Numerical Analysis of Interfacial Morphology and Dispersion Behavior of High-Temperature Melts

The transient behavior of the multi-interfacial flow can be modeled using recent Smoothed Particle Hydrodynamics (SPH) model. This developed numerical method is fully-Lagrangian particle-based approach, which can track the movement of many fluid phase directly. The advantage of this simulation model...

Full description

Bibliographic Details
Main Authors: Shungo NATSUI, Ryota NASHIMOTO, Kazui TONYA, Akinori SAWADA, Tatsuya KIKUCHI, Ryosuke O. SUZUKI
Format: Article
Language:English
Published: The Mining and Materials Processing Institute of Japan 2019-08-01
Series:Journal of MMIJ
Subjects:
Online Access:https://www.jstage.jst.go.jp/article/journalofmmij/135/8/135_71/_pdf/-char/en
_version_ 1797745834023976960
author Shungo NATSUI
Ryota NASHIMOTO
Kazui TONYA
Akinori SAWADA
Tatsuya KIKUCHI
Ryosuke O. SUZUKI
author_facet Shungo NATSUI
Ryota NASHIMOTO
Kazui TONYA
Akinori SAWADA
Tatsuya KIKUCHI
Ryosuke O. SUZUKI
author_sort Shungo NATSUI
collection DOAJ
description The transient behavior of the multi-interfacial flow can be modeled using recent Smoothed Particle Hydrodynamics (SPH) model. This developed numerical method is fully-Lagrangian particle-based approach, which can track the movement of many fluid phase directly. The advantage of this simulation model is a direct calculation in both of dispersed phase and continuous phase seamlessly. Thereby this model estimates transient behavior of interfacial behavior by predicting the changes of each interface shape. For example, numerical simulations have been performed for different conditions corresponding to different values of surface tension, viscosity and density, and the predicted topological changes as well as the theoretical interfacial shape of droplets can be validated. Based on this model, we carried out relatively large-scale interfacial flow simulations, investigated case studies of metallurgical processing, and evaluated the non-steady state flow of formed from various dispersed phase.
first_indexed 2024-03-12T15:28:34Z
format Article
id doaj.art-719fb09cf8454d7787163a032fea2b5a
institution Directory Open Access Journal
issn 1881-6118
1884-0450
language English
last_indexed 2024-03-12T15:28:34Z
publishDate 2019-08-01
publisher The Mining and Materials Processing Institute of Japan
record_format Article
series Journal of MMIJ
spelling doaj.art-719fb09cf8454d7787163a032fea2b5a2023-08-10T09:42:41ZengThe Mining and Materials Processing Institute of JapanJournal of MMIJ1881-61181884-04502019-08-011358718210.2473/journalofmmij.135.71journalofmmijNumerical Analysis of Interfacial Morphology and Dispersion Behavior of High-Temperature MeltsShungo NATSUI0Ryota NASHIMOTO1Kazui TONYA2Akinori SAWADA3Tatsuya KIKUCHI4Ryosuke O. SUZUKI5Institute of Multidisciplinary Research for Advanced Materials, Tohoku UniversitySmelting Section, Saganoseki Smelter & Refinery, Pan Pacific Copper CO., LTD.Graduate School of Engineering, Hokkaido UniversityGraduate School of Engineering, Hokkaido UniversityFaculty of Engineering, Hokkaido UniversityFaculty of Engineering, Hokkaido UniversityThe transient behavior of the multi-interfacial flow can be modeled using recent Smoothed Particle Hydrodynamics (SPH) model. This developed numerical method is fully-Lagrangian particle-based approach, which can track the movement of many fluid phase directly. The advantage of this simulation model is a direct calculation in both of dispersed phase and continuous phase seamlessly. Thereby this model estimates transient behavior of interfacial behavior by predicting the changes of each interface shape. For example, numerical simulations have been performed for different conditions corresponding to different values of surface tension, viscosity and density, and the predicted topological changes as well as the theoretical interfacial shape of droplets can be validated. Based on this model, we carried out relatively large-scale interfacial flow simulations, investigated case studies of metallurgical processing, and evaluated the non-steady state flow of formed from various dispersed phase.https://www.jstage.jst.go.jp/article/journalofmmij/135/8/135_71/_pdf/-char/enhigh-temperature meltdispersed phasemetallurgical processinterfacesph method
spellingShingle Shungo NATSUI
Ryota NASHIMOTO
Kazui TONYA
Akinori SAWADA
Tatsuya KIKUCHI
Ryosuke O. SUZUKI
Numerical Analysis of Interfacial Morphology and Dispersion Behavior of High-Temperature Melts
Journal of MMIJ
high-temperature melt
dispersed phase
metallurgical process
interface
sph method
title Numerical Analysis of Interfacial Morphology and Dispersion Behavior of High-Temperature Melts
title_full Numerical Analysis of Interfacial Morphology and Dispersion Behavior of High-Temperature Melts
title_fullStr Numerical Analysis of Interfacial Morphology and Dispersion Behavior of High-Temperature Melts
title_full_unstemmed Numerical Analysis of Interfacial Morphology and Dispersion Behavior of High-Temperature Melts
title_short Numerical Analysis of Interfacial Morphology and Dispersion Behavior of High-Temperature Melts
title_sort numerical analysis of interfacial morphology and dispersion behavior of high temperature melts
topic high-temperature melt
dispersed phase
metallurgical process
interface
sph method
url https://www.jstage.jst.go.jp/article/journalofmmij/135/8/135_71/_pdf/-char/en
work_keys_str_mv AT shungonatsui numericalanalysisofinterfacialmorphologyanddispersionbehaviorofhightemperaturemelts
AT ryotanashimoto numericalanalysisofinterfacialmorphologyanddispersionbehaviorofhightemperaturemelts
AT kazuitonya numericalanalysisofinterfacialmorphologyanddispersionbehaviorofhightemperaturemelts
AT akinorisawada numericalanalysisofinterfacialmorphologyanddispersionbehaviorofhightemperaturemelts
AT tatsuyakikuchi numericalanalysisofinterfacialmorphologyanddispersionbehaviorofhightemperaturemelts
AT ryosukeosuzuki numericalanalysisofinterfacialmorphologyanddispersionbehaviorofhightemperaturemelts