Search Options

Sort by:

Sort search results by

Publication Type:

Publication Type filter

Open access:

Publication Date:

Periodicals:

Periodicals filter

Search results

Online since: May 2019
Authors: Teik Cheng Lim
Suh: Materials Science and Engineering, vol. 95 (1987) p. 303-308
Lim: Proceedings of the Institution of Civil Engineers-Engineering and Computational Mechanics, vol. 170 (2017) p. 167-173
Lim: Journal of Engineering Materials and Technology, vol. 138 (2016) p. 014501
Lim: Journal of Engineering Materials and Technology, vol. 138 (2016) p. 041011
Lim: Mechanics of Advanced Materials and Structures, vol. 22 (2015) p. 205-212
Online since: October 2013
Authors: Bin Fang, Chun Lin Wang, Xiu Guo Xu, Chong Hai Xu, Ming Dong Yi
Ouyang, S.Sasaki, T.Murakami, K.Umeda: Materials Science and Engineering.
Vol. 30 (2012), p. 91 [4] Tanemoto K, Kani T: Key Engineering Materials.
Vol. 108-110 (1995), p. 85 [5] Zhongqi Shi, Jiping Wang, Guanjun Qiao: Materials Science and Engineering.
Vol.24 (2006), p. 17 [12] Haiyun Jin, Hui Xu, Guanjun Qiao: Materials Science and Engineering.
Vol. 483-484 (2008), p. 214 [13] Guiqing Chen, JiecaiHan, Shanyi Dun: Journal of Materials Engineering .
Online since: July 2024
Authors: Melvin Mununuri Mashingaidze
Implications of the Global Race to Net-Zero by 2050 for the Strategic Fleet of Coal-Fired Power Plants in SADC MASHINGAIDZE Melvin Mununuri* University of Namibia, School of Engineering & the Built Environment, Department of Mechanical & Metallurgical Engineering, Ongwediva 15006, Namibia mmashingaidze@unam.na Keywords: coal power and energy access; greenhouse gas emissions; United Nations Sustainable Development Goals and energy policy; just energy transition; energy security and climate finance.
Installation of advanced emissions abatement technologies is dependent on access to climate finance, technology transfer and technical collaboration, and capacity-building support from multilateral development institutions [5,19].
CFPPs are going to be around beyond 2050, with new ones coming online even in advanced economies, especially those with abundant coal deposits [18,79,105,111,112].
The nuclear power plants will be based on next-generation advanced modular reactors (AMRs) set to hit the market in 2028, which will permit the decoupling of the nuclear reactor from the rest of the power plant, enabling the use of pre-existing CFPP equipment and reducing capital costs by close to 40 % [120].
Forum [68] UNFCCC 2023 Outcome of the first global stocktake.
Online since: February 2013
Authors: Fei Cheng, Mohamed Nayel, Sai Yu Shi
To solve these two problem, the advanced encode and encrypt technologies should be used in the WLAN communication [12].
For improving performance of each technology used in smart grid, some new mathematics methods and advanced electronic devices could be used into this area.
In recent years, the smart systems are springing up based on advanced electronic technologies.
Liu, „Research and implementation of on-line monitoring techniques for high voltage equipments in Smart Grid,“ High Voltage Engineering and Application (ICHVE), 2010 International Conference on, pp. 236-239, 11-14 Oct 2010
Hyun, "Optimal placement of phasor measurement units with GPS receiver," Power Engineering Society Winter Meeting, 2001.
Online since: February 2022
Authors: Yulia Bakhracheva
Bakhracheva, The use of fractal formalism for the description of microstructures engineering materials, Solid State Phenomena. 316 (2021) 923-927
Bakhracheva, Prediction of residual life of reactor steels to ensure safe operation of nuclear power plant reactor vessels, IOP Conference Series: Materials Science and Engineering. 451(1) (2018) 012202
Khokhlov, Wear laws at elastic interaction, Russia Engineering Research. 16 (1996) 11-12
The influence of thermocyclic treatment on the structure and mechanical properties of pseudo-alpha titanium alloys for steam turbine blades, Materials Science Forum. 1031 (2021) 117-124
Matusevich, Passive probe-coil magnetic field test of stress-strain state for welded joints, Advances in Intelligent Systems and Computing. 1259 (2021) 312-323
Online since: January 2022
