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An exergy analysis methodology for internal combustion engines using a multi-zone simulation of dual fuel low temperature combustion

机译:使用双燃料低温燃烧的多区域模拟的内燃机火用分析方法

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摘要

Increasing fuel efficiency of internal combustion (IC) engines is an imperative economic and environmental need. To this end, in the present work, an exergy analysis methodology was developed and incorporated within a previously validated, closed cycle, mull-zone, thermodynamic simulation of diesel-methane dual fuel low temperature combustion (LTC). To study in-cylinder exergy transformation, the diesel start of injection (SOI) was varied from 300 crank angle degrees (CAD) to 340 CAD for a fixed engine load 6 bar brake mean effective pressure (BMEP) and speed (1700 rev/min). Gross indicated fuel conversion efficiency (iFCE) and exergetic efficiency (including exhaust exergy at exhaust valve opening) were computed for different SOIs. Results show that at all SOIs similar to 41-42 percent of the total input exergy was destroyed due to combustion irreversibilities. When combustion started, in-cylinder chemical exergy reduced significantly due to exergy transfers associated with work transfer and heat transfer as well as exergy destruction. While at SOI = 340 CAD (representative of conventional dual fuel combustion), similar to 14 percent of the fuel chemical exergy exited as exhaust physical exergy, this reduced to similar to 5.5 percent at SOI = 300 CAD (representative of dual fuel LTC). The "maximum efficiency SOI" was SOI = 310 CAD with an iFCE of 43.6 percent and an exergetic efficiency of 52.2 percent.
机译:内燃机(IC)的燃油效率的提高是经济和环境的迫切需求。为此,在当前工作中,开发了一种火用分析方法,并将其纳入了先前验证的柴油-甲烷双燃料低温燃烧(LTC)的密闭循环,微区,热力学模拟中。为了研究缸内火用转换,对于固定的发动机负载6 bar制动平均有效压力(BMEP)和速度(1700转/分钟),柴油发动机的喷射开始(SOI)从300曲柄角度(CAD)更改为340 CAD )。针对不同的SOI,计算了总指示燃料转换效率(iFCE)和能量效率(包括排气门打开时的排气本能)。结果表明,由于燃烧不可逆性,几乎所有SOI的SOI都占总输入本能的41-42%。当燃烧开始时,由于与工作传递和热传递相关联的能动传递以及能动破坏,缸内化学能用大幅度降低。在SOI = 340 CAD(代表传统双燃料燃烧)的情况下,大约有14%的燃料化学能级作为排气物理能存在,而在SOI = 300 CAD(代表双燃料LTC)的情况下,减少到5.5%。 “最大效率SOI”为SOI = 310 CAD,iFCE为43.6%,运动效率为52.2%。

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