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In-cylinder soot concentration measurement by Neural Network Two Colour technique (NNTC) on a GDI engine

机译:通过神经网络两种颜色技术(NNTC)在GDI发动机上的缸内烟灰浓度测量

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摘要

In the present study, a new method named Neural Network Two Colour (NNTC) has been developed and applied to a turbocharged gasoline direct injection engine to directly analyze, within combustion chamber, most sooting conditions, by varying rail pressure and start of injection.The engine cylinder head was modified to create two sealed optical accesses for endoscope lighting and visualization, allowing image acquisition directly into combustion chamber. After an optical calibration of the system, several combustion images were acquired on 16 engine operating points with 8 levels of rail pressure and start of injection. The images were post-processed by the NNTC in order to calculate instantaneous soot production for each investigated operating point.The results demonstrated that the NNTC technique can be used as accurate method to detect soot production directly within combustion chamber. Moreover, by means of this method, it is possible to compute soot production in specific areas of combustion chamber. (C) 2020 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在本研究中,已经开发了一种名为神经网络两种颜色(NNTC)的新方法,并应用于涡轮增压汽油直喷发动机,通过不同的轨道压力和注射开始直接分析燃烧室,大多数烟灰条件。发动机气缸盖被修改为为内窥镜照明和可视化产生两个密封的光学通路,使图像采集直接进入燃烧室。在系统的光学校准之后,在16个发动机操作点上获得了几个燃烧图像,其中8级轨道压力和注射的开始。图像由NNTC进行后处理,以计算每个研究的操作点的瞬时烟灰产生。结果表明NNTC技术可以用作直接检测燃烧室内的烟灰产生的准确方法。此外,通过该方法,可以在燃烧室的特定区域中计算烟灰产生。 (c)2020燃烧研究所。由elsevier Inc.出版的所有权利保留。

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