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Application possibilities of scanning acoustic microscopy in the assessment of explosive welding


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Hay DR. Explosive welding: applications and techniques. In: Timmerhaus KD, editor. High-pressure science and technology. New York: Springer Science+Business Media; 1979. pp. 1813–36. HayDR Explosive welding: applications and techniques In: TimmerhausKD editor. High-pressure science and technology New York Springer Science+Business Media 1979 1813 36 10.1007/978-1-4684-7470-1_222 Search in Google Scholar

Deribas AA. Explosive welding, Academy of Sciences, USSR, Siberian Branch of the Russian Academy of Sciences, Siberia, Russia; 1967. DeribasAA Explosive welding, Academy of Sciences USSR, Siberian Branch of the Russian Academy of Sciences Siberia, Russia 1967 Search in Google Scholar

US patent 3,137,937 GR Cowan, J. Douglas, A. Holtzman. “Explosive bonding” – published a patent on the explosive welding process 1960. US patent 3,137,937 CowanGR DouglasJ HoltzmanA. “Explosive bonding” – published a patent on the explosive welding process 1960 Search in Google Scholar

Walczak W. Explosive welding of metals. Warsaw (in Polish): Scientific and Technical Publishing House; 1989. WalczakW Explosive welding of metals Warsaw (in Polish): Scientific and Technical Publishing House 1989 Search in Google Scholar

Han JH, Ahn JP, Shin MC. Effect of interlayer thickness on shear deformation behaviour of AA5083 aluminium alloy/SS41 steel plates manufactured by explosive welding. J Mater Sci. 2003;38(1):13–8. HanJH AhnJP ShinMC Effect of interlayer thickness on shear deformation behaviour of AA5083 aluminium alloy/SS41 steel plates manufactured by explosive welding J Mater Sci 2003 38 1 13 8 10.1023/A:1021197328946 Search in Google Scholar

Balasubrahmanian V, Rathinasabapathi M, Raghukandan K. Modelling of process parameters in explosive cladding of mild steel and aluminium. J Mater Process Technol. 1997;63(1–3):83–8. BalasubrahmanianV RathinasabapathiM RaghukandanK Modelling of process parameters in explosive cladding of mild steel and aluminium J Mater Process Technol 1997 63 1–3 83 8 10.1016/S0924-0136(96)02604-0 Search in Google Scholar

Acarer M, Demir B. An investigation of mechanical and metallurgical properties of explosive welded aluminium–dual phase steel. Mater Lett. 2008;62:4158–60. AcarerM DemirB An investigation of mechanical and metallurgical properties of explosive welded aluminium–dual phase steel Mater Lett 2008 62 4158 60 10.1016/j.matlet.2008.05.060 Search in Google Scholar

Kahraman N, Gulenc B, Findik F. Joining of titanium/stainless steel by explosive welding and effect on interface. J Mater Process Technol. 2005;169(2):127–33. KahramanN GulencB FindikF Joining of titanium/stainless steel by explosive welding and effect on interface J Mater Process Technol 2005 169 2 127 33 10.1016/j.jmatprotec.2005.06.045 Search in Google Scholar

Mudali UK, Rao BMA, Shanmugam K, Natarajan R, Raj B. Corrosion and microstructural aspects of dissimilar joints of titanium and type 304L stainless steel. J Nucl Mater. 2003;321(1):40–8. MudaliUK RaoBMA ShanmugamK NatarajanR RajB Corrosion and microstructural aspects of dissimilar joints of titanium and type 304L stainless steel J Nucl Mater 2003 321 1 40 8 10.1016/S0022-3115(03)00194-6 Search in Google Scholar

Mousavi SAAA, Sartangi PF. Experimental investigation of explosive welding of cp-titanium/AISI 304 stainless steel. Mater Des. 2009;30(3):459–68. MousaviSAAA SartangiPF Experimental investigation of explosive welding of cp-titanium/AISI 304 stainless steel Mater Des 2009 30 3 459 68 10.1016/j.matdes.2008.06.016 Search in Google Scholar

