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Improved Temperature Compensation for In Situ Humic-Like and Tryptophan-Like Fluorescence Acquisition in Diverse Water Types

机译:改进的温度补偿,可在多种水类型中进行原位像腐殖酸和色氨酸样荧光采集

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摘要

The use of in situ fluorescence sensors is gaining popularity in water and wastewater treatment and water reuse industries. Tryptophan-like (TRP-like) fluorescence is particularly well suited to tracking fluorescent compounds derived from bacteria as well as a wide range of chemicals of concern for drinking water. Despite the merits of fluorescence sensors, they are affected by environmental factors such as temperature, which can influence photophysical properties of fluorescence. Although temperature correction factors have been well established for humic-like fluorescent dissolved organic matter (fDOM) sensors, there is a need to assess the suitability of existing temperature compensation models in diverse water types and derive new corrections that apply specifically to TRP-like fluorescence. Temperature experiments were conducted using a submersible fluorometer and a range of water types, including creek water, water from different treatment stages at a water reuse facility, synthetic wastewater, and prepared samples containing TRP and fulvic acids. Results from this study revealed that at low fluorescence intensities, no temperature corrections were needed for TRP-like and fDOM fluorescence sensors. For most water types, a published temperature compensation constant for fDOM fluorescence produced a fairly good fit to the reference temperature, but had limited applicability for TRP-like fluorescence. The best fit to the reference temperature for TRP-like fluorescence was achieved using a method to minimize the root mean square error (RMSE) between modeled and measured TRP-like fluorescence. The application of temperature corrections resulted in a difference of as much as 2500 RFU in water types with high DOC concentrations at high (30 degrees C) and low (10 degrees C) temperatures, which has important implications for the use of fluorescence sensors for source water protection and other monitoring applications in these conditions. For TRP-like fluorescence, empirical relationships and temperature compensation constants were also derived and recommended for samples with varying tryptophan and organic carbon concentrations.
机译:原位荧光传感器的使用在水和废水处理以及水回用行业中越来越受欢迎。色氨酸(TRP)荧光特别适合跟踪细菌产生的荧光化合物以及饮用水中广泛关注的化学物质。尽管有荧光传感器的优点,但它们仍受环境因素(例如温度)的影响,温度会影响荧光的光物理性质。尽管已经为类腐殖质的荧光溶解有机物(fDOM)传感器建立了良好的温度校正因子,但仍需要评估现有温度补偿模型在各种水类型中的适用性,并得出专门适用于类TRP荧光的新校正方法。使用潜水荧光计和一系列水类型进行温度实验,包括小溪水,中水回用设施中不同处理阶段的水,合成废水以及含TRP和富里酸的制备样品。这项研究的结果表明,在低荧光强度下,类TRP和fDOM荧光传感器无需校正温度。对于大多数水类型,已发布的fDOM荧光温度补偿常数与参考温度相当吻合,但对于类似TRP荧光的适用性有限。使用最小化建模和测量的TRP样荧光之间的均方根误差(RMSE)的方法,可以最佳地拟合TRP样荧光的参考温度。温度校正的应用导致在高温(> 30摄氏度)和低温(<10摄氏度)下具有高DOC浓度的水类型之间的差异高达2500 RFU,这对于使用荧光传感器具有重要意义在这些情况下用于水源保护和其他监控应用。对于类似TRP的荧光,还得出了经验关系和温度补偿常数,并推荐用于色氨酸和有机碳浓度不同的样品。

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