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2024 | OriginalPaper | Chapter

Arc Oscillation for Microstructural and Geometric Control of Solids Produced by WAAM

Authors : Gustavo H. S. F. L. Carvalho, Gianni Campatelli

Published in: Selected Topics in Manufacturing

Publisher: Springer Nature Switzerland

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Abstract

Wire arc additive manufacturing (WAAM) is an additive technology with several advantages, such as a high deposition rate, the possibility to manufacture metallic materials, a very low incidence of porosity and excellent mechanical properties. However, there are challenges in WAAM, like the uncontrollable grain growth (due to the prolonged exposure to high temperatures) and the accumulation of impurities or decrease in toughness (due to preferred crystallographic orientation and the grain growth mechanism). These issues are relevant for many materials like steel, aluminium, titanium, and nickel alloys. This work aimed to use arc oscillation in steel that could break this unrestrained grain growth, resulting in a more refined grain structure. The components were characterised morphologically, geometrically, and microstructurally, and the oscillation resulted in microstructures that were equally or more refined than the base material.

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Literature
1.
go back to reference Hegab H, Khanna N, Monib N, Salem A (2023) Design for sustainable additive manufacturing: a review. Sustain Mater Technol 35:e00576 Hegab H, Khanna N, Monib N, Salem A (2023) Design for sustainable additive manufacturing: a review. Sustain Mater Technol 35:e00576
2.
go back to reference Kumar Sinha A, Pramanik S, Yagati KP (2022) Research progress in arc based additive manufacturing of aluminium alloys—a review. Meas J Int Meas Confed 200:111672CrossRef Kumar Sinha A, Pramanik S, Yagati KP (2022) Research progress in arc based additive manufacturing of aluminium alloys—a review. Meas J Int Meas Confed 200:111672CrossRef
3.
go back to reference Wu B, Pan Z, Ding D, Cuiuri D, Li H, Xu J, Norrish J (2018) A review of the wire arc additive manufacturing of metals: properties, defects and quality improvement. J Manuf Process 35:127–139CrossRef Wu B, Pan Z, Ding D, Cuiuri D, Li H, Xu J, Norrish J (2018) A review of the wire arc additive manufacturing of metals: properties, defects and quality improvement. J Manuf Process 35:127–139CrossRef
4.
go back to reference Li Y, Su C, Zhu J (2022) Comprehensive review of wire arc additive manufacturing: Hardware system, physical process, monitoring, property characterization, application and future prospects. Results Eng 13:100330CrossRef Li Y, Su C, Zhu J (2022) Comprehensive review of wire arc additive manufacturing: Hardware system, physical process, monitoring, property characterization, application and future prospects. Results Eng 13:100330CrossRef
5.
go back to reference Le VT, Mai DS, Doan TK, Paris H (2021) Wire and arc additive manufacturing of 308L stainless steel components: optimization of processing parameters and material properties. Eng Sci Technol Int J 24:1015–1026 Le VT, Mai DS, Doan TK, Paris H (2021) Wire and arc additive manufacturing of 308L stainless steel components: optimization of processing parameters and material properties. Eng Sci Technol Int J 24:1015–1026
6.
go back to reference Rosli NA, Alkahari MR, bin Abdollah MF, Maidin S, Ramli FR, Herawan SG (2021) Review on effect of heat input for wire arc additive manufacturing process. J Mater Res Technol 11:2127–2145 Rosli NA, Alkahari MR, bin Abdollah MF, Maidin S, Ramli FR, Herawan SG (2021) Review on effect of heat input for wire arc additive manufacturing process. J Mater Res Technol 11:2127–2145
