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Online since: March 2007
Authors: Ki Seop Cho, Hyung Ryul Yang, Ho Sup Sim, Kon Bae Lee, Hoon Kwon
Kwon 1,e 1 School of Advanced Materials Engineering, Kookmin University, Seoul, 136-702, Korea 2 Department of Mechanical Engineering, Incheon City College, Incheon, 402-750, Korea a poisonx@hanmail.net, bwidenew@nate.com, c kblee@kookmin.ac.kr, dhryang@icc.ac.kr, e hkwon@kookmin.ac.kr Keywords: Ultrahigh Strength Steel, Co-Ni Steel, Secondary Hardening, Mechanical Properties, Severe Deformation Abstract.
Introduction The development of ultrahigh strength alloy steels combined with high toughness is an important subject in advanced materials research.
Acknowledgment This work was supported by the Korea Science and Engineering Foundation(KOSEF # R01- 2003-000-10341-0).
Forum, vol. 500-501 (2005), p 581
Forum, vol. 475-479 (2005), p.183.
Online since: June 2008
Authors: Lembit A. Kommel
Department of Materials Engineering, Tallinn University of Technology Ehitajate tee 5, 19086 Tallinn, Estonia E-mail: Lembit.Kommel@ttu.ee Keywords: Equal channel angular pressing, Rare metal, Niobium, Tantalum, Ultrafine grained, Electron-beam melting Abstract.
These superior properties make UFG and NC structured pure rare metals attractive for numerous advanced applications in aerospace, electronics, telecommunications, semiconductors and medical industries.
Forum, 558-559 (2007) 125- 130
Forum, 503-504 (2006) 113-118
Forum. 503-504 (2006) 19-24
Online since: December 2004
Authors: Yong Kang Zhang, Yin Qun Hua, Rong Fa Chen, Judith C. Yang
Materials Science Forum Vols. *** (2004) pp.811-815 online at http://scientific.net  2004 Trans Tech Publications, Switzerland Research on Thickness of the Free Confinement Medium in Laser Shock Processing R.F.
Zhang 1,c 1 School of Mechanical Engineering, Jiangsu University, Zhenjiang Jiangsu 212013,China a huayq@ujs.edu.cn, bykzhang@ujs.edu.cn, cjcyang@ujs.edu.cn Keywords: Laser shock processing, Free confinement medium, Optimal thickness Abstract.
Assumingβis dimensionless value modify coefficient (βrelates to the firmness and the critical dynamic fracture strength of the free confinement medium), Eq. 2 is given following 3 2 0 3 1 0 3 2 2 )1/()1( 1/2 )()]1(2[)1()2( Aq K kkP kk kk m ⋅⋅−⋅ +⋅ ⋅= −+ −− ρ β (2) Materials Science Forum Vols. *** 813 The Optimal Thickness of the Free Confinement Medium Fig.1a illustrates laser shock processing.
And when the absorbing coating dries, the Advances in Materials Manufacturing Science and Technology 814 liquid organic mixture is then coated on the specimen surface, and the thickness of mixture is primarily determined through Eq. 3.
Materials Science Forum Vols. *** 815 References [1] Y.K.
Online since: December 2004
Authors: Xing Ai, Z.J. Lü, Jun Zhao
Materials Science Forum Vols. *** (2004) pp.282-286 online at http://scientific.net  2004 Trans Tech Publications, Switzerland Preparation of Agglomerate-free Starting Powders for TiCp-reinforced ß-Sialon Nanocomposites Z.J.
Zhao1,c 1 School of Mechanical Engineering, Shandong University, Jinan 250061, P.R.
To achieve good dispersion of TiC particles in the nanomatrix, an organic surfactant (PEG) was used to separate individual contents powder grains and produce the spatial inhibition necessary to Materials Science Forum Vols. *** 283 avoid particle agglomeration during mixing of the starting powders.
Advances in Materials Manufacturing Science and Technology 284 The suspensions of TiC and Al2O3 were washed twices with ethanol, and mixed together with AlN suspension and Si3N4 powder in an Tefzel coated tank using ethanol as medium.
