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首页> 外文期刊>The Korean journal of chemical engineering >Sludge settleability detection using automated SV30 measurement and comparisons of feature extraction methods
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Sludge settleability detection using automated SV30 measurement and comparisons of feature extraction methods

机译:使用自动SV30测量的污泥沉降性检测以及特征提取方法的比较

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摘要

The need for automation and measurement technologies to detect the process state has been a driving force in the development of various measurements at wastewater treatment plants. While the number of applications of automation & measurement technologies to the field is increasing, there have only been a few cases where they have been applied to the area of sludge settling. It is not easy to develop an automated operation support system for the detection of sludge settleability due to its site-specific characteristics. To automate the human operator's daily test and diagnosis work on sludge settling, an on-line SV30 measurement was developed and an automated detection algorithm on settleability was developed that imitated heuristics to detect settleability faults. The automated SV30 measurement is based on automatic pumping with a predefined schedule, the image capture of the settling test with a digital camera, and an analysis of the images to detect the settled sludge height. To detect settleability faults such as deflocculation and bulking from these images, two feature extraction methods were used and their performance was evaluated.
机译:对用于检测过程状态的自动化和测量技术的需求一直是废水处理厂进行各种测量的动力。尽管自动化和测量技术在该领域的应用数量在增加,但只有少数几种情况被应用于污泥沉降领域。由于其特定地点的特性,开发用于检测污泥沉降性的自动化操作支持系统并不容易。为了使操作人员的日常污泥沉降测试和诊断工作自动化,开发了一种在线SV30测量,并开发了一种基于沉降性的自动检测算法,该算法模仿了启发式方法来检测沉降性故障。 SV30自动测量基于预先确定的时间表进行自动泵送,使用数码相机对沉降测试的图像捕获以及对图像的分析以检测沉降的污泥高度。为了从这些图像中检测到可沉降性缺陷,例如反絮凝和膨胀,使用了两种特征提取方法并对它们的性能进行了评估。

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