7.
go back to reference Li F, Chen S, Shi J, Zhao Y, Tian H (2018) Thermoelectric cooling-aided bead geometry regulation in wire and arc-based additive manufacturing of thin-walled structures. Appl Sci 8:207CrossRef Li F, Chen S, Shi J, Zhao Y, Tian H (2018) Thermoelectric cooling-aided bead geometry regulation in wire and arc-based additive manufacturing of thin-walled structures. Appl Sci 8:207CrossRef
8.
go back to reference Singh S, Sharma SK, Rathod DW (2021) A review on process planning strategies and challenges of WAAM. Mater Today Proc 47:6564–6575CrossRef Singh S, Sharma SK, Rathod DW (2021) A review on process planning strategies and challenges of WAAM. Mater Today Proc 47:6564–6575CrossRef
9.
go back to reference Zhuo Y, Yang C, Fan C, Lin S, Chen Y, Chen C, Cai X (2021) Grain refinement of wire arc additive manufactured titanium alloy by the combined method of boron addition and low frequency pulse arc. Mater Sci Eng A 805:140557CrossRef Zhuo Y, Yang C, Fan C, Lin S, Chen Y, Chen C, Cai X (2021) Grain refinement of wire arc additive manufactured titanium alloy by the combined method of boron addition and low frequency pulse arc. Mater Sci Eng A 805:140557CrossRef
10.
go back to reference Chen C, Chen F, Yang Y, Zhang H (2021) Study on appearance and mechanical behavior of additively manufacturing of Ti–6Al–4V alloy by using cold metal transfer. CIRP J Manuf Sci Technol 35:250–258CrossRef Chen C, Chen F, Yang Y, Zhang H (2021) Study on appearance and mechanical behavior of additively manufacturing of Ti–6Al–4V alloy by using cold metal transfer. CIRP J Manuf Sci Technol 35:250–258CrossRef
11.
go back to reference Nagasai BP, Malarvizhi S, Balasubramanian V (2022) Effect of welding processes on mechanical and metallurgical characteristics of carbon steel cylindrical components made by wire arc additive manufacturing (WAAM) technique. CIRP J Manuf Sci Technol 36:100–116CrossRef Nagasai BP, Malarvizhi S, Balasubramanian V (2022) Effect of welding processes on mechanical and metallurgical characteristics of carbon steel cylindrical components made by wire arc additive manufacturing (WAAM) technique. CIRP J Manuf Sci Technol 36:100–116CrossRef
12.
go back to reference Zhang C, Gao M, Zeng X (2019) Workpiece vibration augmented wire arc additive manufacturing of high strength aluminum alloy. J Mater Process Technol 271:85–92CrossRef Zhang C, Gao M, Zeng X (2019) Workpiece vibration augmented wire arc additive manufacturing of high strength aluminum alloy. J Mater Process Technol 271:85–92CrossRef
13.
go back to reference Gu J, Ding J, Williams SW, Gu H, Bai J, Zhai Y, Ma P (2016) The strengthening effect of inter-layer cold working and post-deposition heat treatment on the additively manufactured Al–6.3Cu alloy. Mater Sci Eng A 651:18–26 Gu J, Ding J, Williams SW, Gu H, Bai J, Zhai Y, Ma P (2016) The strengthening effect of inter-layer cold working and post-deposition heat treatment on the additively manufactured Al–6.3Cu alloy. Mater Sci Eng A 651:18–26
14.
go back to reference Sun R, Li L, Zhu Y, Guo W, Peng P, Cong B, Sun J, Che Z, Li B, Guo C, Liu L (2018) Microstructure, residual stress and tensile properties control of wire-arc additive manufactured 2319 aluminum alloy with laser shock peening. J Alloys Compd 747:255–265CrossRef Sun R, Li L, Zhu Y, Guo W, Peng P, Cong B, Sun J, Che Z, Li B, Guo C, Liu L (2018) Microstructure, residual stress and tensile properties control of wire-arc additive manufactured 2319 aluminum alloy with laser shock peening. J Alloys Compd 747:255–265CrossRef
15.
go back to reference Yuan T, Luo Z, Kou S (2016) Grain refining of magnesium welds by arc oscillation. Acta Mater 116:166–176CrossRef Yuan T, Luo Z, Kou S (2016) Grain refining of magnesium welds by arc oscillation. Acta Mater 116:166–176CrossRef
