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Online since: July 2012
Authors: Bin Hao, Jin Qiang Liu, Fu Wang
Through the dynamic analysis, kinetic parameters of Si-C are calculated, and it is estimated that the time required reaction materials of different diameter completely converted to SiC at different temperatures.
Synthesis of β-SiC by the reaction of gaseous of SiO with advanced carbon [J].Key Engineering Materials, 15 (1999), p. 89 [4] J.
Refractory materials, 38 (2004), p. 59 [5] Y.
Ehrburger.SiC material produced by carbothermal reduction of a freeze gel silica-carbon artefact[J].Journal of the European Ceramic Society,19 (1999),p. 427 [8] R.
Journal of Materials Science, 33 (1998),p. 2537 [9] J.
Synthesis of β-SiC by the reaction of gaseous of SiO with advanced carbon [J].Key Engineering Materials, 15 (1999), p. 89 [4] J.
Refractory materials, 38 (2004), p. 59 [5] Y.
Ehrburger.SiC material produced by carbothermal reduction of a freeze gel silica-carbon artefact[J].Journal of the European Ceramic Society,19 (1999),p. 427 [8] R.
Journal of Materials Science, 33 (1998),p. 2537 [9] J.
Online since: February 2012
Authors: Kang Hu, Ying Kui Gu, Jing Li
Failure Process and Mechanism Analysis for the Connecting Rod of Diesel Engine
Yingkui Gu a, Kang Hub and Jing Lic
School of Mechanical and Electronical Engineering, Jiangxi University of Science and Technology, Ganzhou, Jiangxi, 341000,China
aguyingkui@163.com, bsqhk@163.com, c lucky1107@sina.com
Keywords: Connecting rod, material property, physical and chemical analysis, organization structure, failure mechanism.
The disable part of the large end of the connecting rod installed on the main bearing journal will be turned and impacted sharply the around of parts.
Acknowledgment This research was partially supported by the National Natural Science Foundation of China under the contract number 61164009, the Science and Technology Support Project Plan of Jiangxi Province under the contract number 2010BGB01200 and the Science Foundation of Education Commission of Jiangxi Province under the contract number GJJ11460.
International Journal of Quality & Reliability Management, Vol. 23(2006), p. 1047-1066
Mechanical Science and Technology, Vol. 30(2011), p. 256-258
The disable part of the large end of the connecting rod installed on the main bearing journal will be turned and impacted sharply the around of parts.
Acknowledgment This research was partially supported by the National Natural Science Foundation of China under the contract number 61164009, the Science and Technology Support Project Plan of Jiangxi Province under the contract number 2010BGB01200 and the Science Foundation of Education Commission of Jiangxi Province under the contract number GJJ11460.
International Journal of Quality & Reliability Management, Vol. 23(2006), p. 1047-1066
Mechanical Science and Technology, Vol. 30(2011), p. 256-258
Online since: August 2022
Authors: Rajeev Ranjan, Anil Kumar Das
Ishida, Formation of stainless steel layer on mild steel by welding arc cladding, Journal of materials science, 26(23) (1991) 6431-6435
Baker, Overlapping tracks processed by TIG melting TiC preplaced powder on low alloy steel surfaces, Materials Science and Technology, 31.3 (2015) 337-343
Baker, Microstructural aspects of wear behaviour of TiC coated low alloy steel, Materials Science and Technology, 32.4 (2016) 303-307
Kumar, Surface modification of AISI 4340 steel by multi-pass TIG arcing process, Journal of Materials Processing Technology, 249 (2017) 394-406
Masanta, NiTi coating on Ti-6Al-4V alloy by TIG cladding process for improvement of wear resistance, Journal of Materials Processing Technology, 262 (2018) 551-561
