Design and Evaluation of 3D-Printed Lattice Structures as High Flow Rate Aerosol Filters.

ACS Applied Engineering Materials Pub Date : 2024-12-11 eCollection Date: 2024-12-27 DOI:10.1021/acsaenm.4c00562
Yinkui Yu, Ning Zhang, Dominic Hoffman, Dewansh Rastogi, Ian R Woodward, Catherine A Fromen
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Abstract

Aerosol contamination presents significant challenges across various industries, ranging from healthcare to manufacturing. Over the past few years, open foam filters have gained prominence for their ability to efficiently capture particles while allowing reasonable airflow. In this work, we present the use of 3D-printed idealized open foam-like lattice structures as aerosol filtration media, leveraging advances in additive manufacturing to generate these highly tunable and modular filters. Using parametric design approaches, we fabricated lattice filters with four different unit cell geometries (Cubic, Kelvin, Octahedron, and Weaire-Phelan) via Digital Light Synthesis 3D printing and characterized these structures with X-ray microcomputed tomography. We compared the aerosol filtration performance of the different lattice unit cell geometries using 1 μm polystyrene latex (PSL) aerosol particles, finding the filtration performance to be positively correlated with the single-unit-cell specific surface area. We then expanded our evaluation of deposition efficiency in Kelvin cell lattice structures of varied porosities, again finding a correlation between the specific surface area and deposition performance. Experimental analysis confirmed that deposition primarily occurs through impaction and electrostatic mechanisms within the parameter space. Overall, our findings demonstrate that unit-cell-based lattices can achieve a wide range of aerosol filtration efficiencies (∼10-100%) across various operating conditions (1-4 m/s superficial velocity), offering a highly tunable in-line filtration medium capable of maintaining high efficiency even at elevated airflow rates. This work not only provides essential guidelines for designing and manufacturing 3D-printed lattices as customizable aerosol filters but also highlights the current limitations and challenges in producing these structures.

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设计和评估作为高流速气溶胶过滤器的三维打印晶格结构。
从医疗保健到制造业,气溶胶污染对各个行业都构成了重大挑战。在过去的几年中,开放式泡沫过滤器因其有效捕获颗粒的能力而获得突出地位,同时允许合理的气流。在这项工作中,我们介绍了使用3d打印理想的开放式泡沫状晶格结构作为气溶胶过滤介质,利用增材制造的进步来生成这些高度可调的模块化过滤器。采用参数化设计方法,我们通过数字光合成3D打印制作了四种不同的单元格几何形状(立方、开尔文、八面体和Weaire-Phelan)的晶格滤波器,并用x射线微计算机断层扫描对这些结构进行了表征。我们使用1 μm聚苯乙烯乳胶(PSL)气溶胶颗粒比较了不同晶格单元格几何形状的气溶胶过滤性能,发现过滤性能与单单元格比表面积呈正相关。然后,我们扩展了对不同孔隙度的开尔文晶格结构的沉积效率的评估,再次发现了比表面积和沉积性能之间的相关性。实验分析证实,沉积主要通过参数空间内的撞击和静电机制发生。总的来说,我们的研究结果表明,基于单元格的网格可以在各种操作条件下(1-4米/秒的表面速度)实现大范围的气溶胶过滤效率(~ 10-100%),提供一种高度可调的在线过滤介质,即使在高气流速率下也能保持高效率。这项工作不仅为设计和制造3d打印晶格作为可定制的气溶胶过滤器提供了必要的指导方针,而且还强调了目前生产这些结构的局限性和挑战。
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期刊介绍: ACS Applied Engineering Materials is an international and interdisciplinary forum devoted to original research covering all aspects of engineered materials complementing the ACS Applied Materials portfolio. Papers that describe theory simulation modeling or machine learning assisted design of materials and that provide new insights into engineering applications are welcomed. The journal also considers experimental research that includes novel methods of preparing characterizing and evaluating new materials designed for timely applications. With its focus on innovative applications ACS Applied Engineering Materials also complements and expands the scope of existing ACS publications that focus on materials science discovery including Biomacromolecules Chemistry of Materials Crystal Growth & Design Industrial & Engineering Chemistry Research Inorganic Chemistry Langmuir and Macromolecules.The scope of ACS Applied Engineering Materials includes high quality research of an applied nature that integrates knowledge in materials science engineering physics mechanics and chemistry.
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