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Prediction of the Wall Factor of Arbitrary Particle Settling through Various Fluid Media in a Cylindrical Tube Using Artificial Intelligence

机译:利用人工智能预测圆柱管内各种流体通过任意颗粒沉降的壁因子

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摘要

Considering the influence of particle shape and the rheological properties of fluid, two artificial intelligence methods (Artificial Neural Network and Support Vector Machine) were used to predict the wall factor which is widely introduced to deduce the net hydrodynamic drag force of confining boundaries on settling particles. 513 data points were culled from the experimental data of previous studies, which were divided into training set and test set. Particles with various shapes were divided into three kinds: sphere, cylinder, and rectangular prism; feature parameters of each kind of particle were extracted; prediction models of sphere and cylinder using artificial neural network were established. Due to the little number of rectangular prism sample, support vector machine was used to predict the wall factor, which is more suitable for addressing the problem of small samples. The characteristic dimension was presented to describe the shape and size of the diverse particles and a comprehensive prediction model of particles with arbitrary shapes was established to cover all types of conditions. Comparisons were conducted between the predicted values and the experimental results.
机译:考虑到颗粒形状和流体的流变特性的影响,使用两种人工智能方法(人工神经网络和支持向量机)来预测壁因子,该因子被广泛引入以推导限制边界对沉降颗粒的净流体动力阻力。 。从以往研究的实验数据中选出513个数据点,分为训练集和测试集。形状各异的粒子分为球形,圆柱体和长方体三种。提取每种粒子的特征参数;建立了基于人工神经网络的球体和圆柱体预测模型。由于直角棱镜样品数量少,因此使用支持向量机预测壁因子,更适合解决小样品问题。提出了特征尺寸来描述各种粒子的形状和大小,并建立了具有任意形状的粒子的综合预测模型以涵盖所有类型的条件。在预测值和实验结果之间进行了比较。

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