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Fundamental Study on Applicability of Powder-Based 3D Printer for Physical Modeling in Rock Mechanics

机译:基于粉末的3D打印机在岩石力学中进行物理建模的基础研究

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摘要

Applications of 3D printing technology become more widespread in many research fields because of its rapid development and valuable capabilities. In rock mechanics and mining engineering, this technology has the potential to become a useful tool that might help implement a number of research studies previously considered impractical. Most commercial 3D printers cannot print prototypes with mechanical properties that match precisely those of natural rock samples. Therefore, some additional enhancements are required for 3D printers to be effectively utilized for rock mechanics applications. In this study, we printed and studied specimens using a powder-based commercial ZPrinter(A (R)) 450 with ZP(A (R)) 150 powder and Zb(A (R)) 63 binder used as raw materials. The specimens printed by this 3D printer exhibited relatively low strength and ductile behavior, implying that it needs further improvements. Hence, we focused on several ways to determine the best combination of printing options and post-processing including the effects of the printing direction, printing layer thickness, binder saturation level, and heating process on the uniaxial compressive strength (UCS) and stress-strain behavior of the printed samples. The suggested procedures have demonstrated their effectiveness by obtaining the printed samples that behave similarly to the natural rocks with low UCS. Although our optimization methods were particularly successful, further improvements are required to expand 3D printer application in the area of rock mechanics.
机译:由于3D打印技术的快速发展和有价值的功能,其在许多研究领域中的应用变得越来越广泛。在岩石力学和采矿工程中,这项技术有可能成为有用的工具,可能有助于实施以前认为不切实际的许多研究。大多数商用3D打印机无法打印出具有与天然岩石样品精确匹配的机械性能的原型。因此,要使3D打印机有效地用于岩石力学应用,还需要一些其他增强功能。在这项研究中,我们使用基于粉末的商品化ZPrinter(A)450和ZP(A)150粉末以及Zb(A(R))63粘合剂作为原料打印和研究了标本。通过此3D打印机打印的标本显示出相对较低的强度和延展性,这表明它需要进一步改进。因此,我们集中于确定印刷选项和后处理的最佳组合的几种方法,包括印刷方向,印刷层厚度,粘合剂饱和度以及加热过程对单轴抗压强度(UCS)和应力应变的影响。打印样品的行为。所建议的程序通过获得与低UCS的天然岩石表现相似的打印样本证明了其有效性。尽管我们的优化方法特别成功,但仍需要进一步改进以扩展3D打印机在岩石力学领域的应用。

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