Effect of the number of magnetic matrices on particle capture in high gradient magnetic separation

Yu Tian, Quanliang Cao
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Abstract

Abstract A comprehensive understanding of the capture process involving matrices in high gradient magnetic separation (HGMS) is crucial for the design and improvement of matrix performance. However, few existing studies have paid attention to the influence of the number of magnetic matrices on the capture process. In this work, we numerically investigate this issue in both longitudinal and transversal HGMS systems, where multiple scenarios with different particle sizes, flow rates and matrix spacing are considered. Interestingly, we show that in most cases, increasing the number of magnetic matrices along the flow direction has little to no influence on the capture radius. It has a certain effect on improving the capture radius only in a few specific cases, such as when dealing with large particles at low flow rates with closely spaced matrices or when working with small particles at high flow rates with widely spaced matrices. These phenomena are related to the appearance of repulsive magnetic forces around matrices and the distribution characteristics of magnetic forces. The obtained results indicate that, in the design of the practical HGMS system, simply increasing the number of matrices along the flow direction may not be a reasonable or effective strategy for enhancing capture performance.
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高梯度磁选中磁性基质数量对颗粒捕获的影响
全面了解高梯度磁分离(HGMS)中基质的捕获过程对于设计和提高基质性能至关重要。然而,现有的研究很少关注磁性基质数量对捕获过程的影响。在这项工作中,我们在纵向和横向HGMS系统中对这一问题进行了数值研究,其中考虑了不同粒径、流速和基质间距的多种情况。有趣的是,我们发现在大多数情况下,沿流动方向增加磁性矩阵的数量对捕获半径几乎没有影响。它仅在少数特定情况下对提高捕获半径有一定的作用,例如当处理小颗粒在低流速下与紧密间隔的矩阵或当处理小颗粒在高流速下与广泛间隔的矩阵。这些现象与基质周围排斥性磁力的出现和磁力的分布特性有关。结果表明,在实际HGMS系统的设计中,简单地增加沿流动方向的矩阵数量可能不是提高捕获性能的合理或有效的策略。
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