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一种用于临床环境中精确静脉输液监测的新型自适应柔性电容式传感器。

A Novel Adaptive Flexible Capacitive Sensor for Accurate Intravenous Fluid Monitoring in Clinical Settings.

作者信息

He Yang, Yang Fangfang, Wei Pengxuan, Lv Zongmin, Zhang Yinghong

机构信息

School of Electromechanical Engineering, Guilin University of Electronic Technology, Guilin 541004, China.

出版信息

Sensors (Basel). 2025 Jul 21;25(14):4524. doi: 10.3390/s25144524.

Abstract

Intravenous infusion is an important clinical medical intervention, and its safety is critical to patient recovery. To mitigate the elevated risk of complications (e.g., air embolism) arising from delayed response to infusion endpoints, this paper designs a flexible double pole capacitive (FPB) sensor, which includes a main pole plate, an adaptive pole plate, and a back shielding electrode. The sensor establishes a mapping between residual liquid volume in the infusion bottle and its equivalent capacitance, enabling a non-contact adaptive monitoring system. The system enables precise quantification of residual liquid levels, suppressing baseline drift induced by environmental temperature/humidity fluctuations and container variations via an adaptive algorithm, without requiring manual calibration, and overcomes the limitations of traditional rigid sensors when adapting to curved containers. Experimental results showed that the system achieved an overall sensitivity of 753.5 fF/mm, main pole plate linearity of 1.99%, and adaptive pole plate linearity of 0.53% across different test subjects, linearity of 0.53% across different test subjects, with liquid level resolution accuracy reaching 1 mm. These results validate the system's ultra-high resolution (1 mm) and robust adaptability.

摘要

静脉输液是一项重要的临床医疗干预措施,其安全性对患者康复至关重要。为降低因对输液终点反应延迟而导致并发症(如空气栓塞)风险升高的问题,本文设计了一种柔性双极板电容式(FPB)传感器,该传感器包括一个主极板、一个自适应极板和一个背屏蔽电极。该传感器在输液瓶中的剩余液体量与其等效电容之间建立映射关系,从而实现非接触式自适应监测系统。该系统能够精确量化剩余液位,通过自适应算法抑制环境温度/湿度波动和容器变化引起的基线漂移,无需手动校准,并且克服了传统刚性传感器在适应弯曲容器时的局限性。实验结果表明,该系统在不同测试对象上实现了753.5 fF/mm的整体灵敏度、主极板1.99%的线性度、自适应极板0.53%的线性度,液位分辨率精度达到1 mm。这些结果验证了该系统的超高分辨率(1 mm)和强大的适应性。

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