Analysis and Optimisation of Thermo-Mechanical Coupling Load of Cylinder Head Considering Fluid-Structure Interaction for a Marine High-Power Diesel Engine

A one-dimensional model of the diesel engine working process was established, and thermal boundary conditions of gases contacting with a cylinder head were determined by comparing them with the results of a routine test. A fluid-structure interaction model between the cooling water and cylinder head...

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Main Authors: Lei Hu, Jianguo Yang, Yonghua Yu, Fei Dong
Format: Article
Language:English
Published: MDPI AG 2020-07-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/14/3597
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spelling doaj-c289f5b1ff454dffb92ad175b73bef4b2020-11-25T03:46:11ZengMDPI AGEnergies1996-10732020-07-01133597359710.3390/en13143597Analysis and Optimisation of Thermo-Mechanical Coupling Load of Cylinder Head Considering Fluid-Structure Interaction for a Marine High-Power Diesel EngineLei Hu0Jianguo Yang1Yonghua Yu2Fei Dong3School of Energy and Power Engineering, Wuhan University of Technology, Wuhan 430063, ChinaSchool of Energy and Power Engineering, Wuhan University of Technology, Wuhan 430063, ChinaSchool of Energy and Power Engineering, Wuhan University of Technology, Wuhan 430063, ChinaSchool of Energy and Power Engineering, Wuhan University of Technology, Wuhan 430063, ChinaA one-dimensional model of the diesel engine working process was established, and thermal boundary conditions of gases contacting with a cylinder head were determined by comparing them with the results of a routine test. A fluid-structure interaction model between the cooling water and cylinder head passages was established in which boundary conditions of cooling water were obtained by computational fluid dynamics analysis. Simultaneously, considering the pressure mechanical load in the cylinder, temperature and the stress distribution of the cylinder head were analysed by the model with a thermo-mechanical coupling load. The model was validated using the temperature hardness plug method. Four parameters of intake valve opening, exhaust valve opening, fuel supply beginning, and compression ratio were selected as influencing factors, and the thermo-mechanical coupling load of the cylinder head was optimised by the Taguchi and analysis of variance method subsequently. The study indicates that the error of the calculation model for the cylinder head’s thermal-mechanical coupling load is within ±1.5%, and the proportion of the thermal stress in the cylinder head thermal-mechanical coupling stress is above 90%. The fuel supply beginning has the greatest influence on the thermal load of the cylinder head. Based on the optimisation methods within the required power range, the maximum temperature and maximum thermo-structural coupling stress of the cylinder head are decreased by about 10.05 K and 7.13 MPa in the nose bridge area, respectively.https://www.mdpi.com/1996-1073/13/14/3597cylinder headthermal boundary conditionsfluid-structure interactionthermo-mechanical coupling loadTaguchi methodanalysis of variance method
collection DOAJ
language English
format Article
sources DOAJ
author Lei Hu
Jianguo Yang
Yonghua Yu
Fei Dong
spellingShingle Lei Hu
Jianguo Yang
Yonghua Yu
Fei Dong
Analysis and Optimisation of Thermo-Mechanical Coupling Load of Cylinder Head Considering Fluid-Structure Interaction for a Marine High-Power Diesel Engine
Energies
cylinder head
thermal boundary conditions
fluid-structure interaction
thermo-mechanical coupling load
Taguchi method
analysis of variance method
author_facet Lei Hu
Jianguo Yang
Yonghua Yu
Fei Dong
author_sort Lei Hu
title Analysis and Optimisation of Thermo-Mechanical Coupling Load of Cylinder Head Considering Fluid-Structure Interaction for a Marine High-Power Diesel Engine
title_short Analysis and Optimisation of Thermo-Mechanical Coupling Load of Cylinder Head Considering Fluid-Structure Interaction for a Marine High-Power Diesel Engine
title_full Analysis and Optimisation of Thermo-Mechanical Coupling Load of Cylinder Head Considering Fluid-Structure Interaction for a Marine High-Power Diesel Engine
title_fullStr Analysis and Optimisation of Thermo-Mechanical Coupling Load of Cylinder Head Considering Fluid-Structure Interaction for a Marine High-Power Diesel Engine
title_full_unstemmed Analysis and Optimisation of Thermo-Mechanical Coupling Load of Cylinder Head Considering Fluid-Structure Interaction for a Marine High-Power Diesel Engine
title_sort analysis and optimisation of thermo-mechanical coupling load of cylinder head considering fluid-structure interaction for a marine high-power diesel engine
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-07-01
description A one-dimensional model of the diesel engine working process was established, and thermal boundary conditions of gases contacting with a cylinder head were determined by comparing them with the results of a routine test. A fluid-structure interaction model between the cooling water and cylinder head passages was established in which boundary conditions of cooling water were obtained by computational fluid dynamics analysis. Simultaneously, considering the pressure mechanical load in the cylinder, temperature and the stress distribution of the cylinder head were analysed by the model with a thermo-mechanical coupling load. The model was validated using the temperature hardness plug method. Four parameters of intake valve opening, exhaust valve opening, fuel supply beginning, and compression ratio were selected as influencing factors, and the thermo-mechanical coupling load of the cylinder head was optimised by the Taguchi and analysis of variance method subsequently. The study indicates that the error of the calculation model for the cylinder head’s thermal-mechanical coupling load is within ±1.5%, and the proportion of the thermal stress in the cylinder head thermal-mechanical coupling stress is above 90%. The fuel supply beginning has the greatest influence on the thermal load of the cylinder head. Based on the optimisation methods within the required power range, the maximum temperature and maximum thermo-structural coupling stress of the cylinder head are decreased by about 10.05 K and 7.13 MPa in the nose bridge area, respectively.
topic cylinder head
thermal boundary conditions
fluid-structure interaction
thermo-mechanical coupling load
Taguchi method
analysis of variance method
url https://www.mdpi.com/1996-1073/13/14/3597
work_keys_str_mv AT leihu analysisandoptimisationofthermomechanicalcouplingloadofcylinderheadconsideringfluidstructureinteractionforamarinehighpowerdieselengine
AT jianguoyang analysisandoptimisationofthermomechanicalcouplingloadofcylinderheadconsideringfluidstructureinteractionforamarinehighpowerdieselengine
AT yonghuayu analysisandoptimisationofthermomechanicalcouplingloadofcylinderheadconsideringfluidstructureinteractionforamarinehighpowerdieselengine
AT feidong analysisandoptimisationofthermomechanicalcouplingloadofcylinderheadconsideringfluidstructureinteractionforamarinehighpowerdieselengine
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