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Quantum cascade laser assisted time-resolved measurements of carbon dioxide absorption during combustion in DME-HCCI engine

机译:DME-HCCI发动机燃烧过程中量子级联激光辅助的二氧化碳吸收时间分辨测量

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We conducted experiments to investigate in-cylinder light absorption by carbon dioxide (CO2) during homogeneous charge compression ignition (HCCI) engine combustion. The combustion was fuelled with dimethyl ether. An in situ laser infrared absorption method was developed. We used an optical fibre spark plug sensor and the light source was a 4.301 mu m quantum cascade laser (QCL). We applied Lambert Beer's law in the case of a single absorption line of CO2. We were able to measure the transient CO2 formation during the HCCI combustion inside the engine cylinder. Our experiments showed that the laser light transmissivity level decreased with the intensity of the infrared (IR) signal. We compared the change in the transmissivity to the spatially integrated HCCI flame luminosity level and observed significant correlations between the flame luminosity level, heat release rate and transmissivity. Time-resolved experiments showed that the CO2 absorbance increases when the second peak of the rate of heat release (ROHR) is maximised. After combustion, the CO2 concentration was approximately 4 vol%, which agrees with the amount of CO2 formed during complete combustion. (C) 2016 Elsevier Ltd. All rights reserved.
机译:我们进行了实验,以研究均质充气压缩点火(HCCI)发动机燃烧过程中二氧化碳(CO2)在缸内的光吸收。燃烧以二甲醚为燃料。开发了一种原位激光红外吸收方法。我们使用了光纤火花塞传感器,光源是4.301微米的量子级联激光器(QCL)。对于单一的CO2吸收线,我们应用了Lambert Beer定律。我们能够测量发动机气缸内HCCI燃烧过程中瞬态CO2的形成。我们的实验表明,激光的透射率水平随着红外(IR)信号的强度而降低。我们将透射率的变化与空间积分HCCI火焰发光度水平进行了比较,并观察到了火焰发光度水平,放热率和透射率之间的显着相关性。时间分辨实验表明,当放热速率的第二个峰值(ROHR)达到最大时,CO2吸收率会增加。燃烧后,CO2浓度约为4 vol%,与完全燃烧过程中形成的CO2量一致。 (C)2016 Elsevier Ltd.保留所有权利。

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