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A comparative study of the thermal behavior of three different 3D printer liquefiers

机译:三种不同3D打印机液化的热行为的比较研究

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The expansion of 3D printing systems as mechatronic devices able to localize manufacturing activities has attracted the attention in academic and professional labs worldwide. However, little is known from a formal point of view about the actual possibilities of optimization in terms of hardware and software. This paper proposes alternative geometrical designs of RepRap 3D printer liquefiers, and offers an evaluation of their thermal performance by analyzing the temperature profiles derived from their functioning in a steady state regime. For that purpose, finite element calculation and experimental techniques are combined and compared. A detachable model of liquefier, used in numerous RepRap 3D printers, has been taken as a reference to design and manufacture two new variations. As the objective of the liquefier is to heat the plastic material while limiting the temperature at its top, heat conduction must be prevented by means of a refrigerating fan faced at the liquefier body. The effect of that fan has been introduced in the system of study, by evaluating the influence of five different fan velocities on the final temperature profile. All combinations of fan speed and liquefier geometry have been calculated through a finite elements model. Then, they have been reproduced experimentally, measuring discrete temperatures at different heights of the liquefier by a group of thermocouples installed on the surface of the fins composing the liquefier heat sink. Results showed that the defined FEM model reproduces acceptably the final temperature profiles obtained by experimental measures. Furthermore, the new proposed design provided with thick fins shows its good performance when the 3D printing process is performed with a fan speed higher than 10% (defined according to a PWM function programmed at the 3D printer's firmware), while its design presents a much lower manufacturing time with regards to the present available design. It is also concluded that refrigerating the liquefier during a standard 3D printing process with an airflow higher than PWM = 20% is not recommended, due to a fall in efficiency and not remarkable refrigerating effect obtained through it. (C) 2017 Elsevier Ltd. All rights reserved.
机译:3D打印系统的扩展为能够本地化制造业活动的机电设备引起了全球学术和专业实验室的关注。但是,从关于硬件和软件方面的实际优化可能性的正式观点来看,很少。本文提出了REPRAP 3D打印机液化仪的替代地几何设计,通过分析稳定状态制度在功能中的温度型材来提供热性能的评估。为此目的,合并和比较有限元计算和实验技术。已在众多REELAP 3D打印机中使用的可拆卸液晶模型作为设计和制造两个新变化的参考。随着液位的目的是加热塑料材料,同时在其顶部限制温度时,必须通过面向液体体的制冷风扇防止热传导。该风扇在研究体系中引入了该风扇的效果,通过评估五种不同的风扇速度对最终温度谱的影响。通过有限元模型计算了风扇速度和液化几何形状的所有组合。然后,它们已经通过实验再现,通过安装在构成液体散热器的翅片表面上的一组热电偶的液化器的不同高度处测量离散温度。结果表明,定义的有限元模型可接受地再现通过实验措施获得的最终温度谱。此外,当使用高于10%的风扇速度(根据在3D打印机固件上编程的PWM功能定义)进行3D打印过程时,提供厚鳍的新提出的设计表明了其良好的性能。较低的制造时间关于本可用设计。还结论,由于效率下降,不建议在高于PWM = 20%的标准3D打印过程中制冷液化液,这是由于效率下降,而不是通过其获得的不显着的制冷效果。 (c)2017 Elsevier Ltd.保留所有权利。

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