Cargando…

The Effect of Holding Time on Dissimilar Transient Liquid-Phase-Bonded Properties of Super-Ferritic Stainless Steel 446 to Martensitic Stainless Steel 410 Using a Nickel-Based Interlayer

The dissimilar joining of martensitic and ferritic stainless steels have been developed that needs corrosion resistance and enhanced mechanical properties. In this study, the transient liquid-phase bonding of martensitic stainless steel 410 and super-ferritic stainless steel 446 was conducted with a...

Descripción completa

Detalles Bibliográficos
Autores principales: Hafizi, Majid, Kasiri-Asgarani, Masoud, Naalchian, Mojtaba, Bakhsheshi-Rad, Hamid Reza, Berto, Filippo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9698928/
https://www.ncbi.nlm.nih.gov/pubmed/36363822
http://dx.doi.org/10.3390/mi13111801
_version_ 1784838942551441408
author Hafizi, Majid
Kasiri-Asgarani, Masoud
Naalchian, Mojtaba
Bakhsheshi-Rad, Hamid Reza
Berto, Filippo
author_facet Hafizi, Majid
Kasiri-Asgarani, Masoud
Naalchian, Mojtaba
Bakhsheshi-Rad, Hamid Reza
Berto, Filippo
author_sort Hafizi, Majid
collection PubMed
description The dissimilar joining of martensitic and ferritic stainless steels have been developed that needs corrosion resistance and enhanced mechanical properties. In this study, the transient liquid-phase bonding of martensitic stainless steel 410 and super-ferritic stainless steel 446 was conducted with a nickel-based amorphous interlayer (BNi-2) at constant temperature (1050 °C) and increasing times of 1, 15, 30, 45, and 60 min. For characterization of the TLP-bonded samples, optical microscopy and scanning emission microscopy equipped with energy-dispersive X-ray spectroscopy were used. To investigate the mechanical properties of TLP-bonded samples, the shear strength test method was used. Finally, the X-ray diffraction method was used for microstructural investigation and phase identification. The microstructural study showed that the microstructure of base metals changed: the martensitic structure transited to tempered martensite, including ferrite + cementite colonies, and the delta phase in super-ferritic stainless steel dissolved in the matrix. During the transient liquid-phase bonding, the aggregation of boron due to its diffusion to base metals resulted in the precipitation of a secondary phase, including iron–chromium-rich borides with blocky and needle-like morphologies at the interface of the molten interlayer and base metals. On the other hand, the segregation of boron in the bonding zone resulted from a low solubility limit, and the distribution coefficient has induced some destructive and brittle phases, such as nickel-rich (Ni(3)B) and chromium-rich boride (CrB/Cr(2)B). By increasing the time, significant amounts of boron have been diffused to a base metal, and diffusion-induced isothermal solidification has happened, such that the isothermal solidification of the assembly has been completed under the 1050 °C/60 min condition. The distribution of the hardness profile is relatively uniform at the bonding zone after completing isothermal solidification, except the diffusion-affected zone, which has a higher hardness. The shear strength test showed that increasing the holding time was effective in achieving the strength near the base metals such that the maximum shear strength of about 472 MPa was achieved.
format Online
Article
Text
id pubmed-9698928
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96989282022-11-26 The Effect of Holding Time on Dissimilar Transient Liquid-Phase-Bonded Properties of Super-Ferritic Stainless Steel 446 to Martensitic Stainless Steel 410 Using a Nickel-Based Interlayer Hafizi, Majid Kasiri-Asgarani, Masoud Naalchian, Mojtaba Bakhsheshi-Rad, Hamid Reza Berto, Filippo Micromachines (Basel) Article The dissimilar joining of martensitic and ferritic stainless steels have been developed that needs corrosion resistance and enhanced mechanical properties. In this study, the transient liquid-phase bonding of martensitic stainless steel 410 and super-ferritic stainless steel 446 was conducted with a nickel-based amorphous interlayer (BNi-2) at constant temperature (1050 °C) and increasing times of 1, 15, 30, 45, and 60 min. For characterization of the TLP-bonded samples, optical microscopy and scanning emission microscopy equipped with energy-dispersive X-ray spectroscopy were