(a) (b) (a)AlN powder, (b)after treatment in PEG-containing solution Fig.4 Dispersion of TiC powder Fig.5 Treated nanocomposites suspension (before attrition milling) Advances in Materials Manufacturing Science and Technology 286 References [1] T.
Online since: January 2015
Authors: Yi Gang He, Yu Zhu Zhang, Li Fen Yuan, Mao Xu Liu
A test method and test codes generator for improved HT Fault Model based on NoC Yuzhu Zhang1,a ,Yigang He1,b,Lifen Yuan1,c,Maoxu Liu1,d 1School of Electrical Engineering and Automation ,HeFei University of Technology,China a1156311076@qq.com,b18655136887@163.com,c6007542@qq.com ,dliumaoxu@qq.com Keywords:NoC,Crosstalk, Improved HT fault model, Test codes, PSpice Abstract.NoC is a expand for SoC.The architecture of NoC is huge and complex,it leads to the crosstalk fault between internal transmission of NoC increasingly serious.
Acknowledgements This work was supported by the National Natural Science Funds of China for Distinguished Young Scholar under Grant No 50925727, the National Defense Advanced Research Project Grant No.C1120110004,9140A27020211DZ5102,the Key Grant Project of Chinese Ministry of Education under Grant No.313018,Anhui Provincial Science and Technology Foundation of China under Grant No. 1301022036 and Hunan Provincial Science and Technology Foundation of China under Grant No.2010J4 and 2011JK202.
[8]JQ Chen:line identification of nonlinear systems using fuzzy mode[J].Journal of Acta Automatica Sinica,Forum Vol. 24 (1998), p. 90-93 [9]Jinlin Zhang:A New Fault Model for Testing Signal Integrity in SoCs in Chinese.
Forum Vol. 36 (2007), p. 611-613 [10]Shuyan Jiang:Improvement and verification of interconnection crosstalk fault model of network-on-chip in Chinese.ELECTRONICM EASUREM ENT TECHNOLOGY.Forum Vol. 35 (2012), p.123-127 [11]Ji Yang:Interconnect crosstalk test methods research on NoC in Chinese.University of Electronic Science and Technology of China.(2011) [12]Tianrui Duan:PSpice Simulation Analysis and Application for Crosstalk on Flexible Printed Circuit Board in Chinese.EMG SIMULATION (2009)
Online since: October 2010
The 2010 International Conference on Advances in Materials and Manufacturing Processes (ICAMMP 2010) Sponsored by University of Wollongong (UOW), Australia Northeastern University (NU), China University of Science and Technology Beijing (USTB), China Hebei Polytechnic University (HPU), China Hong Kong Industrial Technology Research Centre (ITRC), Hong Kong Conference Organization Co-Chairmen Prof.
Gui Wang, The University of Queensland, Australia Preface The International Conference on Advances in Materials and Manufacturing Processes (ICAMMP 2010) provided a forum for leading researchers, technologists and industrialists around the world to exchange and debate their research results as well as research issue.
This book aims to collect the latest advancement and applications of alloy design, process development, component engineering, prediction of phase composition, high-temperature oxidation, wrought alloys, lifetime estimation and materials behavior, cobalt-base alloys, nickel-iron alloys, joining, alternative materials, powder metallurgy, and the future of superalloys.
The editors hope that this book will not only provide the readers a broad overview of the latest advances but also provide the researchers a valuable summary and reference in this field.
Online since: November 2015
PREFACE This volume contains some selected papers from the The Electronic and Green Materials International Conference (EGM 2015), The Engineering Technology International Conference (ET 2015), The Green Design and Manufacture International Conference (GDM 2015) which is to be held in Surabaya, Indonesia during 31st July - 1st August, 2015, and is organized by Malaysia Research and Innovation Society (MyRIS), Universiti Malaysia Perlis.
The conference aims to provide a high level international forum for researchers, engineers and scientists to present their new advances and research results in the field of advanced materials engineering, machines and technology for sustainable manufacturing systems.
This volume covered all the aspects of advanced materials engineering and technology, particularly of advanced characterization, biomaterials, biotechnology and life sciences, building materials, design for sustainability of manufacturing system, optical and photonic materials, machining and any other related topics.