Akbari-Mousavi SAA, Barrett LM, Al-Hassani STS. Explosive welding of metal plates. J Mater Process Technol. 2008;202(1–3):224–39. Akbari-MousaviSAA BarrettLM Al-HassaniSTS Explosive welding of metal plates J Mater Process Technol 2008 202 1–3 224 39 10.1016/j.jmatprotec.2007.09.028 Search in Google Scholar

Akbari-Mousavi SAA, Al-Hassani STS, Atkins AG. Bond strength of explosively welded specimens. Mater Des. 2008;29(7):1334–52. Akbari-MousaviSAA Al-HassaniSTS AtkinsAG Bond strength of explosively welded specimens Mater Des 2008 29 7 1334 52 10.1016/j.matdes.2007.06.010 Search in Google Scholar

Manikandan P, Hokamoto K, Fujita M, Raghukandan K, Tomoshige R. Control of energetic conditions by employing interlayer of different thickness for explosive welding of titanium/304 stainless steel. J Mater Process Technol. 2008;195(1–3):232–40. ManikandanP HokamotoK FujitaM RaghukandanK TomoshigeR Control of energetic conditions by employing interlayer of different thickness for explosive welding of titanium/304 stainless steel J Mater Process Technol 2008 195 1–3 232 40 10.1016/j.jmatprotec.2007.05.002 Search in Google Scholar

Ege ES, Inal OT, Zimmerly CA. Response surface study on production of explosively-welded aluminum–titanium laminates. J Mater Sci. 1998;33:5327–38. EgeES InalOT ZimmerlyCA Response surface study on production of explosively-welded aluminum–titanium laminates J Mater Sci 1998 33 5327 38 10.1023/A:1004485914302 Search in Google Scholar

Mousavi SAA, Sartangi PF. Effect of post-weld heat treatment on the interface microstructure of explosively welded titanium–stainless steel composite. Mater Sci Eng A. 2008;494(1–2):329–36. MousaviSAA SartangiPF Effect of post-weld heat treatment on the interface microstructure of explosively welded titanium–stainless steel composite Mater Sci Eng A 2008 494 1–2 329 36 10.1016/j.msea.2008.04.032 Search in Google Scholar

Gerland M, Presles HN, Guin JP, Bertheau D. Explosive cladding of a thin Ni-film to an aluminium alloy. Mater Sci Eng A. 2000;280(2):311–9. GerlandM PreslesHN GuinJP BertheauD Explosive cladding of a thin Ni-film to an aluminium alloy Mater Sci Eng A 2000 280 2 311 9 10.1016/S0921-5093(99)00695-4 Search in Google Scholar

Livne Z, Munitz A. Characterization of explosively bonded iron and copper plates. J Mater Sci. 1987;22:1495–500. LivneZ MunitzA Characterization of explosively bonded iron and copper plates J Mater Sci 1987 22 1495 500 10.1007/BF01233153 Search in Google Scholar

Durgutlu A, Gulenc B, Fındık F. Examination of copper/stainless steel joints formed by explosive welding. Mater Des. 2005;26(6):497–507. DurgutluA GulencB FındıkF Examination of copper/stainless steel joints formed by explosive welding Mater Des 2005 26 6 497 507 10.1016/j.matdes.2004.07.021 Search in Google Scholar

Kahraman N, Gulenc B. Microstructural and mechanical properties of Cu–Ti plates bonded through explosive welding process. J Mater Process Technol. 2005;169(1):67–71. KahramanN GulencB Microstructural and mechanical properties of Cu–Ti plates bonded through explosive welding process J Mater Process Technol 2005 169 1 67 71 10.1016/j.jmatprotec.2005.02.264 Search in Google Scholar

Raghukandan K. Analysis of the explosive cladding of Cu–low carbon steel plates. J Mater Process Technol. 2003;139(1–3):573–7. RaghukandanK Analysis of the explosive cladding of Cu–low carbon steel plates J Mater Process Technol 2003 139 1–3 573 7 10.1016/S0924-0136(03)00539-9 Search in Google Scholar

