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3D Printing-Based Integrated Water Quality Sensing System

机译:基于3D打印的综合水质传感系统

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摘要

The online and accurate monitoring of drinking water supply networks is critically in demand to rapidly detect the accidental or deliberate contamination of drinking water. At present, miniaturized water quality monitoring sensors developed in the laboratories are usually tested under ambient pressure and steady-state flow conditions; however, in Water Distribution Systems (WDS), both the pressure and the flowrate fluctuate. In this paper, an interface is designed and fabricated using additive manufacturing or 3D printing technology—material extrusion (Trade Name: fused deposition modeling, FDM) and material jetting—to provide a conduit for miniaturized sensors for continuous online water quality monitoring. The interface is designed to meet two main criteria: low pressure at the inlet of the sensors and a low flowrate to minimize the water bled (i.e., leakage), despite varying pressure from WDS. To meet the above criteria, a two-dimensional computational fluid dynamics model was used to optimize the geometry of the channel. The 3D printed interface, with the embedded miniaturized pH and conductivity sensors, was then tested at different temperatures and flowrates. The results show that the response of the pH sensor is independent of the flowrate and temperature. As for the conductivity sensor, the flowrate and temperature affect only the readings at a very low conductivity (4 µS/cm) and high flowrates (30 mL/min), and a very high conductivity (460 µS/cm), respectively.
机译:急需在线,准确地监测饮用水供应网络,以快速检测饮用水的意外或故意污染。目前,实验室中开发的小型水质监测传感器通常在环境压力和稳态流量条件下进行测试。但是,在水分配系统(WDS)中,压力和流量都会波动。在本文中,使用增材制造或3D打印技术(材料挤压(商品名:熔融沉积建模,FDM)和材料喷射)设计和制造了一个接口,以提供用于小型传感器的导管,以进行连续的在线水质监测。该接口的设计符合两个主要标准:尽管WDS的压力有所变化,但传感器入口处的低压和低流量可最大程度地减少渗出的水(即泄漏)。为了满足上述标准,使用了二维计算流体动力学模型来优化通道的几何形状。然后,在不同的温度和流速下测试了带有嵌入式微型pH和电导率传感器的3D打印界面。结果表明,pH传感器的响应与流量和温度无关。对于电导率传感器,流速和温度分别仅在极低的电导率(4 µS / cm)和高的流速(30 mL / min)和极高的电导率(460 µS / cm)时才影响读数。

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