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Frequency Characteristic of Resonant Micro Fluidic Chip for Oil Detection Based on Resistance Parameter

机译:基于电阻参数的共振式微流控油芯片频率特性

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摘要

Monitoring the working condition of hydraulic equipment is significance in industrial fields. The abnormal wear of the hydraulic system can be revealed by detecting the variety and size of micro metal debris in the hydraulic oil. We thus present the design and implementation of a micro detection system of hydraulic oil metal debris based on inductor capacitor (LC) resonant circuit in this paper. By changing the resonant frequency of the micro fluidic chip, we can detect the metal debris of hydraulic oil and analyze the sensitivity of the micro fluidic chip at different resonant frequencies. We then obtained the most suitable resonant frequency. The chip would generate a positive resistance pulse when the iron particles pass through the detection area and the sensitivity of the chip decreased with resonant frequency. The chip would generate a negative resistance pulse when the copper particles pass through the detection area and the sensitivity of the chip increased with resonant frequency. The experimental results show that the change of resonant frequency has a great effect on the copper particles and little on the iron particles. Thus, a relatively big resonant frequency can be selected for chip designing and testing. In practice, we can choose a relatively big resonant frequency in this micro fluidic chip designing. The resonant micro fluidic chip is capable of detecting 20–30 μm iron particles and 70–80 μm copper particles at 0.9 MHz resonant frequency.
机译:监测液压设备的工作状态在工业领域具有重要意义。液压系统的异常磨损可以通过检测液压油中微小金属碎片的种类和大小来揭示。因此,本文提出了基于电感电容谐振电路的液压油金属屑微检测系统的设计与实现。通过改变微流体芯片的共振频率,我们可以检测液压油的金属碎片,并分析微流体芯片在不同共振频率下的灵敏度。然后,我们获得了最合适的谐振频率。当铁颗粒通过检测区域时,芯片会产生正电阻脉冲,芯片的灵敏度会随着谐振频率的降低而降低。当铜颗粒通过检测区域时,芯片会产生一个负电阻脉冲,芯片的灵敏度随谐振频率的增加而增加。实验结果表明,谐振频率的变化对铜颗粒影响很大,对铁颗粒影响很小。因此,可以选择相对较大的谐振频率用于芯片设计和测试。在实践中,我们可以在这种微流体芯片设计中选择相对较大的谐振频率。谐振微流体芯片能够在0.9 MHz的谐振频率下检测20–30μm的铁颗粒和70–80μm的铜颗粒。

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