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Online since: January 2015
Authors: Darya Nemova, Nikolay Vatin, Ekaterina Talan, Daria Marinenko
Article’s materials are based on estimated data, different Internet resources and information taken from Media.
The panels of facade system ‘Polialpan’ are one of such up-to-date materials.
Methods of calculating depreciation expenses of construction machinery (2012) Journal of Applied Engineering Science, № 1 (10), pp. 43‒48
Hydraulic methods for calculation of system of rear ventilated facades (2014) Applied Mechanics and Materials, Vols. 633‒634, pp. 1007‒1012
Comprehensive method of energy efficiency of residential house (2014) Advanced Materials Research, pp. 1570‒1577
The panels of facade system ‘Polialpan’ are one of such up-to-date materials.
Methods of calculating depreciation expenses of construction machinery (2012) Journal of Applied Engineering Science, № 1 (10), pp. 43‒48
Hydraulic methods for calculation of system of rear ventilated facades (2014) Applied Mechanics and Materials, Vols. 633‒634, pp. 1007‒1012
Comprehensive method of energy efficiency of residential house (2014) Advanced Materials Research, pp. 1570‒1577
Online since: August 2021
Authors: Sergey A. Tipalin, Vladimir A. Ryabov, Yili G. Kalpin
Ridley (Eds.), Superplasticity: 60 Years after Pearson, The Institute of Materials, London, England, 1995
Langdon, Principles of superplasticity in ultrafine-grained materials, Journal of Materials Science. 42 (2007) 1782-1796
Wang, Rheological law and mechanism for super-plastic deformation of Ti–6Al–4V, Materials. 12(21) (2019) 3520
Technical Science. 9 (2018) 446-456
Portnoy, Superplasticity of metal materials with ultra-fine-grained structure, Metal Science and Heat Treatment of Metals. 8 (1977) 28-34.
Langdon, Principles of superplasticity in ultrafine-grained materials, Journal of Materials Science. 42 (2007) 1782-1796
Wang, Rheological law and mechanism for super-plastic deformation of Ti–6Al–4V, Materials. 12(21) (2019) 3520
Technical Science. 9 (2018) 446-456
Portnoy, Superplasticity of metal materials with ultra-fine-grained structure, Metal Science and Heat Treatment of Metals. 8 (1977) 28-34.
Online since: July 2021
Authors: Jyoti Prasad Gogoi, Pankaj Bora, Utpaljyoti Mahanta, Jayanta Kumar Sarmah
An ample of research has been done on development of microwave absorbers [1,2] based on the constitutive parameters viz. complex permittivity (εr ), complex permeability (μ ), thickness (d) and operating frequency (f) of the materials.
However, with ever increasing demand of EMI shielding, the search for new prospective absorbing materials is on progress along with minimum cost production and low maintenance.
Velasco, “Recent advances in carbon-based polymer nanocomposites for electromagnetic interference shielding,” Progress in Materials Science, Vol. 103, pp. 319-373, 2019
The precise measurement of the density of small samples, Journal of Material Science16, 1737-1747, 1981
Guiberteau, “X-ray powder diffraction analysis of a silicon carbide-based ceramic,” Materials Letters vol.49,pp. 137–145, 2001
However, with ever increasing demand of EMI shielding, the search for new prospective absorbing materials is on progress along with minimum cost production and low maintenance.
Velasco, “Recent advances in carbon-based polymer nanocomposites for electromagnetic interference shielding,” Progress in Materials Science, Vol. 103, pp. 319-373, 2019
The precise measurement of the density of small samples, Journal of Material Science16, 1737-1747, 1981
Guiberteau, “X-ray powder diffraction analysis of a silicon carbide-based ceramic,” Materials Letters vol.49,pp. 137–145, 2001
Online since: December 2007
Authors: Hong Gue Shin, Byeong Hee Kim, Heon Young Kim
In this
research , Ni (for low aspect ratio) and Si(for high aspect ratio) were used as the materials of the
stampers.
For precise measurement of the temperature of the stampers and materials, not only the thermocouplers but also the infrared camera (NEC, Thermo Tracer, TH5104) were used (see Fig. 5).
A PMMA (dimension: 2x2x0.1cm) was used as the embossing material.
