Xu Sanqiang, Yang Kepeng, Xiong Wei, Li Zheng, Hao Liang
Design Department, Gemmological Institute, China University of Geosciences, Wuhan, P.R. China.
Industrial Design Department, School of Ceramic Art and Design Art, Jingdezhen University, Jingdezhen, P.R. China.
3D Print Addit Manuf. 2024 Oct 22;11(5):1758-1767. doi: 10.1089/3dp.2023.0009. eCollection 2024 Oct.
Direct ink writing of multiple mineral materials (M) coupled with simulation analysis is an optimization solution in accordance with low-carbon and sustainable manufacturing. It improves the ability to imitate natural biological iterative optimization, and accurately obtained data for geological model tests to effectively help prevent natural disasters. This article investigates the effects of equivalent materials on the direct ink writing and permeability behaviors through geological simulation models. The mineral compositions provide adjustable cohesion and compression coefficient properties and considerably improve the stability and dispersion of slurry by adjusting parameters such as the viscosity, filling ratio, and deposition height. The upper limit of the permeability depends on the designed macropores and the printing accuracy because macro features provide pathways for rapid water infiltration into the printed specimen. This research establishes guidelines for the fabrication of components with tailored and designed-pore-dependent permeability properties that are primarily for slope geotechnical engineering applications.
多种矿物材料(M)的直接墨水书写与模拟分析相结合是一种符合低碳和可持续制造的优化解决方案。它提高了模仿自然生物迭代优化的能力,并准确获取地质模型测试数据,以有效帮助预防自然灾害。本文通过地质模拟模型研究等效材料对直接墨水书写和渗透行为的影响。矿物成分提供了可调节的内聚力和压缩系数特性,并通过调整粘度、填充率和沉积高度等参数,显著提高了浆料的稳定性和分散性。渗透率的上限取决于设计的大孔隙和打印精度,因为宏观特征为水快速渗入打印试样提供了通道。本研究为制造具有定制的、与孔隙相关的渗透性特性的部件建立了指导方针,这些部件主要用于边坡岩土工程应用。