Baker, Overlapping tracks processed by TIG melting TiC preplaced powder on low alloy steel surfaces, Materials Science and Technology, 31.3 (2015) 337-343
Baker, Microstructural aspects of wear behaviour of TiC coated low alloy steel, Materials Science and Technology, 32.4 (2016) 303-307
Kumar, Surface modification of AISI 4340 steel by multi-pass TIG arcing process, Journal of Materials Processing Technology, 249 (2017) 394-406
Masanta, NiTi coating on Ti-6Al-4V alloy by TIG cladding process for improvement of wear resistance, Journal of Materials Processing Technology, 262 (2018) 551-561
Online since: February 2011
Authors: Hao Long Niu, Qing Chun Wang, Yu Xin Wang, Guo Quan Wang
Journal of Materials Science, 1999, Vol. 34(2), 291~299
Materials Science and Engineering A, Vol. 517(2009), 37~45
Materials Science and Engineering A, Vol. 521(2009), 11~15
Journal of Materials Science Letters, Vol. 20(2001), 1047~1048
Materials Science and Engineering A, Vol.293 (2000), 157~164
Materials Science and Engineering A, Vol. 517(2009), 37~45
Materials Science and Engineering A, Vol. 521(2009), 11~15
Journal of Materials Science Letters, Vol. 20(2001), 1047~1048
Materials Science and Engineering A, Vol.293 (2000), 157~164
Online since: February 2012
Authors: Ilias Louis Kyratzis, Yen Bach Truong, Gary Peeters, Lance Nichols, Mike O'Shea, Lyndon Arnold, Rajkishore Nayak, Rajiv Padhye
Introduction
Meltblowing is a single-step process for the production of nonwoven webs directly from polymeric materials.
It is a versatile technique for the production of materials in micro to nanometre scale mainly from polymeric solutions.
Journal of Applied Polymer Science, 2002. 83(6): p. 1280-1287
Journal of Applied Polymer Science, 2004. 91(4): p. 2711-2720
Journal of Applied Polymer Science, 2006. 100(2): p. 1282-1288
It is a versatile technique for the production of materials in micro to nanometre scale mainly from polymeric solutions.
Journal of Applied Polymer Science, 2002. 83(6): p. 1280-1287
Journal of Applied Polymer Science, 2004. 91(4): p. 2711-2720
Journal of Applied Polymer Science, 2006. 100(2): p. 1282-1288
Online since: February 2013
Authors: Gang Bing Song, Nai Zhi Zhao, Shi Yan, Qiu Jing Wang
Acknowledgements
This work was financially supported in part by the Natural Science Foundation of China (51278373), and the Natural Science Foundation of Liaoning Province (201202180), as well as the Science Foundation of Liaoning Education Department (L2012214).
Mal: Journal of Intelligent Material Systems and Structures Vol.18 (2007), p.91
Boller: International Journal of Systems Science Vol. 31-11(2000), p.1333
[3] V.Giurgiutiu: Journal of Intelligent Material Systems and Structures Vol. 16(2005), p.291
Kaczmarek: Journal of Composite Materials, Vol.37-3 (2003), p.987.
Mal: Journal of Intelligent Material Systems and Structures Vol.18 (2007), p.91
Boller: International Journal of Systems Science Vol. 31-11(2000), p.1333
[3] V.Giurgiutiu: Journal of Intelligent Material Systems and Structures Vol. 16(2005), p.291
Kaczmarek: Journal of Composite Materials, Vol.37-3 (2003), p.987.
Online since: March 2017
Authors: Satip Rattanapaskorn, Jedsada Chaishome
Materials and Experimental Method
Materials.
The selected materials used in this work are polypropylene (PP) and flax fibres.
Journal of Materials Science, 2012. 47(6): p. 2700-2711
JOM Journal of the Minerals, Metals and Materials Society, 2006. 58(11): p. 80-86
Journal of Solid Mechanics and Materials Engineering, 2007. 1(9): p. 1073-1084
The selected materials used in this work are polypropylene (PP) and flax fibres.