used. To investigate the mechanical properties of TLP-bonded samples, the shear strength test method was used. Finally, the X-ray diffraction method was used for microstructural investigation and phase identification. The microstructural study showed that the microstructure of base metals changed: the martensitic structure transited to tempered martensite, including ferrite + cementite colonies, and the delta phase in super-ferritic stainless steel dissolved in the matrix. During the transient liquid-phase bonding, the aggregation of boron due to its diffusion to base metals resulted in the precipitation of a secondary phase, including iron–chromium-rich borides with blocky and needle-like morphologies at the interface of the molten interlayer and base metals. On the other hand, the segregation of boron in the bonding zone resulted from a low solubility limit, and the distribution coefficient has induced some destructive and brittle phases, such as nickel-rich (Ni(3)B) and chromium-rich boride (CrB/Cr(2)B). By increasing the time, significant amounts of boron have been diffused to a base metal, and diffusion-induced isothermal solidification has happened, such that the isothermal solidification of the assembly has been completed under the 1050 °C/60 min condition. The distribution of the hardness profile is relatively uniform at the bonding zone after completing isothermal solidification, except the diffusion-affected zone, which has a higher hardness. The shear strength test showed that increasing the holding time was effective in achieving the strength near the base metals such that the maximum shear strength of about 472 MPa was achieved. MDPI 2022-10-22 /pmc/articles/PMC9698928/ /pubmed/36363822 http://dx.doi.org/10.3390/mi13111801 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hafizi, Majid
Kasiri-Asgarani, Masoud
Naalchian, Mojtaba
Bakhsheshi-Rad, Hamid Reza
Berto, Filippo
The Effect of Holding Time on Dissimilar Transient Liquid-Phase-Bonded Properties of Super-Ferritic Stainless Steel 446 to Martensitic Stainless Steel 410 Using a Nickel-Based Interlayer
title The Effect of Holding Time on Dissimilar Transient Liquid-Phase-Bonded Properties of Super-Ferritic Stainless Steel 446 to Martensitic Stainless Steel 410 Using a Nickel-Based Interlayer
title_full The Effect of Holding Time on Dissimilar Transient Liquid-Phase-Bonded Properties of Super-Ferritic Stainless Steel 446 to Martensitic Stainless Steel 410 Using a Nickel-Based Interlayer
title_fullStr The Effect of Holding Time on Dissimilar Transient Liquid-Phase-Bonded Properties of Super-Ferritic Stainless Steel 446 to Martensitic Stainless Steel 410 Using a Nickel-Based Interlayer
title_full_unstemmed The Effect of Holding Time on Dissimilar Transient Liquid-Phase-Bonded Properties of Super-Ferritic Stainless Steel 446 to Martensitic Stainless Steel 410 Using a Nickel-Based Interlayer
title_short The Effect of Holding Time on Dissimilar Transient Liquid-Phase-Bonded Properties of Super-Ferritic Stainless Steel 446 to Martensitic Stainless Steel 410 Using a Nickel-Based Interlayer
title_sort effect of holding time on dissimilar transient liquid-phase-bonded properties of super-ferritic stainless steel 446 to martensitic stainless steel 410 using a nickel-based interlayer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9698928/
https://www.ncbi.nlm.nih.gov/pubmed/36363822
http://dx.doi.org/10.3390/mi13111801
work_keys_str_mv AT hafizimajid theeffectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer
AT kasiriasgaranimasoud theeffectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer
AT naalchianmojtaba theeffectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer
AT bakhsheshiradhamidreza theeffectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer
AT bertofilippo theeffectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer
AT hafizimajid effectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer
AT kasiriasgaranimasoud effectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer
AT naalchianmojtaba effectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer
AT bakhsheshiradhamidreza effectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer
AT bertofilippo effectofholdingtimeondissimilartransientliquidphasebondedpropertiesofsuperferriticstainlesssteel446tomartensiticstainlesssteel410usinganickelbasedinterlayer