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Research Articles

Investigations on FSW of nylon micro-particle enhanced 3D printed parts applied to a Clark-Y UAV wing

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Pages 474-488 | Received 19 Mar 2022, Accepted 14 Jul 2022, Published online: 12 Aug 2022

References

  • Dilberoglu UM, Gharehpapagh B, Yaman U, et al. The role of additive manufacturing in the era of industry 4. 0. Procedia Manuf. 2017;11(June):545–554.
  • Lim CWJ, Le KQ, Lu Q, Wong CH. An overview of 3-D printing in manufacturing, aerospace, and automotive industries. IEEE Potentials. 2016;35(4):18–22.
  • Tiwary VK, P A, Malik VR. An overview on joining/welding as post-processing technique to circumvent the build volume limitation of an FDM-3D printer. RPJ. 2021;27(4):808–821.
  • Masood SH, Song WQ. Development of new metal/polymer materials for rapid tooling using fused deposition modelling. Mater Des. 2004;25(7):587–594.
  • Mahale RS, Vasanth S, Krishna H, et al. Sensor-based additive manufacturing technologies. Biointerface Res Appl Chem. 2022;12(3):3513–3521.
  • Gibson I, Rosen D, Stucker B. Additive manufacturing technologies: 3D printing, rapid prototyping, and direct digital manufacturing. 2nd ed.; 2015. New York/Heidelberg/Dordrecht/London: Springer.
  • Tiwary V, Arunkumar P, Deshpande AS, et al. Studying the effect of chemical treatment and fused deposition modelling process parameters on surface roughness to make acrylonitrile butadiene styrene patterns for investment casting process. IJRAPIDM. 2015;5(3/4):276.
  • Tiwary VK, Arunkumar P, Deshpande AS, et al. Surface enhancement of FDM patterns to be used in rapid investment casting for making medical implants. RPJ. 2019;25(5):904–914.
  • Torrado Perez AR, Roberson DA, Wicker RB. Fracture surface analysis of 3D-printed tensile specimens of novel ABS-based materials. J Fail Anal Prev. 2014;14(3):343–353.
  • Shrinivas Mahale R, Shamanth V, Hemanth K, et al. Processes and applications of metal additive manufacturing. Mater Today Proc. 2021;54:2–7.
  • Azhiri RB, Mehdizad Tekiyeh R, Zeynali E, et al. Measurement and evaluation of joint properties in friction stir welding of ABS sheets reinforced by nanosilica addition. Meas J Int Meas Confed. 2018;127:198–204.
  • Kah P, Suoranta R, Martikainen J, et al. Techniques for joining dissimilar materials: metals and polymers. Rev Adv Mater Sci. 2014;36(2):152–164.
  • Kazen MG, Asadi P. Advances in friction stir welding and processing related titles. United Kingdom: Woodhead Publishers; 1981.
  • Bhudolia SK, Gohel G, Leong KF, et al. Advances in ultrasonic welding of thermoplastic composites: a review. Materials. 2020;13(6):1284.
  • Spaggiari A, Denti F. Mechanical strength of adhesively bonded joints using polymeric additive manufacturing. Proc Inst Mech Eng C J Mech Eng Sci. 2019;0(0):1–9.
  • Tiwary VK, Padmakumar A, Malik V. Adhesive bonding of similar/dissimilar three-dimensional printed parts (ABS/PLA) considering joint design, surface treatments, and adhesive types. Proc Inst Mech Eng C J Mech Eng Sci. 2022. DOI:10.1177/09544062221089849
  • Garcia R, Prabhakar P. Bond interface design for single lap joints using polymeric additive manufacturing. Compos Struct. 2017;176:547–555.
  • Song P, Fu Z, Liu L, et al. Printing 3D objects with interlocking parts. Comput Aided Geom Des. 2015;35–36:137–148.
  • Xin S, Lai CF, Fu CW, et al. Making burr puzzles from 3D models. ACM Trans Graph. 2011;30(4):1–8.
  • Zhou Y, Sueda S, Matusik W, et al. Boxelization. ACM Trans Graph. 2014;33(4):1–8.
  • Tiwary VK, Ravi NJ, Arunkumar P, et al. Investigations on friction stir joining of 3D printed parts to overcome bed size limitation and enhance joint quality for unmanned aircraft systems. Proc Inst Mech Eng C J Mech Eng Sci. 2020;234(24):4857–4871.
  • Bilici MK, Yukler AI. Effects of welding parameters on friction stir spot welding of high density polyethylene sheets. Mater Des. 2012;33(1):545–550.
  • Malik V, Kailas SV. Understanding the effect of tool geometrical aspects on intensity of mixing and void formation in friction stir process. Proc Inst Mech Eng C J Mech Eng Sci. 2021;235(4):744–714.
  • Malik V, Sanjeev NK, Hebbar HS, et al. Finite element simulation of exit hole filling for friction stir spot welding – a modified technique to apply practically. Procedia Eng. 2014;97:1265–1273.
  • Lin CB, Wu LC. Friction welding of similar and dissimilar materials: PMMA and PVC. Polym Eng Sci. 2000;40(8):1931–1941.
