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首页> 外文期刊>International journal of hydrogen energy >Local fuel concentration measurement through spark-induced breakdown spectroscopy in a direct-injection hydrogen spark-ignition engine
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Local fuel concentration measurement through spark-induced breakdown spectroscopy in a direct-injection hydrogen spark-ignition engine

机译:通过直喷氢火花点火发动机中的火花诱导击穿光谱法测量局部燃料浓度

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Quantitative measurements of local fuel concentrations were conducted in a direct injection hydrogen spark-ignition research engine using the spark-induced breakdown spectroscopy (SIBS) technique. For SIBS measurements, a new sensor was developed from a commercially available M12-type spark plug with no major modifications to the electrodes. The new plug sensor showed better durability and required less maintenance when used in a hydrogen research engine. Emission spectra from the plasma generated by the spark plug were collected through an optical fibre housed in the centre electrode of the plug and resolved spectrally for atomic emissions of Ha, 0(I), and N(I). The main focus of the present work was to characterise the effects of ambient pressure at ignition timing on spectral line emissions and to improve the accuracy of SIBS measurements by taking into account the pressure dependency of atomic emissions. A significant effect of the corresponding pressure at ignition timing was observed on spark-induced breakdown spectroscopic measurements and emission line characteristics. Retarded spark timing (i.e. higher ambient pressure at the ignition site) resulted in lower spectral line intensities as well as weaker background emissions. It is well established that with relatively higher pressure and density of atoms or molecules, the cooling of expanding plasma accelerates, and the collision probability increases, leading to both a weaker broadband continuum and atomic emissions. A "calibration MAP" representing the correlation of air excess ratio (relative air/fuel ratio) with both intensity ratio and pressure at ignition timing was created and subsequently used for quantitative measurements of local fuel concentrations for both port injection and direct injection strategies to demonstrate and explore the effects of pressure dependency of atomic emission on the accuracy of the SIBS measurements. Local stratification of the fuel mixture in the vicinity of the spark gap location associated with direct injection strategies was confirmed; the coefficient of variation of the local air excess ratio was relatively small for measurements made using the calibration map. This demonstrated that the measurement accuracy of local fuel concentrations through a spark plug sensor can be improved significantly when the pressure dependency of atomic emissions is taken into account. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本地燃料浓度的定量测量是在直喷式氢火花点火研究引擎中使用火花诱导击穿光谱技术(SIBS)进行的。对于SIBS测量,从市场上可买到的M12型火花塞开发了一种新的传感器,对电极没有重大修改。当用于氢研究发动机时,新的塞子传感器具有更好的耐用性并需要较少的维护。由火花塞产生的等离子体的发射光谱通过容纳在火花塞中心电极中的光纤收集,并在光谱上解析为Ha,0(I)和N(I)的原子发射。本工作的主要重点是表征点火正时的环境压力对谱线发射的影响,并通过考虑原子发射的压力依赖性来提高SIBS测量的准确性。观察到点火正时相应压力对火花感应击穿光谱测量和发射谱线特性的显着影响。延迟的火花正时(即点火部位较高的环境压力)导致较低的谱线强度以及较弱的背景辐射。公认的是,在相对较高的压力和原子或分子密度的情况下,膨胀的等离子体的冷却会加速,并且碰撞几率会增加,从而导致宽带连续谱和原子发射均变弱。创建了代表空气过量比(相对空气/燃料比)与强度比和点火正时压力的相关性的“校准MAP”,并随后用于进气道喷射和直接喷射策略的定量测量局部燃料浓度并探讨了原子发射的压力依赖性对SIBS测量精度的影响。证实了与直接喷射策略相关的火花间隙位置附近的燃料混合物的局部分层;对于使用校准图进行的测量,局部空气过量比的变化系数相对较小。这表明,当考虑到原子发射的压力依赖性时,通过火花塞传感器的局部燃料浓度的测量精度可以大大提高。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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