The editors hope that this volume will provide the reader a broad overview of the latest advances in the field of advanced materials engineering and technology, and that will be as valuable reference source for further research.
Mohd Mustafa Al Bakri Abdullah Rafiza Abdul Razak Muhammad Mahyiddin Ramli Shayfull Zamree Abd Rahim Rizalafande Che Ismail Mohd Nasir Mat Saad Universiti Malaysia Perlis, MALAYSIA September, 2015 Co-organized by International Federation of Inventors' Associations (IFIA) Faculty of Engineering Technology (FETech), UniMAP Center of Excellence Geopolymer & Green Technology (CEGeoGTech) School of Microelectronic Engineering School of Materials Engineering, UniMAP School of Manufacturing Engineering, UniMAP Faculty of Materials Science and Engineering, Gheorghe Asachi Technical University of Iasi, Romania Universitas Ubudiyah Indonesia (UUI), Banda-Aceh, Indonesia International Advisory Board Prof.
Online since: January 2013
In this context, while traditional engineering applies physical and mathematical sciences to analyze, design and manufacture inanimate tools, structures and processes, biological engineering uses primarily the rapidly developing body of knowledge known as molecular biology to study and advance applications of living organisms.
The differentiation between biological engineering and overlap with Biomedical engineering can be unclear, as many universities now use the terms "bioengineering" and "biomedical engineering" interchangeably.
Neither biological engineering nor biomedical engineering is wholly contained within the other, as there are non-biological products for medical needs and biological products for non-medical needs.
For example, biomimetics is a branch of biological engineering which strives to find ways in which the structures and functions of living organisms can be used as models for the design and engineering of materials and machines.
Thus biological engineering is a science-based discipline founded upon the biological sciences in the same way that chemical engineering, electrical engineering, and mechanical engineering are based upon chemistry, electricity and magnetism, and classical mechanics, respectively.
Online since: February 2012
Preface The International Conference on Manufacturing Science and Engineering is the premier forum for the presentation of new advances and research results in the fields of Manufacturing Science and Engineering.
The conference brings together leading researchers, engineers and scientists in the domain of interest from around the world.
Following the style of the previous two successful congresses, the 3rd International Conference on Manufacturing Science and Engineering was held in Xiamen, China, 27-29 March 2012, Organized by Fujian University of Technology, Xiamen University, Fuzhou University, Huaqiao University, University of Wollongong, Fujian Mechanical Engineering Society, China and Hong Kong Industrial Technology Research Centre.
The program was designed to advance manufacturing technologies to the next generation through discussion of the most recent advances and future perspectives, and to engage the worldwide community in a collective effort to solve problems in manufacturing.
The present volumes provide up-to-date, comprehensive and worldwide state-of-the art knowledge of the manufacturing science and engineering, including: advanced composite materials, advanced mechanical design, new materials and processes, advanced manufacturing technology, automation equipment and systems.
Online since: September 2012
Authors: Li Juan Yu, Wen Ran Wang, Bo Gao, Ai Min Zhu
References [1] Suder and Asli: Green productivity and management, Portland International Conference on Management of Engineering and Technology (2006), p.157-165 [2] Xiaoling Wu and Chao Ji: Five direct source of corporate green competitive [J].
Economic Management, 2002(6), P.195-198 [8] Rusinko and Cathy: A Green manufacturing: An evaluation of environmentally sustainable manufacturing practices and their impact on competitive outcomes, IEEE Transactions on Engineering Management.
Forum Vol.8 (2007), p.445-454 [9] Uda, Keichiro, Morimoto and Hiroshi: Towards the environmentally advanced company- Deployment of super green strategy, Shapu Giho/Sharp Technical Journal, Forum Vol.8(2004), p.49-54 [10] L.
Thomas: Development of enhanced green strength lubricating systems for green machining, Fenmo Yejin Jishu/Powder Metallurgy Technology, Forum Vol.10 (2003), p.270-277 [11] Kuo and Tsai-Chi: Green product development in quality function deployment by using fuzzy logic analysis, IEEE International Symposium on Electronics and the Environment, Forum Vol.11 (2003), p. 88-93 [12] Bo Gao: The research of manufacturing green products competitiveness evaluation, Shenyang University of Technology (2007)