Sort by:
Publication Type:
Open access:
Publication Date:
Periodicals:
Search results
Online since: May 2011
Authors: Qing Wei Ping, Jing Xiao, Jian Zhao
The Preparation and Property of Organic Solvent Lignin and PVC Composite Materials
Ping Qingwei 1,a, Xiao Jing 2 b and zhao Jian3
1,2,3 Dalian Polytechnic University, Dalian, China, 116034
a pingqw@dlpu.edu.cn, bxiaotonglala@126.com
Keywords: lignin, organic solvent lignin, polyvinyl chloride (PVC), composite materials
Abstract.
Experimental Instruments and materials.
Lignin content on PVC/lignin composite materials flexural strength.
References [1] Xu yongjian, zhang meiyun.Transactions of China Pulp and Paper,2007,22(2):86~89(In Chinese) [2] W Thielemans,E Can,S S Morye,et a1.Journal of Applied Polymer Science,2002,83(2),323~331 [3] Ma Cunqian ,Xu Jing, Hong Jinxiang and Liu Jiaping.
Journal of Applied Polymer Science,2001,(79):72~79 [5] John J Meister.
Experimental Instruments and materials.
Lignin content on PVC/lignin composite materials flexural strength.
References [1] Xu yongjian, zhang meiyun.Transactions of China Pulp and Paper,2007,22(2):86~89(In Chinese) [2] W Thielemans,E Can,S S Morye,et a1.Journal of Applied Polymer Science,2002,83(2),323~331 [3] Ma Cunqian ,Xu Jing, Hong Jinxiang and Liu Jiaping.
Journal of Applied Polymer Science,2001,(79):72~79 [5] John J Meister.
Online since: April 2019
Authors: Saran Kingsakklang, Supacharee Roddecha, Malinee Sriariyana
Experimental
Materials
Pineapple leaf fiber was provided by Assoc.
Natural Cellulose Materials for Supercapacitors.
Journal of Material Science, 47 (2012), 4236–4250
Advanced Science. 3 (2016), 1-20
Materials, 2 (2009), 2369-2403
Natural Cellulose Materials for Supercapacitors.
Journal of Material Science, 47 (2012), 4236–4250
Advanced Science. 3 (2016), 1-20
Materials, 2 (2009), 2369-2403
Online since: January 2015
Authors: Boris Melnikov, Andrey Levandovskiy
Microporous ceramic substrates of сordierite structure with use of various natural raw materials (2011) Proceedings of the Komi Science Centre of the Ural Division of Russian Academy of Sciences, 3(7), pp. 27-32
Explicit cross-property correlations for porous materials with anisotropic microstructures (2001) Journal of the Mechanics and Physics of Solids, 49(1), pp. 1-25
Connecting the macro- and microstrain responses in technical porous ceramics: modeling and experimental validations (2011) Journal of Materials Science, 46(1), pp. 161–173
Macro to micro stress and strain conversion in porous ceramics (2012) Materials Science Forum, 706-709, pp. 1667–672
Thermal and Mechanical Response of Industrial Porous Ceramics (2010) Materials Science Forum, 652, pp 191-196
Explicit cross-property correlations for porous materials with anisotropic microstructures (2001) Journal of the Mechanics and Physics of Solids, 49(1), pp. 1-25
Connecting the macro- and microstrain responses in technical porous ceramics: modeling and experimental validations (2011) Journal of Materials Science, 46(1), pp. 161–173
Macro to micro stress and strain conversion in porous ceramics (2012) Materials Science Forum, 706-709, pp. 1667–672
Thermal and Mechanical Response of Industrial Porous Ceramics (2010) Materials Science Forum, 652, pp 191-196
Online since: July 2011
Authors: Ji Ping Zhu, Guang Yang, Jun Jie Zhao, Qing Song Wang, Hong Wei Yang
Synthesis and electrochemical properties of Li4Ti5O12/CuO anode material for Li-ion batteries
Ji-Ping Zhu1, a, Guang Yang1, b, Jun-jie Zhao1, c, Qing-song Wang1, d, and Hong-wei Yang1, e
1School of Materials Science and Engineering, Hefei University of Technology,
Hefei 230009, P.
At present, the anode materials for those batteries are various kinds of carbon materials, such as graphite, coke and MCMB (Mesocarbon microbeads).
Science, 324, 5930(2009), pp. 1051-1055
Advanced Materials, 20, 6(2008), pp. 1160-1165
Materials Chemistry and Physics, 101, 2-3(2007), pp. 372-378
At present, the anode materials for those batteries are various kinds of carbon materials, such as graphite, coke and MCMB (Mesocarbon microbeads).
