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THERMODYNAMIC PERFORMANCE OPTIMIZATION OF RECIPROCATING INTERNAL COMBUSTION (IC) ENGINES

机译:往复式内燃(IC)发动机的热力学性能优化

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Reciprocating IC engines are traditionally modeled as operating on air standard cycles that approximate indicator diagrams obtained in experiments on real engines. These indicator diagrams can best be approximated by the dual cycle for both gasoline and diesel engines. Analysis of air standard cycles unfortunately fails to capture second law effects such as exergy destruction due to the irreversibility of combustion. Indeed, a complete thermodynamic study of any process requires application of both the first and second laws of thermodynamics.This article gives a combined first and second law analysis of reciprocating IC engines in general with optimization of performance as primary goal. A practical dual-like cycle is assumed for the operation of a typical reciprocating IC engine and process efficiencies are assigned to allow for irreversibilities in the compression and expansion processes. The combustion process is modeled instead of being replaced simply by a heat input process to air as is common in air standard cycle analysis. The study shows that performance of the engine can indeed be optimized on the basis of geometrical design parameters such as the compression ratio as well as the air-fuel ratio used for the combustion.
机译:传统上,将往复式IC发动机建模为以空气标准循环运行,该循环近似于在真实发动机的实验中获得的指标图。汽油和柴油发动机的双循环可以最好地近似这些指标图。遗憾的是,由于燃烧的不可逆性,对空气标准循环的分析未能捕获第二定律效应,例如,火用破坏。实际上,对任何过程进行完整的热力学研究都需要同时应用热力学的第一定律和第二定律。 本文总体上对往复式IC引擎进行了第一定律和第二定律分析,并将性能优化作为主要目标。对于典型的往复式IC引擎的运行,假定有一个实际的双周期循环,并且分配了处理效率以允许压缩和膨胀过程中的不可逆性。对燃烧过程进行建模,而不是像在空气标准循环分析中常见的那样,简单地用空气的热量输入过程代替燃烧过程。研究表明,发动机的性能确实可以根据几何设计参数(例如压缩比以及用于燃烧的空燃比)进行优化。

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