Title of article :
Introducing an Enhanced Friction Model for Developing Inertia Welding Simulation: A Computational Solid Mechanics Approach
Author/Authors :
Meyghani, B Institute of Materials Joining - Shandong University - Jingshi Road - Jinan, China , Awang, M Department of Mechanical Engineering - Faculty of Engineering - Universiti Teknologi PETRONAS (UTP) - Bandar Seri Iskandar - Perak Darul Ridzuan, Malaysia , Emamian, S.S Department of Mechanical Engineering - Faculty of Engineering - Center of Advance Manufacturing and Material Processing (AMMP) - University of Malaya, Malaysia
Abstract :
Numerical simulation of inertia welding attracts enormous research interest during the past decades. Extremely large plastic deformation and complicated frictional behavior make this simulation challenging. In this paper, Norton friction model is modified to be employed in a computational solid mechanics model of inertia welding. A continuous remeshing technique is used to avoid the mesh distortion problem. The results show that after 1.5 (s) the temperature reaches the maximum value of 1200 ℃. After that, a decreasing pattern is found for the welding temperature. Moreover, the maximum deformation of 6 mm is obtained. The stress increased to the maximum values of 975 MPa. Consequently, successful prediction of the temperature distribution, thermal history, equivalent plastic deformation, axial shortening and stress distribution is made. The comparisons between the results of this study and the literature showed that implementing the proposed methodology leads to achieving high accuracy results.
Farsi abstract :
ﺷﺒﯿﻪ ﺳﺎزي ﻋﺪدي ﺟﻮﺷﮑﺎري اﯾﻨﺮﺳﯽ در دﻫﻪ ﻫﺎي ﮔﺬﺷﺘﻪ ﻣﻮرد ﺗﻮﺟﻪ ﺗﺤﻘﯿ ﻘﺎﺗﯽ زﯾﺎدي ﻗﺮار ﮔﺮﻓﺘﻪ اﺳﺖ. ﺗﻐ ﯿ ﯿﺮ ﺷﮑﻞ ﻣﻮمﺳﺎن ﺑﺴﯿﺎر ﺑﺰرگ و رﻓﺘﺎر اﺻﻄﮑﺎﮐﯽ ﭘ ﯿﭽﯿﺪه اﯾﻦ ﺷ ﺒﯿﻪ ﺳﺎزي را ﺑﻪ ﭼﺎﻟﺶ ﻣ ﯽ ﮐﺸﺪ. در اﯾﻦ ﻣﻘﺎﻟﻪ ﻣﺪل اﺻﻄﮑﺎك ﻧﻮرﺗﻮن اﺻﻼح ﺷﺪه اﺳﺖ ﺗﺎ در ﯾﮏ ﻣﺪل ﻣﮑﺎﻧﯿ ﮑﯽ ﺟﺎﻣﺪ ﻣﺤﺎﺳﺒﺎﺗﯽ ﺟﻮﺷﮑﺎري اﯾﻨﺮﺳ ﯽ اﺳﺘﻔﺎده ﺷﻮد. ﺑﺮاي ﺟﻠﻮﮔﯿﺮي از ﻣﺸﮑﻞ واﭘﯿﭽﺶ ﻣﺶ از ﯾﮏ روش ﺑﺎزﺳﺎزي ﻣﺪاوم اﺳﺘﻔﺎده ﻣﯽﺷﻮد. ﻧﺘﺎﯾﺞ ﻧﺸﺎن ﻣﯽدﻫﺪ ﮐﻪ ﺑﻌﺪ از 1.5 ﺛﺎﻧﯿﻪ دﻣﺎ ﺑﻪ ﺣﺪاﮐﺜﺮ ﻣﻘﺪار 1200 ﻣﯽرﺳﺪ. ﭘﺲ از آن، اﻟﮕﻮي ﮐﺎﻫﺸﯽ ﺑﺮاي دﻣﺎي ﺟﻮش ﺑﺮوز ﻣﯽ ﮐﻨﺪ ﻋﻼوه ﺑﺮ اﯾﻦ، ﺣﺪاﮐﺜﺮ ﺗﻐ ﯿﯿﺮ ﺷﮑﻞ 6 ﻣ ﯿﻠﯽ ﻣﺘﺮ ﺑﻪ دﺳﺖ ﻣﯽ آﯾﺪ. ﻣﻘﺎدﯾﺮ ﺗﻨﺶ ﺑﻪ ﺣﺪاﮐﺜﺮ 975 ﻣﮕﺎﭘﺎﺳﮑﺎل اﻓﺰاﯾﺶ ﯾ ﺎﻓﺖ. در ﻧ ﺘﯿﺠﻪ، ﭘﯿﺶ ﺑﯿﻨﯽ ﻣﻮﻓﻘﯿ ﺖ آﻣﯿ ﺰ ﺗﻮزﯾﻊ دﻣﺎ، ﺗﺎرﯾﺨﭽﻪ ﺣﺮارﺗﯽ، ﺗﻐ ﯿ ﯿﺮ ﺷﮑﻞ ﻣﻮمﺳﺎن ﻣﻌﺎدل، اﻧﻘﺒﺎض ﻣﺤﻮري و ﺗﻮزﯾﻊ ﺗﻨﺶ ﻣﻤﮑﻦ ﻣﯽﺷﻮد. ﻣﻘﺎﯾﺴﻪ ﺑﯿﻦ ﻧﺘﺎﯾﺞ اﯾﻦ ﻣﻄﺎﻟﻌﻪ و اﻃﻼﻋﺎت ﮔﺰارش ﺷﺪه در ادﺑﯿﺎت ﻧﺸﺎن داد ﮐﻪ اﺟﺮاي روش ﭘﯿﺸﻨﻬﺎدي ﻣﻨﺠﺮ ﺑﻪ دﺳﺖ ﯾﺎﺑﯽ ﺑﻪ ﻧﺘﺎﯾﺞ ﺑﺎ دﻗﺖ ﺑﺎﻻ ﻣﯽ ﺷﻮد.
Keywords :
computational solid mechanics , solid-state welding , friction model , Coulomb friction model
Journal title :
International Journal of Engineering