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Influence of metallic oxide nanoparticles on the mechanical properties of an A-TIG welded 304L austenitic stainless steel
ID
Baloš, Sebastian
(
Avtor
),
ID
Dramićanin, Miroslav D.
(
Avtor
),
ID
Janjatovic, Petar
(
Avtor
),
ID
Kulundzic, Nenad
(
Avtor
),
ID
Zabunov, Ivan
(
Avtor
),
ID
Pilić, Branka
(
Avtor
),
ID
Klobčar, Damjan
(
Avtor
)
PDF - Predstavitvena datoteka,
prenos
(12,03 MB)
MD5: 906F9193A9B0EB07FCA994B1108C28E2
URL - Izvorni URL, za dostop obiščite
https://www.mdpi.com/1996-1944/13/20/4513
Galerija slik
Izvleček
Austenitic stainless steels represent a significant aerospace material, being used for various castings, structural components, landing gear components, afterburners, exhaust components, engine parts, and fuel tanks. The most common joining process is tungsten inert gas (TIG) welding, which possesses many advantages such as suitability to weld a wide range of ferrous and non-ferrous metals and alloys, providing high quality welds with good mechanical properties. Its major disadvantage is low productivity due to low penetration and welding speed. This can be overcome by introducing an activating flux before welding. The activating flux reverses the material flow of the weld pool, significantly increasing penetration. Therefore, shielding gas consumption is reduced and welding without a consumable is enabled. However, the consumable in conventional TIG also enables the conditioning of the mechanical properties of welds. In this study, Si and Ti metallic oxide nanoparticles were used to increase the weld penetration depth, while bend testing, tensile, and impact toughness were determined to evaluate the mechanical properties of welds. Furthermore, optical emission spectroscopy, light, and scanning electron microscope were used to determine the chemical compositions and microstructures of the welds. Chemical compositions and weld mechanical properties were similar in all specimens. The highest tensile and impact properties were obtained with the specimen welded with the flux containing 20% TiO$_2$ and 80% SiO$_2$ nanoparticles. Although lower than those of the base metal, they were well within the nominal base metal mechanical properties.
Jezik:
Angleški jezik
Ključne besede:
oxide flux
,
activated tungsten inert gas welding
,
mechanical properties
,
304L stainless steel
Vrsta gradiva:
Članek v reviji
Tipologija:
1.01 - Izvirni znanstveni članek
Organizacija:
FS - Fakulteta za strojništvo
Status publikacije:
Objavljeno
Različica publikacije:
Objavljena publikacija
Leto izida:
2020
Št. strani:
11 str.
Številčenje:
Vol. 13, iss. 20, art. 4513
PID:
20.500.12556/RUL-134486
UDK:
621.791.75:669.14.018.8(045)
ISSN pri članku:
1996-1944
DOI:
10.3390/ma13204513
COBISS.SI-ID:
44227843
Datum objave v RUL:
18.01.2022
Število ogledov:
1175
Število prenosov:
178
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Objavi na:
Gradivo je del revije
Naslov:
Materials
Skrajšan naslov:
Materials
Založnik:
Molecular Diversity Preservation International
ISSN:
1996-1944
COBISS.SI-ID:
33588485
Licence
Licenca:
CC BY 4.0, Creative Commons Priznanje avtorstva 4.0 Mednarodna
Povezava:
http://creativecommons.org/licenses/by/4.0/deed.sl
Opis:
To je standardna licenca Creative Commons, ki daje uporabnikom največ možnosti za nadaljnjo uporabo dela, pri čemer morajo navesti avtorja.
Začetek licenciranja:
12.10.2020
Sekundarni jezik
Jezik:
Slovenski jezik
Ključne besede:
oksidni delci
,
aktivirano varjenje TIG
,
mehanske lastnosti
,
nerjavno jeklo 304 L
Projekti
Financer:
ARRS - Agencija za raziskovalno dejavnost Republike Slovenije
Številka projekta:
P2-0270
Naslov:
Proizvodni sistemi, laserske tehnologije in spajanje materialov
Financer:
ARRS - Agencija za raziskovalno dejavnost Republike Slovenije
Številka projekta:
L2-8181
Naslov:
Selektivna plazemska oksidacija zlitin FeCrAl za podaljšanje obratovalne dobe žarilnih svečk za dizelske motorje
Financer:
ARRS - Agencija za raziskovalno dejavnost Republike Slovenije
Številka projekta:
L2-8183
Naslov:
Visoko prilagodljivi vlakenski laserji velikih moči za uporabo v industriji
Financer:
Drugi - Drug financer ali več financerjev
Naslov:
Modern technologies in production engineering: lectures, science and collaboration with industry
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