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Kurum makalesi · Scopus üzerinden alınan atıf kaydı

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Development of lattice structure with selective laser melting process: A state of the art on properties, future trends and challenges
Journal of Manufacturing Processes Cilt 81 ss. 1040-1063
Scopus Toplam 210 atıf DOI
Lattice structures are vital for biological applications because of its numerous benefits (for example, faster and stronger binding to bone tissue). Consequently, processing of lattice structure is a particularly popular area of study currently. In this study, additive manufacturing technologies utilized in several engineering disciplines were collated and their merits and shortcomings were examined. Numerous sectors and disciplines view lattice structured additive manufacturing as a prototyping technique. In recent years, additive manufacturing technology has also progressed toward the fabrication of useable final goods. The objective of this review is to classify the produced systems under the headings of aviation, automotive, and military technologies within the context of engineering and to compare them by examining the research and technology firms in this sector. In this categorization, lattice-structured additive manufacturing techniques are categorized as an engineering production technology, and examples of this field are investigated. Technologies, which are examples of diverse engineering applications, are categorized under four primary headings: additive manufacturing knowledge, selective laser melting (SLM), lattice structure, and changeable porosity cellular structures.
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Atıf Yapan Yayın
A review on surface morphology and tribological behavior of titanium alloys via SLM processing
Rapid Prototyping Journal Cilt 31 ss. 271-285
Scopus Havuzumuzda 12 atıf almış
Purpose: Additive manufacturing became the most popular method as it enables the production of light-weight and high-density parts in effective way. Selective laser melting (SLM) is preferred by means of producing a component with good surface quality and near-net shape even if it has complex form. Titanium alloys have been extensively used in engineering covering a variety of sectors such as aeronautical, chemical, automotive and defense industry with its unique material properties. Therefore, the purpose of this review is to study the tribological behavior and surface integrity that reflects the thermal and mechanical performances of the fabricated parts. Design/methodology/approach: This paper is focused on the tribological and surface integrity aspects of SLM-produced titanium alloy components. It is aimed to outline the effect of SLM process parameters on tribology and surface integrity first. Then, thermal, thermal heat, thermomechanical and postprocessing surface treatments such as peening, surface modification and coatings are highlighted in the light of literature review. Findings: This work studied the effects of particle characteristics (e.g. size, shape, distributions, flowability and morphology) on tribological performance according to an extensive literature survey. Originality/value: This study addresses this blind spot in existing industrial-academic knowledge and goals to determine the impact of SLM process parameters, posttreatments (especially peening operations) and particle characteristics on the SLMed Ti-based alloys, which are increasingly used in biomedical applications as well as other many applications ranging from automobile, aero, aviation, maritime, etc. This review paper is created with the intention of providing deep investigation on the important material characteristics of titanium alloy-based components, which can be useful for the several engineering sectors.
Atıf Yapan Makale Bilgileri
Kurumlar (7)
Karabük Üniversitesi Karabuk, Turkey
Konya Technical University Konya, Turkey
Opole University of Technology Opole, Poland
Politechnika Wrocławska Wroclaw, Poland
Selçuk Üniversitesi Selçuklu, Turkey
The Hong Kong Polytechnic University Hong Kong, Hong Kong
Uniwersytet Zielonogórski Zielona Gora, Poland