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Online since: January 2018
Authors: Albert Grino, Eduardo Chan, Delia Senoro
Organoclay was provided by the Materials Science Division of the Department of Science and Technology of the Philippines (DOST).
Gupta: Procedia Materials Science 6 (2014) p. 1686– 1702 [15] P.
Chaki: Materials Science and Engineering 528, 6 (2011) p. 2820– 2830
Aris: Journal of Membrane Science 38 (1998) p 161 – 174
Pham: Journal of Membrane Science 318 (2008) p. 129 – 136
Online since: June 2025
Authors: Teewara Suwan, Chayanon Hansapinyo, Suttipong Kamdee, Manop Kaewmoracharoen, Setthawut Pomphuek
Introduction Cement and concrete have long been the primary construction materials due to their strength and durability.
Among these alternatives, renewable, bio-based materials like bamboo are gaining attention.
Materials In this study, Dendrocalamus asper bamboo was sourced from Chiangmai Life Construction (CLC) Co., Ltd., in Chiang Mai, Thailand.
Special thanks to the Thailand Toray Science Foundation's Science & Technology Research Grants (STRG) for their inspiration and support.
Limkatanyu: Materials Vol. 16 (2023), p. 1352
Online since: November 2013
Authors: Sheng Ji Jin, Zi Xin Liu, Zhong Liang Li, Yan Ling Wang
CBF is a kind of good reinforcement materials with so many advantages including simple construction, favorable reinforcement effect and low cost.
Introduction Continuous basalt fiber (CBF) is a kind of inorganic fiber materials.
The Research of CBF Reinforcement Properties in Engineerings CBF reinforced polymer (BFRP) is a new type of fiber composite materials.
Conclusions (1) Concrete reinforced with CBF is a new kind of composite materials.
Karger-Kocsis: Journal of Materials Science (2005) [2] Fengjie Qi, Jinwen Li, Chuanxiao Li, Huazhen Wei and Yongzhong Gao: High-tech Fiber & Application (2006)(In Chinese) [3] Jie Lian, Yongxin Yang and Meng Yang: Ind.
Online since: July 2011
Authors: Yan Chang Liu, Wei Zheng, Jia Zhang, Yu Kun Ma
Design of the Glass matching-material system based on the Fuzzy-PID control Yanchang Liu1,a, Wei Zheng1,b, Jia Zhang1,c and Yukun Ma1,d 1Henan Institute of Science and Technology, Xinxiang 453003,China alyc5748056@qq.com, bkarl777@163.com, c83599504@qq.com, d110561281@qq.com Keywords: matching-material system, fuzzy control, PID control, expert system Abstract.
Introduction Glass matching-material system is based on production needs to be sandstone, limestone, dolomite, feldspar, soda, Glauber's salt and other raw materials in proportion to automatically transfer, mixing process.
Analysis of the controlled object In the glass matching-material system, glass weighing control of raw materials commonly used to complete the electronic scale weighing system.
Journal of Huaqiao University(Natural Science),2005, 26(1):38-42(In Chinese)
JOURNAL OF TSINGHUA UNIVERSITY(SCIENCE AND TECHNOLOGY),2000(1):120-123(In Chinese)
Online since: January 2017
Authors: Hai Liang Chu, Yong Jin Zou, Fen Xu, Yu Long Shao, Li Xian Sun
Study on Al-BiCl3-Hydride Composites Hydrogen Generation Materials Yu-long Shao, Li-xian Suna, Fen Xub, Yong-Jin Zou and Hai-Liang Chu Guangxi Key Laboratory of Information Materials, Guangxi Collaborative Innovation Center of Structure and Property for New Energy and Materials, School of Material Science and Engineering, Guilin University of Electronic Technology, Guilin, 541004, P.
By hydrogen generation materials, field hydrogen generation would help to reduce links of hydrogen storage and transport[3].
Wang, Research of hydrogen generation by the reaction of Al-based materials with water, Journal of Power Sources, 2013, 222, 188-195
Sun, Studies on hydrogen generation characteristics of hydrolysis of the ball milling Al-based materials in pure water, International Journal of Hydrogen Energy, 2007, 32, (14), 2809-2815
Zhou: Preparation and Hydrogen Generation for Al-LiBH4 Composite Materials.
