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Online since: October 2011
Authors: Sukreen Hana Herman, Farliana Samat Farah, Mohamad Rusop, Shafinaz Shariffudin
Lee, Materials Science and Engineering B, vol. 107 (2004), p. 301-304
Dutta, Science and Technology of Advanced Materials, vol. 10 (2009), p. 013001
Ranjbar, Materials Science in Semiconductor Processing, vol.13 (2011) p. 267-271
Caglar, and M.caglar, Journal of Optoelectronics and Advanced Materials, vol. 10 (2008), p. 2578-2683
Mukherjee, Materials Letters, vol. 65 (2011), p. 2572-2574
Dutta, Science and Technology of Advanced Materials, vol. 10 (2009), p. 013001
Ranjbar, Materials Science in Semiconductor Processing, vol.13 (2011) p. 267-271
Caglar, and M.caglar, Journal of Optoelectronics and Advanced Materials, vol. 10 (2008), p. 2578-2683
Mukherjee, Materials Letters, vol. 65 (2011), p. 2572-2574
Online since: March 2019
Authors: Le Van Duong, P.A. Oganesyan, E.V. Kirillova, Arkady N. Soloviev
Non-uniformly polarized piezoceramic materials can be used in effective energy harvesting devices.
Mathematical Model Let us examine a piezoelectric transducer Ω, presented by a set of areas Ωj = Ωpk; k = 1, 2,..., Np; j = k with the properties of piezoelectric materials, and a set of areas Ωj = Ωem; m = 1,2,...
,Ne; j = Np + m with the properties of elastic materials.
Comparison Between Applied Theory and Finite Element Method for Energy Harvesting Non-homogeneous Piezoelements Modeling. // Advanced Materials Techniques, Physics, Mechanics and Applications.
Journal of Applied Mechanics and Technical Physics, 42(1), 2001, 164-168
Mathematical Model Let us examine a piezoelectric transducer Ω, presented by a set of areas Ωj = Ωpk; k = 1, 2,..., Np; j = k with the properties of piezoelectric materials, and a set of areas Ωj = Ωem; m = 1,2,...
,Ne; j = Np + m with the properties of elastic materials.
Comparison Between Applied Theory and Finite Element Method for Energy Harvesting Non-homogeneous Piezoelements Modeling. // Advanced Materials Techniques, Physics, Mechanics and Applications.
Journal of Applied Mechanics and Technical Physics, 42(1), 2001, 164-168
Online since: February 2011
Authors: Zheng Yi Jiang, Hei Jie Li, Pei Jie Yan, Jing Tao Han, Li Xian Liu
Investigation of High Strength Steel for Automotive Roll-Forming Parts
Peijie Yan1, a, Jingtao Han1, b, Zhengyi Jiang2, c, Heijie Li1, 2, d and Lixian Liu1, e
1School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, P.R.
In principle, all conductive materials and semiconductor materials can be induction heated.
Journal of Materials Processing Technology Vol. 186 (2007), p. 77
Journal of Materials Processing Technology Vol. 210 (2010), p. 2103
Journal of Materials Processing Technology Vol. 210 (2010), p. 2103
In principle, all conductive materials and semiconductor materials can be induction heated.
Journal of Materials Processing Technology Vol. 186 (2007), p. 77
Journal of Materials Processing Technology Vol. 210 (2010), p. 2103
Journal of Materials Processing Technology Vol. 210 (2010), p. 2103
Online since: December 2010
Authors: Hua Chuan Yao, Jun Lin Tao, Bin Jia, Le Bai
Then the damage evolution equation used to describe concrete materials could be fitted.
Introduction Concrete is a kind of engineering materials which used widespread, except under static loading, inevitable but also is acted by earthquake, explosion etc.
For concrete materials without damage , the stress-strain relationship in elastic stage(Within the scope of 30%) is: (1) For concrete materials with damage, in the same load, elastic strain changes from to , the stress-strain relationship is : (2) May see from the formula (3), (4), , so damage factor can be expressed : (3) If measured the in the same load and is within the scope of elastic strain is the same with the nondestructive circumstances , then , specimen is alright.
