Fatigue Improvement of Additive Manufactured Ti–TiB Material through Shot Peening

In this work, fatigue improvement through shot peening of an additive manufactured Ti–TiB block produced through Plasma Transferred Arc Solid Free-Form Fabrication (PTA-SFFF) was investigated. The microstructure and composition were explored through analytical microscopy techniques such as scanning...

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Main Authors: Liza-Anastasia DiCecco, Mehdi Mehdi, Afsaneh Edrisy
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/11/9/1423
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spelling doaj-4322c80c55664a39b145280bf8fb80ba2021-09-26T00:41:40ZengMDPI AGMetals2075-47012021-09-01111423142310.3390/met11091423Fatigue Improvement of Additive Manufactured Ti–TiB Material through Shot PeeningLiza-Anastasia DiCecco0Mehdi Mehdi1Afsaneh Edrisy2Department of Mechanical, Automotive, and Materials Engineering, University of Windsor, 401 Sunset Ave, Windsor, ON N9B 3P4, CanadaDepartment of Mechanical, Automotive, and Materials Engineering, University of Windsor, 401 Sunset Ave, Windsor, ON N9B 3P4, CanadaDepartment of Mechanical, Automotive, and Materials Engineering, University of Windsor, 401 Sunset Ave, Windsor, ON N9B 3P4, CanadaIn this work, fatigue improvement through shot peening of an additive manufactured Ti–TiB block produced through Plasma Transferred Arc Solid Free-Form Fabrication (PTA-SFFF) was investigated. The microstructure and composition were explored through analytical microscopy techniques such as scanning and transmission electron microscopy (SEM, TEM) and electron backscatter diffraction (EBSD). To investigate the isotropic behavior within the additive manufactured Ti–TiB blocks, tensile tests were conducted in longitudinal, diagonal, and lateral directions. A consistent tensile behavior was observed for all the directions, highlighting a nearly isotropic behavior within samples. Shot peening was introduced as a postmanufacturing treatment to enhance the mechanical properties of AM specimens. Shot peening led to a localized increase in hardness at the near-surface where stress-induced twins are noted within the affected microstructure. The RBF-200 HT rotating-beam fatigue machine was utilized to conduct fatigue testing on untreated and shot-peened samples, starting at approximately 1/2 the ultimate tensile strength of the bulk material and testing within low- (<10<sup>5</sup> cycles) to high-cycle (>10<sup>5</sup> cycles) regimes. Shot-peened samples experienced significant improvement in fatigue life, increasing the fitted endurance limit from 247.8 MPa for the untreated samples to 318.3 MPa, leading to an increase in fatigue resistance of approximately 28%.https://www.mdpi.com/2075-4701/11/9/1423additive manufacturingfatigueTi–TiBtitanium matrix compositeshot peening
collection DOAJ
language English
format Article
sources DOAJ
author Liza-Anastasia DiCecco
Mehdi Mehdi
Afsaneh Edrisy
spellingShingle Liza-Anastasia DiCecco
Mehdi Mehdi
Afsaneh Edrisy
Fatigue Improvement of Additive Manufactured Ti–TiB Material through Shot Peening
Metals
additive manufacturing
fatigue
Ti–TiB
titanium matrix composite
shot peening
author_facet Liza-Anastasia DiCecco
Mehdi Mehdi
Afsaneh Edrisy
author_sort Liza-Anastasia DiCecco
title Fatigue Improvement of Additive Manufactured Ti–TiB Material through Shot Peening
title_short Fatigue Improvement of Additive Manufactured Ti–TiB Material through Shot Peening
title_full Fatigue Improvement of Additive Manufactured Ti–TiB Material through Shot Peening
title_fullStr Fatigue Improvement of Additive Manufactured Ti–TiB Material through Shot Peening
title_full_unstemmed Fatigue Improvement of Additive Manufactured Ti–TiB Material through Shot Peening
title_sort fatigue improvement of additive manufactured ti–tib material through shot peening
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2021-09-01
description In this work, fatigue improvement through shot peening of an additive manufactured Ti–TiB block produced through Plasma Transferred Arc Solid Free-Form Fabrication (PTA-SFFF) was investigated. The microstructure and composition were explored through analytical microscopy techniques such as scanning and transmission electron microscopy (SEM, TEM) and electron backscatter diffraction (EBSD). To investigate the isotropic behavior within the additive manufactured Ti–TiB blocks, tensile tests were conducted in longitudinal, diagonal, and lateral directions. A consistent tensile behavior was observed for all the directions, highlighting a nearly isotropic behavior within samples. Shot peening was introduced as a postmanufacturing treatment to enhance the mechanical properties of AM specimens. Shot peening led to a localized increase in hardness at the near-surface where stress-induced twins are noted within the affected microstructure. The RBF-200 HT rotating-beam fatigue machine was utilized to conduct fatigue testing on untreated and shot-peened samples, starting at approximately 1/2 the ultimate tensile strength of the bulk material and testing within low- (<10<sup>5</sup> cycles) to high-cycle (>10<sup>5</sup> cycles) regimes. Shot-peened samples experienced significant improvement in fatigue life, increasing the fitted endurance limit from 247.8 MPa for the untreated samples to 318.3 MPa, leading to an increase in fatigue resistance of approximately 28%.
topic additive manufacturing
fatigue
Ti–TiB
titanium matrix composite
shot peening
url https://www.mdpi.com/2075-4701/11/9/1423
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