Belyakov VA, Fabritsiev SA, Mazul IV, Rowcliffe AF. Status of international collaborative efforts on selected. J Nucl Mater. 2000;283–287(2):962–7. BelyakovVA FabritsievSA MazulIV RowcliffeAF Status of international collaborative efforts on selected J Nucl Mater 2000 283–287 2 962 7 10.1016/S0022-3115(00)00233-6 Search in Google Scholar

Tavassoli F. Overview of advanced techniques for fabrication and testing of ITER multilayer plasma facing walls. Fusion Eng Des. 1998;39–40:189–200. TavassoliF Overview of advanced techniques for fabrication and testing of ITER multilayer plasma facing walls Fusion Eng Des 1998 39–40 189 200 10.1016/S0920-3796(98)00195-1 Search in Google Scholar

Durgutlu A, Okuyucu H, Gulenc B. Investigation of effect of the stand-off distance on interface characteristics of explosively welded copper and stainless steel. Mater Des. 2008;29(7):1480–4. DurgutluA OkuyucuH GulencB Investigation of effect of the stand-off distance on interface characteristics of explosively welded copper and stainless steel Mater Des 2008 29 7 1480 4 10.1016/j.matdes.2007.07.012 Search in Google Scholar

Wronka B. Testing of explosive welding and welded joints. The microstructure of explosive welded joints and their mechanical properties. J Mater Sci. 2010;45(13):3465–9. WronkaB Testing of explosive welding and welded joints. The microstructure of explosive welded joints and their mechanical properties J Mater Sci 2010 45 13 3465 9 10.1007/s10853-010-4374-y Search in Google Scholar

Mamalis AG, Szalay A, Vaxevanidis NM, Manolakos DE. Fabrication of bimetallic rods by explosive cladding and warm extrusion. J Mater Process Technol. 1998;83(1–3):48–53. MamalisAG SzalayA VaxevanidisNM ManolakosDE Fabrication of bimetallic rods by explosive cladding and warm extrusion J Mater Process Technol 1998 83 1–3 48 53 10.1016/S0924-0136(98)00042-9 Search in Google Scholar

Ashani JZ, Bagheri SM. Explosive scarf welding of aluminum to copper plates and their interface properties. Materwiss Werksttech. 2009;40(9):690–8. AshaniJZ BagheriSM Explosive scarf welding of aluminum to copper plates and their interface properties Materwiss Werksttech 2009 40 9 690 8 10.1002/mawe.200900415 Search in Google Scholar

Gulenc B. Investigation of interface properties and weld-ability of aluminium and copper plates by explosive welding method. Mater Des. 2008;29(1):275–8. GulencB Investigation of interface properties and weld-ability of aluminium and copper plates by explosive welding method Mater Des 2008 29 1 275 8 10.1016/j.matdes.2006.11.001 Search in Google Scholar

Kawamura Y. Liquid phase and supercooled liquid phase welding of bulk metallic glasses. Mater Sci Eng A. 2004;375(1):112–9. KawamuraY Liquid phase and supercooled liquid phase welding of bulk metallic glasses Mater Sci Eng A 2004 375 1 112 9 10.1016/j.msea.2003.10.097 Search in Google Scholar

Hokamoto K, Nakata K, Mori A, Ii S, Tomoshige R, Tsuda S, et al. Microstructural characterization of explosively welded rapidly solidified foil and stainless steel plate through the acceleration employing underwater shock wave. J Alloys Compd. 2009;485(1–2):817–21. HokamotoK NakataK MoriA IiS TomoshigeR TsudaS Microstructural characterization of explosively welded rapidly solidified foil and stainless steel plate through the acceleration employing underwater shock wave J Alloys Compd 2009 485 1–2 817 21 10.1016/j.jallcom.2009.06.082 Search in Google Scholar

Liu WD, Liu KX, Chen QY, Wang JT, Yan HH, Li XJ. Metallic glass coating on metals plate by adjusted explosive welding technique. Appl Surf Sci. 2009;255(23):9343–7. LiuWD LiuKX ChenQY WangJT YanHH LiXJ Metallic glass coating on metals plate by adjusted explosive welding technique Appl Surf Sci 2009 255 23 9343 7 10.1016/j.apsusc.2009.07.033 Search in Google Scholar

