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Tytuł artykułu

The investigation of suitable welding parameters in polypropylene sheets joined with friction stir welding

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Welding strength is very important in safe use of polypropylene sheets. The determination of welding parameters and design of the welding tool has an impact on the weld strength. The welding parameters can be determined experimentally. In this study, Charpy impact test is used to determine suitable welding parameters in welding of polypropylene sheets with FSW method. At the same time, the weld zone microstructure is examined and Shore hardness measurements are made. The impact tests were performed on samples cut from the welded sheets. The impact tests values and hardness values were presented graphically. According to the test results, some welded parts behaved similar to the matrix material. In some welding parameters, Charpy impact test values were obtained close to values of the main materials. The suitable welding parameters were determined for polypropylene sheets welding.
Rocznik
Strony
133--140
Opis fizyczny
Bibliogr. 30 poz., rys., tab., wykr.
Twórcy
  • Sakarya University, Department of Mechanical Engineering, 54187 Esentepe Campus, Sakarya, Turkey
Bibliografia
  • [1] http://www.bondtechnologies.net (2018).
  • [2] http://www.holroyd.com (2018).
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  • [4] F. Simoes and D.M. Rodrigues, “Material flow and thermo-mechanical conditions during Friction Stir Welding of polymers: Literature review, experimental results and empirical analysis”, Mater Design 59, 344–351 (2014).
  • [5] R. Singh, V. Kumar, L. Feo, and F. Fraternali, “Experimental investigations for mechanical and metallurgical properties of friction stir welded recycled dissimilar polymer materials with metal powder reinforcement”, Compos Part B-Eng 103, 90‒97 (2016).
  • [6] A. Paoletti, F. Lambiase, and A. Di Ilio, “Analysis of forces and temperatures in friction spot stir welding of thermoplastic polymers”, Int J Adv Manuf Technol 83, 1395–1407 (2016).
  • [7] F. Lambiase, A. Paoletti, and A. Di Ilio, “Friction spot stir welding of polymers: control of plunging force”, Int J Adv Manuf Technol 90, 2827–2837 (2017).
  • [8] S. Eslami, M.A.V. de Figueired, P.J. Tavares, and P.M.G.P. Moreira, “Parameter optimisation of friction stir welded dissimilar polymers joints”, Int J Adv Manuf Technol, DOI 10.1007/ s00170‒017‒0043‒5.
  • [9] Y. Bozkurt, “The optimization of friction stir welding process parameters to achieve maximum tensile strength in polyethylene sheets”, Mater Design 35, 440–445 (2012).
  • [10] M.A. Rezgui, M. Ayadi, A. Cherouat, K. Hamrouni, A. Zghal, and S. Bejaoui, “Application of Taguchi approach to optimize friction stir welding parameters of polyethylene”, EPJ Web of Conferences 6, (2010).
  • [11] Z. Kiss and T. Czigány, “Applicability of friction stir welding in polymeric materials”, Mech Eng 51 (1), 15–18 (2007).
  • [12] S. Saeedy and M.K.B. Givi, “Investigation of the effects of critical process parameters of friction stir welding of polyethylene”, Journal of Engineering Manufacture 225 (8), 1305‒1310 (2011).
  • [13] R. Kumar, R. Singh, I.P.S. Ahuja, R. Penna, and L. Feo, “Weldability of thermoplastic materials for friction stir welding- A state of art review and future applications”, Compos Part B-Eng 137, 1–15 (2018).
  • [14] Y. Huang, X. Meng, Y. Xie, L. Wan, Z. Lv, J. Cao, and J. Feng, “Friction stir welding/processing of polymers and polymer matrix”, Compos Part A-Appl S 105, 235–257 (2018).
  • [15] S.K. Sahu, D. Mishra, R.P. Mahto, V.M. Sharma, S.K. Pal, K. Pal, S. Banerjee, and P. Dash, “Friction stir welding of polypropylene sheet”, Engineering Science and Technology, an International Journal 21, 245–254 (2018).
  • [16] S. Eslami, L. Mourão, N. Viriato, P.J. Tavares, and P.M.G.P Moreira, “Multi-axis force measurements of polymer friction stir welding”, J Mater Process Tech 256, 51–56 (2018).
  • [17] S. Eslami, P.J. Tavares, and P.M.G.P. Moreira, “Fatigue life assessment of friction dtir welded dissimilar polymers”, Prodecia Structural Integrity 5, 1433‒1438 (2017).
  • [18] Y. Yan, Y. Shen, W. Zhang, and W. Hou, “Friction stir spot welding ABS using triflute-pin tool: Effect of process parameters on joint morphology, dimension and mechanical property”, J Manuf Process 32, 269–279 (2018).
  • [19] A. Paoletti, F. Lambiase, A. Di Ilio, “Optimization of friction stir welding of thermoplastics”, Procedia CIRP 33, 562 – 567(2015).
  • [20] M.R. Hajideh, M. Farahani, S.A.D. Alavi, and N.M. Ramezani, “Investigation on the effects of tool geometry on the microstructure and the mechanical properties of dissimilar friction stir welded polyethylene and polypropylene sheets”, J Manuf Process 26, 269–279 (2017).
  • [21] M. Barmouz, J. Seyfi, M.K.B. Givi, I. Hejazi, S.M. Davachi, “A novel approach for producing polymer nanocomposites by in-situ dispersion of clay particles via friction stir processing”, Mater Sci Eng, A 528, 3003–3006 (2011).
  • [22] N. Mendes, A. Loureiro, C. Martins, P. Neto, and J.N. Pires, “Morphology and strength of acrylonitrile butadiene styrene welds performed by robotic friction stir welding”, Mater Design 64, 81–90 (2014).
  • [23] B. Vijendra and A.Sharma, “Induction heated tool assisted friction-stir welding (i-FSW): A novel hybrid process for joining of thermoplastics”, J Manuf Process 20, 234–244 (2015).
  • [24] S. Hoseinlaghab, S.S. Mirjavadi, N. Sadeghian, I. Jalili, M. Azarbarmas, and M.K.B. Givi, “Influences of welding parameters on the quality and creep properties of friction stir welded polyethylene plates”, Mater Design 67, 369–378(2015).
  • [25] E. Azarsa and A. Mostafapour, “Experimental investigation on flexural behavior of friction stir welded high density polyethylene sheets”, J Manuf Process 16, 149–155 (2014).
  • [26] B.C. Liechty and B.W. Webb , “The use of plasticine as an analog to explore material flow in friction stir welding”, J Mater Process Tech 184, 240–250 (2007).
  • [27] N. Sadeghian and M.K.B. Givi, “Experimental optimization of the mechanical properties of friction stir welded Acrylonitrile Butadiene Styrene sheets”, Mater Design 67, 145–153 (2015).
  • [28] P.H.F. Oliveira, S.T. Amancio-Filho, J.F. dos Santos, and E. Hage Jr, “Preliminary study on the feasibility of friction spot welding in PMMA”, Mater Lett 64, 2098–2101 (2010).
  • [29] http://www.simona.de (2018).
  • [30] İ. Küçükrendeci, “Mechanical and microstructural properties of EN AW-6060 aluminum alloy joints produced by friction stir welding”, Bull. Pol. Ac.: Tech. 63 (2), 475‒478 (2015).
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-44a8c6b6-f58f-40a9-83d8-9f7a7e660e41
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