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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Analysis and Optimization Study of Piston in Diesel Engine Based on ABC-OED-FE Method
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Analysis and Optimization Study of Piston in Diesel Engine Based on ABC-OED-FE Method

机译:基于ABC-OED-FE方法的柴油机活塞分析与优化研究

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摘要

In order to increase the reliability and service life of piston in a heavy-duty diesel engine, the geometric structure of piston was optimized based on its maximum temperature and maximum coupling stress. To begin with, the boundary conditions of thermal and stress fields are calculated, which include the heat produced by the combustion in cylinder, the friction-induced heat, and the heat transferred to cooling system. Then, the finite element model was established to calculate and analyse the temperature and thermal-mechanical coupling stress fields of the piston. By combining this simulation model with orthogonal experimental design methods, computations and analyses were performed to determine how the five geometric parameters (depth of intake and exhaust valve grooves, radius of valve grooves transition, radius of top of valve grooves, height of first piston ring groove, and depth of piston ring groove) influence the two evaluation indicators (maximum temperature and maximum stress of piston). Subsequently, using the proposed ABC-OED- FE (artificial bee colony, orthogonal experiment design, and fitting equations) method, the fitting equations between the geometric parameters and evaluation indicators were determined. Taking the minimum values of two evaluation indicators of piston as optimization objectives, artificial bee colony method was run to determine the values of parameters. At last, the two evaluation indicators of the optimized piston were computed. The results indicate that, after optimization, the maximum temperature of piston decreases to be 16.05?K and the maximum stress decreases to be 13.54?MPa. Both temperature and stress conditions of the optimized piston had been improved, which demonstrates the effectiveness of the optimization and the validity of the algorithm.
机译:为了提高活塞在重型柴油发动机中的可靠性和使用寿命,基于其最高温度和最大耦合应力,优化活塞的几何结构。首先,计算热和应力场的边界条件,包括通过汽缸中的燃烧,摩擦诱导的热量和传递到冷却系统的热量产生的热量。然后,建立有限元模型以计算和分析活塞的温度和热机械耦合应力场。通过将该模拟模型与正交的实验设计方法相结合,进行计算和分析来确定五个几何参数(进气阀的深度和排气阀槽,阀槽半径,阀槽顶部,第一活塞环的高度凹槽和活塞环槽的深度)影响两个评价指标(活塞的最大温度和最大应力)。随后,使用所提出的ABC-OED-FE(人造群落菌落,正交实验设计和配件方程)方法,确定几何参数和评估指标之间的拟合方程。采用活塞两种评估指标的最小值作为优化目标,运行人造蜂菌落方法以确定参数的值。最后,计算了优化活塞的两个评估指标。结果表明,在优化之后,活塞的最高温度降低为16.05Ω·k,最大应力降低至13.54 mPa。已经提高了优化活塞的温度和胁迫条件,这表明了优化的有效性和算法的有效性。

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