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Online since: July 2010
Erb received his M.A.Sc. (1978) and Ph.D. (1980) in Materials Science from the
University of the Saarland (Germany).
He currently is Professor in the Department of Materials Science and Engineering at the University of Toronto.
Presently Advisor/Consultant in Materials Science.
He is currently working as an associate professor at School of Materials Science and Engineering, The University of New South Wales.
Presently, he is working as an Assistant Professor in Materials Research Centre, Indian Institute of Science, India.
He currently is Professor in the Department of Materials Science and Engineering at the University of Toronto.
Presently Advisor/Consultant in Materials Science.
He is currently working as an associate professor at School of Materials Science and Engineering, The University of New South Wales.
Presently, he is working as an Assistant Professor in Materials Research Centre, Indian Institute of Science, India.
Online since: May 2012
Authors: Ming Fang Tang, Zhen Jing Yang, Shu Kui Zheng
In addition models of thermal conductivity for porous materials mostly only take a single solid component into consideration [8].
This study chooses clay, peat soil, mushroom planting soil (discarded), sand and expanded perlite as solid materials of the planting soil, all of which are commonly used in green roof.
Additionally when different materials mix, the smaller size granule would filled pore of other materials, increasing the contact area of solid particles, and finally lead to the growth of ETC.
Acknowledgements This research was supported by National Natural Science Foundation of China (Project No. 50978261) and Science Research Foundation of Xihua University (Project No.
References [1] Ministry of Construction, PRC: Technical specification for planted roof(JGJ 155-2007) (China Building Materials Press,2007) (In Chinese) [2] Mingfang Tang, Zhenjing Yang and Kaili Zheng: Journal of Chongqing Univ.Vol.30(5) (2007), p.1(In Chinese) [3] Jagjiwanram and Ramvir Singh: Applied Thermal Engineering.Vol.24 (2004),p. 2727 [4] C.
This study chooses clay, peat soil, mushroom planting soil (discarded), sand and expanded perlite as solid materials of the planting soil, all of which are commonly used in green roof.
Additionally when different materials mix, the smaller size granule would filled pore of other materials, increasing the contact area of solid particles, and finally lead to the growth of ETC.
Acknowledgements This research was supported by National Natural Science Foundation of China (Project No. 50978261) and Science Research Foundation of Xihua University (Project No.
References [1] Ministry of Construction, PRC: Technical specification for planted roof(JGJ 155-2007) (China Building Materials Press,2007) (In Chinese) [2] Mingfang Tang, Zhenjing Yang and Kaili Zheng: Journal of Chongqing Univ.Vol.30(5) (2007), p.1(In Chinese) [3] Jagjiwanram and Ramvir Singh: Applied Thermal Engineering.Vol.24 (2004),p. 2727 [4] C.
Online since: February 2013
Authors: Di Tang, Hong Wei Zheng, Hui Bin Wu, Liu Yang, Jin Xing Jiang
(a)
(b)
Fig.6 Micro morphology of rapid propagation area (S=600MPa, N=2.22×105)
(a) plastic fracture area (b) brittle fracture area
Why the rapid propagation area appeared.The ability of materials to resist crack propagation called fracture toughness represented by KΙc, which is a constant for materials.
Journal of Constructional Steel Reseach, Vol.58(2002), p.3~20
Journal of Structural Division,Vol.108(1982), p.3~88
Materials Science and Engineering, Vol.
Materials Science and Engineering, Vol.
Journal of Constructional Steel Reseach, Vol.58(2002), p.3~20
Journal of Structural Division,Vol.108(1982), p.3~88
Materials Science and Engineering, Vol.
Materials Science and Engineering, Vol.
Online since: June 2014
Authors: Yi Diao, Hong Bo Han, Jian Mei Deng, Min Jie Li, Yi Zhong
The intensity of this emission is indicative of the concentration of the element within the sample.[1-3]
Materials and Methods
The experiment materials
Fallopia multiflora samples were collected from Miyi county,Yanbian county,Renhe county, Suining city in Sichuan province, Qianjiang county in Chongqing municipality and Nanning city in Guangxi provinc.
The American journal of Chinese medicine, 2010, 38(03): 473-483
Trace Elements Determination Methods for Foods.Journal of Henan university of science and Technology (Natural Science), 2004, 25(5): 89-92
Analytical sciences, 2001, 17(3): 391-398
Journal of Tongren Vocational and Technical College(Natural Science Edition). 2010, 8(5): 55-57
The American journal of Chinese medicine, 2010, 38(03): 473-483
Trace Elements Determination Methods for Foods.Journal of Henan university of science and Technology (Natural Science), 2004, 25(5): 89-92
Analytical sciences, 2001, 17(3): 391-398
Journal of Tongren Vocational and Technical College(Natural Science Edition). 2010, 8(5): 55-57
Online since: August 2018
Authors: Jian Jun Sha, Jian Li, Ji Xiang Dai, Yu Fei Zu
Experimental Methods and Materials
Raw Materials.
—a carbonaceous materials route, where carbonaceous materials (carbon nanotubes) were introduced into the Cf/ZrB2-based composite.
That means there are enough carbonaceous materials to react with ZrSi2 at any place in the whole material.
Scatteia, Processing and properties of ultra-high temperature ceramics for space applications, Materials Science and Engineering: A. 485 (1–2) (2008) 415-421
Bellosi, Microstructure and mechanical properties of ZrB2–MoSi2 ceramic composites produced by different sintering techniques, Materials Science and Engineering: A. 434 (1–2) (2006) 303-309
—a carbonaceous materials route, where carbonaceous materials (carbon nanotubes) were introduced into the Cf/ZrB2-based composite.
