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An experimental technique for determination of intrinsic burning rate constants of liquid fuels

机译:一种测定液体燃料固有燃烧速率常数的实验技术

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The burning rate constant of the droplets of a liquid fuel solely characterized by the thermo-physical properties of the fuel and the oxidizer is an intrinsic characteristic of the fuel. The classical quasi-steady approach enables estimation of such a parameter in a highly idealized scenario with a range of simplifying assumptions. Furthermore, this quasi-steady method requires the knowledge of the thermo-physical properties of the fuel along with the expected adiabatic flame temperature. The current study utilizes droplet combustion experiments in natural gravity for the estimation of the intrinsic burning rate constants of pure fuels. A semi-empirical technique has been utilized to establish a correlation between the experimental and classical quasi-steady burning rate constants. The dimensions of the droplet flame were an important aspect of the model. The experiments have been conducted in a quiescent atmosphere of ambient air with droplets of n-heptane, n-decane, and nitromethane. Quartz fibers with a range of diameters were utilized to support the droplets and obtain a variation of the initial droplet diameters. The observed variation of the burning rate constant was recognized to be the result of the augmentative effects of natural convection and the conductive heat transfer through the supporting fiber.
机译:液体燃料的液滴的燃烧速率常数仅特征在于燃料的热物理性质和氧化剂是燃料的固有特性。经典的准稳态方法能够在高度理想化的场景中估计这种参数,其具有简化假设的范围。此外,这种准稳态方法需要了解燃料的热物理性质以及预期的绝热火焰温度。目前的研究利用液滴燃烧实验在自然重力中进行纯燃料的固有燃烧速率常数估计。已经利用半经验技术来建立实验和经典准稳态燃烧速率常数之间的相关性。液滴火焰的尺寸是模型的一个重要方面。实验已经在环境空气的静态气氛中进行,具有正庚烷,N-癸烷和硝基甲烷的液滴。利用范围范围的石英纤维用于支撑液滴并获得初始液滴直径的变化。观察到燃烧速率常数的变化被认为是通过支撑纤维产生自然对流和导电热传递的增强效应的结果。

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