16.
go back to reference Syed AK, Zhang X, Davis AE, Kennedy JR, Martina F, Ding J, Williams S, Prangnell PB (2021) Effect of deposition strategies on fatigue crack growth behaviour of wire + arc additive manufactured titanium alloy Ti–6Al–4V. Mater Sci Eng A 814:141194CrossRef Syed AK, Zhang X, Davis AE, Kennedy JR, Martina F, Ding J, Williams S, Prangnell PB (2021) Effect of deposition strategies on fatigue crack growth behaviour of wire + arc additive manufactured titanium alloy Ti–6Al–4V. Mater Sci Eng A 814:141194CrossRef
17.
go back to reference Lara M, Díaz VV, Camus M, Da Cunha TV (2020) Effect of transverse arc oscillation on morphology, dilution and microstructural aspects of weld beads produced with short-circuiting transfer in GMAW. J Brazilian Soc Mech Sci Eng 42:449CrossRef Lara M, Díaz VV, Camus M, Da Cunha TV (2020) Effect of transverse arc oscillation on morphology, dilution and microstructural aspects of weld beads produced with short-circuiting transfer in GMAW. J Brazilian Soc Mech Sci Eng 42:449CrossRef
18.
go back to reference Yan Z, Yuan T, Chen S (2019) Microstructural refinement of 6061 and 5052 aluminium alloys by arc oscillation. Mater Sci Technol 35:1651–1655CrossRef Yan Z, Yuan T, Chen S (2019) Microstructural refinement of 6061 and 5052 aluminium alloys by arc oscillation. Mater Sci Technol 35:1651–1655CrossRef
19.
go back to reference Kou S, Le Y (1985) Grain structure and solidification cracking in oscillated arc welds of 5052 aluminum alloy. Metall Trans A 16:1345–1352CrossRef Kou S, Le Y (1985) Grain structure and solidification cracking in oscillated arc welds of 5052 aluminum alloy. Metall Trans A 16:1345–1352CrossRef
20.
go back to reference Kou S, Le Y (1985) Alternating grain orientation and weld solidification cracking. Metall Trans A 16:1887–1896CrossRef Kou S, Le Y (1985) Alternating grain orientation and weld solidification cracking. Metall Trans A 16:1887–1896CrossRef
21.
go back to reference Turichin G, Kuznetsov M, Pozdnyakov A, Gook S, Gumenyuk A, Rethmeier M (2018) Influence of heat input and preheating on the cooling rate, microstructure and mechanical properties at the hybrid laser-arc welding of API 5L X80 steel. Procedia CIRP 74:748–751CrossRef Turichin G, Kuznetsov M, Pozdnyakov A, Gook S, Gumenyuk A, Rethmeier M (2018) Influence of heat input and preheating on the cooling rate, microstructure and mechanical properties at the hybrid laser-arc welding of API 5L X80 steel. Procedia CIRP 74:748–751CrossRef
22.
go back to reference Liu D, Yang J, Zhang Y, Qiu Y, Cheng G, Yao M, Dong J (2021) Effect of welding heat input on the microstructure and impact toughness of HAZ in 420 MPa-grade offshore engineering steel. Front Mater 8:1–14 Liu D, Yang J, Zhang Y, Qiu Y, Cheng G, Yao M, Dong J (2021) Effect of welding heat input on the microstructure and impact toughness of HAZ in 420 MPa-grade offshore engineering steel. Front Mater 8:1–14
23.
go back to reference BS EN 10025–2 (2019) Hot rolled products of structural steels - Part 2: Technical delivery conditions for non-alloy structural steels, British Standards Institution, United Kingdom BS EN 10025–2 (2019) Hot rolled products of structural steels - Part 2: Technical delivery conditions for non-alloy structural steels, British Standards Institution, United Kingdom
24.
go back to reference Campatelli G, Venturini G, Grossi N, Baffa F, Scippa A, Yamazaki K (2021) Design and testing of a WAAM Retrofit kit for repairing operations on a milling machine. Machines 9:322CrossRef Campatelli G, Venturini G, Grossi N, Baffa F, Scippa A, Yamazaki K (2021) Design and testing of a WAAM Retrofit kit for repairing operations on a milling machine. Machines 9:322CrossRef
