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PMID: 41309811 Published · epublish English Journal Article

Influence of layer thickness and extrusion ratio on strand morphology, porosity, surface roughness, and anisotropic mechanical properties in FDM.

Scientific reports ·Vol. 15 ·No. 1 ·2025-11-27 ·页码 42351

Lou X, Tang X, Dong L, Zhao T, Wang F, Zhao L, Zhang T

Abstract

Fused deposition modeling (FDM) technology is widely used in the areas of rapid prototyping, education, automobile and health care. However, the disadvantages of high porosity, low surface quality, and significant anisotropic mechanical properties hinder the applications in high-demand fields. In this paper, numerical model and experimental tests are combined to study the effects of layer thickness and extrusion ratio on the printing quality and mechanical properties of FDM structures. The computational fluid dynamics (CFD) and volume of fluid (VOF) method are adopted to investigate the flow behavior of melt and the cross-section of strand. The porosity characteristics, surface roughness and anisotropic mechanical properties of printed part are researched. The results show that, when the layer thickness is less than the diameter of nozzle, the squeezing of nozzle bottom face causes the melt climbing at the rear side of nozzle, which forms the bulges at the top corners of strand. Lower layer thickness helps to decrease the porosity and surface roughness. The proper increment of extrusion ratio can effectively reduce the porosity and improve the mechanical properties of the structures, yet large extrusion ratio may cause excessive squeezing of strand melt which will worsen the surface roughness and mechanical properties. This research contributes to a deeper understanding of FDM technology and provides guidance for the process optimization and structure design.

Keywords
Fused deposition modeling Mechanical property Porosity Strand morphology Surface roughness
作者与单位
共 7 位作者,点击展开单位 / ORCID
Lou Xiaofei
College of Mechatronic Engineering, North Minzu University, Yinchuan, 750021, Ningxia, China. | Ningxia Engineering Research Center for Hybrid Manufacturing System, Yinchuan, 750021, Ningxia, China.
Tang Xin'an
State Key Laboratory of High-Efficiency Utilization of Coal and Green Chemical Engineering, College of Chemistry and Chemical Engineering, Ningxia University, Yinchuan, 750021, China.
Dong Lei
State Key Laboratory of High-Efficiency Utilization of Coal and Green Chemical Engineering, College of Chemistry and Chemical Engineering, Ningxia University, Yinchuan, 750021, China.
Zhao Tao
College of Mechatronic Engineering, North Minzu University, Yinchuan, 750021, Ningxia, China. | Ningxia Engineering Research Center for Hybrid Manufacturing System, Yinchuan, 750021, Ningxia, China.
Wang Fuwei
College of Mechatronic Engineering, North Minzu University, Yinchuan, 750021, Ningxia, China. | Ningxia Engineering Research Center for Hybrid Manufacturing System, Yinchuan, 750021, Ningxia, China.
Zhao Li
College of Mechatronic Engineering, North Minzu University, Yinchuan, 750021, Ningxia, China. [email protected]. | Ningxia Engineering Research Center for Hybrid Manufacturing System, Yinchuan, 750021, Ningxia, China. [email protected].
Zhang Teng
College of Mechatronic Engineering, North Minzu University, Yinchuan, 750021, Ningxia, China. [email protected]. | Ningxia Engineering Research Center for Hybrid Manufacturing System, Yinchuan, 750021, Ningxia, China. [email protected].
Article Info
Journal
Scientific reports
Abbr.
Sci Rep
ISSN
2045-2322
Published
2025-11-27
电子出版
2025-00-27
页码
42351
Language
English
Country/Region
England
NLM ID
101563288
基金资助
Fundamental Research Funds for the Central Universities, North Minzu University · 2021KYQD08
Natural Science Foundation of Ningxia · 2024AAC03159
National Natural Science Foundation of China · 52265017
Ningxia Science and Technology Innovation Team · 2024CXTD001
Ningxia Science and Technology Innovation Team · 2024CXTD001
Ningxia Science and Technology Innovation Team · 2024CXTD001
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