Effect of cooling media on bead geometry, microstructure, and mechanical properties of wire arc additive manufactured IN718 alloy

Parveen Kumar, Satish Kumar Sharma, Ratnesh Kumar Raj Singh

Advances in Manufacturing ›› 2024, Vol. 12 ›› Issue (1) : 124-149.

Advances in Manufacturing ›› 2024, Vol. 12 ›› Issue (1) : 124-149. DOI: 10.1007/s40436-023-00457-x
Article

Effect of cooling media on bead geometry, microstructure, and mechanical properties of wire arc additive manufactured IN718 alloy

Author information +
History +

Abstract

This work aims to present and explore thermal management techniques for the wire arc additive manufacturing (WAAM) of IN718 components. Excessive heat can be mitigated via air or water cooling. In this study, the material was deposited under four different heat-input conditions with air or water cooling. In air cooling, the layer is deposited in a normal atmospheric air environment, whereas with water cooling, the material is deposited inside a water tank by varying the water level. To validate the air and water cooling thermal management techniques, IN718 single-pass and multilayer linear walls were deposited using the bidirectional gas metal arc welding based WAAM setup under four different heat input conditions. During the deposition of single layers, the temperature profiles were recorded, and the geometric and microstructural features were explored. For multilayer wall structures, the mechanical properties (hardness, tensile strength, and elongation) were determined and assessed using the corresponding microstructural features explored through scanning electron microscopy (SEM), energy dispersive spectroscopy (EDS), and electron backscatter diffraction (EBSD) analyses. The microstructure observed through SEM analysis in the building direction was found to be nonhomogenous compared with that in the deposition direction. Moreover, water cooling was found to govern bead characteristics, such as wall width and height. The grain size and anisotropy of the mechanical properties also decreased in the water-cooled case. Hence, water cooling is an economical and efficient method to mitigate excessive heat accumulation in WAAM-deposited IN718.

Keywords

Air cooling / Water cooling / IN718 / Bead characteristics / Microstructure / Electron backscatter diffraction (EBSD)

Cite this article

Download citation ▾
Parveen Kumar, Satish Kumar Sharma, Ratnesh Kumar Raj Singh. Effect of cooling media on bead geometry, microstructure, and mechanical properties of wire arc additive manufactured IN718 alloy. Advances in Manufacturing, 2024, 12(1): 124‒149 https://doi.org/10.1007/s40436-023-00457-x

