Heat distribution in material during fused deposition modelling
Autor: | Radoslaw A. Wach, Piotr Wolszczak, Krystian Lygas, Mateusz Paszko |
---|---|
Rok vydání: | 2018 |
Předmět: |
chemistry.chemical_classification
0209 industrial biotechnology Thermoplastic Materials science business.industry Mechanical Engineering 3D printing 02 engineering and technology 021001 nanoscience & nanotechnology Industrial and Manufacturing Engineering law.invention 020901 industrial engineering & automation chemistry law Thermal Deposition (phase transition) Crystallization Composite material 0210 nano-technology business Porosity Layer (electronics) Shrinkage |
Zdroj: | Rapid Prototyping Journal. 24:615-622 |
ISSN: | 1355-2546 |
DOI: | 10.1108/rpj-04-2017-0062 |
Popis: | Purpose The paper aims to investigate the problem of heat distribution in FDM 3D printing. The temperature distribution of the material is important because of the occurrence of shrinkage and crystallization phenomena that affect the dimensional accuracy and strength of the material. Design/methodology/approach The study uses a thermoplastic material (polylactide) and a test stand equipped with a 3D printer adapted to perform thermographic observations. The main source of heat in the study was a molten laminate material and a hot-end head. Findings When the material is molten at the temperature of 190°C, the temperature of a previous layer increases above the glass transition point (Tg = 64.8°C) and reaches to about 80°C. In addition, at the boundary of the layers, there occurs a permanent bonding of the consecutive layers because of their partial melting. The paper also reports the results of porosity of PLA samples printed at the temperature ranging between 205 and 255°C. The degree of porosity depends on the temperature of the extruded material. Practical implications The results may be helpful for designers of various printed parts and construction engineers of printing heads and 3D printer chambers. Originality/value Thermograms of material layers with a height of 0.3 mm are obtained using a thermal imaging camera with a lens for macro magnification (43 pixels/mm). |
Databáze: | OpenAIRE |
Externí odkaz: |