正十二烷氧化综合研究中的一级点火和模型优化探索

IF 5.8 2区 工程技术 Q2 ENERGY & FUELS Combustion and Flame Pub Date : 2024-06-12 DOI:10.1016/j.combustflame.2024.113489
Congjie Hong , Yilong Ao , Yuyang Zhang , Wuchuan Sun , Zemin Tian , Yingwen Yan , Zuohua Huang , Yingjia Zhang
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引用次数: 0

摘要

正十二烷通常被用作研究喷气燃料和柴油燃料燃烧特性的替代物。加强对其燃烧行为的理解和开发用于模拟燃烧的精确化学动力学模型对发动机开发至关重要。本研究重点详细探讨了正十二烷在低温条件下的氧化动力学,并提供了有关第一阶段点火延迟时间的新数据集。研究了一系列实验条件,包括温度(600 ∼ 1350 K)、压力(5 ∼ 20 atm)、当量比(0.5 ∼ 1.0)和稀释气体(N2 和 Ar)。此外,还进行了纯氧环境下的燃烧实验,为现有研究提供了宝贵数据。为了提高正十二烷化学反应动力学模型的精确度,本研究整合了根据最新理论计算获得的特定反应类别的最新速率系数。改进后的速率规则为构建长直烷烃化学反应动力学模型提供了更精确的参考。改进后的模型能够在各种操作条件下准确预测第一阶段点火延迟时间和总点火延迟时间。此外,还根据从各种文献参考资料中收集的各种数据集进行了全面评估,对模型性能进行了严格评价。结果表明,与之前提出的模型相比,该增强型模型可在广泛的参数范围内提供高度可靠的预测。
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Exploring the first-stage ignition and model optimization in the comprehensive study of n-dodecane oxidation

n-Dodecane is commonly employed as a surrogate for investigating the combustion characteristics of jet and diesel fuels. Enhancing comprehension of its combustion behavior and developing accurate chemical kinetics models for simulating combustion is of paramount importance in engine development. This study focuses on a detailed exploration of n-dodecane oxidation kinetics under low-temperature conditions and presents a novel dataset concerning the first-stage ignition delay time. A broad spectrum of experimental conditions is investigated, encompassing a range of temperature (600 ∼ 1350 K), pressure (5 ∼ 20 atm), equivalence ratios (0.5 ∼ 1.0), and dilution gases (N2 and Ar). Additionally, combustion experiments in a pure oxygen environment are performed, contributing valuable data to existing research. To enhance the precision of the chemical reaction kinetics model of n-dodecane, this study integrates updated rate coefficients obtained from the latest theoretical calculations for specific reaction classes. The improved rate rule provides a more accurate reference for the construction of the chemical reaction kinetics model of long straight alkane. The resulting improved model excels in accurately predicting both the first-stage ignition delay time and the total ignition delay time under a wide range of operational conditions. Additionally, the model performance is rigorously evaluated through a comprehensive assessment against a diverse array of datasets gathered from various literature references. The results show that, in contrast to the previously proposed model, this enhanced model provides highly reliable predictions over a broad range of parameters.

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来源期刊
Combustion and Flame
Combustion and Flame 工程技术-工程:化工
CiteScore
9.50
自引率
20.50%
发文量
631
审稿时长
3.8 months
期刊介绍: The mission of the journal is to publish high quality work from experimental, theoretical, and computational investigations on the fundamentals of combustion phenomena and closely allied matters. While submissions in all pertinent areas are welcomed, past and recent focus of the journal has been on: Development and validation of reaction kinetics, reduction of reaction mechanisms and modeling of combustion systems, including: Conventional, alternative and surrogate fuels; Pollutants; Particulate and aerosol formation and abatement; Heterogeneous processes. Experimental, theoretical, and computational studies of laminar and turbulent combustion phenomena, including: Premixed and non-premixed flames; Ignition and extinction phenomena; Flame propagation; Flame structure; Instabilities and swirl; Flame spread; Multi-phase reactants. Advances in diagnostic and computational methods in combustion, including: Measurement and simulation of scalar and vector properties; Novel techniques; State-of-the art applications. Fundamental investigations of combustion technologies and systems, including: Internal combustion engines; Gas turbines; Small- and large-scale stationary combustion and power generation; Catalytic combustion; Combustion synthesis; Combustion under extreme conditions; New concepts.
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