A Comprehensive Study of the Effect of Scanning Strategy on In939 Fabricated by Powder Bed Fusion-Laser Beam

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2024

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Elsevier Editora Ltda

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Manufacturing Engineering
(2003)
Opened in 2003 with the aim to graduate experts in the field of machine-production, our Department is among the firsts in our country to offer education in English. The Manufacturing Engineering program focuses on the manufacturing technologies that shape materials from raw materials to final products by means of analytical, experimental and numerical modeling methods. First Manufacturing Engineering Program to be engineered by Müdek, our department aims to graduate creative and innovative Manufacturing Engineers that are knowledgeable in the current technology, and are able to use production resources in an effective and sustainable way that never disregards environmental facts. As the first Department to implement the Cooperative Education Program at Atılım University in coordination with institutions from the industry, the Manufacturing Engineering offers a practice-oriented approach in education with its laboratory infrastructure and research opportunities. The curriculum at our department is supported by current engineering software, and catered to creating engineers equipped to meet the needs of the production industry.
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Metallurgical and Materials Engineering
(2004)
The main fields of operation for Metallurgical and Materials Engineering are production of engineering materials, defining and improving their features, as well as developing new materials to meet the expectations at every aspect of life and the users from these aspects. Founded in 2004 and graduated its 10th-semester alumni in 2018, our Department also obtained MÜDEK accreditation in the latter year. Offering the opportunity to hold an internationally valid diploma through the accreditation in question, our Department has highly qualified and experienced Academic Staff. Many of the courses offered at our Department are supported with various practice sessions, and internship studies in summer. This way, we help our students become better-equipped engineers for their future professional lives. With the Cooperative Education curriculum that entered into effect in 2019, students may volunteer to work at contracted companies for a period of six months with no extensions to their period of study.
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Department of Metallurgical and Materials Engineering
Metalurji ve Malzeme Mühendisliğinin alanı çok geniştir ve temel olarak metaller, seramikler, polimerler ve bu üç malzemenin birlikte oluşturdukları kompozit malzemelerin üretimlerini, şekillendirilmelerini, işlemlerini, karakterizasyonlarını ve kullanımlarındaki davranışlarını kapsar. Yüksek Lisans programımızda amacımız, öğrencilerimizin bu konulardan bir veya birkaçında kapsamlı ve derin bir kuramsal ve uygulamalı bilgi birikimine sahip olmaları ve bilgiye ulaşma, ulaşılan bilgileri değerlendirme, deney tasarlama, deney sonuçlarını analiz etme ve raporlama yeteneklerini kazanmalarıdır. Web sayfamızda yer alan bilgilerden de görülebileceği gibi modern cihaz ve ekipmanla donatılmış güçlü laboratuvar altyapımız çok farklı konularda araştırma yapılmasını olanaklı kılmaktadır. Yüksek Lisans müfredatımızda Malzemelerin İleri Termodinamiği, Malzeme Mühendisliğinde Matematiksel Yöntemler ve Malzeme-Süreç Seçimi ve Tasarım Problemleri isimli üç zorunlu ders yer almaktadır. Tezli Yüksek Lisans programımız bu zorunlu derslerin yanında zorunlu olan Seminer, Yüksek Lisans Tezi ve dört teknik seçmeli dersten, Tezsiz Yüksek Lisans programımız ise zorunlu olan Bitirme Projesi ve 7 teknik seçmeli dersten oluşmaktadır. Teknik seçmeli dersler tez danışmanının onayı dâhilinde çok sayıdaki teknik seçmeli ders arasından seçilmektedir. Programımıza Metalurji ve Malzeme Mühendisliği mezunlarının yanısıra diğer Mühendislik Bölümleri ile Fizik, Kimya vb. bölümlerin mezunları da kabul edilebilmektedir. Bu bölümlerden mezun olan adayların, her birinin akademik ve profesyonel birikimlerine göre belirlenecek bir bilimsel hazırlık programını tamamlamaları gerekmektedir.

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Abstract

This study provides a comprehensive investigation into the effects of different scanning strategies on the material properties of IN939 fabricated using the PBF-LB process. The scanning strategies examined included alternating bi-directional scanning with rotation angles of 0°, 45°, 67°, and 90° between adjacent layers (named as shown), as well as alternating chessboard scanning with rotation angles of 67° and 90° (named as Q67° and Q90°). The results revealed that the 45° and 67° samples had the highest relative density, while the 0° and Q67° samples showed the highest average porosity. Moreover, various types of cracks, including solidification, solid-state, and oxide-induced cracks, were observed. Among the bi-directional scan samples, the 0° sample displayed the most extensive cracking and the highest σmax residual stress values in both XZ and XY planes. Conversely, the 45° and 67° samples exhibited fewer cracks. Notably, the lowest σmax residual stress in the XZ planes among the bi-directional scan samples was observed in the 67° sample. Additionally, microstructural analyses indicated differences in grain size and morphology, among the samples. Texture analysis indicated that the 0° and 90° samples exhibited strong cube textures, whereas the texture intensity weakened for the 45° and 67° samples. Moreover, the alternating chessboard scanning strategy led to rougher surfaces (higher Sa and Sz values) compared to the alternating bi-directional scanning strategy, regardless of the rotation angles. Furthermore, the microhardness values among the samples showed minimal variance, ranging between 321 ± 14 HV and 356± 7 HV. © The Authors

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Keywords

Electron backscatter diffraction (EBSD), IN939, Microstructure, Powder bed fusion-laser beam (PBF-LB), Residual stress, Scanning strategy

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Source

Journal of Materials Research and Technology

Volume

33

Issue

Start Page

5457

End Page

5481

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