Findik F. Recent developments in explosive welding. Mater Des. 2011;32(3):1081–93. FindikF Recent developments in explosive welding Mater Des 2011 32 3 1081 93 10.1016/j.matdes.2010.10.017 Search in Google Scholar

Gloc M, Wachowski M, Plocinski T, Kurzydlowski KJ. Microstructural and microanalysis investigations of bond titanium grade1/low alloy steel st52-3N obtained by explosive welding. J Alloys Compd. 2016;671(C):446–51. GlocM WachowskiM PlocinskiT KurzydlowskiKJ Microstructural and microanalysis investigations of bond titanium grade1/low alloy steel st52-3N obtained by explosive welding J Alloys Compd 2016 671 C 446 51 10.1016/j.jallcom.2016.02.120 Search in Google Scholar

El-Sobky H. Mechanics of explosive welding. In: Blazynski TZ, editor. Explosive welding, forming and compaction. Dordrecht: Springer; 1983. pp 189–217. El-SobkyH Mechanics of explosive welding In: BlazynskiTZ editor. Explosive welding, forming and compaction Dordrecht Springer 1983 189 217 10.1007/978-94-011-9751-9_6 Search in Google Scholar

Walczak W, Czajkowski H. Explosive welding of metals. Warsaw (in Polish): Scientific and Technical Publishing House; 1970. WalczakW CzajkowskiH Explosive welding of metals Warsaw (in Polish): Scientific and Technical Publishing House 1970 Search in Google Scholar

Wronka B. Ultrasonic flaw detection for quality assessment of explosively clad plates. Adv Mater Sci Eng. 2014; https://doi.org/10.1155/2014/171279. WronkaB Ultrasonic flaw detection for quality assessment of explosively clad plates Adv Mater Sci Eng 2014 https://doi.org/10.1155/2014/171279. 10.1155/2014/171279 Search in Google Scholar

Kuz’min EV, Kuz’min SV, Lysak VI, Lata AN. Plastic deformation and wave formation on the interface of metals welded by ultrasonic-assisted explosive welding. J Phys Conf Ser. 2017;894(1):012047. Kuz’minEV Kuz’minSV LysakVI LataAN Plastic deformation and wave formation on the interface of metals welded by ultrasonic-assisted explosive welding J Phys Conf Ser 2017 894 1 012047 10.1088/1742-6596/894/1/012047 Search in Google Scholar

Yu H. Scanning acoustic microscopy for material evaluation. Appl Microsc. 2020;50:25. YuH Scanning acoustic microscopy for material evaluation Appl Microsc 2020 50 25 10.1186/s42649-020-00045-4781834233580436 Search in Google Scholar

Behrens BA, Maier HJ, Poll G, Overmeyer L, Wester H, Uhe J, et al. Influence of degree of deformation on welding pore reduction. Prod Eng. 2021;15:161–168. BehrensBA MaierHJ PollG OvermeyerL WesterH UheJ Influence of degree of deformation on welding pore reduction Prod Eng 2021 15 161 168 10.1007/s11740-020-01009-z Search in Google Scholar

Xiao Z, Zeng K, He X, Zhang L. Fatigue strength and failure analysis of weld-bonded joint of stainless steel. J Adhes. 2019;95(3):187–203. XiaoZ ZengK HeX ZhangL Fatigue strength and failure analysis of weld-bonded joint of stainless steel J Adhes 2019 95 3 187 203 10.1080/00218464.2017.1414605 Search in Google Scholar

Kubit T, Trzepiecinski T, Faes K, Drabczyk M, Bochnowski W, Korzeniowski M. Analysis of the effect of structural defects on the fatigue strength of RFSSW joints using C-scan scanning acoustic microscopy and SEM. Fatigue Fract Eng Mater Struct. 2019;42(6):1308–1321. KubitT TrzepiecinskiT FaesK DrabczykM BochnowskiW KorzeniowskiM Analysis of the effect of structural defects on the fatigue strength of RFSSW joints using C-scan scanning acoustic microscopy and SEM Fatigue Fract Eng Mater Struct 2019 42 6 1308 1321 10.1111/ffe.12984 Search in Google Scholar