Authors: Ahmad Zahirani Ahmad Azhar, Afifah Ali, Hanisah Manshor
Effect of Pressure Load on the Physical Properties of ZTA-TiO2-Cr2O3 HANISAH Manshor1,a*, AFIFAH Mohd Ali2,b and AHMAD Zahirani Ahmad Azhar2,c 1Department of Science in Engineering, Faculty of Engineering, International Islamic University Malaysia, 53100 Gombak, Selangor, Malaysia 2Department of Manufacturing and Materials Engineering, Faculty of Engineering, International Islamic University Malaysia, 53100 Gombak, Selangor, Malaysia ahanisahmanshor@iium.edu.my, bafifahali@iium.edu.my, czahirani@iium.edu.my Keywords: ZTA-TiO2-Cr2O3, pressure load, density, Vickers hardness.
The phase composition and crystalline structure of the sintered samples were analysed by XRD (Bruker D8 Advance) with CuKα radiation operating at 40kV and 30mA.
Xiang, Size effect in compression fracture: Splitting crack band propagation bazant, Journal of Engineering Mechanics-asce 123 (1997) 162–172
Abed, Simulation of cold die compaction alumina powder, Trends in Mechanical Engineering and Technology 1.1 (2011) 1–21
Rashid, Effect of compaction pressure on mechanical properties of aluminium particle sizes AA6061Al alloy through powder metallurgical process, ARPN Journal of Engineering and Applied Sciences 11.8 (2016) 5155–5160
Online since: May 2011
Authors: Bai Yang Lou, Bin Xu
Synthesis and Characterization of Copper/Paraffin Nanocomposites for Thermal Actuation Bin Xu 1,a, Baiyang Lou 2,b 1,2Institute of Material and Surface Engineering, Zhejiang University of Technology, Hangzhou, 310014, China axub@zjut.edu.cn, blby00518@163.com Keywords: Nanocomposites, High energy ball milling, Thermal sensitivity, Microstructure Abstract.
It also can be used as thermo-sensitive and expansive materials for thermal actuation with a high sensitivity at the phase change temperature, which gives them great advantages in engineering applications[1-2].
Sharma: Advanced engineering materials, Vol.10 (2008) No.4, pp.366-370
Lu: Introduction to Powder Engineering (Shanghai: Tongji University Press, China 1993)
Maccormick: Materials Forum, Vol.16 (1992), pp.91-95
Online since: March 2016
Authors: Qing Lin Jin, Tong Huang, Ya Lu
Materials Science and Engineering A ,1996, 207, 159- 169
Materials Science and Engineering R, 2009, 65, 39–104
High-nitrogen steels: the current state and development trends.Advanced Steels, 2011:367-370
Proceedings of the 8th Vacuum Metallurgy and Surface Engineering Conference.
Materials Science and Engineering A, 2006, 417, 307–314
Online since: November 2017
Authors: Martin Kraus, Vratislav Mareš, Adéla Podepřelová
Reed, Analysis of fatigue crack initiation and S–N response of model cast aluminium piston alloys, Materials Science and Engineering: A, Volume 528, Issue 24, 15 September 2011, Pages 7331-7340
Reed, Micromechanisms of short fatigue crack growth in an Al–Si piston alloy, Materials Science and Engineering: A, Volume 612, 26 August 2014, Pages 302-309, ISSN 0921-5093
London: Mechanical Engineering Publications: 1990. p. 147-62
Mater Sci Forum 2006;1083: 519-521
Moffat, Micromechanistic analysis of fatigue in aluminium silicon casting aloys (Ph.D. thesis), School of Engineering Sciences, University of Southampton, 2007
Online since: February 2015
Authors: Guo Ran Hua, Zhi Lan Ju, Fu Bao Zhang, Tong Ming Tang, Yu Feng Zhao, Xiao Jing Xu
The Effect of Enhanced Solution Treatment on Microstructures and Properties of 6013 Type Aluminum Alloy Fubao ZHANG1, 2, a, Tongming TANG1,b, Yufeng ZHAO3, Xiaojing XU2, Zhilan JU1 and Guoran HUA1 1School of Mechanical Engineering, Nantong University, Nantong 226019, China 2Engineering Institute of Advanced Manufacturing and Modern Equipment Technology, Jiangsu University, Zhenjiang 212013, China 3Nantong Polytechnic College, Nantong 226002, China antuzfb@126.com, btomtang@ntu.edu.cn Keywords: 6013 type aluminum alloy; enhanced solution treatment; microstructure; mechanical properties; corrosion resistance Abstract.
Materials Forum. 2004(28): 832-837
Materials Science and Engineering A. 2006: 687-692
Rare Metal Materials and Engineering. 2007, 36(Suppl.3): 195-198
Material Science Engineering A. 1997, 238(2): 293-302.