References

[1.]
Yusuf SM, Cutler S, Gao N. Review: the impact of metal additive manufacturing on the aerospace industry. Metals, 2019, 9(12): 1286.
CrossRef Google scholar
[2.]
Lin Z, Song K, Yu X. A review on wire and arc additive manufacturing of titanium alloy. J Manuf Process, 2021, 70: 24-45.
CrossRef Google scholar
[3.]
Bidare P, Jiménez A, Hassanin H, et al. Porosity, cracks, and mechanical properties of additively manufactured tooling alloys: a review. Adv Manuf, 2022, 10: 175-204.
CrossRef Google scholar
[4.]
Dong Y, Milentis J, Pramanik A. Additive manufacturing of mechanical testing samples based on virgin poly(lactic acid) (PLA) and PLA/wood fibre composites. Adv Manuf, 2018, 6: 71-82.
CrossRef Google scholar
[5.]
Read N, Wang W, Essa K, et al. Selective laser melting of AlSi10Mg alloy: process optimisation and mechanical properties development. Mater Des, 2015, 65: 417-424.
CrossRef Google scholar
[6.]
Kumar P, Sharma SK, Singh RKR. Recent trends and future outlooks in manufacturing methods and applications of FGM: a comprehensive review. Mater Manuf Process, 2022, 38(9): 1033-1067.
CrossRef Google scholar
[7.]
Zykova A, Chumaevskii A, Vorontsov A, et al. Microstructural evolution of AA5154 layers intermixed with Mo powder during electron beam wire-feed additive manufacturing (EBAM). Metals, 2022, 12(1): 109.
CrossRef Google scholar
[8.]
Le VT, Doan QT, Mai DS, et al. Prediction and optimization of processing parameters in wire and arc-based additively manufacturing of 316L stainless steel. J Brazilian Soc Mech Sci Eng, 2022, 44: 1-16.
CrossRef Google scholar
[9.]
Baffa F, Venturini G, Campatelli G, et al. Effect of stepover and torch tilting angle on a repair process using WAAM. Adv Manuf, 2022, 10: 541-555.
CrossRef Google scholar
[10.]
Wu B, Pan Z, Ding D, et al. A review of the wire arc additive manufacturing of metals: properties, defects and quality improvement. J Manuf Process, 2018, 35: 127-139.
CrossRef Google scholar
[11.]
Singh S, Sharma SK, Rathod DW. A review on process planning strategies and challenges of WAAM. Mater Today Proc, 2020, 47: 6564-6575.
CrossRef Google scholar
[12.]
Zhu S. Robotic GMAW forming remanufacturing technology. Adv Manuf, 2013, 1: 87-90.
CrossRef Google scholar
[13.]
Ainapurapu SB, Anantha V, Devulapalli R. Microstructure and mechanical properties of the bimetallic wire arc additively manufactured structure (BAMS) of SS304L and SS308L fabricated by hybrid manufacturing process. Trans Indian Inst Met, 2022, 76: 419-426.
CrossRef Google scholar
[14.]
Chakraborty D, Tirumala T, Chitral S, et al. The state of the art for wire arc additive manufacturing process of titanium alloys for aerospace applications. J Mater Eng Perform, 2022, 31: 6149-6182.
CrossRef Google scholar
[15.]
Duan C, Zhao M, Luo X. Thermal behavior and densification mechanism during selective laser melting additive manufacturing of metal powder. Steel Res Int, 2020, 91(8): 2000073.
CrossRef Google scholar
[16.]
Park SC, Bang HS, Seong WJ. Effects of material properties on angular distortion in wire arc additive manufacturing: experimental and computational analyses. Materials, 2020, 13(6): 1399.
CrossRef Google scholar
[17.]
Xu X, Ding J, Ganguly S, et al. Oxide accumulation effects on wire + arc layer-by-layer additive manufacture process. J Mater Process Technol, 2018, 252: 739-750.
CrossRef Google scholar
[18.]
Cunningham CR, Wang J, Dhokia V et al (2019) Characterisation of austenitic 316LSi stainless steel produced by wire arc additive manufacturing with interlayer cooling. In: proceedings of the 30th annual international solid freeform fabrication symposium, 2019, pp 426–439
[19.]
Wang K, Liu Y, Sun Z, et al. Microstructural evolution and mechanical properties of Inconel 718 superalloy thin wall fabricated by pulsed plasma arc additive manufacturing. J Alloys Compd, 2020, 819: 152936.
CrossRef Google scholar
[20.]
