Effect of Process Parameters and Thermal Annealing on Mechanical Properties of Fused Filament Fabricated Specimens

N. C., R. V. Pazhamannil, G. P.
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引用次数: 1

Abstract

Fused filament fabrication (FFF) is the most popular additive manufacturing technique to produce three-dimensional complex structures. It is a layer by layer additive manufacturing technique in which parts are created by the addition of one layer over another by using melted thermoplastic polymers. Fused filament fabricated parts have broad applications in automotive, medical, art and adornments fields, etc. The mechanical and thermal properties of FFF printed parts mainly depends on process parameters like infill pattern, layer thickness, infill speed, Nozzle temperature, infill density. The only way to improve the mechanical and surface properties of a part after printing is to make use of the post-processing techniques. Thermal annealing is one of the best post-process treatment for fused filament fabricated parts to improve mechanical properties. The objective of this paper is to provide an overview of the effect of different process parameters on the mechanical properties of fused filament fabricated parts and also investigate the influence of thermal annealing on the mechanical properties of printed parts. Mechanical properties of printed parts are analyzed by conducting different mechanical tests like tensile strength, compressive strength, and impact strength tests, etc. These mechanical tests are conducted on the standard specimens of ASTM or ISO standards. Thermal annealing should be possible by heating the printed part in a temperature range between the glass change temperature (Tg) and the melting point temperature (Tm) of the material used. It is found that the mechanical properties like tensile strength, compressive strength, and impact strength, etc. depend more on the process parameters like infill density, layer thickness, nozzle temperature, etc. It is observed that thermal annealing caused an improvement in flexural strength and tensile strength of fused filament fabricated parts. The tensile test for high tensile PLA showed that the maximum tensile strength furthermore, modulus for the non-heat-treated examples was acquired 65.75 MPa and 4.9 GPa individually, at 250°C. The tensile test results for heat-treated examples exhibited that the maximum tensile strength and modulus were gained 67.4 MPa and 5.65 GPa, separately, at 250°C.
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工艺参数及热处理对电熔长丝试样力学性能的影响
熔丝制造(FFF)是制造三维复杂结构最常用的增材制造技术。这是一种逐层增材制造技术,通过使用熔化的热塑性聚合物在另一层上添加一层来制造零件。熔丝制件在汽车、医疗、艺术、装饰等领域有着广泛的应用。FFF打印件的力学和热性能主要取决于填充图案、层厚、填充速度、喷嘴温度、填充密度等工艺参数。提高零件印刷后的机械性能和表面性能的唯一方法是利用后处理技术。热退火是提高熔丝制件力学性能的最佳后处理方法之一。本文的目的是概述不同工艺参数对熔融长丝制造零件机械性能的影响,并研究热处理对印刷零件机械性能的影响。通过进行拉伸强度、抗压强度、冲击强度等不同的力学试验,分析打印件的力学性能。这些力学试验是在ASTM或ISO标准的标准试样上进行的。通过在玻璃化温度(Tg)和所用材料的熔点温度(Tm)之间的温度范围内加热印刷部件,热退火应该是可能的。结果表明,复合材料的抗拉强度、抗压强度、冲击强度等力学性能与填充密度、层厚、喷嘴温度等工艺参数的关系较大。观察到,热退火使熔丝制件的抗折强度和抗拉强度得到提高。拉伸试验表明,在250℃下,未热处理的PLA的最大拉伸强度为65.75 MPa,模量为4.9 GPa。热处理试样的拉伸试验结果表明,在250℃时,拉伸强度和模量分别达到67.4 MPa和5.65 GPa。
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