Fatigue life prediction analysis of high-intensity marine diesel engine cylinder head based on fast thermal fluid solid coupling method

被引:0
作者
Huabing Zhang
Yi Cui
Gang Liang
Liting Li
Guoyong Zhang
Xinqi Qiao
机构
[1] Shanghai Jiao Tong University,Key Laboratory for Power Machinery and Engineering of Ministry of Education
[2] Collaborative Innovation Center for Advanced Ship and Deep-Sea Exploration,undefined
[3] Shanghai Marine Diesel Engine Research Institute,undefined
[4] National Engineering Laboratory for Marine and Ocean Engineering Power System,undefined
来源
Journal of the Brazilian Society of Mechanical Sciences and Engineering | 2021年 / 43卷
关键词
Marine diesel engine; Cylinder head; Heat transfer boundary; Fatigue life; Reliability;
D O I
暂无
中图分类号
学科分类号
摘要
Due to the complex structures and severe working conditions, including the erosion of high-temperature gas and alternating combustion pressure, the thermal–mechanical fatigue is more likely to occur on the loading surface, which will also have serious impacts on the reliability of marine diesel engine. Herein, based on the three-dimensional fluid–solid coupling analysis, a highly effective four-zone heat transfer model is proposed for analyzing the rules of fatigue life of a new-type high power density diesel engine cylinder head, which can greatly simplify the calculation process of thermal fluid–solid coupling and improve the analysis efficiency by 95%. The accuracy of the model is verified by the temperature field test (with the maximum error of 5.6%) and mechanical fatigue test (with the maximum error of 4.1%). The influence law of operating conditions such as in-cylinder pressure and temperature on high cycle fatigue (HCF) and low cycle fatigue (LCF) life is analyzed. Therefore, the generalized Eying model is obtained, which can establish a direct relationship among the cylinder head fatigue life, average gas temperature as well as maximum combustion pressure, potentially providing the reliability evaluation and optimization design for the diesel engine.
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[1]  
Pierce D(2019)High temperature materials for heavy duty diesel engines: historical and future trends Prog Mater Sci 103 109-179
[2]  
Haynes A(2016)The large engines validation challenge in the context of new exhaust emissions regulation CIMAC AVL List GmbH Austria 272 1-17
[3]  
Hughes J(2019)Some recent advances on thermal–mechanical fatigue design and upcoming challenges for the automotive industry Metals 9 794-1469
[4]  
Christopher H(2019)Fretting fatigue optimization of piston skirt top surface of marine diesel engine Proc Inst Mech Eng C J Mech Eng Sci 233 1453-1590
[5]  
Szmytka F(2016)From HERCULES ABC to HERCULES-2: cutting edge R&D in ship engines Transportation Research Procedia 14 1581-1065
[6]  
Osmond P(2017)Sustainable power generation with large gas engines Energy Convers Manag 149 1048-432
[7]  
Rémy L(2017)Study of different cooling structures on the thermal status of an Internal Combustion Engine Appl Therm Eng 116 419-904
[8]  
Wang Y(2015)A multi-physics 3D modeling methodology for multi-cylinder diesel engine thermal management and fatigue life prediction SAE Int J Mater Manuf 8 893-303
[9]  
Wu L(2013)Multiphase CFD–CHT optimization of the cooling jacket and FEM analysis of the engine head of a V6 diesel engine Appl Therm Eng 52 293-1643
[10]  
Liu S(2020)A finite element analysis-computational fluid dynamics coupled analysis on thermal-mechanical fatigue of cylinder head of a turbo-charged diesel engine Proc Inst Mech Eng Part D J Automob Eng 234 1634-274