Vázquez L, Rodríguez N, Rodríguez I, et al. Influence of interpass cooling conditions on microstructure and tensile properties of Ti-6Al-4V parts manufactured by WAAM. Weld World, 2020, 64: 1377-1388.
CrossRef Google scholar
[21.]
Cunningham CR, Dhokia V, Shokrani A, et al. Effects of in-process LN2 cooling on the microstructure and mechanical properties of type 316L stainless steel produced by wire arc directed energy deposition. Mater Lett, 2021, 282: 128707.
CrossRef Google scholar
[22.]
Reisgen U, Sharma R, Mann S, et al. Increasing the manufacturing efficiency of WAAM by advanced cooling strategies. Weld World, 2020, 64: 1409-1416.
CrossRef Google scholar
[23.]
Luo J, You G, Lu D, et al. Effect of modified water-bath method on microstructure and mechanical properties of wire arc additive manufactured low-carbon low-alloy steel. Steel Res Int, 2021, 92(4): 20000523.
CrossRef Google scholar
[24.]
da Silva LJ, Souza DM, de Araújo DB, et al. Concept and validation of an active cooling technique to mitigate heat accumulation in WAAM. Int J Adv Manuf Technol, 2020, 107: 2513-2523.
CrossRef Google scholar
[25.]
Nagamatsu H, Sasahara H. Improvement of cooling effect and dimensional accuracy of wire and arc additive manufactured magnesium alloy by active-cooling-based contacting copper blocks. J Manuf Mater Process, 2022, 6(2): 27.
CrossRef Google scholar
[26.]
Jang J, Van D, Lee SH. Precipitation kinetics of secondary phases induced by heat accumulation in the deposit of Inconel 718. Addit Manuf, 2022, 55: 102831.
CrossRef Google scholar
[27.]
Zhang T, Li H, Gong H, et al. Study on location-related thermal cycles and microstructure variation of additively manufactured Inconel 718. J Mater Res Technol, 2022, 18: 3056-3072.
CrossRef Google scholar
[28.]
Donghyun V, Dinda GP, Jaewoong P, et al. Enhancing hardness of Inconel 718 deposits using the aging effects of cold metal transfer-based additive manufacturing. Mater Sci Eng A, 2020, 776: 139005.
CrossRef Google scholar
[29.]
Kindermann RM, Roy MJ, Morana R, et al. Process response of Inconel 718 to wire + arc additive manufacturing with cold metal transfer. Mater Des, 2020, 195: 109031.
CrossRef Google scholar
[30.]
Pal K, Pal SK. Effect of pulse parameters on weld quality in pulsed gas metal arc welding: a review. J Mater Eng Perform, 2011, 20: 918-931.
CrossRef Google scholar
[31.]
Kumar P, Singh RKR, Sharma SK. Effect of welding parameters on bead characteristics and mechanical properties of wire and arc additive manufactured Inconel 718. Proc Inst Mech Eng Part C J Mech Eng Sci, 2022, 237(7): 1668-1691.
CrossRef Google scholar
[32.]
Zhang W, Kim CH, DebRoy T. Heat and fluid flow in complex joints during gas metal arc welding—part II: application to fillet welding of mild steel. J Appl Phys, 2004, 95: 5220-5229.
CrossRef Google scholar
[33.]
Wells ME, Lukens WE. Effect of forced gas cooling on GTA weld pools. Weld J, 1986, 65: 314-320.
[34.]
Mukherjee T, Manvatkar V, De A, et al. Dimensionless numbers in additive manufacturing. J Appl Phys, 2017, 121: 064904.
CrossRef Google scholar
[35.]
Magudeeswaran G, Nair SR, Sundar L, et al. Optimization of process parameters of the activated tungsten inert gas welding for aspect ratio of UNS S32205 duplex stainless steel welds. Def Technol, 2014, 10: 251-260.
CrossRef Google scholar
[36.]
Zhang W, Kim CH, DebRoy T. Heat and fluid flow in complex joints during gas metal arc welding—part I: numerical model of fillet welding. J Appl Phys, 2004, 95: 5210-5219.
CrossRef Google scholar
[37.]
Sharma SK, Maheshwari S, Singh RKR. Effect of heat-input and cooling-time on bead characteristics in SAW. Mater Manuf Process, 2019, 34: 208-215.
CrossRef Google scholar
[38.]
Sharma SK, Maheshwari S. Arc characterization study for submerged arc welding of HSLA (API X80) steel. J Mech Sci Technol, 2017, 31: 1383-1390.
CrossRef Google scholar
[39.]
Sharma SK, Rathod DW, Payal H et al (2019) Chap. 5: investigation of bead geometry and shape parameters. In: Sharma DVS, Dixit DUS, Sørby DK (eds) Manufacturing engineering. Springer