Beijing: Science Press, 1998, 7-47) [3] Burlion N, Gatuingt F: Compaction and tensile damage in concrete: constitutive modelling and application to dynamics (Comput Methods Appl.
Strain-rate-sensitive constitutive law for concrete (Journal of Engineering Mechanics, 1999, 125(12):1411-1420) [5] WangDaoRong, HuShiSheng: Shock damage evolution regularity of concrete material research(Rock mechanics and engineering, 2003, 22(2):223-226) [6] XiaoShiYun: TianZiKun concrete uniaxial tensile tests of dynamic damage (Journal of civil engineering, 2008, 41 (7) : 14-20)
Introduction Concrete is a kind of engineering materials which used widespread, except under static loading, inevitable but also is acted by earthquake, explosion etc.
For concrete materials without damage , the stress-strain relationship in elastic stage(Within the scope of 30%) is: (1) For concrete materials with damage, in the same load, elastic strain changes from to , the stress-strain relationship is : (2) May see from the formula (3), (4), , so damage factor can be expressed : (3) If measured the in the same load and is within the scope of elastic strain is the same with the nondestructive circumstances , then , specimen is alright.
Beijing: Science Press, 1998, 7-47) [3] Burlion N, Gatuingt F: Compaction and tensile damage in concrete: constitutive modelling and application to dynamics (Comput Methods Appl.
Strain-rate-sensitive constitutive law for concrete (Journal of Engineering Mechanics, 1999, 125(12):1411-1420) [5] WangDaoRong, HuShiSheng: Shock damage evolution regularity of concrete material research(Rock mechanics and engineering, 2003, 22(2):223-226) [6] XiaoShiYun: TianZiKun concrete uniaxial tensile tests of dynamic damage (Journal of civil engineering, 2008, 41 (7) : 14-20)
Online since: December 2024
Authors: S. K. Jeeva Roshini, Jobin Varghese, Lokesh Singh, L. Hrithick Kumar, R. Deepak Suresh Kumar
It highlights the potential for transformative breakthroughs in medicine, energy systems, and materials science, guided by ongoing research and innovation.
These collective studies highlight the pivotal role of nanotechnology in shaping the future of materials science and advancing applications across various industries.
From 2005 onwards, nanomanufacturing research has surged, particularly in engineering, material science, physics, and optics, tackling nanoscale challenges, precision at the nano level, intricate shapes, and novel materials.
Nanotechnology is poised to revolutionize materials science and manufacturing processes. [13,14] The development of nanocomposites and nanomaterial-based products could lead to materials with enhanced strength, durability, and functionality.
Zäch et al in Current Opinion in Solid State and Materials Science, Volume 10, Issues 3-4, June-August 2006
These collective studies highlight the pivotal role of nanotechnology in shaping the future of materials science and advancing applications across various industries.
From 2005 onwards, nanomanufacturing research has surged, particularly in engineering, material science, physics, and optics, tackling nanoscale challenges, precision at the nano level, intricate shapes, and novel materials.
Nanotechnology is poised to revolutionize materials science and manufacturing processes. [13,14] The development of nanocomposites and nanomaterial-based products could lead to materials with enhanced strength, durability, and functionality.
