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Ion Current Measurement of Diluted Combustion Using a Multi-Electrode Spark Plug

机译:使用多电极火花塞的稀释燃烧离子电流测量

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Close-loop feedback combustion control is essential for improving the internal combustion engines to meet the rigorous fuel efficiency demands and emission legislations. A vital part is the combustion sensing technology that diagnoses in-cylinder combustion information promptly, such as using cylinder pressure sensor and ion current measurement. The promptness and fidelity of the diagnostic are particularly important to the potential success of using intra-cycle control for abnormal cycles such as super knocking and misfiring. Many research studies have demonstrated the use of ion-current sensing as feedback signal to control the spark ignition gasoline engines, with the spark gap shared for both ignition and ion-current detection. During the spark glow phase, the sparking current may affect the combustion ion current signal. Moreover, the electrode gap size is optimized for sparking rather than measurement of ion current. For improving fuel efficiency using diluted combustion, the ion current measurement could be useful for engine control. One solution is to use dedicated ion current probes which would require additional space in the engine, and may increase design complexity. In this paper, the authors propose the use of a multi-electrode spark plug for sparking and ion current measurement. This plug takes up the same area as a conventional spark plug. It has three central electrodes - one is used for sparking, and the other two are used for simultaneous and independent ion current measurement. Signal validation tests were performed in a constant volume combustion chamber using optical methods. Subsequently, the performance of the multi-electrode plug was tested on an engine at different operating conditions such as air-fuel ratio, exhaust gas recirculation, spark timing, and compression ratio. Comparisons were made with a conventional spark plug. It was found that the multi-electrode plug could detect combustion reliably even at dilute conditions. The ability to measure at two locations simultaneously improved the accuracy of the measurement, and minimized false detection.
机译:闭环反馈燃烧控制对于改善内燃机来满足严格的燃料效率需求和排放法规是必不可少的。重要的部分是燃烧感测技术,其迅速地诊断缸内燃烧信息,例如使用汽缸压力传感器和离子电流测量。诊断的迅速和保真度对使用循环控制的潜在成功对异常循环(如超敲击和误兵)的潜在成功尤为重要。许多研究研究已经证明了使用离子电流感测作为反馈信号以控制火花点火汽油发动机,具有用于点火和离子电流检测的火花隙。在火花辉光相期间,火花电流可能影响燃烧离子电流信号。此外,电极间隙尺寸优化用于火花而不是离子电流的测量。为了使用稀释的燃烧提高燃料效率,离子电流测量可用于发动机控制。一种解决方案是使用专用离子电流探头,该探针需要发动机中的额外空间,并且可以提高设计复杂性。在本文中,作者提出了使用多电极火花塞进行火花和离子电流测量。此插头占用与传统火花塞相同的区域。它具有三个中央电极 - 一种用于火花,另外两个用于同时和独立的离子电流测量。使用光学方法在恒定体积燃烧室中进行信号验证测试。随后,在不同的操作条件下在发动机上测试多电极塞的性能,例如空燃比,废气再循环,火花正时和压缩比。使用常规火花塞进行比较。发现,即使在稀释条件下,多电极塞也可以可靠地检测燃烧。在两个位置测量的能力同时提高了测量的准确性,并最小化了错误检测。

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