[40.]
Debroy T, David SA. Physical processes in fusion welding. Rev Mod Phys, 1995, 67: 85-112.
CrossRef Google scholar
[41.]
Azeem MA, Arif ZU, Shah M, et al. Influence of liquid nitrogen on residual circumferential distortion, weld penetration and delta-ferrite distribution in clamped tungsten inert gas welded butt joint of 316 stainless steel. SN Appl Sci, 2020, 2: 1640.
CrossRef Google scholar
[42.]
Kim IS, Basu A. A mathematical model of heat transfer and fluid flow in the gas metal arc welding process. J Mater Process Technol, 1998, 300: 17-24.
CrossRef Google scholar
[43.]
Sharma SK, Rathod DW, Payal H, et al. et al. Sharma V, Dixit U, Sørby K, et al. et al. Investigation of weld bead shape parameters in relation to heat input during submerged arc welding. Manufacturing engineering, 2020, Singapore: Springer 329-340.
CrossRef Google scholar
[44.]
Elsen M, Van, Al-bender F, Kruth J. Application of dimensional analysis to selective laser melting. Rapid Prototyp J, 2008, 1: 15-22.
CrossRef Google scholar
[45.]
Manvatkar V, De A, Debroy T. Heat transfer and material flow during laser assisted multi-layer additive manufacturing. J Appl Phys, 2014, 116: 124905.
CrossRef Google scholar
[46.]
Li X, Liu Y, Wei W, et al. Influence of NbC and VC on microstructures and mechanical properties of WC-Co functionally graded cemented carbides. Mater Des, 2016, 90: 562-567.
CrossRef Google scholar
[47.]
Han Y, Shi J, Xu L, et al. TiC precipitation induced effect on microstructure and mechanical properties in low carbon medium manganese steel. Mater Sci Eng A, 2011, 530: 643-651.
CrossRef Google scholar
[48.]
Schirra JJ, Caless RH, Hatala RW. The effect of Laves phase on the mechanical properties of wrought and cast + HIP Inconel 718. Min Mater Soc, 1991, 718(625): 375-388.
[49.]
Seow CE, Coules HE, Wu G, et al. Wire + arc additively manufactured Inconel 718: effect of post-deposition heat treatments on microstructure and tensile properties. Mater Des, 2019, 183: 108157.
CrossRef Google scholar
[50.]
Donghyun V, Dinda GP, Jaewoong P, et al. Enhancing hardness of Inconel 718 deposits using the aging effects of cold metal transfer-based additive manufacturing. Mater Sci Eng A, 2020, 776: 139005.
CrossRef Google scholar
[51.]
Zhang D, Feng Z, Wang C, et al. Comparison of microstructures and mechanical properties of Inconel 718 alloy processed by selective laser melting and casting. Mater Sci Eng A, 2018, 724: 357-367.
CrossRef Google scholar
[52.]
Asala G, Andersson J, Ojo OA. Hot corrosion behaviour of wire-arc additive manufactured Ni-based superalloy ATI 718Plus®. Corros Sci, 2019, 158: 108086.
CrossRef Google scholar
[53.]
García de Andrés C, Caballero FG, Capdevila C, et al. Revealing austenite grain boundaries by thermal etching: advantages and disadvantages. Mater Charact, 2002, 49: 121-127.
CrossRef Google scholar
[54.]
Zhao Y, Li F, Chen S, et al. Unit block-based process planning strategy of WAAM for complex shell-shaped component. Int J Adv Manuf Technol, 2019, 104: 3915-3927.
CrossRef Google scholar
[55.]
Baufeld B. Mechanical properties of Inconel 718 parts manufactured by shaped metal deposition (SMD). J Mater Eng Perform, 2012, 21: 1416-1421.
CrossRef Google scholar
[56.]
Xu X, Ding J, Ganguly S, et al. Investigation of process factors affecting mechanical properties of Inconel 718 superalloy in wire + arc additive manufacture process. J Mater Process Technol, 2019, 265: 201-209.
CrossRef Google scholar
[57.]
Zhong C, Gasser A, Kittel J, et al. Improvement of material performance of Inconel 718 formed by high deposition-rate laser metal deposition. Mater Des, 2016, 98: 128-134.
CrossRef Google scholar
[58.]
Yao M, Yao Z, Tao X, et al. Effect of deposition modes on electron beam directed energy deposited Inconel 718. Mater Sci Technol, 2020, 36: 1556-1565.
CrossRef Google scholar

Accesses

Citations

Detail

Sections
Recommended

/