Zäch et al in Current Opinion in Solid State and Materials Science, Volume 10, Issues 3-4, June-August 2006
Online since: September 2015
Authors: Jiu Kai Li, Fang Hou, Yong Jie Liu, Qingyuan Wang
Le Saunier, Laser shock peening of Ti-17 titanium alloy: Influence of process parameters, Materials Science and Engineering: A, 532 (2012) 362-372
Jones, Development of ultrasonic fatigue for rapid high temperature fatigue studies in turbine engine materials, Materials Damage Prognosis, (2005) 247-252
Jones, Ultrasonic fatigue of a single crystal Ni-base superalloy at 1000°C, Materials Science and Engineering: A, 443 (2007) 142-149
Stanzl-Tschegg, Influence of loading frequency on the high cycle fatigue properties of AlZnMgCu1.5 aluminium alloy, Materials Science and Engineering A, 314 (2001) 48 - 54
Stanzl-Tschegg, Influence of loading frequency on high cycle fatigue properties of b.c.c. and h.c.p. metals, Materials Science and Engineering: A, 308 (2001) 143-152
Jones, Development of ultrasonic fatigue for rapid high temperature fatigue studies in turbine engine materials, Materials Damage Prognosis, (2005) 247-252
Jones, Ultrasonic fatigue of a single crystal Ni-base superalloy at 1000°C, Materials Science and Engineering: A, 443 (2007) 142-149
Stanzl-Tschegg, Influence of loading frequency on the high cycle fatigue properties of AlZnMgCu1.5 aluminium alloy, Materials Science and Engineering A, 314 (2001) 48 - 54
Stanzl-Tschegg, Influence of loading frequency on high cycle fatigue properties of b.c.c. and h.c.p. metals, Materials Science and Engineering: A, 308 (2001) 143-152
Structural Analysis and Dielectric Properties of Oxygen Non-Stoichiometry 5% Fe-Doped BaTiO3 Ceramic
Online since: September 2022
Authors: Rozana Aina Maulat Osman, Mohd Sobri Idris, Nur Izzati Muhammad Nadzri, Domingo Arturo Ruiz León, Ku Noor Dhaniah Ku Muhsen
During the past decades, the BaTiO3-based materials have been identified to act as a multiferroic material by doping transition metal such as Fe, Mn, Co, Ni and Cr ion [5-7].
Journal of Materials Science: Materials in Electronics, 1-13
Journal of Materials Science: Materials in Electronics, 29(8), 6797-6804
Journal of Materials Science: Materials in Electronics, 30(8), 7514-7523
Advanced materials, 2(3), 132-138.
Journal of Materials Science: Materials in Electronics, 1-13
Journal of Materials Science: Materials in Electronics, 29(8), 6797-6804
Journal of Materials Science: Materials in Electronics, 30(8), 7514-7523
Advanced materials, 2(3), 132-138.
Online since: October 2016
Authors: M.P. Jenarthanan, B. Desikan
(M.Saktivel, 2014 & 2015) inferred that the mechanical properties of Polymer composite materials are being extensively used in industries.
The survey was conducted on drilling of GFRP composite materials.
Experimental Procedure Materials.
Ramasegar, “Minimizing Push-out Delamination in Glass Fiber Reinforced Polyester Using RSM”, International Journal of Applied Science and Technology, 2012, Vol. 2 No. 3
Machining and Machinability of Materials, Vol. 15, Nos. 3/4, pp.136–146
The survey was conducted on drilling of GFRP composite materials.
Experimental Procedure Materials.
Ramasegar, “Minimizing Push-out Delamination in Glass Fiber Reinforced Polyester Using RSM”, International Journal of Applied Science and Technology, 2012, Vol. 2 No. 3
Machining and Machinability of Materials, Vol. 15, Nos. 3/4, pp.136–146
Online since: May 2012
Authors: Vladimir I. Babitsky, Anish Roy, Agostino Maurotto, Vadim V. Silberschmidt
Material Science and Engineering A, 243(1), pp. 150-154
Journal of Materials Processing Technology, 143-144, pp. 458-463
Journal of Materials Processing Technology, 134(2), pp. 233-253
Journal of Materials Processing Technology, 132, pp. 157-167
Journal of Materials Processing Technology, 113, pp. 342-347
Journal of Materials Processing Technology, 143-144, pp. 458-463
Journal of Materials Processing Technology, 134(2), pp. 233-253
Journal of Materials Processing Technology, 132, pp. 157-167
Journal of Materials Processing Technology, 113, pp. 342-347