Li M, Li X, Gao Ch, Song Y. Acoustic microscopy signal processing method for detecting near-surface defects in metal materials. NDT E Int. 2019;103:130–44. LiM LiX GaoCh SongY Acoustic microscopy signal processing method for detecting near-surface defects in metal materials NDT E Int 2019 103 130 44 10.1016/j.ndteint.2019.02.005 Search in Google Scholar

Zhua Y, Wanga L, Behnamianb Y, Songa S, Wanga R, Gaoa Z, et al. Metal pitting corrosion characterized by scanning acoustic microscopy and binary image processing. Corros Sci. 2020;170:108685. ZhuaY WangaL BehnamianbY SongaS WangaR GaoaZ Metal pitting corrosion characterized by scanning acoustic microscopy and binary image processing Corros Sci 2020 170 108685 10.1016/j.corsci.2020.108685 Search in Google Scholar

Pitta Bauermann L, Mesquita LV, Bischoff C, Drews M, Fitz O, Heuer A, et al. Scanning acoustic microscopy as a non-destructive imaging tool to localize defects inside battery cells. J Power Sources. 2020;6:100035. Pitta BauermannL MesquitaLV BischoffC DrewsM FitzO HeuerA Scanning acoustic microscopy as a non-destructive imaging tool to localize defects inside battery cells J Power Sources 2020 6 100035 10.1016/j.powera.2020.100035 Search in Google Scholar

Arakawa M, Kanaiba H, Ishikawa K, Nagaoka R, Kobayashi K, Saijo Y. A method for the design of ultrasonic devices for scanning acoustic microscopy using impulsive signals. Ultrasonics. 2018;84:172–9. ArakawaM KanaibaH IshikawaK NagaokaR KobayashiK SaijoY A method for the design of ultrasonic devices for scanning acoustic microscopy using impulsive signals Ultrasonics 2018 84 172 9 10.1016/j.ultras.2017.10.02329149725 Search in Google Scholar

Ahsan Q, Kato H. Ultrasonic evaluation at the interface of aluminum/steel. IOP Conf Series: Mater Sci Eng. 2019;554:012010. AhsanQ KatoH Ultrasonic evaluation at the interface of aluminum/steel IOP Conf Series: Mater Sci Eng 2019 554 012010 10.1088/1757-899X/554/1/012010 Search in Google Scholar

Coleman BD, Hodgdon ML. On the localization of strain shearing motions of ductile materials. Res Mechanica. 1988;23(2):223–38. ColemanBD HodgdonML On the localization of strain shearing motions of ductile materials Res Mechanica 1988 23 2 223 38 Search in Google Scholar

Magier M. The role of adiabatic shear bands effect in penetration process. Issues of Armament Technology. 2018;147(3):7–17. MagierM The role of adiabatic shear bands effect in penetration process Issues of Armament Technology 2018 147 3 7 17 10.5604/01.3001.0012.8308 Search in Google Scholar

Rajani HRZ, Mousavi SAAA. The role of impact energy in failure of explosive cladding of inconel 625 and steel. J Fail Anal Prev. 2012;12(6); https://doi.org/10.1007/s11668-012-9601-1. RajaniHRZ MousaviSAAA The role of impact energy in failure of explosive cladding of inconel 625 and steel J Fail Anal Prev 2012 12 6 https://doi.org/10.1007/s11668-012-9601-1. 10.31399/asm.fach.v03.c9001840 Search in Google Scholar

Coleman BD, Hodgdon ML. On shear bands inductile materials, Analysis and Thermomechanics. Berlin: Springer; 1987. ColemanBD HodgdonML On shear bands inductile materials, Analysis and Thermomechanics Berlin Springer 1987 10.1007/978-3-642-61598-6 Search in Google Scholar

