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首页> 外文期刊>ACS Omega >Changes in the Number of Membership Functions for Predicting the Gas Volume Fraction in Two-Phase Flow Using Grid Partition Clustering of the ANFIS Method
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Changes in the Number of Membership Functions for Predicting the Gas Volume Fraction in Two-Phase Flow Using Grid Partition Clustering of the ANFIS Method

机译:使用ANFIS方法的网格分区聚类预测两相流量中的隶属函数数量的变化

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A 2D-bubble column reactor (BCR) including gas and liquid phases is simulated, and fluid characteristics such as gas-phase volume fraction and gas-phase turbulence are extracted from the CFD simulations. A type of heuristic algorithm called adaptive network-based fuzzy inference system (ANFIS) is applied here to simulate the gas-phase volume fraction in a physical system. Indeed, the x direction, the y direction, and gas-phase turbulence are considered as the ANFIS inputs. Changes in the number of inputs as well as membership functions are evaluated and studied to obtain a high level of ANFIS intelligence. By implementing the highest ANFIS intelligence, a surface is predicted, which suggests that the gas-phase volume fraction is based on x and y directions. It provides capability to achieve the amount of gas-phase volume fraction in different points of a 2D-BCR.
机译:模拟包括气体和液相的2D气泡柱反应器(BCR),并从CFD模拟中提取诸如气相体积分数和气相湍流的流体特性。在此应用一种称为自适应网络的模糊推理系统(ANFIS)的启发式算法以模拟物理系统中的气相体积分数。实际上, x方向,方向和气相湍流被认为是ANFI输入。评估输入和隶属函数的输入数量的变化,并研究获得高水平的ANFI智能。通过实施最高的ANFI智能,预测表面,这表明气相体积分数基于 x和方向。它提供了在2D-BCR的不同点中达到气相体积分数的能力。

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