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Online since: November 2013
Authors: Yi Zhi Yan, Chang Xin Xiong
The material parameters are: the elastic modulus is 26.5GPa, Density was 2400kg/m3, Poisson's ratio was 0.168; base modulus was 19.5GPa, Density was 2000kg/m3, Poisson's ratio was 0.22; Water Density 1000kg/m3 water bulk modulus is 2.0GPa, Compression wave velocity was 1414m/s when water compressibility considered.
Acknowledgments This work was financially supported by National Natural Science Foundation (51169009, 50869003), Yunnan Natural Science Foundation (KKSA201104045).
Journal of Engineering Mechanics,ASCE,1991,117(7)1826 - 1837
Journal of Engineering Mechanics,ASCE,1991,117(7)1839 - 1850
Chinese Science Bulletin,2001,46(6):521 - 524
Acknowledgments This work was financially supported by National Natural Science Foundation (51169009, 50869003), Yunnan Natural Science Foundation (KKSA201104045).
Journal of Engineering Mechanics,ASCE,1991,117(7)1826 - 1837
Journal of Engineering Mechanics,ASCE,1991,117(7)1839 - 1850
Chinese Science Bulletin,2001,46(6):521 - 524
Online since: November 2012
Authors: Chao Gai Xue, Hai Wang Cao
The system must exchange material, energy and information with the outside world
With the development of science and technology, technologies in EIS are developed.
Complex system and Complexity science.
Journal of Hebei University.
Journal of Chongqing Institute of Technology(Social Science Edition).
With the development of science and technology, technologies in EIS are developed.
Complex system and Complexity science.
Journal of Hebei University.
Journal of Chongqing Institute of Technology(Social Science Edition).
Online since: January 2011
Authors: Hong Lei Liu, Qiang Liu, Hai Feng Zhang, Lan He Zhang
Materials and methods
Apparatus and methods
Five similar SBR reactors were used to investigate the pereformance of denitrifying phosphorus removal (1-5#, respectively), as shown in Fig.1.The reactor was made of Plexiglas and its volume was 2.5L(the working volume 1.7L).
Acknowledgment The project was supported by Foundation for Science and Technology Development Plan, Jilin Province of China (20090599) .
Journal of environmental sciences, 2007,19(7):776-782
Journal of Environmental Sciences, 2007,19(7):776-782
China Environmental Science, 2005,25(5):515-518.
Acknowledgment The project was supported by Foundation for Science and Technology Development Plan, Jilin Province of China (20090599) .
Journal of environmental sciences, 2007,19(7):776-782
Journal of Environmental Sciences, 2007,19(7):776-782
China Environmental Science, 2005,25(5):515-518.
Online since: July 2012
Authors: Ji Yan Shi, Li Ren Fan, Ji Qing Song, Wen Bo Bai
Swelling properties and kinetics of starch-g-poly(acrylic acid) hydrogels
Jiyan Shi1,a, Liren Fan1,b, Jiqing Song2,c, Wenbo Bai2,d
1Engineering Research Center of Nano-Geomaterials of Ministry of Education, China University of sciences, Wuhan, 430074, China
2Institute of Environment and Sustainable Development in Agriculture, Chinese Academy of Agricultural Sciences, Beijing 100081, China
aaoxue009@163.com, bflr550@yahoo.com.cn, csokise63@yahoo.com.cn, dwbai@ieda.org.cn
Keywords: cassava starch, hydrogels, swelling kinetics, mechanism comparison
Abstract: Starch-g-poly(acrylic acid) (CSt-g-PAA) hydrogels were prepared from cassava starch and acrylic acid by graft polymerization.
Acknowledgements This work was financially supported by National High-Tech R&D Program (863 program) for the 12th five-year plan, Ministry of Science and Technology, PR China (2011AA100503).
Journal Functional Materials, Vol.40(2009),p.693-699.
Journal of Macromolecular Science-Physics, Vol.B31(1992), p.1-9
Acknowledgements This work was financially supported by National High-Tech R&D Program (863 program) for the 12th five-year plan, Ministry of Science and Technology, PR China (2011AA100503).
Journal Functional Materials, Vol.40(2009),p.693-699.
Journal of Macromolecular Science-Physics, Vol.B31(1992), p.1-9
Online since: September 2013
Authors: Zhi Feng Fu, Bing Bing Yang, Yan Shi
Experimental Section
Materials.
Goodman, I., Ed.; Applied Science Publishers, London (1982); Vol. 1, p.39 [2] A.