Science, 324, 5930(2009), pp. 1051-1055
Advanced Materials, 20, 6(2008), pp. 1160-1165
Materials Chemistry and Physics, 101, 2-3(2007), pp. 372-378
Online since: October 2021
Authors: Chi Hui Tsou, Zheng Lu Ma, Jui Chin Chen, Yan Mei Wang, Xin Yuan Tian, Chen Gao
Mechanical Properties and Hydrophilicity of High-Density Polyethylene/Attapulgite Composites
Zheng-Lu Ma1,a, Jui-Chin Chen2,b, Chi-Hui Tsou1,c,*, Yan-Mei Wang1,d,
Xin-Yuan Tian 2,e and Chen Gao1,f*
1Material Corrosion and Protection Key Laboratory of Sichuan Province, School of Materials Science and Engineering, Sichuan University of Science and Engineering, Zigong 643000, China;
2Department of Materials and Textiles, Oriental university of science and technology, Pan-Chiao 22064, Taiwan
a13420331940@qq.com, bfc011@mail.oit.edu.tw, ctsou@suse.edu.cn, d19871016gc@sohu.com, e32549520110@qq.com, f29134879471@qq.com
Keywords: High-density polyethylene, attapulgite, mechanical properties, composite materials
Abstract: High-density polyethylene (HDPE) is used as the matrix and attapulgite (ATT) is used as the reinforcing phase.
Introduction Polymer/inorganic nanocomposites have better physical and mechanical properties than conventional polymer-based composites, and have become a research hotspot in the field of materials science in recent years [1].
Experimental Materials.
Attapulgite: from clay minerals to functional materials[J].
Materials Chemistry and Physics, 2017, 195: 40-48
Introduction Polymer/inorganic nanocomposites have better physical and mechanical properties than conventional polymer-based composites, and have become a research hotspot in the field of materials science in recent years [1].
Experimental Materials.
Attapulgite: from clay minerals to functional materials[J].
Materials Chemistry and Physics, 2017, 195: 40-48
Online since: June 2013
Authors: Rui Ling Hu, Shao Hua Liu, De Kun Shen
Inspiration of Food Packaging Design from Environmental Protection Materials
Shaohua Liu1,a, Dekun Shen*2,b, Ruiling Hu3,c
1Chinese Minority Art,Faculity of Art and Communication,Kunming University of Science and Technology , Kunming Yunnan China
2Faculity of Art and Communication,Kunming University of Science and Technology , Kunming Yunnan China
3Art of design,Faculity of Art and Communication,Kunming University of Science and Technology , Kunming Yunnan China
a623770141@qq.com,bshende.kun@163.com, c526063490@qq.com
Keywords: Environmentally friendly materials; Food packaging; Green packaging
Abstract.In today's society, with the widely promotion of green food, the philosophy of environmental protection has become the normal way of thinking for green packaging design.
Environmentally friendly packaging materials basically include: reusable materials, renewable packaging materials, edible packaging materials, degradable materials and natural paper materials.
The development of science and technology has endowed the packaging materials with such characteristics as diversified functions, excellent performance, saving resources ,for example: recyclable or recycled materials, degradable plastic, edible packaging materials, nano green materials etc.
Currently, the degradation materials can be divided into: biodegradable materials, optical degradable material, oxidative degradable materials and hydrolytic degradable materials.[3] These materials are widely used in packaging films or packaging containers (Fig 6 ), and bundling materials.
Chinese Journal of Food Hygiene, 2007 [2] Ouyang Chaoying.
Environmentally friendly packaging materials basically include: reusable materials, renewable packaging materials, edible packaging materials, degradable materials and natural paper materials.
The development of science and technology has endowed the packaging materials with such characteristics as diversified functions, excellent performance, saving resources ,for example: recyclable or recycled materials, degradable plastic, edible packaging materials, nano green materials etc.
Currently, the degradation materials can be divided into: biodegradable materials, optical degradable material, oxidative degradable materials and hydrolytic degradable materials.[3] These materials are widely used in packaging films or packaging containers (Fig 6 ), and bundling materials.
Chinese Journal of Food Hygiene, 2007 [2] Ouyang Chaoying.
Online since: March 2014
Authors: Ping Du, Ju Mei Ai
Both have similar places, such as two-dimensional printing inks and other materials is sprayed on printing materials, the general thickness is not high, a few microns.
Printing materials and printing accuracy have greatly improved.
Printed material from the stone, metal material to the current mainstream polymer materials can be applied.
Journal of Electronics World. 2013 (7)7-8
Advanced Materials, 2013 (13):123-124.
