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首页> 外文期刊>International Journal of Energy Research >STUDY OF THE STEADY AND TRANSIENT TEMPERATURE FIELD AND HEAT FLOW IN THE COMBUSTION CHAMBER COMPONENTS OF A MEDIUM SPEED DIESEL ENGINE USING FINITE ELEMENT ANALYSES
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STUDY OF THE STEADY AND TRANSIENT TEMPERATURE FIELD AND HEAT FLOW IN THE COMBUSTION CHAMBER COMPONENTS OF A MEDIUM SPEED DIESEL ENGINE USING FINITE ELEMENT ANALYSES

机译:中速柴油机燃烧室部件稳态和瞬态温度场及热流的有限元分析。

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摘要

The present work describes the development of a model for the calculation of the temperature field and heat flow in the combustion chamber components of internal combustion piston engines, which occur both under steady and transient engine operating conditions. Two and three-dimensional finite-element analyses were implemented for the representation of the complex geometry metal components (piston, liner and cylinder head). The model is applied for the piston and liner of a medium speed diesel engine, for which relevant experimental data exist in the literature. Special care is given for accurately specifying the thermal boundary conditions (temperatures and heat transfer coefficients). Gas side boundary conditions are calculated using a thermodynamic cycle simulation code, including spatial variation of the gas side heat transfer coefficient. Coolant sides (water on the external liner surface and oil on the piston undercrown surface) boundary conditions are calculated using correlations pertaining to real engine conditions. Also an effort is made to model the piston-ring belt-liner complex thermal paths using equivalent thermal circuits. A satisfactory degree of agreement is found between theoretical predictions and experimental measurements, revealing that the finite-element methods presented are successful in formulating this kind of problem, giving accurate results with reasonable computational cost. The utilization of the model reveals very clearly the essential role of engine operating transients (sudden changes in speed and/or load) in the generation of sharp temperature excursions in the metal components until a new steady state is reached. The phenomenon should be taken into account for correct engine design and safe operation (i.e. the avoidance of high local stresses).
机译:本工作描述了模型的发展,该模型用于计算在稳态和瞬态发动机工况下都会发生的内燃机活塞式发动机燃烧室部件中的温度场和热流。对复杂几何形状的金属零件(活塞,缸套和汽缸盖)进行了二维和三维有限元分析。该模型适用于中速柴油机的活塞和缸套,文献中已有相关实验数据。要特别注意准确指定热边界条件(温度和传热系数)。使用热力学循环模拟代码计算气体侧边界条件,包括气体侧传热系数的空间变化。使用与实际发动机工况有关的相关性来计算冷却剂侧(衬套外表面上的水和活塞底冠表面上的油)的边界条件。还努力使用等效热回路对活塞环皮带衬套复杂的热路径进行建模。在理论预测和实验测量之间找到了令人满意的一致性,表明所提出的有限元方法成功解决了此类问题,从而以合理的计算成本提供了准确的结果。该模型的利用非常清楚地揭示了发动机运行瞬态(速度和/或负载的突然变化)在金属部件中产生急剧的温度偏移直到达到新的稳态之前的重要作用。为了正确的发动机设计和安全运行(即避免高局部应力),应考虑到这种现象。

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