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Modeling the Effects of Coolant Application in Friction Stir Processing on Material Microstructure Using 3D CFD Analysis

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Abstract

The ability to generate nano-sized grains is one of the advantages of friction stir processing (FSP). However, the high temperatures generated during the stirring process within the processing zone stimulate the grains to grow after recrystallization. Therefore, maintaining the small grains becomes a critical issue when using FSP. In the present reports, coolants are applied to the fixture and/or processed material in order to reduce the temperature and hence, grain growth. Most of the reported data in the literature concerning cooling techniques are experimental. We have seen no reports that attempt to predict these quantities when using coolants while the material is undergoing FSP. Therefore, there is need to develop a model that predicts the resulting grain size when using coolants, which is an important step toward designing the material microstructure. In this study, two three-dimensional computational fluid dynamics (CFD) models are reported which simulate FSP with and without coolant application while using the STAR CCM+ CFD commercial software. In the model with the coolant application, the fixture (backing plate) is modeled while is not in the other model. User-defined subroutines were incorporated in the software and implemented to investigate the effects of changing process parameters on temperature, strain rate and material velocity fields in, and around, the processed nugget. In addition, a correlation between these parameters and the Zener-Holloman parameter used in material science was developed to predict the grain size distribution. Different stirring conditions were incorporated in this study to investigate their effects on material flow and microstructural modification. A comparison of the results obtained by using each of the models on the processed microstructure is also presented for the case of Mg AZ31B-O alloy. The predicted results are also compared with the available experimental data and generally show good agreement.

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References

  1. P. Colegrove and H.R. Shercliff, 3-Dimensional CFD Modeling of Flow Round a Threaded Friction Stir Welding Tool Profile, Mater. Process. Technol., 2005, 169, p 320–327

    Article  CAS  Google Scholar 

  2. T. Hyoe, P.A. Colegrove, and H.R. Shercliff, Thermal and Microstructure Modeling in Thick Plate Aluminum Alloy 7075 Friction Stir Welds, Friction Stir Welding and Processing II, TMS (The Minerals, Metals & Materials Society), 2003

  3. H. Schmidt and J. Hattel, CFD Modeling of the Shear Layer Around the Tool Probe in Friction Stir Welding, Friction Stir and Processing III, TMS, 2005, p 225–232

  4. P. Colegrove and H. Sherchiff, 2-Dimensional CFD Modeling of Flow Round Profiled FSW Tooling, Friction Stir Welding and Processing II, TMS, 2003, p 13–23

  5. T. Long, T. Seidel, W. Tang, and A. Reynolds, A Friction Stir Welding Model Using Computational Fluid Dynamics, Hot Deformation of Aluminum Alloys III, TMS Annual Meeting, San Diego, 2003, p 299–312

  6. H. Zhang, Z. Zhang, and J. Chen, 3D Modeling of Material Flow in Friction Stir Welding Under Different Process Parameters, J. Mater. Process. Technol., 2007, 183, p 62–70

    Article  CAS  Google Scholar 

  7. G. Buffa, J. Hua, R. Shivpuri, and L. Fratini, Design of the Friction Stir Welding Tool Using the Continuum Based FEM Model, Mater. Sci. Eng. A, 2006, 419, p 381–388

    Article  Google Scholar 

  8. G. Buffa, J. Hua, R. Shivpuri, and L. Fratini, A Continuum Based FEM Model for Friction Stir Welding-Model Development, Mater. Sci. Eng. A, 2006, 419, p 389–396

    Article  Google Scholar 

  9. P. Ulysse, Three-Dimensional Modeling of Friction Stir-Welding Process, Int. J. Mach. Tools Manuf., 2002, 42, p 1549–1557

    Article  Google Scholar 

  10. C.M. Chen and R. Kovacevic, Finite Element Modeling of Friction Stir Welding—Thermal and Thermomechanical Analysis, Int. J. Mach. Tools Manuf., 2003, 43, p 1319–1326

    Article  Google Scholar 

  11. C. Chen and R. Kovacevic, Thermomechanical Modeling and Force Analysis of Friction Stir Welding by the Finite Element Method, Proc. Inst. Mech. Eng. C J. Mech. Eng. Sci., 2004, 218, p 17–33