Vacuum Science and Technology B, Vol. 14, Issue 6 (1996), p. 4129
[5] Yoshihiko, H., Masaki, F., Takahiro, O., Yoshio, T., "Study of the resist deformation in nanoimprint lithography", Journal of Vacuum Science and Technology B, Vol. 19, No. 6 (2001), p. 2811
For precise measurement of the temperature of the stampers and materials, not only the thermocouplers but also the infrared camera (NEC, Thermo Tracer, TH5104) were used (see Fig. 5).
A PMMA (dimension: 2x2x0.1cm) was used as the embossing material.
Vacuum Science and Technology B, Vol. 14, Issue 6 (1996), p. 4129
[5] Yoshihiko, H., Masaki, F., Takahiro, O., Yoshio, T., "Study of the resist deformation in nanoimprint lithography", Journal of Vacuum Science and Technology B, Vol. 19, No. 6 (2001), p. 2811
Online since: February 2020
Authors: Song Jeng Huang, Philip Nathaniel Immanuel
Introduction
In the recent decade nano materials are playing very important role in the material science research.
The enhanced properties in the characteristic behaviors after the size reduced to nano region made a great attraction towards nano science.
Transition metal dichalcogenides (TMDs) nano materials such as Tungsten disulfide WS2 were used in many fields such as electronics, photonics, spintronic [1] solid lubricant, catalyst, photosensitive films [2].
In the same method some other inorganic materials also can be synthesized such as MoS2, MoSe2 and WSe2[2].
European Journal of Inorganic Chemistry, 2017
The enhanced properties in the characteristic behaviors after the size reduced to nano region made a great attraction towards nano science.
Transition metal dichalcogenides (TMDs) nano materials such as Tungsten disulfide WS2 were used in many fields such as electronics, photonics, spintronic [1] solid lubricant, catalyst, photosensitive films [2].
In the same method some other inorganic materials also can be synthesized such as MoS2, MoSe2 and WSe2[2].
European Journal of Inorganic Chemistry, 2017
Online since: August 2015
Authors: R.K. Singh Raman, Gaur Swati, Anand Sawroop Khanna
Experimental Procedure
Materials.
Luan, Journal of Alloys and Compounds, 336(1–2) (2002) 88-113
Chu, Corrosion Science, 53(4) (2011) 1522-1528
Atrens, Advanced Engineering Materials, 5(12) (2003) 837-858
Song, Corrosion Science, 49(4) (2007) 1696-1701.
Luan, Journal of Alloys and Compounds, 336(1–2) (2002) 88-113
Chu, Corrosion Science, 53(4) (2011) 1522-1528
Atrens, Advanced Engineering Materials, 5(12) (2003) 837-858
Song, Corrosion Science, 49(4) (2007) 1696-1701.
Online since: December 2011
Authors: Su Qiu Jia, Hua Chen, Zhan Kui Zhao, Jing Xin Guan, Shu Yan Jia
Optimization of Process Parameters for Electroless Ni-P Plating on AZ91D Magnesium Alloy by Phosphate Pretreatment
Suqiu Jia1, 2,a, Jingxin Guan1,a, Zhankui Zhao1,b ,Hua Chen1,c and Shuyan Jia3,d
1 Key Laboratory of Advanced Structural Materials,Ministry of Education,Changchun University of Technology,Changchun,130012, China
2 Key Laboratory of Automobile Materials, Ministry of Education, Jilin University (Nanling Campus), Changchun, 130022, China
3 Liaoyuan School of Business and Technology,Liaoyuan, Jilin Province,China,136200
ajiasuqiu@mail.ccut.edu.cn, bzhaozk@mail.ccut.edu.cn, cchenhua@mail.ccut.edu.cn,djiasuyan@126.com
Keywords: AZ91D, Electroless Ni-P Plating, Optimization, Phosphate pretreatment
Abstract.
Acknowledgment The work was supported by the National Natural Science Foundation of China ( No.50771025 and No.51071034), the Twelth-Five Year Research Program of Science and Technology of education Bureau of Jilin Province(No.2011097) and the Foundation of Key Laboratory of Automobile Materials, Ministry of Education, Jilin University (No.11-450060445347).
Luan :Journal of Alloys and Compounds Vol.336 (2002),p.90 [9] G.
Vol. 200 (2006), p.3010 [15] Prasanta Sahoo , Suman Kalyan Das: Materials and Design Vol.32 (2011), p.1770 [16] K.
Paydar: Materials and Design Vol.31(2010), p. 3097
Acknowledgment The work was supported by the National Natural Science Foundation of China ( No.50771025 and No.51071034), the Twelth-Five Year Research Program of Science and Technology of education Bureau of Jilin Province(No.2011097) and the Foundation of Key Laboratory of Automobile Materials, Ministry of Education, Jilin University (No.11-450060445347).
