonomously.
Among the shell materials tested, TDI with an %NCO value of 13.3% was found to be the most suitable.
Carastan (2021) Microencapsulation of reactive isocyanates for application in self-healing materials: a review, Journal of Microencapsulation, 38:5, 338-356, DOI: 10.1080/02652048.2021.1921068 [4] Jinglei Yang, Michael W.
Journal of Microencapsulation, 21(4), 389–408, https://doi.org/10.1016/j.tifs.2003.10.005 [12] Jégat, C., Taverdet, J.
Online since: September 2015
Authors: Monika Kašiarová, Miroslav Hnatko, Pavol Šajgalík, Zuzana Pramuková Vilčeková, Magdaléna Precnerová Domanická
Highly porous materials can be made from different types of materials, such as metals, polymers or ceramics.
The properties of porous materials depend on their specific use in practice.
It is effort to achieve this trend in the prepared porous materials.
b a Fig. 1 Typical microstructure of the studied human trabecular bone (a) and prepared porous Si3N4 materials (b) The densities, pore sizes, overall and open porosity of studied materials are listed in Table 1.
Jesánek, The methods of preparation of synthetic porous materials, Silikátnik 6 (2009) 9-20
The properties of porous materials depend on their specific use in practice.
It is effort to achieve this trend in the prepared porous materials.
b a Fig. 1 Typical microstructure of the studied human trabecular bone (a) and prepared porous Si3N4 materials (b) The densities, pore sizes, overall and open porosity of studied materials are listed in Table 1.
Jesánek, The methods of preparation of synthetic porous materials, Silikátnik 6 (2009) 9-20
Online since: September 2011
Authors: Qiu Ning Yang, Ming Jie Mao, Sumio Hamada
The data have been collected from ACI5 journal, Journal of Japan Society of Civil Engineering6, and some other journals.
Two probability functions, Gauss function and Weibull function, have been often applied in the evaluation of the error estimation of the strength of materials.
The variation in the error coefficient is also influenced by uncertainty, such as quality of structural concrete materials, the position of steel arrangement and slab size.
Acknowledgements This work was financially supported by the NingXia Natural Science Foundation (NZ1044), (NZ1047).
:“Punching Shear Resistance of Flat Slabs: A Beam-Strip Analogy,” ACI Structural Journal, pp.594-604, 1994
Two probability functions, Gauss function and Weibull function, have been often applied in the evaluation of the error estimation of the strength of materials.
The variation in the error coefficient is also influenced by uncertainty, such as quality of structural concrete materials, the position of steel arrangement and slab size.
Acknowledgements This work was financially supported by the NingXia Natural Science Foundation (NZ1044), (NZ1047).
:“Punching Shear Resistance of Flat Slabs: A Beam-Strip Analogy,” ACI Structural Journal, pp.594-604, 1994
Online since: May 2007
Authors: Ya Fang Han, Shu Suo Li, Xiao Lei Han, Wen You Ma
Tsukuba Science City: National Institute for Materials Science, 2001,30-31
Phase stable single crystal materials [p], US 4935072,Jun.19,1990
In Pro Second Int Symposium on High Temperature Materials 2001.
Tsukuba Science City: National Institute for Materials Science, 2001. 30-31
Superalloys [M], Beijing, Metallurgical Industry Press, 2002:144 [10] C.X.Wu, C.Q.Sun, Q.J.Li: Journal of Aeronautical Materials, 2002, 22 (3):1
Phase stable single crystal materials [p], US 4935072,Jun.19,1990
In Pro Second Int Symposium on High Temperature Materials 2001.
Tsukuba Science City: National Institute for Materials Science, 2001. 30-31
Superalloys [M], Beijing, Metallurgical Industry Press, 2002:144 [10] C.X.Wu, C.Q.Sun, Q.J.Li: Journal of Aeronautical Materials, 2002, 22 (3):1
Online since: June 2011
Authors: Lennart Stutz, Dietmar Letzig, Karl Ulrich Kainer, Julian Quade, Michael Dahms
Achievements in deep drawing of magnesium alloy sheets
Lennart Stutz1, a, Julian Quade2, b, Michael Dahms2, c, Dietmar Letzig1, d
and Karl Ulrich Kainer1, e
1Helmholtz Zentrum Geesthacht Zentrum für Material- und Küstenforschung GmbH, Max-Planck-Straße 1, 21502 Geesthacht, Germany
2Flensburg University of Applied Sciences, Kanzleistraße 91-93, 24943 Flensburg, Germany
aLennart.Stutz@hzg.de, bJulian.Quade@stud.fh-flensburg.de, cMichael.Dahms@fh-flensburg.de, dDietmar.Letzig@hzg.de, eKarl.Kainer@hzg.de
Keywords: Magnesium sheets, deep drawing, formability, dynamic recrystallisation
Abstract.
Magnesium alloy sheets bear significant potential in replacing conventional materials such as aluminium and steels in ultra lightweight designs.
By optimising the process, a drawing ratio of 2.9 was achieved for AZ31 sheet, outperforming conventional materials at ambient temperature.
Schumann: Journal of Materials Processing Technology Vol. 117 (2001), p. 276-281 [2] J.
Neelameggham, The Minerals, Metals & Materials Society TMS, Warrendale (2011), in press [5] K.G.
Magnesium alloy sheets bear significant potential in replacing conventional materials such as aluminium and steels in ultra lightweight designs.
By optimising the process, a drawing ratio of 2.9 was achieved for AZ31 sheet, outperforming conventional materials at ambient temperature.
Schumann: Journal of Materials Processing Technology Vol. 117 (2001), p. 276-281 [2] J.
Neelameggham, The Minerals, Metals & Materials Society TMS, Warrendale (2011), in press [5] K.G.
Online since: October 2014
Authors: Lu Hai Li, Pu Jun Deng, Jian Dong Lu, Jun Ran
Bergeson, etal: Advanced Materials, Vol.21 (2009), pp. 3210-3216
Liu, etal: Advanced Materials, Vol.20 (2008), pp. 4442-4449
Kim, et al: Advanced Functional Materials, Vol.21 (2011), pp.1076-1081
Fu, etc: Applied Mechanics and Materials, Vol. 262 (2012), pp. 523-526
Tang, etc: Journal of Functional Materials, Vol.(40) (2009), pp.910-912.
Liu, etal: Advanced Materials, Vol.20 (2008), pp. 4442-4449
Kim, et al: Advanced Functional Materials, Vol.21 (2011), pp.1076-1081
Fu, etc: Applied Mechanics and Materials, Vol. 262 (2012), pp. 523-526
Tang, etc: Journal of Functional Materials, Vol.(40) (2009), pp.910-912.