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Fischer-Tropsch coal-to-liquid fuel negative temperature coefficient region (NTC) and low-temperature heat release (LTHR) in a constant volume combustion chamber (CVCC)

机译:恒定体积燃烧室(CVCC)中的费托煤制液体燃料负温度系数区(NTC)和低温放热(LTHR)

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The purpose of the study was to investigate the correlation between thermal characteristics of neat Iso-Paraffinic Kerosene (IPK) in relation to Low Temperature Heat Release (LTHR), ignition delay, and combustion delay within the Negative Temperature Coefficient region (NTC), utilizing a Box-Behnken design matrix. There were 15 trials of 3 control input parameters which were strategic manipulations of ASTM standard D7668-14a. The standard parameters are: 1000 bar for injection pressure, a combustion chamber temperature of 595.5 ℃, and an injection pulse width of 2.5 ms. It was observed that, at ASTM standard, the Derived Cetane Number of neat Ultra-Low Sulfur Diesel (ULSD) and IPK was 47.38 and 25.9, respectively. Results show that the LTHR duration and energy release were reduced when two parameters were simultaneously increased in ULSD operation. Meanwhile, for both fuels, the duration and energy release in LTHR has increased when two parameters were simultaneously reduced. It was found that the lower set wall temperature resulted in increased NTC region and LTHR increased to over 10% of the total energy release. The maximum combustion pressure for both ULSD and IPK where increased by 17.2% and 16.1% respectively from the standard due to the increase in injection pressure and pulse width.
机译:该研究的目的是利用负温度系数区域(NTC)来研究纯异链烷烃煤油(IPK)与低温放热(LTHR),点火延迟和燃烧延迟之间的相关性。 Box-Behnken设计矩阵。对3个控制输入参数进行了15次试验,这些参数是ASTM标准D7668-14a的战略操作。标准参数是:喷射压力为1000 bar,燃烧室温度为595.5℃,喷射脉冲宽度为2.5 ms。观察到,在ASTM标准下,纯超低硫柴油(ULSD)和IPK的十六烷值分别为47.38和25.9。结果表明,当在ULSD操作中同时增加两个参数时,LTHR持续时间和能量释放减少。同时,对于两种燃料,当同时降低两个参数时,LTHR的持续时间和能量释放都增加了。发现较低的设定壁温导致NTC区域增加,而LTHR增加至总能量释放的10%以上。由于喷射压力和脉冲宽度的增加,ULSD和IPK的最大燃烧压力分别比标准增加了17.2%和16.1%。

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