首页> 外文会议>ASME Internal Combustion Engine Division Technical Conference >DEMONSTRATING A DIRECT-INJECTION CONSTANT-VOLUME COMBUSTION CHAMBER AS A VALIDATION TOOL FOR CHEMICAL KINETIC MODELING OF LIQUID FUELS
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DEMONSTRATING A DIRECT-INJECTION CONSTANT-VOLUME COMBUSTION CHAMBER AS A VALIDATION TOOL FOR CHEMICAL KINETIC MODELING OF LIQUID FUELS

机译:用液体燃料的化学动力学建模证明直喷恒定体积燃烧室作为验证工具

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Supporting chemical kinetics model development with robust experimental results is the job of shock-tube, rapid compression machine, and other apparatus operators. A key limitation of many of these systems is difficulty with preparation of a fuel vapor-air mixture for heavy liquid fuels. Previous work has suggested that the Cetane Ignition Delay (CID) 510 system is capable of providing data useful for kinetics validation. Specifically, this constant-volume combustion chamber (1) can be characterized by a single bulk temperature, and (2) uses a high-pressure diesel injector to generate rapid fuel-air mixing and thus create a homogeneous mixture well before ignition. In this study, initial experiments found relatively good agreement between experiments and kinetic models for n-heptane and poor agreement for iso-octane under nominally the same ignition delay ranges for ambient conditions under which the mixture is determined to be effectively homogeneous. After excluding potential non-kinetic fuel properties as causes, further experiments highlight the high pressure sensitivity of the negative temperature coefficient (NTC) behavior. While this challenge is well known to kinetic mechanism developers, the data set included in this work (n-heptane at 5 bar and iso-octane at 5 - 20 bar, each for various equivalence ratios) can be added to those used for validation. The results and system characterization presented demonstrate that this combustion system is capable of capturing kinetic effects decoupled from the spray process for these primary reference fuels. Future work can leverage this capability to provide kinetics validation data for most heavy, exotic, or otherwise difficult to test liquid fuels.
机译:支持化学动力学模型开发,具有稳健的实验结果是震动管,快速压缩机和其他装置运营商的工作。许多这些系统的关键限制是难以制备用于重型液体燃料的燃料蒸汽 - 空气混合物。以前的工作表明,十六烷点火延迟(CID)510系统能够提供有用的数据,可用于动力学验证。具体地,该恒定体积燃烧室(1)可以通过单个体积温度表征,并且(2)使用高压柴油喷射器来产生快速燃料 - 空气混合,从而在点火之前良好地产生均匀的混合物。在这项研究中,最初的实验中发现下标称相同的点火延迟的范围为在其下混合物被确定为是有效的均相的环境条件的实验和动力学模型的正庚烷和协议差为异辛烷之间相对良好的一致性。在将潜在的非动力学燃料特性排除作为原因之后,进一步的实验突出了负温度系数(NTC)行为的高压敏性。虽然这种挑战是众所周知的动力学机制开发人员,但可以将本作作品中包含的数据集(在5-20巴的5-20巴特,每种等当量的5-20巴中的N-庚烷)加入到用于验证的那些。提出的结果和系统表征表明,该燃烧系统能够捕获与这些主要参考燃料的喷涂过程分离的动力学效果。未来的工作可以利用这种能力为最重,异国情调或其他难以测试液体燃料提供动力学验证数据。

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