Biologically motivated magnetic microfluidic rheostats for precise and scalable flow control.

IF 11.1 1区 工程技术 Q1 INSTRUMENTS & INSTRUMENTATION
Jiaqi Miao, Chenglin Jiang, Jingxuan Li, Alan C H Tsang
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引用次数: 0

Abstract

Precise regulation of hydraulic resistance is essential for controlling flow distribution, particle transport, and chemical synthesis in microfluidics. Despite frequent comparisons between microfluidic networks and electronic circuits, components analogous to electronic rheostats for high-precision continuous resistance tuning remain absent, with flow regulation typically relying on microvalves with discrete open/closed states and external flow-control hardware. Inspired by geometry-modulated flow resistance in heart valves, we introduce magnetic microfluidic rheostats composed of soft magnetic cantilever arrays, whose field-controlled bending modulates the hydraulic diameter to achieve stable and continuous resistance tuning with a minimum measured increment of ~1.7%. Using external permanent magnets instead of complex actuation systems, the rheostat enables low-cost, energy-efficient operation while maintaining high precision. Incorporating the rheostat into a Wheatstone fluidic bridge allows sub-10 µm/s flow balancing and precise microparticle manipulation. Moreover, rheostats with tailored magnetic responses enable one-to-many control under a single magnetic field, allowing multiple channels to be regulated synchronously or asynchronously. This approach simplifies system architecture compared with conventional one-to-one actuation, while maintaining 1-2% composition accuracy across multi-component streams. These results establish microfluidic rheostats as dedicated resistance regulators that expand the functional toolkit of microfluidics for scalable, high-precision manipulation and synthesis.

生物驱动的磁微流控变阻器用于精确和可扩展的流量控制。
精确调节液压阻力是必不可少的控制流动分布,颗粒输送,和化学合成在微流体。尽管经常将微流体网络与电子电路进行比较,但用于高精度连续电阻调谐的类似电子变阻器的组件仍然缺乏,流量调节通常依赖于具有离散开/闭状态的微阀和外部流量控制硬件。受心脏瓣膜几何调制流动阻力的启发,我们引入了由软磁悬臂阵列组成的磁微流控变阻器,其磁场控制弯曲调节液压直径,以实现稳定和连续的阻力调谐,最小测量增量约为1.7%。使用外部永磁体代替复杂的驱动系统,变阻器可以实现低成本,节能的操作,同时保持高精度。将变阻器集成到惠斯通流体桥中,可实现低于10 μ m/s的流量平衡和精确的微粒操作。此外,具有定制磁响应的变阻器可以在单个磁场下实现一对多控制,允许同步或异步调节多个通道。与传统的一对一驱动相比,该方法简化了系统架构,同时在多组件流中保持1-2%的组合精度。这些结果建立了微流控变阻器作为专用电阻调节器,扩展了微流控的功能工具包,用于可扩展,高精度操作和合成。
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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来源期刊
Microsystems & Nanoengineering
Microsystems & Nanoengineering Materials Science-Materials Science (miscellaneous)
CiteScore
12.00
自引率
3.80%
发文量
123
审稿时长
20 weeks
期刊介绍: Microsystems & Nanoengineering is a comprehensive online journal that focuses on the field of Micro and Nano Electro Mechanical Systems (MEMS and NEMS). It provides a platform for researchers to share their original research findings and review articles in this area. The journal covers a wide range of topics, from fundamental research to practical applications. Published by Springer Nature, in collaboration with the Aerospace Information Research Institute, Chinese Academy of Sciences, and with the support of the State Key Laboratory of Transducer Technology, it is an esteemed publication in the field. As an open access journal, it offers free access to its content, allowing readers from around the world to benefit from the latest developments in MEMS and NEMS.
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