Mixing Behaviour of Miscible Liquid-Liquid Multiphase Flow in Stirred Tank with Different Marine Propeller Installment by Computational Fluid Dynamics Method

This paper presents a three-dimensional and transient computational fluid dynamics (CFD) simulation of the miscible liquid-liquid system (water-molasses) in a stirred tank operated in turbulence regime. The mixing process is crucial role when the viscosity and density of the solution are different,...

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Main Authors: S. Madhania, T. Nurtono, A.B. Cahyani, Y. Muharam, S. Winardi, W.W. Purwanto
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2017-03-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/1588
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spelling doaj-5164a22b28f845f4aaea45957d3604412021-02-18T21:10:50ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162017-03-015610.3303/CET1756177Mixing Behaviour of Miscible Liquid-Liquid Multiphase Flow in Stirred Tank with Different Marine Propeller Installment by Computational Fluid Dynamics MethodS. MadhaniaT. NurtonoA.B. CahyaniY. MuharamS. WinardiW.W. PurwantoThis paper presents a three-dimensional and transient computational fluid dynamics (CFD) simulation of the miscible liquid-liquid system (water-molasses) in a stirred tank operated in turbulence regime. The mixing process is crucial role when the viscosity and density of the solution are different, even though the solution mutually dissolved. There are two configurations used in the modelling. The first configuration is a conical- bottomed cylindrical tank equipped with a side-entry marine propeller and the second one is equipped with the top-entry marine propeller. The geometry of tank (D = 0.26 m and H = 0.363 m) and propeller (d = 0.033 m) are the same in both configurations. The transient calculations were conducted using the mixture modelmultiphase flow approach coupled with RANS (Standard k - E) turbulence model with time step is 0.01 s. Amultiple refference frame approach was applied to modelling propeller motion. The mixing behaviour and theprediction of the moment of impeller and shaft are compared between top-entry and side-entry configuration. Some simulation results included the flow pattern recognition and distribution of molasses was discussed. The flow pattern in the top-entry configuration was indicating a stable double loop circulation. Whereas the flow patterns in side-entry configuration showing loop circulation around the marine propeller, some unstable and disordered flow pattern also formed around the tank wall. The variation of the flow pattern which happened showed the instability of the mixing process in side-entry configuration. There is a significant different mixing process produced from the side entering and top entering based on the distribution of molasses inside the tank. The result of CFD-simulation shows that the moment of impeller and shaft decrease for the side-entry configuration, and increase for top-entry configuration toward complete mixing.https://www.cetjournal.it/index.php/cet/article/view/1588
collection DOAJ
language English
format Article
sources DOAJ
author S. Madhania
T. Nurtono
A.B. Cahyani
Y. Muharam
S. Winardi
W.W. Purwanto
spellingShingle S. Madhania
T. Nurtono
A.B. Cahyani
Y. Muharam
S. Winardi
W.W. Purwanto
Mixing Behaviour of Miscible Liquid-Liquid Multiphase Flow in Stirred Tank with Different Marine Propeller Installment by Computational Fluid Dynamics Method
Chemical Engineering Transactions
author_facet S. Madhania
T. Nurtono
A.B. Cahyani
Y. Muharam
S. Winardi
W.W. Purwanto
author_sort S. Madhania
title Mixing Behaviour of Miscible Liquid-Liquid Multiphase Flow in Stirred Tank with Different Marine Propeller Installment by Computational Fluid Dynamics Method
title_short Mixing Behaviour of Miscible Liquid-Liquid Multiphase Flow in Stirred Tank with Different Marine Propeller Installment by Computational Fluid Dynamics Method
title_full Mixing Behaviour of Miscible Liquid-Liquid Multiphase Flow in Stirred Tank with Different Marine Propeller Installment by Computational Fluid Dynamics Method
title_fullStr Mixing Behaviour of Miscible Liquid-Liquid Multiphase Flow in Stirred Tank with Different Marine Propeller Installment by Computational Fluid Dynamics Method
title_full_unstemmed Mixing Behaviour of Miscible Liquid-Liquid Multiphase Flow in Stirred Tank with Different Marine Propeller Installment by Computational Fluid Dynamics Method
title_sort mixing behaviour of miscible liquid-liquid multiphase flow in stirred tank with different marine propeller installment by computational fluid dynamics method
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2017-03-01
description This paper presents a three-dimensional and transient computational fluid dynamics (CFD) simulation of the miscible liquid-liquid system (water-molasses) in a stirred tank operated in turbulence regime. The mixing process is crucial role when the viscosity and density of the solution are different, even though the solution mutually dissolved. There are two configurations used in the modelling. The first configuration is a conical- bottomed cylindrical tank equipped with a side-entry marine propeller and the second one is equipped with the top-entry marine propeller. The geometry of tank (D = 0.26 m and H = 0.363 m) and propeller (d = 0.033 m) are the same in both configurations. The transient calculations were conducted using the mixture modelmultiphase flow approach coupled with RANS (Standard k - E) turbulence model with time step is 0.01 s. Amultiple refference frame approach was applied to modelling propeller motion. The mixing behaviour and theprediction of the moment of impeller and shaft are compared between top-entry and side-entry configuration. Some simulation results included the flow pattern recognition and distribution of molasses was discussed. The flow pattern in the top-entry configuration was indicating a stable double loop circulation. Whereas the flow patterns in side-entry configuration showing loop circulation around the marine propeller, some unstable and disordered flow pattern also formed around the tank wall. The variation of the flow pattern which happened showed the instability of the mixing process in side-entry configuration. There is a significant different mixing process produced from the side entering and top entering based on the distribution of molasses inside the tank. The result of CFD-simulation shows that the moment of impeller and shaft decrease for the side-entry configuration, and increase for top-entry configuration toward complete mixing.
url https://www.cetjournal.it/index.php/cet/article/view/1588
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