A Numerical Analysis of the Air-Cooling System of a Spark Ignition Aeronautical Engine

It is well known that spark ignition internal combustion engines for aeronautical applications operate within a specific temperature range to avoid structural damages, detonations and loss of efficiency of the combustion process. An accurate assessment of the cooling system performance is a crucial...

Full description

Bibliographic Details
Main Authors: Faruoli Maria, Viggiano Annarita, Caso Paolo, Magi Vinicio
Format: Article
Language:English
Published: EDP Sciences 2020-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/57/e3sconf_ati2020_06003.pdf
id doaj-ec42f1ef90f34b008ba3e6a113fd4ef4
record_format Article
spelling doaj-ec42f1ef90f34b008ba3e6a113fd4ef42021-04-02T13:14:56ZengEDP SciencesE3S Web of Conferences2267-12422020-01-011970600310.1051/e3sconf/202019706003e3sconf_ati2020_06003A Numerical Analysis of the Air-Cooling System of a Spark Ignition Aeronautical EngineFaruoli Maria0Viggiano Annarita1Caso Paolo2Magi VinicioSchool of Engineering, University of BasilicataSchool of Engineering, University of BasilicataCostruzioni Motori Diesel CMD S.p.A.It is well known that spark ignition internal combustion engines for aeronautical applications operate within a specific temperature range to avoid structural damages, detonations and loss of efficiency of the combustion process. An accurate assessment of the cooling system performance is a crucial aspect in order to guarantee broad operating conditions of the engine. In this framework, the use of a Conjugate Heat Transfer method is a proper choice, since it allows to estimate both the heat fluxes between the engine walls and the cooling air and the temperature distribution along the outer wall surfaces of the engine, and to perform parametric analyses by varying the engine operating conditions. In this work, the air-cooling system of a 4-cylinder spark ignition engine, designed by CMD Engine Company for aeronautical applications, is analysed in order to evaluate the amount of the air mass flow rate to guarantee the heat transfer under full load operating conditions. A preliminary validation of the model is performed by comparing the results with available experimental data. A parametric study is also performed to assess the influence of the controlling parameters on the cooling system efficiency. This study is carried out by varying the inlet air mass flow rate from 1.0 kg/s to 1.5 kg/s and the temperature of the inner wall surfaces of the engine combustion chambers from 390 K to 430 K.https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/57/e3sconf_ati2020_06003.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Faruoli Maria
Viggiano Annarita
Caso Paolo
Magi Vinicio
spellingShingle Faruoli Maria
Viggiano Annarita
Caso Paolo
Magi Vinicio
A Numerical Analysis of the Air-Cooling System of a Spark Ignition Aeronautical Engine
E3S Web of Conferences
author_facet Faruoli Maria
Viggiano Annarita
Caso Paolo
Magi Vinicio
author_sort Faruoli Maria
title A Numerical Analysis of the Air-Cooling System of a Spark Ignition Aeronautical Engine
title_short A Numerical Analysis of the Air-Cooling System of a Spark Ignition Aeronautical Engine
title_full A Numerical Analysis of the Air-Cooling System of a Spark Ignition Aeronautical Engine
title_fullStr A Numerical Analysis of the Air-Cooling System of a Spark Ignition Aeronautical Engine
title_full_unstemmed A Numerical Analysis of the Air-Cooling System of a Spark Ignition Aeronautical Engine
title_sort numerical analysis of the air-cooling system of a spark ignition aeronautical engine
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2020-01-01
description It is well known that spark ignition internal combustion engines for aeronautical applications operate within a specific temperature range to avoid structural damages, detonations and loss of efficiency of the combustion process. An accurate assessment of the cooling system performance is a crucial aspect in order to guarantee broad operating conditions of the engine. In this framework, the use of a Conjugate Heat Transfer method is a proper choice, since it allows to estimate both the heat fluxes between the engine walls and the cooling air and the temperature distribution along the outer wall surfaces of the engine, and to perform parametric analyses by varying the engine operating conditions. In this work, the air-cooling system of a 4-cylinder spark ignition engine, designed by CMD Engine Company for aeronautical applications, is analysed in order to evaluate the amount of the air mass flow rate to guarantee the heat transfer under full load operating conditions. A preliminary validation of the model is performed by comparing the results with available experimental data. A parametric study is also performed to assess the influence of the controlling parameters on the cooling system efficiency. This study is carried out by varying the inlet air mass flow rate from 1.0 kg/s to 1.5 kg/s and the temperature of the inner wall surfaces of the engine combustion chambers from 390 K to 430 K.
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/57/e3sconf_ati2020_06003.pdf
work_keys_str_mv AT faruolimaria anumericalanalysisoftheaircoolingsystemofasparkignitionaeronauticalengine
AT viggianoannarita anumericalanalysisoftheaircoolingsystemofasparkignitionaeronauticalengine
AT casopaolo anumericalanalysisoftheaircoolingsystemofasparkignitionaeronauticalengine
AT magivinicio anumericalanalysisoftheaircoolingsystemofasparkignitionaeronauticalengine
AT faruolimaria numericalanalysisoftheaircoolingsystemofasparkignitionaeronauticalengine
AT viggianoannarita numericalanalysisoftheaircoolingsystemofasparkignitionaeronauticalengine
AT casopaolo numericalanalysisoftheaircoolingsystemofasparkignitionaeronauticalengine
AT magivinicio numericalanalysisoftheaircoolingsystemofasparkignitionaeronauticalengine
_version_ 1721565755145715712