Magnetic smart materials enabled micro-pump: design, modeling, and performance analysis

Huihuang Jiang, Hao Hu, Kari Ullakko, Xiaojie Liu, Shan He, Donghui Guo
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引用次数: 0

Abstract

Smart materials have gained significant attention in various industries due to their exceptional properties and unique capabilities. Among these materials, smart magnetic materials have emerged as a promising candidate with the ability to sense and respond to environmental changes. This paper presents a novel micro-pump structure, fabricated using 0.18 µm integrated technology, which can be integrated into microfluidic systems and MEMS devices. In this study, the design and manufacturing process of the micro-pump, utilizing magnetic smart materials, are presented. The characteristics of the smart material and the micro-pump's performance are analyzed through simulations. The proposed micro-pump design incorporates one-way valves and has demonstrated improved efficiency and enhanced performance compared to conventional designs. The results of this study provide a foundation for further research and development of magnetic smart material-based micro-pumps and their potential applications in various fields, including lab-on-a-chip devices and biomedical engineering.
磁性智能材料微泵:设计、建模和性能分析
智能材料由于其优异的性能和独特的功能,在各个行业得到了极大的关注。在这些材料中,具有感知和响应环境变化能力的智能磁性材料已成为一种有前途的候选材料。本文提出了一种新型的微泵结构,该结构采用0.18 μ m集成技术制造,可集成到微流体系统和MEMS器件中。本文介绍了利用磁性智能材料的微型泵的设计和制造过程。通过仿真分析了智能材料的特性和微泵的性能。与传统设计相比,所提出的微型泵设计采用了单向阀,并证明了效率和性能的提高。本研究结果为进一步研究和开发基于磁性智能材料的微泵及其在芯片实验室设备和生物医学工程等各个领域的潜在应用奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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