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A Non-Contact Original-State Online Real-Time Monitoring Method for Complex Liquids in Industrial Processes

机译:工业过程中复杂液体的非接触式原始状态在线实时监测方法

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摘要

Failures are very common during the online real-time monitoring of large quantities of complex liquids in industrial processes,and can result in excessive resource consumption and pollution.In this study,we introduce a monitoring method capable of non-contact original-state online real-time monitoring for strongly coated,high-salinity,and multi-component liquids.The principle of the method is to establish the relationship among the concentration of the target substance in the liquid (C),the color space coordinates of the target substance at different concentrations (L*,a*,b*),and the maximum absorption wavelength (λmax);subsequently,the optimum wavelength λT of the liquid is determined by a high-precision scanning-type monitoring system that is used to detect the instantaneous concentration of the target substance in the flowing liquid.Unlike traditional monitoring methods and existing online monitoring methods,the proposed method does not require any pretreatment of the samples (i.e.,filtration,dilution,oxidation/reduction,addition of chromogenic agent,constant volume,etc.),and it is capable of originalstate online real-time monitoring.This method is employed at a large electrolytic manganese plant to monitor the Fe3+ concentration in the colloidal process of the plant's aging liquid (where the concentrations of Fe3+,Mn2+,and (NH4)2SO4 are 0.5-18 mg·L-1,35-39 g·L-1,and 90-110 g·L-1,respectively).The relative error of this monitoring method compared with an off-line laboratory monitoring is less than 2%.
机译:在工业过程中对大量复杂液体进行在线实时监视时,故障非常普遍,并且可能导致过多的资源消耗和污染。在本研究中,我们引入了一种能够以非接触方式进行原始状态在线实时监视的监视方法。时间监测强涂层,高盐度和多组分液体。该方法的原理是建立液体(C)中目标物质的浓度与目标物质的色空间坐标之间的关系不同的浓度(L *,a *,b *)和最大吸收波长(λmax);随后,通过用于检测瞬时温度的高精度扫描型监测系统确定液体的最佳波长λT与传统的监测方法和现有的在线监测方法不同,该方法不需要对样品进行任何预处理(即,过滤,稀释,氧化/还原,生色剂的添加,恒定体积等),并且能够进行原始状态的在线实时监测。该方法在大型电解锰厂中用于监测胶体中Fe3 +的浓度植物老化液的过程(Fe3 +,Mn2 +和(NH4)2SO4的浓度分别为0.5-18 mg·L-1、35-39 g·L-1和90-110 g·L-1 )。与离线实验室监测相比,这种监测方法的相对误差小于2%。

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  • 来源
    《工程(英文)》 |2018年第003期|392-397|共6页
  • 作者单位

    Center for Heavy Metal Cleaner Production Engineering Technology, Chinese Research Academy of Environmental Sciences, Beijing 100012, China;

    Center for Heavy Metal Cleaner Production Engineering Technology, Chinese Research Academy of Environmental Sciences, Beijing 100012, China;

    Center for Heavy Metal Cleaner Production Engineering Technology, Chinese Research Academy of Environmental Sciences, Beijing 100012, China;

    Center for Heavy Metal Cleaner Production Engineering Technology, Chinese Research Academy of Environmental Sciences, Beijing 100012, China;

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  • 入库时间 2022-08-19 04:28:19
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