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基于组合简化方法和遗传算法的戊醇简化化学反应机理的开发。

Development of a Reduced Chemical Reaction Mechanism for -Pentanol Based on Combined Reduction Methods and Genetic Algorithm.

作者信息

Li Songfeng, Zhang Chunhua, Jing Zheng, Li Yangyang, Yin Peng, Cai Panpan, Lu An

机构信息

Key Laboratory of Shaanxi Province for Development and Application of New Transportation Energy, Chang'an University, Xi'an 710064, P. R. China.

出版信息

ACS Omega. 2021 Feb 26;6(9):6448-6459. doi: 10.1021/acsomega.1c00147. eCollection 2021 Mar 9.

Abstract

To gradually reduce the demand for fossil energy and accelerate energy transformation, alcohol fuels are being vigorously developed and utilized in the world. -Pentanol as a common alcohol fuel has attracted increasing attention in recent years owing to its many advantages. In this study, a reduced mechanism of -pentanol containing 148 species and 575 reactions was established based on combined reduction methods including the direct relationship graph with error propagation, reaction pathway analysis, rate of production analysis, and temperature sensitivity analysis methods. Then, the reaction rate parameters were optimized using the nondominated sorting genetic algorithm II. A verification experiment for the oxidation of -pentanol was conducted in a jet-stirred reactor (JSR) with gas chromatography-mass spectrometry. The main species mole fractions were quantitatively analyzed in the temperature range 700-1100 K, equivalence ratios of 0.5-2.0, and a pressure of 1 atm. Extensive validations were performed over wide experimental conditions by comparing the experimental data of the ignition delay time, species concentration profiles in the JSR, and laminar flame speed. It was found that the predicted values were in good agreement with the experimental values. Therefore, the reduced mechanism developed in this study can accurately predict the experimental results, which is capable of reasonably applying to the simulation of combustion behaviors of -pentanol in internal combustion engines.

摘要

为了逐步减少对化石能源的需求并加速能源转型,酒精燃料在全球范围内正得到大力开发和利用。正戊醇作为一种常见的酒精燃料,近年来因其诸多优点而受到越来越多的关注。在本研究中,基于包括带有误差传播的直接关系图、反应路径分析、生成速率分析和温度敏感性分析方法在内的组合简化方法,建立了一个包含148种物质和575个反应的正戊醇简化机理。然后,使用非支配排序遗传算法II对反应速率参数进行了优化。在喷射搅拌反应器(JSR)中利用气相色谱 - 质谱联用仪对正戊醇的氧化进行了验证实验。在700 - 1100 K的温度范围、0.5 - 2.0的当量比和1 atm的压力下对主要物质的摩尔分数进行了定量分析。通过比较点火延迟时间、JSR中的物质浓度分布和层流火焰速度的实验数据,在广泛的实验条件下进行了大量验证。结果发现预测值与实验值吻合良好。因此,本研究中开发的简化机理能够准确预测实验结果,能够合理地应用于内燃机中正戊醇燃烧行为的模拟。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e4e1/7948435/2d70e97cd0ab/ao1c00147_0002.jpg

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