Dimensional Methods Used in the Additive Manufacturing Process

Author:

Száva Ioan1ORCID,Vlase Sorin12ORCID,Scutaru Maria Luminița1,Asztalos Zsolt1,Gálfi Botond-Pál1,Șoica Adrian3,Șoica Simona3

Affiliation:

1. Department of Mechanical Engineering, Transylvania University of Brasov, B-dul Eroilor 29, 500036 Brasov, Romania

2. Romanian Academy of Technical Sciences, B-dul Dacia 26, 030167 Bucharest, Romania

3. Department of Automotive Engineering, Transylvania University of Brasov, B-dul Eroilor 29, 500036 Brasov, Romania

Abstract

It is a well-known fact that in the field of modern manufacturing processes, additive manufacturing (AM) offers unexpected opportunities for creativity and rapid development. Compared with classical manufacturing technologies, AM offers the advantages of reducing weight and improving performance and offers excellent design capabilities for prototyping and rapid sample manufacture. To achieve its full potential regarding cost, durability, material consumption, and rigidity, as well as maintaining competitiveness, there are several research directions that have not been explored. One less frequently explored direction is the involvement of dimensional methods in obtaining an optimal and competitive final product. In this review, we intend to discuss the ways in which dimensional methods, such as geometric analogy, similarity theory, and dimensional analysis, are involved in addressing the problems of AM. To the best of our knowledge, it appears that this field of engineering has not fully maximized the advantages of these dimensional methods to date. In this review, we survey mainly polymer-based AM technology. We focus on the design and optimization of highly competitive products obtained using AM and also on the optimization of layer deposition, including their orientation and filling characteristics. With this contribution to the literature, we hope to suggest a fruitful direction for specialists involved in AM to explore the possibilities of modern dimensional analysis.

Funder

Transylvania University of Brasov

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

Reference177 articles.

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2. Brackett, D., Ashcroft, I., and Hague, R. (2010, January 8–10). Topology optimization for additive manufacturing. Proceedings of the 21st Annual International Solid Freeform Fabrication Symposium—An Additive Manufacturing Conference, SFF, Austin, TX, USA.

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4. Galfi, B.P., Szava, I., Sova, D., and Vlase, S. (2021). Thermal Scaling of Transient Heat Transfer in a Round Cladded Rod with Modern Dimensional Analysis. Mathematics, 9.

5. Anderson, D.M. (2004). Design for Manufacturability & Concurrent Engineering: How to Design for Low Cost, Design in High Quality, Design for Lean Manufacture, and Design Quickly for Fast Production, CIM Press.

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