Massaroni Carlo, Caponero Michele A, D'Amato Rosaria, Lo Presti Daniela, Schena Emiliano
Unit of Measurements and Biomedical Instrumentation, Center for Integrated Research, Università Campus Bio-Medico di Roma, Via Álvaro del Portillo, 21, 00128 Rome, Italy.
Photonics Micro- and Nanostructures Laboratory Research Centre of Frascati, ENEA, Via Enrico Fermi, 45, Frascati, 00044 Rome, Italy.
Sensors (Basel). 2017 Apr 2;17(4):749. doi: 10.3390/s17040749.
During mechanical ventilation, the humidification of the dry air delivered by the mechanical ventilator is recommended. Among several solutions, heated wire humidifiers (HWHs) have gained large acceptance to be used in this field. The aim of this work is to fabricate a measuring system based on fiber Bragg grating (FBG) for the simultaneous monitoring of gas relative humidity (RH) and temperature, intended to be used for providing feedback to the HWHs' control. This solution can be implemented using an array of two FBGs having a different center wavelength. Regarding RH monitoring, three sensors have been fabricated by coating an FBG with two different moisture-sensitive and biocompatible materials: the first two sensors were fabricated by coating the grating with a 3 mm × 3 mm layer of agar and agarose; to investigate the influence of the coating thickness to the sensor response, a third sensor was developed with a 5 mm × 5 mm layer of agar. The sensors have been assessed in a wide range of RH (up to 95%) during both an ascending and a subsequent descending phase. Only the response of the 3 mm × 3 mm-coated sensors were fast enough to follow the RH changes, showing a mean sensitivity of about 0.14 nm/% (agar-coated) and 0.12 nm/% (agarose-coated). The hysteresis error was about <10% in the two sensors. The contribution of temperature changes on these RH sensors was negligible. The temperature measurement was performed by a commercial FBG insensitive to RH changes. The small size of these FBG-based sensors, the use of biocompatible polymers, and the possibility to measure both temperature and RH by using the same fiber optic embedding an array of two FBGs make intriguing the use of this solution for application in the control of HWHs.
在机械通气过程中,建议对机械通气输送的干燥空气进行加湿。在多种解决方案中,热丝加湿器(HWHs)已在该领域获得广泛认可。这项工作的目的是制造一种基于光纤布拉格光栅(FBG)的测量系统,用于同时监测气体相对湿度(RH)和温度,旨在为HWHs的控制提供反馈。该解决方案可通过使用具有不同中心波长的两个FBG阵列来实现。关于RH监测,通过用两种不同的对湿度敏感且具有生物相容性的材料涂覆FBG来制造三个传感器:前两个传感器是通过用3 mm×3 mm的琼脂和琼脂糖层涂覆光栅制成的;为了研究涂层厚度对传感器响应的影响,开发了第三个传感器,其琼脂层为5 mm×5 mm。在上升和随后的下降阶段,对传感器在广泛的RH范围(高达95%)内进行了评估。只有3 mm×3 mm涂层的传感器的响应足够快,能够跟随RH变化,琼脂涂层的平均灵敏度约为0.14 nm/%,琼脂糖涂层的平均灵敏度约为0.12 nm/%。这两个传感器的滞后误差约<10%。温度变化对这些RH传感器的影响可忽略不计。温度测量由对RH变化不敏感的商用FBG进行。这些基于FBG的传感器尺寸小、使用生物相容性聚合物以及能够通过嵌入两个FBG阵列的同一根光纤同时测量温度和RH,使得该解决方案在HWHs控制中的应用颇具吸引力。