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Development of a flocculation sub-model for a 3-D CFD model based on rectangular settling tanks

机译:基于矩形沉降池的3-D CFD模型的絮凝子模型的开发

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To assess performance and evaluate alternatives to improve the efficiency of rectangular Gould II type final settling tanks (FSTs), New York City Department of Environmental Protection and City College of NY developed a 3D computer model depicting the actual structural configuration of the tanks and the current and proposed hydraulic and solids loading rates. Fluent 6.3.26? was the base platform for the computational fluid dynamics (CFD) model, for which sub-models of the SS settling characteristics, turbulence, flocculation and rheology were incorporated. This was supplemented by field and bench scale experiments to quantify the coefficients integral to the sub-models. The 3D model developed can be used to consider different baffle arrangements, sludge withdrawal mechanisms and loading alternatives to the FSTs. Flocculation in the front half of the rectangular tank especially in the region before and after the inlet baffle is one of the vital parameters that influences the capture efficiency of SS. Flocculation could be further improved by capturing medium and small size particles by creating an additional zone with an in-tank baffle. This was one of the methods that was adopted in optimizing the performance of the tank where the CCNY 3D CFD model was used to locate the in-tank baffle position. This paper describes the development of the flocculation sub-model and the relationship of the flocculation coefficients in the known Parker equation to the initial mixed liquor suspended solids (MLSS) concentration X_0. A new modified equation is proposed removing the dependency of the breakup coefficient to the initial value of X_0 based on preliminary data using normal and low concentration mixed liquor suspended solids values in flocculation experiments performed.
机译:为了评估性能并评估替代方案以提高矩形Gould II型最终沉降池(FST)的效率,纽约市环境保护局和纽约市城市学院开发了3D计算机模型,描述了池子的实际结构和当前以及建议的水力和固体装载率。流利的6.3.26?是计算流体动力学(CFD)模型的基础平台,该模型包含了SS沉降特性,湍流,絮凝和流变性的子模型。现场和实验规模实验对此进行了补充,以量化子模型中不可或缺的系数。开发的3D模型可用于考虑不同的挡板布置,污泥排出机制以及FST的装载替代方案。矩形水箱前半部的絮凝,特别是在进口挡板前后的絮凝是影响SS捕集效率的重要参数之一。通过在罐内设置一个附加挡板来捕获中等和较小尺寸的颗粒,可以进一步改善絮凝效果。这是在使用CCNY 3D CFD模型定位罐内挡板位置来优化罐体性能时采用的方法之一。本文描述了絮凝子模型的发展以及已知的Parker方程中的絮凝系数与初始混合液悬浮固体(MLSS)浓度X_0的关系。提出了一个新的修正方程,根据絮凝实验中使用正常和低浓度混合液悬浮固体值的初步数据,消除了分解系数对X_0初始值的依赖性。

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