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Dimethoxymethane Low- and Intermediate-Temperature Oxidation Up to 100 Atm

Bowen Mei,Ziyu Wang,Andy Thawko,Ning Liu, Laura Thompson, Jacques Attinger,Yiguang Ju

Proceedings of the Combustion Institute(2024)

Princeton Univ

Cited 0|Views6
Abstract
Dimethoxymethane (DMM) is a promising renewable fuel with low-carbon intensity and low tendencies for soot and NOx emissions, which is drawing increasing attention to meet the carbon-neutral requirements. In this work, DMM oxidation was studied by using a novel supercritical pressure jet-stirred reactor at 10 and 100 atm, with temperatures between 450 and 950 K, and equivalence ratios of 0.27 and 2.0. The experimental results show that the negative temperature coefficient (NTC) behavior becomes much weaker under 100 atm than the case of 10 atm. One reason is the significant shift of the intermediate-temperature HO2 chemistry to lower temperature at 100 atm and the other one is the increase of multi-oxygen addition reactions at 100 atm. Selected kinetic models in the literature show some discrepancies in comparison to the experimental results in this study. Thus, a new model updated from a previous study was developed to improve the prediction of the experimental data under high pressures. Reaction pathway and sensitivity analyses were performed to identify key reactions in DMM high-pressure oxidation. DMM H-atom abstraction at the primary C site by OH (DMM_1 radical) is found to be the most important reaction to promote oxidation, while the secondary site (DMM_2 radical) shows different sensitivity under different conditions. The reason is that under richer or lower pressure conditions, the decomposition of DMM_2 is favored over O2 addition, thus inhibits the oxidation process. DMM H-atom abstractions by CH3O and HO2 are found to be important under low- and intermediate-temperature, respectively. Therefore, more efforts in studying these reactions are suggested to further improve the model prediction. In addition, reaction 2HO2 = 2OH + O2, added in this work, is found to be important in promoting DMM oxidation at the early stage and improves model prediction on oxidation onset temperature.
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Key words
Dimethoxymethane,Ultra-high-pressure kinetics,Low- and intermediate-temperature oxidation,Supercritical-pressure jet-stirred reactor
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要点】:本研究探讨了在10和100个大气压下,低碳强度燃料二甲氧基甲烷(DMM)的低中和中等温度氧化特性,揭示了压力对氧化过程的影响,并提出了一种新的动力学模型。

方法】:采用超临界压力射流搅拌反应器进行实验,研究了不同压力、温度及当量比对DMM氧化过程的影响。

实验】:在10和100个大气压、450至950K温度范围内以及0.27和2.0的当量比条件下进行实验,使用的数据集为实验所得的DMM氧化特性数据,结果表明在100个大气压下负温度系数(NTC)行为减弱,同时新模型对实验数据有更好的预测能力。