Narei Hamid, Fatehifar Maryam, Malt Ashley Howard, Bissell John, Souri Mohammad, Nasr Esfahani Mohammad, Jabbari Masoud
Faculty of New Sciences and Technologies, University of Tehran, Tehran 1439957131, Iran.
Department of Mechanical, Aerospace and Civil Engineering, The University of Manchester, Manchester M13 9PL, UK.
Polymers (Basel). 2021 Feb 2;13(3):476. doi: 10.3390/polym13030476.
Material extrusion additive manufacturing (ME-AM) techniques have been recently introduced for core-shell polymer manufacturing. Using ME-AM for core-shell manufacturing offers improved mechanical properties and dimensional accuracy over conventional 3D-printed polymer. Operating parameters play an important role in forming the overall quality of the 3D-printed manufactured products. Here we use numerical simulations within the framework of computation fluid dynamics (CFD) to identify the best combination of operating parameters for the 3D printing of a core-shell polymer strand. The objectives of these CFD simulations are to find strands with an ultimate volume fraction of core polymer. At the same time, complete encapsulations are obtained for the core polymer inside the shell one. In this model, the deposition flow is controlled by three dimensionless parameters: (i) the diameter ratio of core material to the nozzle, d/D; (ii) the normalised gap between the extruder and the build plate, t/D; (iii) the velocity ratio of the moving build plate to the average velocity inside the nozzle, V/U. Numerical results of the deposited strands' cross-sections demonstrate the effects of controlling parameters on the encapsulation of the core material inside the shell and the shape and size of the strand. Overall we find that the best operating parameters are a diameter ratio of d/D=0.7, a normalised gap of t/D=1, and a velocity ratio of V/U=1.
材料挤出增材制造(ME-AM)技术最近已被引入用于核壳聚合物制造。与传统的3D打印聚合物相比,使用ME-AM进行核壳制造可提高机械性能和尺寸精度。操作参数在形成3D打印制成品的整体质量方面起着重要作用。在这里,我们在计算流体动力学(CFD)框架内使用数值模拟来确定核壳聚合物丝3D打印的最佳操作参数组合。这些CFD模拟的目标是找到具有核心聚合物最终体积分数的丝。同时,在壳内获得核心聚合物的完全封装。在该模型中,沉积流由三个无量纲参数控制:(i)核心材料与喷嘴的直径比,d/D;(ii)挤出机与成型板之间的归一化间隙,t/D;(iii)移动成型板与喷嘴内平均速度的速度比,V/U。沉积丝横截面的数值结果表明了控制参数对壳内核心材料封装以及丝的形状和尺寸的影响。总体而言,我们发现最佳操作参数是直径比d/D = 0.7、归一化间隙t/D = 1和速度比V/U = 1。