Journal of Materials Science, 2012. 47(6): p. 2700-2711
JOM Journal of the Minerals, Metals and Materials Society, 2006. 58(11): p. 80-86
Journal of Solid Mechanics and Materials Engineering, 2007. 1(9): p. 1073-1084
Online since: March 2017
Authors: Ying Jie Cai, Asfandyar Khan, Muhammad Asad Saleem, Rashid Masood, Md. Nahid Pervez
Phase change materials for thermal energy storage, Progress in materials science. 65 (2014) 67-123
Paraffin wax mixtures as phase change materials, Solar Energy Materials and Solar Cells. 94 (2010) 2158-2165
Investigation on the Thermo-Regulating Fabric by Using Phase Change Material for Modern Textile Practical Application, American Journal of Polymer Science & Engineering. 3 (2015) 90-99
A Study on Phase Change Material with Reference to Thermal Energy Storage by Using Polyethyleneglycol-1000 to Create Thermo-Regulating Fabric, International Journal of Textile Science. 4 (2015) 53-59
Linear polyurethane ionomers as solid–solid phase change materials for thermal energy storage, Solar Energy Materials and Solar Cells. 130 (2014) 466-473
Paraffin wax mixtures as phase change materials, Solar Energy Materials and Solar Cells. 94 (2010) 2158-2165
Investigation on the Thermo-Regulating Fabric by Using Phase Change Material for Modern Textile Practical Application, American Journal of Polymer Science & Engineering. 3 (2015) 90-99
A Study on Phase Change Material with Reference to Thermal Energy Storage by Using Polyethyleneglycol-1000 to Create Thermo-Regulating Fabric, International Journal of Textile Science. 4 (2015) 53-59
Linear polyurethane ionomers as solid–solid phase change materials for thermal energy storage, Solar Energy Materials and Solar Cells. 130 (2014) 466-473
Online since: July 2013
Authors: Prasad K.D.V. Yarlagadda, M Ahsan, M.Z. Ahmad, Tuquabo Tesfamichael, John Bell
Equation (1) can be applied for n-type material such as WO3 and reducing gas such as CO.
[17] Granqvist, C.G., Handbook of Inorganic Electronic Materials. 1995, Amsterdam: Elsevier
[31] Maffeis, T.G.G., et al., e-Journal of Surface Science and Nanotechnology, 2009. 7: p. 319-322
[34] Santucci, S., et al., Journal of Vacuum Science and Technology, 2000. 18(4): p. 1077
Surface Science, 1979. 86: p. 335-344.
[17] Granqvist, C.G., Handbook of Inorganic Electronic Materials. 1995, Amsterdam: Elsevier
[31] Maffeis, T.G.G., et al., e-Journal of Surface Science and Nanotechnology, 2009. 7: p. 319-322
[34] Santucci, S., et al., Journal of Vacuum Science and Technology, 2000. 18(4): p. 1077
Surface Science, 1979. 86: p. 335-344.
Online since: October 2008
Authors: M. Wu, Xi Lin Zhu
At the same time, GMM has piezomagnetic effect (contrary to magnetostrictive effect), that is, the
magnetic state of the material changes with outside force, thus these materials can be made into all
kinds of sensors.
Tan: Chinese Journal of Scientific Instrument, Vol. 21 (2000) No.1, pp. 38-41 (In Chinese)
Liu: Journal of Applied Physics, Vol. 97 (2005) No.5, pp. 3901-3908
Ludwig: Journal of Applied Physics, Vol. 85 (1999) No.8, pp.6232-6237
Qiang: Magnetic materials (Chemical Industry Press, China 2007), pp.126-169 (In Chinese)
Tan: Chinese Journal of Scientific Instrument, Vol. 21 (2000) No.1, pp. 38-41 (In Chinese)
Liu: Journal of Applied Physics, Vol. 97 (2005) No.5, pp. 3901-3908
Ludwig: Journal of Applied Physics, Vol. 85 (1999) No.8, pp.6232-6237
Qiang: Magnetic materials (Chemical Industry Press, China 2007), pp.126-169 (In Chinese)