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Online since: June 2013
Authors: Chun Peng Wang, Fu Xiang Chu, Ji Fu Wang, Yu Peng Liu, Ying Chen, Juan Yu
Experimental
Materials.
Polymer Materials Science & Engineering, 25, 170-174 (2009)
Materials Review, 71-74 (2011)
Journal of Applied Polymer Science 113, 3757-3765 (2009)
,Wang, X, Koseki,H.Journal of Hazardous Materials 159(1) 13一l8(2008).
Polymer Materials Science & Engineering, 25, 170-174 (2009)
Materials Review, 71-74 (2011)
Journal of Applied Polymer Science 113, 3757-3765 (2009)
,Wang, X, Koseki,H.Journal of Hazardous Materials 159(1) 13一l8(2008).
Online since: August 2013
Authors: Cui Ling Ma, Xian Lei Cao, Song Dan Sun
At the same time , the material of finite element analytic models adopts Q235 steel.
Acknowledgements The author is much appreciated the financial support for this research from Key Program of Natural Science Foundation of Educational Commission of Anhui Province (KJ2012A047), the National Natural Science Foundation of (No.51208002), Hefei University Natural Research Science Project(08KY025ZR) and Shandong Province Natural Science Foundation (Q2003F01).
P: Journal of Structural Engineering, ASCE.
N. and Lincoln M: Journal of Structural Engineering, ASCE.
Engineering Journal , AISE.
Acknowledgements The author is much appreciated the financial support for this research from Key Program of Natural Science Foundation of Educational Commission of Anhui Province (KJ2012A047), the National Natural Science Foundation of (No.51208002), Hefei University Natural Research Science Project(08KY025ZR) and Shandong Province Natural Science Foundation (Q2003F01).
P: Journal of Structural Engineering, ASCE.
N. and Lincoln M: Journal of Structural Engineering, ASCE.
Engineering Journal , AISE.
Online since: February 2012
Authors: Lai Bao Liu, Ke Feng Tan, Hai Long Yu
State Key Laboratory Cultivation Base for Nonmetal Composites and Functional Materials, Southwest University of Science and Technology, Mianyang Sichuan 621010, China;
2.
School of Materials Science and Engineering, Southeast University, Nanjing 211189, China; aemail: liulaibao@swust.edu.cn, bemail: tkf@swust.edu.cn, cemail: 610498798@qq.com Keywords: Concrete filled steel tube; Columns; High strength concrete; Load bearing capacity Abstract.
It is concluded that the load bearing capacity reduces due to the increased bending stress in the more slender columns driving the column strain in to the yield or failure regions of the materials.
Acknowledgements The authors gratefully acknowledge the financial support from the Opening Project of Key Laboratory for Advanced Building Materials of Sichuan Province (09zxxk09), and the Opening Project of State Key Laboratory Cultivation Base for Nonmetal Composite and Functional Materials (10zxfk12, 10zxfk04).
[2] Peisheng, Z., CFT columns for Tianjin Newspaper Building, Journal of Harbin Jianzhu University,(5), 1997, 9-13
School of Materials Science and Engineering, Southeast University, Nanjing 211189, China; aemail: liulaibao@swust.edu.cn, bemail: tkf@swust.edu.cn, cemail: 610498798@qq.com Keywords: Concrete filled steel tube; Columns; High strength concrete; Load bearing capacity Abstract.
It is concluded that the load bearing capacity reduces due to the increased bending stress in the more slender columns driving the column strain in to the yield or failure regions of the materials.
Acknowledgements The authors gratefully acknowledge the financial support from the Opening Project of Key Laboratory for Advanced Building Materials of Sichuan Province (09zxxk09), and the Opening Project of State Key Laboratory Cultivation Base for Nonmetal Composite and Functional Materials (10zxfk12, 10zxfk04).
[2] Peisheng, Z., CFT columns for Tianjin Newspaper Building, Journal of Harbin Jianzhu University,(5), 1997, 9-13
Online since: February 2018
Authors: Yuan Sheng Yang, Ji Xue Zhou, Xiao Cun Song, Hong Tao Liu, Yan Fei Chen
Materials & Design, 89 (2016) 1-8
Materials Science and Engineering: C, 75 (2017) 1299-1304
Materials Science and Engineering: C, 71 (2017) 565-569
Journal of Materials Engineering, 12 (2013) 1-6
Key Engineering Materials, (2016) 667
Materials Science and Engineering: C, 75 (2017) 1299-1304
Materials Science and Engineering: C, 71 (2017) 565-569
Journal of Materials Engineering, 12 (2013) 1-6
Key Engineering Materials, (2016) 667
Online since: January 2012
Authors: Sheng Hua Lv, Gong Rui, Jing Hu
Experimental
Materials
Starch was supplied by Xi’an starch factory.
This work is supported by the Chinese National Natural Science foundation Grant #20876091 and the Shannxi Province Natural Science Foundation Grant # SJ08B06 to S.
Journal of the American Leather Chemists Association, vol. 102, no.11, pp. 353-361, November 2007
Xu, “Starch-based completely biodegradable polymer materials”, Express Polymer Letters, vol.3, no.6, pp. 366-375, June 2009
Saponification to starch-g-poly(vinyl alcohol)”, Journal of Applied Polymer Science, vol.23, no.1, pp.229-240, January 1978
This work is supported by the Chinese National Natural Science foundation Grant #20876091 and the Shannxi Province Natural Science Foundation Grant # SJ08B06 to S.