    Google Scholar 

  12. B. Darras and M. Khraisheh, Analytical Modeling of Strain Rate Distribution During Friction Stir Processing, J. Mater. Eng. Perform., 2008, 17, p 168–177

    Article  CAS  Google Scholar 

  13. D. Contorno, M.G. Faga, L. Fratini, L. Settineri, and G. Gautier di Confiengo, Wear Analysis During Friction Stir Processing of A359 + 20%SiC MMC, Key Eng. Mater., 2009, 410–411, p 235–244

    Article  Google Scholar 

  14. G. Fernandez and L. Murr, Characterization of Tool Wear and Weld Optimization in the Friction-Stir Welding of Cast Aluminum 359 + 20% SiC Metal-Matrix Composite, Mater. Charact., 2004, 52, p 65–75

    Article  CAS  Google Scholar 

  15. C. Chang, X. Du, and J. Huang, Achieving Ultrafine Grain Size in Mg-Al-Zn Alloy by Friction Stir Processing, Scr. Mater., 2007, 57, p 209–212

    Article  CAS  Google Scholar 

  16. C. Rhodes, M. Mahoney, W. Bingel, and M. Calabrese, Fine-Grain Evolution in Friction-Stir Processed 7050 Aluminum, Scr. Mater., 2004, 48, p 1451–1455

    Article  Google Scholar 

  17. C. Chang, X. Du, and J. Huang, Achieving Ultrafine Grain Size in Mg-Al-Zn Alloy by Friction Stir Processing, Scr. Mater., 2008, 59, p 356–359

    Article  CAS  Google Scholar 

  18. X. Du and B. Wu, Using Two-Pass Friction Stir Processing to Produce Nanocrystalline Microstructure in AZ61 Magnesium Alloy, Sci. China Ser. E Technol. Sci., 2009, 52(6), p 1751–1755

    Article  CAS  Google Scholar 

  19. S. Aljoaba, I. Jawahir, O. Dillon, M. Ali, and M. Khraisheh, Modeling of Friction Stir Processing Using 3D CFD Analysis, Material Forming 12th ESAFORM Conference, Netherlands, April 2009

  20. B. Darras, “Integrated Thermo-Mechanical Investigations of Friction Stir Processing of Light Weight Alloys,” PhD Theses, University of Kentucky, 2008

  21. S. Aljoaba, “Experimental Investigation and Modeling of Friction Stir Processing Using 3D CFD Analysis,” Master’s Thesis, University of Kentucky, 2009.

  22. T. Sheppard and D. Wright, Determination of Flow Stress: Part 1 Constitutive Equation for Aluminum Alloys at Elevated Temperatures, Met. Technol., 1979, 6, p 215–223

    CAS  Google Scholar 

  23. C. Chang, C. Lee, and J. Huang, Relationship Between Grain Size and Zener-Holloman Parameter During Friction Stir Processing in AZ31Mg Alloys, Scr. Mater., 2004, 51, p 509–514

    Article  CAS  Google Scholar 

  24. Anonymous, ASM International Metals Handbook, ASM Handbook, 10th ed., Vol 2, 1990, p 455

  25. H.J. McQueen, M. Myshlaev, M. Sauerborn, and A. Mwembela, Flow Stress Microstructures and Modeling in Hot Extrusions of Magnesium Alloys, Magnesium Technology 2000, The Minerals, Metals and Materials Society, 2000, p 355–362

  26. O. Frigaard, O. Grong, and O.T. Midling, A Process Model for Friction Stir Welding of Age Hardening Aluminum Alloys, Metall. Mater. Trans. A, 2001, 32, p 1189–1200

    Article  Google Scholar 

  27. Anonymous, Matweb LLC Website, Magnesium AZ31B-O Annealed Sheet, 2010, http://www.matweb.com/search/DataSheet.aspx?MatGUID=ac0c011a4d6a4948ac7b56c07f91b95f&ckck=1

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Correspondence to Marwan Khraisheh.

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Aljoaba, S., Dillon, O., Khraisheh, M. et al. Modeling the Effects of Coolant Application in Friction Stir Processing on Material Microstructure Using 3D CFD Analysis. J. of Materi Eng and Perform 21, 1141–1150 (2012). https://doi.org/10.1007/s11665-011-9985-1

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  • DOI: https://doi.org/10.1007/s11665-011-9985-1

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