Studi Numerik Pembakaran Butana (C4H10) dalam Meso Scale Combustor dengan Perforated Plate

This research was conducted to determine the combustion stability and flame temperature inside meso-scale combustor with variations of perforated plate flame holder and combustion gas temperature at combustor exit side using numerical method or Computational Fluid Dynamics (CFD). Meso-scale combusto...

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Main Authors: Fauzan Baananto, Lilis Yuliati, Nurkholis Hamidi
Format: Article
Language:English
Published: University of Brawijaya 2018-09-01
Series:Rekayasa Mesin
Subjects:
CFD
Online Access:http://rekayasamesin.ub.ac.id/index.php/rm/article/view/425
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spelling doaj-0a1450a2e65a4677b5982d9c18c710b52020-11-24T22:07:30ZengUniversity of BrawijayaRekayasa Mesin2338-16632477-60412018-09-0192697410.21776/ub.jrm.2018.009.02.1319Studi Numerik Pembakaran Butana (C4H10) dalam Meso Scale Combustor dengan Perforated PlateFauzan BaanantoLilis YuliatiNurkholis HamidiThis research was conducted to determine the combustion stability and flame temperature inside meso-scale combustor with variations of perforated plate flame holder and combustion gas temperature at combustor exit side using numerical method or Computational Fluid Dynamics (CFD). Meso-scale combustor is made of two pieces of quartz glass tube with a length of 20 mm and 10 mm. Each quartz glass tube having an internal diameter of 3.5 mm and a wall thickness of 0.7 mm. Two kinds of perforated plate flame holder made of copper i.e. perforated plate type I and perforated plate type II, inserted between two quartz glass tubes. Butane (C4H10) and air were used in this study as fuel and oxidizer, respectively. Numerical simulations were performed using ANSYS Fluent 17.0. The result of numerical simulation showed that the most stable combustion is obtained in meso-scale combustor by using flame holder in the form of perforated plate type II at higher reactant velocity. In addition, the combustor with perforated plate flame holder type II also produces a higher flame temperature at the same reactant speed. These phenomena occured due to the temperature distribution into the reactans is more uniform and the recirculation heats into the reactans is better than the combustor with perforated plate flame holder type I. Flame and combustor walls temperatures increased with increasing recirculation heats.http://rekayasamesin.ub.ac.id/index.php/rm/article/view/425CFDMeso-Scale CombustorPerforated PlateHeat RecirculationTemperature
collection DOAJ
language English
format Article
sources DOAJ
author Fauzan Baananto
Lilis Yuliati
Nurkholis Hamidi
spellingShingle Fauzan Baananto
Lilis Yuliati
Nurkholis Hamidi
Studi Numerik Pembakaran Butana (C4H10) dalam Meso Scale Combustor dengan Perforated Plate
Rekayasa Mesin
CFD
Meso-Scale Combustor
Perforated Plate
Heat Recirculation
Temperature
author_facet Fauzan Baananto
Lilis Yuliati
Nurkholis Hamidi
author_sort Fauzan Baananto
title Studi Numerik Pembakaran Butana (C4H10) dalam Meso Scale Combustor dengan Perforated Plate
title_short Studi Numerik Pembakaran Butana (C4H10) dalam Meso Scale Combustor dengan Perforated Plate
title_full Studi Numerik Pembakaran Butana (C4H10) dalam Meso Scale Combustor dengan Perforated Plate
title_fullStr Studi Numerik Pembakaran Butana (C4H10) dalam Meso Scale Combustor dengan Perforated Plate
title_full_unstemmed Studi Numerik Pembakaran Butana (C4H10) dalam Meso Scale Combustor dengan Perforated Plate
title_sort studi numerik pembakaran butana (c4h10) dalam meso scale combustor dengan perforated plate
publisher University of Brawijaya
series Rekayasa Mesin
issn 2338-1663
2477-6041
publishDate 2018-09-01
description This research was conducted to determine the combustion stability and flame temperature inside meso-scale combustor with variations of perforated plate flame holder and combustion gas temperature at combustor exit side using numerical method or Computational Fluid Dynamics (CFD). Meso-scale combustor is made of two pieces of quartz glass tube with a length of 20 mm and 10 mm. Each quartz glass tube having an internal diameter of 3.5 mm and a wall thickness of 0.7 mm. Two kinds of perforated plate flame holder made of copper i.e. perforated plate type I and perforated plate type II, inserted between two quartz glass tubes. Butane (C4H10) and air were used in this study as fuel and oxidizer, respectively. Numerical simulations were performed using ANSYS Fluent 17.0. The result of numerical simulation showed that the most stable combustion is obtained in meso-scale combustor by using flame holder in the form of perforated plate type II at higher reactant velocity. In addition, the combustor with perforated plate flame holder type II also produces a higher flame temperature at the same reactant speed. These phenomena occured due to the temperature distribution into the reactans is more uniform and the recirculation heats into the reactans is better than the combustor with perforated plate flame holder type I. Flame and combustor walls temperatures increased with increasing recirculation heats.
topic CFD
Meso-Scale Combustor
Perforated Plate
Heat Recirculation
Temperature
url http://rekayasamesin.ub.ac.id/index.php/rm/article/view/425
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AT lilisyuliati studinumerikpembakaranbutanac4h10dalammesoscalecombustordenganperforatedplate
AT nurkholishamidi studinumerikpembakaranbutanac4h10dalammesoscalecombustordenganperforatedplate
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