25.
go back to reference Baffa F, Venturini G, Campatelli G, Galvanetto E (2022) Effect of stepover and torch tilting angle on a repair process using WAAM. Adv Manuf Baffa F, Venturini G, Campatelli G, Galvanetto E (2022) Effect of stepover and torch tilting angle on a repair process using WAAM. Adv Manuf
26.
go back to reference Richardson RW, DuPont JN, Farson DF, Lyttle KA, Meyer DW (2001) Physics of welding. In: Jenney CL, O’Brien A (eds) AWS Weld. Handb, vol 1—Weld. Sci. Technol., 9th edn. American Welding Society, Miami, USA, pp 51–85 Richardson RW, DuPont JN, Farson DF, Lyttle KA, Meyer DW (2001) Physics of welding. In: Jenney CL, O’Brien A (eds) AWS Weld. Handb, vol 1—Weld. Sci. Technol., 9th edn. American Welding Society, Miami, USA, pp 51–85
27.
go back to reference DuPont JN, Marder AR (1995) Thermal efficiency of arc welding processes. Weld J 74:406s–416s DuPont JN, Marder AR (1995) Thermal efficiency of arc welding processes. Weld J 74:406s–416s
28.
go back to reference Huang J, Liu G, Yu X, Wu H, Huang Y, Yu S, Fan D (2022) Microstructure regulation of titanium alloy functionally gradient materials fabricated by alternating current assisted wire arc additive manufacturing. Mater Des 218:110731CrossRef Huang J, Liu G, Yu X, Wu H, Huang Y, Yu S, Fan D (2022) Microstructure regulation of titanium alloy functionally gradient materials fabricated by alternating current assisted wire arc additive manufacturing. Mater Des 218:110731CrossRef
29.
go back to reference Carvalho GHSFL, Venturini G, Campatelli G, Galvanetto E (2023) Development of optimal deposition strategies for cladding of Inconel 625 on carbon steel using wire arc additive manufacturing. Surf Coatings Technol 453:129128 Carvalho GHSFL, Venturini G, Campatelli G, Galvanetto E (2023) Development of optimal deposition strategies for cladding of Inconel 625 on carbon steel using wire arc additive manufacturing. Surf Coatings Technol 453:129128
30.
go back to reference Nag S, Sardar P, Jain A, Himanshu A, Mondal DK (2014) Correlation between ferrite grain size, microstructure and tensile properties of 0.17 wt% carbon steel with traces of microalloying elements. Mater Sci Eng A 597:253–263 Nag S, Sardar P, Jain A, Himanshu A, Mondal DK (2014) Correlation between ferrite grain size, microstructure and tensile properties of 0.17 wt% carbon steel with traces of microalloying elements. Mater Sci Eng A 597:253–263
31.
go back to reference Ohring M (1995) How engineering materials are strengthened and toughened. In: Engineering materials science. Elsevier, pp 431–500 Ohring M (1995) How engineering materials are strengthened and toughened. In: Engineering materials science. Elsevier, pp 431–500
32.
go back to reference Seok M-Y, Choi I-C, Moon J, Kim S, Ramamurty U, Jang J (2014) Estimation of the Hall-Petch strengthening coefficient of steels through nanoindentation. Scr Mater 87:49–52CrossRef Seok M-Y, Choi I-C, Moon J, Kim S, Ramamurty U, Jang J (2014) Estimation of the Hall-Petch strengthening coefficient of steels through nanoindentation. Scr Mater 87:49–52CrossRef
33.
go back to reference Asahi H, Yagi A, Ueno M (1993) Effects of strengthening mechanisms on sulfide stress cracking resistance of low strength steels. ISIJ Int 33:1190–1195 Asahi H, Yagi A, Ueno M (1993) Effects of strengthening mechanisms on sulfide stress cracking resistance of low strength steels. ISIJ Int 33:1190–1195
Metadata
Title
Arc Oscillation for Microstructural and Geometric Control of Solids Produced by WAAM
Authors
Gustavo H. S. F. L. Carvalho
Gianni Campatelli
Copyright Year
2024
DOI
https://doi.org/10.1007/978-3-031-41163-2_4

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