Printing materials and printing accuracy have greatly improved.
Printed material from the stone, metal material to the current mainstream polymer materials can be applied.
Journal of Electronics World. 2013 (7)7-8
Advanced Materials, 2013 (13):123-124.
Online since: February 2013
Authors: Guo Zhong Li, Jiang Zhu
Influences of Emulsion on Water Resistance of Vitrified Micro Bubbles Thermal Insulation Material
Jiang Zhu, Guozhong Li a*
Shandong Provincial Key Laboratory of Preparation and Measurement of Building Materials, School of Material Science and Engineering, University of Jinan, Jinan 250022, Shandong, China
amse_ligz@ujn.edu.cn, *correspondence author
Keywords: vitrified micro bubbles, thermal insulation material, softening coefficient, water absorption.
Introduction In China, organic heat preservation materials have been widely used in Exterior Insulation And Finish System, however, potential security risks exist in fire safety since these organic materials are flammable [1-4].
Cementing materials were composed of rapid hardening sulphoaluminate cement of 42.5R, fly ash of grade I and sodium silicate.
In material mixing process, surfaces of the bead are coated with cementing materials.
References [1] QIAN Bo-zhang and ZHU Jian-fang: Construction Conserves Energy Construction Conserves Energy (2009), p.57 [2] Gu Tian-shu, Xie Lian-yu and Chen Ge: Engineering Mechanics (2006), p.167-168 [3] LI Zhu, ZHANG Ze-ping, LIU Yuan-zhen et al: Engineering Mechanics (2006), p.141-143 [4] SONG Chang-you, HUANG Zhen-li, JI Guang-qi et al: Building Science (2008), p.1-7 [5] SU Xneyun, SU Maoyao: Journal of The Chinese Ceramic Society Vol. 30(2002), p.135-137 [6] Zhang Shui, Li Guozhong: Wall Materials Innovation & Energy Saving in Buildings (2011), p.33-39 [7] LI Qi-jin, LI Guo-zhong, YU Xiang-ji et al: Block-Brick-Tile (2012), p. 25-27 [8] ZHANG Guo-hui, GUAN Rui-fang, LI Jian-quan et al: Journal of Jinan University (Science and Technology) Vol. 20(2)(2006), p.116-120
Introduction In China, organic heat preservation materials have been widely used in Exterior Insulation And Finish System, however, potential security risks exist in fire safety since these organic materials are flammable [1-4].
Cementing materials were composed of rapid hardening sulphoaluminate cement of 42.5R, fly ash of grade I and sodium silicate.
In material mixing process, surfaces of the bead are coated with cementing materials.
References [1] QIAN Bo-zhang and ZHU Jian-fang: Construction Conserves Energy Construction Conserves Energy (2009), p.57 [2] Gu Tian-shu, Xie Lian-yu and Chen Ge: Engineering Mechanics (2006), p.167-168 [3] LI Zhu, ZHANG Ze-ping, LIU Yuan-zhen et al: Engineering Mechanics (2006), p.141-143 [4] SONG Chang-you, HUANG Zhen-li, JI Guang-qi et al: Building Science (2008), p.1-7 [5] SU Xneyun, SU Maoyao: Journal of The Chinese Ceramic Society Vol. 30(2002), p.135-137 [6] Zhang Shui, Li Guozhong: Wall Materials Innovation & Energy Saving in Buildings (2011), p.33-39 [7] LI Qi-jin, LI Guo-zhong, YU Xiang-ji et al: Block-Brick-Tile (2012), p. 25-27 [8] ZHANG Guo-hui, GUAN Rui-fang, LI Jian-quan et al: Journal of Jinan University (Science and Technology) Vol. 20(2)(2006), p.116-120
Online since: October 2011
Authors: Fa Cheng Yi, Ming Qing Yan, Bao Long Zhu
The Apparent shape of buffer / backfill materials
Before heating and after heating,buffer / backfill materials of apparent changes in morphology.
On the host rock for the geological repositories of high level radioactive waste[J].Nuclear Science,2006,(04).
Xi'an University of Science and Technology,2008,(04).
Journal of Geotechnical Engineering,2000,(03).
Chinese Journal of Rock Mechanics and Engineering, 2004, 23 (14): 2359 – 2364.
On the host rock for the geological repositories of high level radioactive waste[J].Nuclear Science,2006,(04).
Xi'an University of Science and Technology,2008,(04).
Journal of Geotechnical Engineering,2000,(03).
Chinese Journal of Rock Mechanics and Engineering, 2004, 23 (14): 2359 – 2364.