Luan :Journal of Alloys and Compounds Vol.336 (2002),p.90 [9] G.
Vol. 200 (2006), p.3010 [15] Prasanta Sahoo , Suman Kalyan Das: Materials and Design Vol.32 (2011), p.1770 [16] K.
Paydar: Materials and Design Vol.31(2010), p. 3097
Online since: May 2014
Authors: Ernst Kozeschnik, Peter Lang, Erwin Povoden-Karadeniz, Thomas Weisz, Mohammad Reza Ahmadi, Ahmad Falahati
Thermo-kinetic simulation of the yield strength evolution
of AA7075 during natural aging
Peter Langa, Thomas Weiszb, Mohammad Reza Ahmadib,c,
Erwin Povoden-Karadenizb,c, Ahmad Falahatib and Ernst Kozeschnikb,c
a Materials Center Leoben Forschungsgesellschaft mbH, Leoben, Austria.
b Christian Doppler Laboratory “Early Stages of Precipitation”, Institute of Materials Science and Technology, Vienna University of Technology, Vienna, Austria.
c Institute of Materials Science and Technology, Vienna University of Technology, Vienna, Austria.
Numerical Simulation The vacancy evolution process in the bulk material during quench and subsequent aging is described in section 2.1.
Solute-vacancy First-principle value, present work [eV] Zn – Va 0.032 Mg – Va 0.026 Cu - Va 0.124 Simulation of precipitation strengthening The remarkable strength increase in Al-Zn-Mg(-Cu) alloys during natural aging can be attributed to a high number density of GP-zones with 5-20 nm diameter [[] Fuller C.B., Mahonex M.W., Calabrese M., Micona L., Materials Science and Engineering (2010), A 527, 2233-2240 ].
b Christian Doppler Laboratory “Early Stages of Precipitation”, Institute of Materials Science and Technology, Vienna University of Technology, Vienna, Austria.
c Institute of Materials Science and Technology, Vienna University of Technology, Vienna, Austria.
Numerical Simulation The vacancy evolution process in the bulk material during quench and subsequent aging is described in section 2.1.
Solute-vacancy First-principle value, present work [eV] Zn – Va 0.032 Mg – Va 0.026 Cu - Va 0.124 Simulation of precipitation strengthening The remarkable strength increase in Al-Zn-Mg(-Cu) alloys during natural aging can be attributed to a high number density of GP-zones with 5-20 nm diameter [[] Fuller C.B., Mahonex M.W., Calabrese M., Micona L., Materials Science and Engineering (2010), A 527, 2233-2240 ].
Online since: December 2012
Authors: Hou Hua Pang, Zhi Bo Luan, Xiao Dong Tan
The Numerical Analysis of Leakage in Ultrahigh Pressure Seal Structure
Zhibo Luan a, Houhua Pangb and Xiaodong Tan c
School of Mechanical Engineering,Dalian Jiaotong University,China
aluanzhibo@foxmail.com, bpang_houhua@163.com, c txd_f@sina.com
Keywords: Ultrahigh pressure; Seal leakage; Numerical analysis
Abstract.This article states seal clearance and fluid leakage.By means of pressure distribution calculation and theoretical analysis, theoretically it establishs the mathematical model of the leakage with liquid material, the sealing structure and the fuel tank between the internal and external pressure.The whole processes on Matlab platform meet the complex engineering requirements,so the calculation process is simple and convenient.
References [1] Liu H G.Seal technique.Changsha: Hunan Science and Technology Press, 1981
JOURNAL OF MECHANICAL STRENGTH, 2004, 26(5) :556-559 [4] Fu Changan.
References [1] Liu H G.Seal technique.Changsha: Hunan Science and Technology Press, 1981
JOURNAL OF MECHANICAL STRENGTH, 2004, 26(5) :556-559 [4] Fu Changan.
Online since: June 2012
Authors: Li Dan Fan, Li Hua Wu
Laser technology would be a fundamental change with the birth of new materials.
l The heat load is lower on the material.
All materials are high purity materials.
Journal of Non-Crystal Solids, 2002, 311: 138~144M.
Mill Valley, CA: University Science, 1989.
l The heat load is lower on the material.
All materials are high purity materials.
Journal of Non-Crystal Solids, 2002, 311: 138~144M.
Mill Valley, CA: University Science, 1989.