Kosturek R, Wachowski M, Śnieżek L, Gloc M. The influence of the post-weld heat treatment on the microstructure of inconel 625/carbon steel bimetal joint obtained by explosive welding. Metals. 2019;9:246–61. KosturekR WachowskiM ŚnieżekL GlocM The influence of the post-weld heat treatment on the microstructure of inconel 625/carbon steel bimetal joint obtained by explosive welding Metals 2019 9 246 61 10.3390/met9020246 Search in Google Scholar

Chu Q, Tong X, Xu S, Zhang M, Li J, Yan F, et al. Interfacial investigation of explosion-welded titanium/steel bimetallic plates. J Mater Eng Perform. 2020;29:78–86. ChuQ TongX XuS ZhangM LiJ YanF Interfacial investigation of explosion-welded titanium/steel bimetallic plates J Mater Eng Perform 2020 29 78 86 10.1007/s11665-019-04535-9 Search in Google Scholar

Nishida M, Chiba A, Honda Y, Hirazumi J-I, Horikiri K. Electron microscopy studies of bonding interface in explosively welded Ti/steel clads. ISIJ Int. 1995;35(2):217–9. NishidaM ChibaA HondaY HirazumiJ-I HorikiriK Electron microscopy studies of bonding interface in explosively welded Ti/steel clads ISIJ Int 1995 35 2 217 9 10.2355/isijinternational.35.217 Search in Google Scholar

Paul H, Morgiel J, Baudin T, Brisset F, Prazmowski M, Miszczyk M. Characterization of explosive welded joints by TEM and SEM/EBSD. Arch Metall Mater. 2014;59(3):1129–36. PaulH MorgielJ BaudinT BrissetF PrazmowskiM MiszczykM Characterization of explosive welded joints by TEM and SEM/EBSD Arch Metall Mater 2014 59 3 1129 36 10.2478/amm-2014-0197 Search in Google Scholar

Guo Y, Bataev I, Georgarakis K, Jorge AM, Nogueira RP, Pons M, et al. Ni- and Cu-free Ti-based metallic glasses with potential biomedical application. Intermetallics. 2015;63:86–96. GuoY BataevI GeorgarakisK JorgeAM NogueiraRP PonsM Ni- and Cu-free Ti-based metallic glasses with potential biomedical application Intermetallics 2015 63 86 96 10.1016/j.intermet.2015.04.004 Search in Google Scholar

Paul H, Maj Ł, Prażmowski M, Gałka A, Miszczyk M, Petrzak P. Microstructure and mechanical properties of multi-layered Al/Ti composites produced by explosive welding. 17th International Conference on Metal Forming, Metal Forming 2018, 16–19 September 2018, Toyohashi, Japan; 2018. PaulH MajŁ PrażmowskiM GałkaA MiszczykM PetrzakP Microstructure and mechanical properties of multi-layered Al/Ti composites produced by explosive welding 17th International Conference on Metal Forming, Metal Forming 2018 16–19 September 2018 Toyohashi, Japan 2018 Search in Google Scholar

Paul H, Lityńska-Dobrzyńska L, Prażmowski M. Microstructure and phase constitution near the interface of explosively welded aluminium/copper plates. Metall Mater Trans A. 2013;44A:3836–51. PaulH Lityńska-DobrzyńskaL PrażmowskiM Microstructure and phase constitution near the interface of explosively welded aluminium/copper plates Metall Mater Trans A 2013 44A 3836 51 10.1007/s11661-013-1703-1 Search in Google Scholar

Paul H, Morgiel J, Faryna M, Prażmowski M, Miszczyk MM. Microstructure and interfacial reactions in the bonding zone of explosively welded Zr700 and carbon steel plates. Int J Mater Res. 2015;106:782–92. PaulH MorgielJ FarynaM PrażmowskiM MiszczykMM Microstructure and interfacial reactions in the bonding zone of explosively welded Zr700 and carbon steel plates Int J Mater Res 2015 106 782 92 10.3139/146.111230 Search in Google Scholar

Paul H. Interfacial reactions during explosive bonding. Mater Sci Forum. 2014;783–786:1476–81. PaulH Interfacial reactions during explosive bonding Mater Sci Forum 2014 783–786 1476 81 10.4028/www.scientific.net/MSF.783-786.1476 Search in Google Scholar

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