Online since: October 2004
Authors: Anthony D. Rollett, D. Kinderlehrer, Jee Hyun Lee, Irene Livshits, Shlomo Ta'asan
Citation & Copyright (to be inserted by the publisher ) Mesoscale simulation of grain growth David Kinderlehrer1 , Jeehyun Lee 2 , Irene Livshits3 , Anthony Rollett4 and Shlomo Ta'asan 1 1 Department of Mathematical Sciences and Center for Nonlinear Analysis Carnegie Mellon University Pittsburgh, PA 15213, USA 2 Mathematics Department Yonsei University 134 Sinchon-Dong, Seodaemum-Gu, Seoul, 463-928, South Korea 3 Department of Mathematics, UCA Box 4912 201 Donaghey Avenue University of Central Arkansas Conway, AR 72032, USA 4 Department of Materials Science and Engineering Carnegie Mellon University Pittsburgh, PA 15213, USA Keywords: grain growth, mesoscale, algorithm, dissipative system, Mullins Equation, Herring Condition. two dimensional, three dimensional Abstract.
Simulation is becoming an increasingly important tool, not only in materials science in a general way, but in the study of grain growth in particular.
Journal Title and Volume Number (to be inserted by the publisher) 5 Figure 1.
Chen: Continuum scale simulations of engineering materials: fundamentals-microstructures-process applications, Wiley-VCH Verlag (2004) [2] D.
Rollett: Metallurgical & Materials Transactions,in press (2004) [10] K.
Online since: February 2016
Authors: Anna Kučerová, Jan Sýkora, Eliška Janouchová
Introduction Heterogeneous character of building materials causes spatial variations of mechanical parameters (such as elastic modulus, yield stress or tensile strength) affecting the structural system behaviour under the loading.
We wish to emphasize that this approach is designed only to the epistemic uncertainties, by its applications to heterogeneous materials provides us with the mean values and a small range of uncertainty which shrinks with additional measurements, c.f.
This paper concentrates on stochastic parameter identification of heterogeneous materials from different types of destructive experiments.
Summary The presented paper is focused on developing a method for identification of parameters along with their variations in heterogeneous materials from a set of destructive experiments.
Applied mathematical sciences.
Online since: December 2013
Authors: Bao Guo Yao, Shui Yuan Hong
Six types of fabrics made from different textile materials were measured.
The objective measurement of the dynamic moisture transfer properties of textile materials and its applications to the objective evaluation of textile materials and apparel engineering surely help to produce higher quality textile materials and certain other porous materials.
Experiments Six types of fabrics with different structural features and made from different materials were tested for the experiments of moisture transfer difference between two surfaces of textile materials.
Six types of fabrics with different structural features and made from different materials were tested.
Dururd, Journal of The Textile Institute, 2013, 104(7): 699-707
Online since: July 2014
Authors: Senthil Rajan, K Raja
Various solid and liquid sensible heat storage materials, Evaporative surface materials are used in the form of billets, in the still.
Materials are shown in Table.1.
The productivity ranges of the materials are 1024 ml/m2/day for sea shell because of the calcium content it will absorb more heat than other materials.
Jordan Journal of Mechanical and Industrial Engineering 1 (2007), 23-29; ISSN 1995-6665
Journal of Advanced Science and Engineering Research Vol 2. (2012), 168 - 177; [11] D.W.Medugu and L.G.Ndanewong.
Online since: August 2020
Authors: Shatha D. Mohammed, Hadeel K. Awad, Rawaa K. Aboud
In this research, an experimental study has carried out to investigate the effect of using three types of materials (porcelain aggregate) and others sustainable materials (glass waste and granular activated carbon) as a partial replacement of fine aggregate.
Basically, RPC comprises of fine materials including cement, silica fume, and sand and/or quartz powder [1].
International Journal for Research in Emerging Science and Technology. 3, 12, p. 15-21, 2016
Construction and Building Materials, 113, p. 246-254, 2016
International journal of science and research. 7, 1, p. 1-5, 2018