Eisenberg: Science Vol. 268(1995), p.1728 - 1731 [5] Y.
Eisenberg: Macromolecules Vol. 31, p.1144 [6] Haizhou Yu, Jintao Zhu and Wei Jiang: Journal of Polymer Science: Part B: Polymer Physics, Vol. 46(2008), p.1536–1545 [7] Jianjun Yuan and Lei Jiang.
Journal of Applied Polymer Science, Vol. 89(2003), p.1017–1025 [8] O.
Goodman, I., Ed.; Applied Science Publishers, London (1982); Vol. 1, p.39 [2] A.
Eisenberg: Science Vol. 268(1995), p.1728 - 1731 [5] Y.
Eisenberg: Macromolecules Vol. 31, p.1144 [6] Haizhou Yu, Jintao Zhu and Wei Jiang: Journal of Polymer Science: Part B: Polymer Physics, Vol. 46(2008), p.1536–1545 [7] Jianjun Yuan and Lei Jiang.
Journal of Applied Polymer Science, Vol. 89(2003), p.1017–1025 [8] O.
Online since: January 2013
Authors: Jian Weng, Richard Happson Joseph Massawe, Shu Bin Cai, Heng Sun
Study on Component Library for Storing Mechanical Devices with Mechanical Properties
Heng Sun1,a, Shubin Cai2,3,b, Jian Weng1,c,
Richard Happson Joseph Massawe4,d
1Department of Computer Science, Jinan University, Guangzhou, 510632, China
2Software Engineering Department, Shenzhen University, Shenzhen, 518060, China
3Shenzhen Key Laboratory of High Performance Data Mining, Shenzhen, 518055, China
4International School, Jinan University, Guangzhou, 510632, China
atsunheng@jnu.edu.cn, bshubin@szu.edu.cn, ccryptjweng@gmail.com, dPiratte@live.com
Keywords: Mechanical device, component modeling, mechanical property, assembly library
Abstract.
Acknowledgement This work was supported by the National Science Foundation of China (No.60903178), the Guangdong Natural Science Foundation (No.9451063201002934), the Start-up Research Fund for Introduced Talents in Jinan University, the Thirteenth Teaching Reform and Research Project of Jinan University (The Experimental Teaching of Software Processes and Project Management Course), the Seventh Thousand-Hundred-Ten Talent Project (University Level), the Shenzhen Science and Technology Plan (No.
European Journal of Agronomy, Vol. 24 (2006), p. 186-192
Advanced Materials Research, Vol. 121-122 (2010). p. 232-236
International Journal of Advanced Manufacturing Technology, Vol. 22 (2003). p. 611-618
Acknowledgement This work was supported by the National Science Foundation of China (No.60903178), the Guangdong Natural Science Foundation (No.9451063201002934), the Start-up Research Fund for Introduced Talents in Jinan University, the Thirteenth Teaching Reform and Research Project of Jinan University (The Experimental Teaching of Software Processes and Project Management Course), the Seventh Thousand-Hundred-Ten Talent Project (University Level), the Shenzhen Science and Technology Plan (No.
European Journal of Agronomy, Vol. 24 (2006), p. 186-192
Advanced Materials Research, Vol. 121-122 (2010). p. 232-236
International Journal of Advanced Manufacturing Technology, Vol. 22 (2003). p. 611-618
Online since: December 2012
Authors: Fang Wang, Jing Yi Wang, Meng Liu, Zhen Ya Zhang
The experimental study of water storage performance on small heat-pump energy storage air-conditioner
Fang Wang1, a, Jingyi Wang1,b , Meng Liu1,c, Zhenya Zhang1,d
1 University of Shanghai for Science and Technology, Shanghai 200093, China
awang1996930@163.com, bwangjingyi2008@live.cn, cliumeng0110@126.com, dzzy129@126.com
Keywords: energy storage air conditioner, water storage performance, heat release mode
Abstract.
The experiments show that the heat storage system can improve inlet temperature of the refrigerating compressor effectively when proceeding heating mode, and the outlet temperature is also higher relatively; In the low-temperature heating condition, the maximum heating capacity can up to more than the rated heating capacity and the defrosting performance is better too; But the heat storage capacity of the system is quite limited for the thermal storage material is water.
Thus steadier, safer and more reliable PCM (phase-change material) with high energy storage density is seeking for replacing, so as to improve heating performance of energy storage unit for energy conservation.
