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Characterisation of 3D printed sand moulds using micro-focus X-ray computed tomography

机译:使用微焦X射线计算机断层扫描的3D印刷砂模的特征

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Purpose Micro-focus X-ray computed tomography (CT) can be used to quantitatively evaluate the packing density, pore connectivity and provide the basis for specimen derived simulations of gas permeability of sand mould. This non-destructive experiment or following simulations can be done on any section of any size sand mould just before casting to validate the required properties. This paper aims to describe the challenges of this method and use it to simulate the gas permeability of 3D printed sand moulds for a range of controlling parameters. The permeability simulations are compared against experimental results using traditional measurement techniques. It suggests that a minimum volume of only 700 x 700 x 700 mu m(3) is required to obtain, a reliable and most representative than the value obtained by the traditional measurement technique, the simulated permeability of a specimen. Design/methodology/approach X-ray tomography images were used to reconstruct 3D models to simulate them for gas permeability of the 3D printed sand mould specimens, and the results were compared with the experimental result of the same. Findings The influence of printing parameters, especially the re-coater speed, on the pore connectivity of the 3D printed sand mould and related permeability has been identified. Characterisation of these sand moulds using X-ray CT and its suitability, compared to the traditional means, are also studied. While density and 3PB strength are a measure of the quality of the moulds, the pore connectivity from the tomographic images precisely relates to the permeability. The main conclusions of the present study are provided below. A minimum required sample size of 700 x 700 x 700 mu m(3) is required to provide representative permeability results. This was obtained from sand specimens with an average sand grain size of 140 mu m, using the tomographic volume images to define a 3D mesh to run permeability calculations. Z-direction permeability is always lower than that in the X-/Y-directions due to the lower values of X-(120/140 mu m) and Y-(101.6 mu m) resolutions of the furan droplets. The anisotropic permeability of the 3D printed sand mould is mainly due to, the only adjustable, X-directional resolution of the furan droplets; the Y-directional resolution is a fixed distance, 102.6 mu m, between the printhead nozzles and the Z-directional one is usually, 280 mu m, twice the size of an average sand grain.A non-destructive and most representative permeability value can be obtained, using the computer simulation, on the reconstructed 3D X-ray tomography images obtained on a specific location of a 3D printed sand mould. This saves time and effort on printing a separate specimen for the traditional test which may not be the most representative to the printed mould. Originality/value The experimental result is compared with the computer simulated results.
机译:目的微焦X射线计算机断层扫描(CT)可用于定量评估填充密度,孔隙连接,并为样品渗透性模拟砂模的透气性模拟提供依据。这种非破坏性实验或以下模拟可以在铸造之前在任何尺寸砂模的任何部分进行,以验证所需的性能。本文旨在描述该方法的挑战,并使用它来模拟3D印刷砂模的透气性,用于一系列控制参数。使用传统测量技术将渗透性模拟与实验结果进行比较。它表明,仅需要700×700×700 mu m(3)的最小体积,而不是通过传统测量技术获得的值,标本的模拟渗透性的可靠和最代表性。设计/方法/接近X射线断层摄影图像用于重建3D模型以模拟3D印刷砂模标本的液态渗透性,并将结果与​​相同的实验结果进行比较。发现印刷参数的影响,特别是重新涂布速度,鉴定了3D印刷砂模的孔隙连接和相关渗透率。还研究了与传统方式相比,使用X射线CT的这些砂模的表征及其适合性。虽然密度和3pb强度是模具质量的衡量标准,但从断层图像的孔连接精确地涉及渗透性。下面提供本研究的主要结论。需要最小所需的样品大小为700 x 700 x 700 mu m(3)是提供代表性渗透率的结果。这是由平均砂粒尺寸为140μm的砂样本获得的,使用断层体积图像来定义3D网格以运行渗透性计算。由于呋喃液滴的X-(120/140μm)和y-(101.6μm)分辨率的较低值,Z方向渗透率总是低于X-/ Y方向的磁化性。 3D印刷砂模的各向异性渗透性主要是由于呋喃液滴的唯一可调X方向分辨率; Y方向分辨率是固定距离,在打印头喷嘴和Z方向之间的固定距离,102.6μm通常,通常,280μm,平均砂粒尺寸的两倍。不破坏性和最具代表性的渗透率值使用计算机仿真在基于3D印刷砂模的特定位置获得的重构3D X射线断层摄影图像上获得。这为传统测试印刷了一个单独的标本来节省时间和精力,这可能不是印刷模具最具代表性的。原创性/值实验结果与计算机模拟结果进行比较。

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