That means there are enough carbonaceous materials to react with ZrSi2 at any place in the whole material.
Scatteia, Processing and properties of ultra-high temperature ceramics for space applications, Materials Science and Engineering: A. 485 (1–2) (2008) 415-421
Bellosi, Microstructure and mechanical properties of ZrB2–MoSi2 ceramic composites produced by different sintering techniques, Materials Science and Engineering: A. 434 (1–2) (2006) 303-309
Online since: July 2014
Authors: Yong Qing Yue, Chun Hui Zhu, Nai Xing Feng
Introduction
Meta-materials are specifically referred to as a class of artificial materials that have simultaneous negative electric permittivity and magnetic permeability [1] and are also known as left-handed materials (LHMs).
In recent years, Meta-materials have been received much attention due to their unusual electromagnetic properties.
Meta-materials have been realized by using different models such as the Drude medium and the Lorentzian medium models and so on.
In [7,8], the proposed PML formulations have been incorporated into the FDTD implementation of the meta-materials.
Journal of Computational Physics, 2013, 232(1): 318-326
In recent years, Meta-materials have been received much attention due to their unusual electromagnetic properties.
Meta-materials have been realized by using different models such as the Drude medium and the Lorentzian medium models and so on.
In [7,8], the proposed PML formulations have been incorporated into the FDTD implementation of the meta-materials.
Journal of Computational Physics, 2013, 232(1): 318-326
Online since: February 2014
Authors: Nandy Putra, Rosari Saleh, Wayan Nata Septiadi, Rardi Artono Koestoer, Suhendro Purbo Prakoso
Introduction
Materials with porous structures or porous media, have been giving massive advantages in developing heat pipe as one of heat exchangers especially for the evaporator and the condenser.
Jung-Chang Wang : International Journal of Thermal Sciences 50 (2011), p. 97-105 [10].
Liu : Journal of Porous Materials 4 (1997), p. 303–308 [22].
Ran Bao : International Journal of Thermal Sciences 49 (2010), p. 1680-1687 [28].
Okta D, Zein Hamid, Thermal performance of nanofluids in biomaterial wick loop heat pipes, submitted to International Journal of Thermal Sciences
Jung-Chang Wang : International Journal of Thermal Sciences 50 (2011), p. 97-105 [10].
Liu : Journal of Porous Materials 4 (1997), p. 303–308 [22].
Ran Bao : International Journal of Thermal Sciences 49 (2010), p. 1680-1687 [28].
Okta D, Zein Hamid, Thermal performance of nanofluids in biomaterial wick loop heat pipes, submitted to International Journal of Thermal Sciences
Online since: January 2022
Authors: Chawki Lahoud, Mohamed Hmadi, Salam Eid, Christy Lahoud, Marwan Brouche
From the above, the future objective is to introduce phase change materials into one of the main components of building materials used in Lebanon, namely the cement plaster.
International Journal of Energy Research, 42(9), 3030-3047
Incorporation of phase change materials in cementitious systems via fine lightweight aggregate.
"Review on thermal energy storage with phase change materials (PCMs) in building applications."
Applied Sciences, 9(6), 1104
International Journal of Energy Research, 42(9), 3030-3047
Incorporation of phase change materials in cementitious systems via fine lightweight aggregate.
"Review on thermal energy storage with phase change materials (PCMs) in building applications."
Applied Sciences, 9(6), 1104
Online since: August 2015
Authors: Priyono Priyono, Agus Subagio, Pardoyo Pardoyo, R. Yudianti, A. Subhan, E. Taer, Aswardi Aswardi
Seal, Synthesis and characterization of plasma spray formed carbon nanotube reinforced aluminum composite, Journal of Materials Science and Engineering 381 (2004), 249-258
Yu, Design synthesis and the electrochemical performance of MnO2/CNT as supercapacitor material, Journal of Materials Research Bulletin 48 (2013), 3389-3393
Chapman, Novel electrode materials for thin‐film ultracapacitors: comparison of electrochemical properties of sol‐gel‐derived and electrodeposited manganese dioxide, Journal of the Electrochemical Society 147 (2), 444-450
Yang, Facile synthesis of MnO2/CNT nanocomposite and its electrochemical performance for supercapacitors, Journal of Materials Science and Enginering B. 176 (2011), 1073-1078
Duong, Controlled synthesis of MnO2/CNT nanocomposites for supercapacitor applications, Materials Technology: Advanced Functional Materials 29 No. 2A (2014), A107-A109.
Yu, Design synthesis and the electrochemical performance of MnO2/CNT as supercapacitor material, Journal of Materials Research Bulletin 48 (2013), 3389-3393
Chapman, Novel electrode materials for thin‐film ultracapacitors: comparison of electrochemical properties of sol‐gel‐derived and electrodeposited manganese dioxide, Journal of the Electrochemical Society 147 (2), 444-450
Yang, Facile synthesis of MnO2/CNT nanocomposite and its electrochemical performance for supercapacitors, Journal of Materials Science and Enginering B. 176 (2011), 1073-1078
Duong, Controlled synthesis of MnO2/CNT nanocomposites for supercapacitor applications, Materials Technology: Advanced Functional Materials 29 No. 2A (2014), A107-A109.