4.7 Article

Hydrocarbon emission control of an adsorptive catalytic gasoline particulate filter during cold-start period of the gasoline engine

Journal

ENERGY
Volume 262, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.energy.2022.125445

Keywords

Catalytic gasoline particulate filter; Cold start; Hydrocarbon; Emission control; Adsorption

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By studying the performance of A-CGPF coated with different catalysts during cold start, the effects of inlet HC concentration, exhaust temperature, and mass flow rate on the adsorption process were investigated, as well as the catalytic performance and abatement performance of different catalysts. The results show that the A-CGPF coated with composite adsorptive catalysts can significantly reduce HC emissions and improve HC removal rate during the initial stage of cold start.
In order to reduce HC emission of the gasoline engine during cold start to meet increasingly stringent emission standards, an adsorptive catalytic gasoline particulate filter (A-CGPF) is proposed and a mathematical model of the A-CGPF is established. Then, HC adsorption performance, conversion performance and abatement perfor-mance of the A-CGPF coated with different catalyst under different inlet HC concentration are investigated during cold start. The results show that inlet HC concentration, exhaust temperature has great influence on the adsorption process, while mass flow rate has little influence; penetration time decreases with the increase of inlet hydrocarbon concentration. In addition, the catalytic conversion performance order is MCA > Rh-Pd > CeO2 > PCZ > Pd under adiabatic condition, their corresponding light-off time is 10s, 34s, 56.4s, 57s and 57.2s, respectively. Compared with the A-CGPF coated with adsorbent or catalyst, adsorption duration time of the A-CGPF coated with composite adsorptive catalysts is shortened, and its catalytic oxidation stage is advanced; the cumulative HC emission in the first 40s of the cold start phase is significantly reduced and the HC removal rate is increased; the HC removal performance order is MMC > MRP > MC > MP > MPCZ, and the HC removal blank period due to interaction effect between adsorption and catalytic oxidation can be properly shortened. Moreover, the inlet HC concentration fluctuation results in the deterioration of carrier temperature rise, prolongs the removal blank period, and decreases the HC removal rate at the initial stage of cold start. Compound rare earth oxide MCA has better HC abatement performance than other catalysts. This work provides reference for hy-drocarbon abatement performance enhancement of a GDI engine and design of coupled after-treatment system.

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