  • Aghajani Derazkola H, Simchi A. Experimental and thermomechanical analysis of friction stir welding of poly(methyl methacrylate) sheets. Sci Technol Weld Join. 2018;23(3):209–218.
  • Bhattacharjee R, Biswas P. Review on thermo-mechanical and material flow analysis of dissimilar friction stir welding. Weld Int. 2021;35(7–9):295–332.
  • Malik V, Sanjeev NK, Bajakke P. Review on modelling of friction stir welding using finite element approach and significance of formulations in simulation. IJMR. 2020;15(2):107–198.
  • Shtrikman MM. Trends in the development of the friction stir welding process. Weld Int. 2015;29(3):230–239.
  • Banjare PN, Sahlot P, Arora A. An assisted heating tool design for FSW of thermoplastics. J Mater Process Technol. 2017;239:83–91.
  • Sahu SK, Mishra D, Mahto RP, et al. Friction stir welding of polypropylene sheet. Eng Sci Technol Int J. 2018;21(2):245–254.
  • Vijendra B, Sharma A. Induction heated tool assisted friction-stir welding (I-FSW): a novel hybrid process for joining of thermoplastics. J Manuf Process. 2015;20:234–244.
  • Lambiase F, Paoletti A, Grossi V, et al. Analysis of loads, temperatures and welds morphology in FSW of polycarbonate. J Mater Process Technol. 2019;266:639–650.
  • Bozkurt Y. The optimization of friction stir welding process parameters to achieve maximum tensile strength in polyethylene sheets. Mater Des. 2012;35:440–445.
  • Romero YM, Moreno Moreno M, Arrieta Cardozo B, et al. Weldability of high-density polyethylene using friction stir welding with a non-rotational shoulder tool. Weld Int. 2018;32(9):640–649.
  • Eslami S, Ramos T, Tavares PJ, et al. Shoulder design developments for FSW lap joints of dissimilar polymers. J Manuf Process. 2015;20(Part 1):15–23.
  • Singh R, Kumar R, Feo L, et al. Friction welding of dissimilar plastic/polymer materials with metal powder reinforcement for engineering applications. Compos B Eng. 2016;101:77–86.
  • Gao J, Li C, Shilpakar U, et al. Microstructure and tensile properties of dissimilar submerged friction stir welds between HDPE and ABS sheets. Int J Adv Manuf Technol. 2016;87(1–4):919–927.
  • Doniavi A, Babazadeh S, Azdast T, et al. An investigation on the mechanical properties of friction stir welded polycarbonate/aluminium oxide nanocomposite sheets. J Elastomers Plast. 2017;49(6):498–512.
  • Sharma AKR, Roy Choudhury M, Debnath K. Experimental investigation of friction stir welding of PLA. Weld World. 2020;64(6):1011–1021.
  • Kumar R, Singh R, Ahuja IPS. Mechanical, thermal and micrographic investigations of friction stir welded: 3D printed melt flow compatible dissimilar thermoplastics. J Manuf Process. 2019;38:387–395.
  • Singh R, Kumar R, Ahuja IPS. Mechanical, thermal and melt flow of aluminum-reinforced PA6/ABS blend feedstock filament for fused deposition modeling. RPJ. 2018;24(9):1455–1468.
  • Dominick V, Rosato PE. Plastics processing data handbook. 2nd ed. London: Chapman & Hall; 1997.
  • Harper CA. Handbook of plastic processes. 1st ed. Hoboken (NJ): John Wiley & Sons, Inc.; 2006.
  • Adin MŞ, Okumuş M. Investigation of microstructural and mechanical properties of dissimilar metal weld between AISI 420 and AISI 1018 Steels. Arab J Sci Eng. 2021;47(7):8341–8350.
  • Materials P, Materials EI, Matrix P, et al. Standard test method for tensile properties of plastics 1. 2006:1–17. DOI:10.1520/D0638-14
  • American Society for Testing and Materials, Materials EI, Manufacturing CB, et al. Rubber Property—Durometer Hardness. Standard test methods for rubber property — compression set 1, i (reapproved), 1–6. ASTM D 2240. 2017:1–13. DOI:10.1520/D2240-15R21
  • Barmouz M, Seyfi J, Kazem Besharati Givi M, et al. A novel approach for producing polymer nanocomposites by in-situ dispersion of clay particles via friction stir processing. Mater Sci Eng A. 2011;528(6):3003–3006.
  • Buck GM. Rapid model fabrication and testing for aerospace vehicles. 38th Aerospace Sciences Meeting and Exhibit; 2000.
  • Wang J, Sun Q, Yuan B. Novel on-Machine measurement system and method for flatness of large annular plane. Meas Sci Technol. 2020;31(1):015004.
  • Adin MŞ, K E. Strength of double-reinforced adhesive joints. Mater Test. 2021;63(2):176–181.
  • Scialpi A, Troughton M, Andrews S, et al. Viblade™: friction stir welding for plastics. Weld Int. 2009;23(11):846–855.

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