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FLAME SPEED AND VAPOR PRESSURE OF BIOJET FUEL BLENDS

机译:伯吉特燃料混合物的火焰速度和蒸气压力

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An understanding of the fundamental combustion properties of alternative fuels is essential for their adoption as replacements for non-renewable sources. In this study, three different biojet fuel mixtures are directly compared to conventional Jet A-1 on the basis of laminar flame speed and vapor pressure. The bio-fuel is derived from camelina oil and hydrotreated to ensure consistent elemental composition with conventional aviation fuel, yielding a bioderived synthetic paraffinic kerosene (Bio-SPK). Two considered blends are biofuel and Jet A-1 mixtures, while the third is a 90% Bio-SPK mixture with 10% aromatic addi-fives. Premixed flame speed measurements are conducted at an unburned temperature of 400K and atmospheric pressure using a jet-wall stagnation flame apparatus. Since the laminar flame speed cannot be studied experimentally, a strained (or reference) flame speed is used as the basis for the initial comparison. Only by using an appropriate surrogate fuel were the reference flame speed measurements extrapolated to zero flame strain, accomplished using a direct comparison of simulations to experiments. This method has been previously shown to yield results consistent with non-linear extrapolations. Vapor pressure measurements of the biojet blends are also made from 25 to 200 °C using an isoteniscope. Finally, the biojet blends are compared to the Jet A-1 benchmark on the basis of laminar flame speed at different equivalence ratios, as well as on the basis of vapor pressure over a wide temperature range, and the suitability of a binary laminar flame speed surrogate for these biojet fuels is discussed.
机译:了解替代燃料的基本燃烧特性对于将其用作不可再生能源的替代品至关重要。在这项研究中,根据层流火焰速度和蒸气压,将三种不同的生物喷气燃料混合物直接与常规喷气A-1进行了比较。该生物燃料源自山茶油,经过加氢处理以确保与常规航空燃料的元素组成一致,从而产生生物衍生的合成石蜡煤油(Bio-SPK)。两种考虑的混合物是生物燃料和Jet A-1混合物,而第三种是90%的Bio-SPK混合物和10%的芳族添加剂。使用喷射壁式停滞火焰设备在400K的未燃烧温度和大气压下进行预混火焰速度的测量。由于无法通过实验研究层流火焰速度,因此将应变(或参考)火焰速度用作初始比较的基础。只有通过使用适当的替代燃料,才能将参考火焰速度测量值外推到零火焰应变,这是通过将模拟与实验进行直接比较来完成的。先前已证明此方法产生的结果与非线性外推一致。还使用等渗镜在25至200°C的温度范围内对biojet混合物的蒸汽压进行了测量。最后,根据不同当量比下的层流火焰速度,以及在较宽的温度范围内的蒸气压,以及二元层流火焰速度的适用性,将biojet混合物与Jet A-1基准进行比较讨论了这些生物喷射燃料的替代物。

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