Journal of the American Leather Chemists Association, vol. 102, no.11, pp. 353-361, November 2007
Xu, “Starch-based completely biodegradable polymer materials”, Express Polymer Letters, vol.3, no.6, pp. 366-375, June 2009
Saponification to starch-g-poly(vinyl alcohol)”, Journal of Applied Polymer Science, vol.23, no.1, pp.229-240, January 1978
Online since: February 2011
Authors: Lei Chen
The underlying formulation is based on updated Lagrangian elastoplastic materials model.
With the development of the computer science and FEM theory, numerical simulation of springback is performed.
The factors affecting stress field are materials model, constitute equation, yield criterion, element type, element size and contact algorithm, etc [4].
Wagoner: International Journal of Mechanical Sciences Vol. 44 (2002), p. 103 [4] P.
Samuel: Journal of Materials Processing Technology Vol. 105 (2000), p. 382 [6] R.
With the development of the computer science and FEM theory, numerical simulation of springback is performed.
The factors affecting stress field are materials model, constitute equation, yield criterion, element type, element size and contact algorithm, etc [4].
Wagoner: International Journal of Mechanical Sciences Vol. 44 (2002), p. 103 [4] P.
Samuel: Journal of Materials Processing Technology Vol. 105 (2000), p. 382 [6] R.
Online since: September 2014
Authors: Xun Qian Xu, Jian Bo Wang, Yong Zhu
References
[1] Jianbo Wang, Xunqian Xu, Yong Zhu, in: Advanced Materials Research.
Vol. 821-822 (2013), Advances in Textile Engineering and Materials III p. 1406-1409
[2] Maggie Kociecki,Hojjat Adeli,in: Journal of Constructional Steel Research,2013,(90):283-296
Yelve, Nitesh P,in: JVCI/Journal of Vibration and Control, Vol. 17(6) (2011), p. 953-958
[5] Pengmin Lv, Hongbing Wang, Daqing Zhang, in: China Journal of Highway and Transport.
Vol. 821-822 (2013), Advances in Textile Engineering and Materials III p. 1406-1409
[2] Maggie Kociecki,Hojjat Adeli,in: Journal of Constructional Steel Research,2013,(90):283-296
Yelve, Nitesh P,in: JVCI/Journal of Vibration and Control, Vol. 17(6) (2011), p. 953-958
[5] Pengmin Lv, Hongbing Wang, Daqing Zhang, in: China Journal of Highway and Transport.
Online since: November 2012
Authors: Xin Zhi Zhou, Chao Yu, Yin Qi Xiong, Qian Ning
The λs of some soft magnetic materials can be up to 3000ppm, but they are basically sintered material and cannot be made to a line for MDS.[1][2]
The saturation magnetostriction λs of Fe(100-x)Gax can reach 400ppm on special preparation conditions, as reported by Clark A E[3].
The saturation magnetostriction of Fe(100-x)Gax is much smaller than that of sintered giant magnetostrictive material, but much larger than that of Fe-Ni alloy.
Yong: Journal of Materials Science & Engineering, Vol. 25 (2007) No.4, p.537-540(In Chinese) [2] H.
Zhang: Journal of Functional Materials, Vol. 9 (2007) No. 38, p.1450-1452(In Chinese) [3] A.E.
Gao: Journal of University of Science and Technology Beijing.
The saturation magnetostriction of Fe(100-x)Gax is much smaller than that of sintered giant magnetostrictive material, but much larger than that of Fe-Ni alloy.
Yong: Journal of Materials Science & Engineering, Vol. 25 (2007) No.4, p.537-540(In Chinese) [2] H.
Zhang: Journal of Functional Materials, Vol. 9 (2007) No. 38, p.1450-1452(In Chinese) [3] A.E.
Gao: Journal of University of Science and Technology Beijing.
Online since: February 2013
Authors: Xi Shan Xie, Jian Xin Dong, Cheng Yu Chi, Fu Sheng Lin, Shuang Qun Zhao
Results and Discussions
700℃ A-USC Boiler Materials.
Fig.10 Coal ash corrosion rates 700℃ A-USC Turbine Bucket Materials.
Tanzosh, et al., Journal of Materials Engineering and Performance. 14(2005) 281-292
Dong, et al., Material Science Forum. (2007) 471-476
Zhang, et al., Advanced Materials Research, 399-401 (2012) 71-75
Fig.10 Coal ash corrosion rates 700℃ A-USC Turbine Bucket Materials.
Tanzosh, et al., Journal of Materials Engineering and Performance. 14(2005) 281-292
Dong, et al., Material Science Forum. (2007) 471-476
Zhang, et al., Advanced Materials Research, 399-401 (2012) 71-75
Online since: December 2014
Authors: Dedi Priadi, Johny Wahyuadi Soedarsono, Andi Rustandi, Sulistijono Sulistijono, Ayende Ayende, Dewa Ngurah Suprapta, Gadang Priyotomo, Ridla Bakri
Spinelli: Materials Chemistry and Physics, Vol 83 (2004), pp.129-134
[5]
K.
Tomic: International Journal of Electrochemical Science, Vol. 8 (2013), pp.1511-1519. [10] R.S.
Mello: Corrosion Science.
Zhancao: Journal of Hazardous Materials, Vol. 258-259 (2013), pp. 61-69. [12] A.D.
Hayvali: Materials Chemistry and Physics.
Tomic: International Journal of Electrochemical Science, Vol. 8 (2013), pp.1511-1519. [10] R.S.
Mello: Corrosion Science.
Zhancao: Journal of Hazardous Materials, Vol. 258-259 (2013), pp. 61-69. [12] A.D.
Hayvali: Materials Chemistry and Physics.