Department of Mechanical, Industrial, and Manufacturing Engineering, University of Toledo, Toledo OH, United States of America. Author to whom correspondence should be addressed.
Bioinspir Biomim. 2019 Jul 29;14(5):056008. doi: 10.1088/1748-3190/ab2d13.
A new filter was developed to collect harmful algae colonies by adapting the cross-step filtration structures and mechanisms discovered recently in filter-feeding fish. Extending beyond previously published models that closely emulated the basic morphology of the fish, the new cross-step filter's major innovations are helical slots, radial symmetry, and rotation as an active anti-clogging mechanism. These innovations enable the transport of concentrated particles to the downstream end of the filter. This advance was made possible by recognizing that biologically imposed constraints such as bilateral symmetry do not apply to human-made filters. The use of helical slots was developed in a series of iterative tests that used water-tracing dye and algae-sized microspheres. The major products of the iterative tests were refinements in the helical design and an understanding of how varying the major structural parameters qualitatively influenced fluid flow and filter performance. Following the iterative tests, the clogging behavior of select filters was quantified at high particle concentrations. Vortices in the helical filter were effective at reducing clogging in the center of the slots. By considering the design space that is free of the biological constraints on the system and exploring the effects of variations in major structural parameters, our work has identified promising new directions for cross-step filtration and provided key insights into the biological system.
一种新的过滤器是通过适应最近在滤食性鱼类中发现的交叉步过滤结构和机制来开发的,用于收集有害藻类群。与之前紧密模拟鱼类基本形态的已发表模型相比,新的交叉步过滤器的主要创新是螺旋槽、径向对称和旋转作为主动防堵塞机制。这些创新使浓缩颗粒能够输送到过滤器的下游端。通过认识到生物施加的约束,如双侧对称不适用于人造过滤器,这一进展成为可能。螺旋槽的使用是在一系列使用示踪染料和藻类大小的微球的迭代测试中开发的。迭代测试的主要成果是改进了螺旋设计,并了解了主要结构参数的变化如何定性地影响流体流动和过滤器性能。在迭代测试之后,在高颗粒浓度下对选定过滤器的堵塞行为进行了量化。螺旋过滤器中的涡流有效地减少了槽中心的堵塞。通过考虑不受系统生物约束的设计空间,并探索主要结构参数变化的影响,我们的工作为交叉步过滤指明了有前途的新方向,并为生物系统提供了关键见解。