International Journal of energy research, Vol.22 (1998), p.761-776 [7] Kim Minsung, Kim Min Soo, Chung Jae Dong.
International Journal of Refrigeration, Vol. 27(2004), p.415-421 [8] National Standards Commission.
The experiments show that the heat storage system can improve inlet temperature of the refrigerating compressor effectively when proceeding heating mode, and the outlet temperature is also higher relatively; In the low-temperature heating condition, the maximum heating capacity can up to more than the rated heating capacity and the defrosting performance is better too; But the heat storage capacity of the system is quite limited for the thermal storage material is water.
Thus steadier, safer and more reliable PCM (phase-change material) with high energy storage density is seeking for replacing, so as to improve heating performance of energy storage unit for energy conservation.
International Journal of energy research, Vol.22 (1998), p.761-776 [7] Kim Minsung, Kim Min Soo, Chung Jae Dong.
International Journal of Refrigeration, Vol. 27(2004), p.415-421 [8] National Standards Commission.
Online since: July 2011
Authors: Guang Xue Chen, Jin Yan, Bao Ling Tang, Jing Lei Tai, Qi Feng Chen
However, its adhesion mechanism is different when the adhesive is bonding with polyester film, paper, fabric, metal and other materials.
Isocyanates are one of the most important raw materials, and they are divided into aliphatic isocyanates and aromatic isocyanates.
So there is a tendency to use aliphatic isocyanates as raw materials.
It also has stronger adhesion strength to polar materials, higher cohesive energy strength and good thermal oxidation stability.
[4] YANG Jianjun, WU Mingyuan: The Synthesis and Thermal Stability of Copolyesters of Sebacic/Terephthalic Acid Series, Journal of University of Science and Technology of China Vol.31, No.1 (2001)
Isocyanates are one of the most important raw materials, and they are divided into aliphatic isocyanates and aromatic isocyanates.
So there is a tendency to use aliphatic isocyanates as raw materials.
It also has stronger adhesion strength to polar materials, higher cohesive energy strength and good thermal oxidation stability.
[4] YANG Jianjun, WU Mingyuan: The Synthesis and Thermal Stability of Copolyesters of Sebacic/Terephthalic Acid Series, Journal of University of Science and Technology of China Vol.31, No.1 (2001)
Online since: October 2009
Authors: Yuan Li, Xi Peng Xu, Yong Ye
It can not only simulate the
engineering mechanics properties of granite from the microscopic angle, but also can analyze the
macroscopic mechanical behavior of materials through studying of particle microscopic parameters.
Red and gray natural granite were used as workpiece materials (130mm in length along the sawing direction).
Xu: Key Engineering Materials, 2003, 250, pp.209-214
Yu: Journal of Materials Processing Technology, 2003, 139, pp.281-285
Shaw: Transaction of the ASME: Journal of Engineering for Industry, Vol. 110 (1988), pp.25ff.
Red and gray natural granite were used as workpiece materials (130mm in length along the sawing direction).
Xu: Key Engineering Materials, 2003, 250, pp.209-214
Yu: Journal of Materials Processing Technology, 2003, 139, pp.281-285
Shaw: Transaction of the ASME: Journal of Engineering for Industry, Vol. 110 (1988), pp.25ff.
Online since: March 2017
Authors: Meor Yusoff Meor Sulaiman, Yusof Abdullah, Wilfred @ Sylvester Paulus, Siti Salwa Zainal Abidin, Ahmad Khairulikram Zahari, Khaironie MOHAMMAD TAKIP
ZnO is a multifunctional material because of its unique physical and chemical properties.
In materials science, ZnO is classified as a semiconductor in group II-VI, which is the covalence, is on the boundary between ionic and covalent semiconductors.
Materials and Method Firstly, the EAFD was washed in water in order to remove impurities.
Jesionowski, Zinc Oxide—from synthesis to application: a review, Materials. 7 (2014) 2833-2881
Sadraei, A simple method for preparation of Nano-sized ZnO, Research & Reviews: Journal of Chemistry, e-ISSN: 2319-9849 (2016).
In materials science, ZnO is classified as a semiconductor in group II-VI, which is the covalence, is on the boundary between ionic and covalent semiconductors.
Materials and Method Firstly, the EAFD was washed in water in order to remove impurities.
Jesionowski, Zinc Oxide—from synthesis to application: a review, Materials. 7 (2014) 2833-2881
Sadraei, A simple method for preparation of Nano-sized ZnO, Research & Reviews: Journal of Chemistry, e-ISSN: 2319-9849 (2016).