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MATHEMATICAL MODELING OF ELECTRICAL HEATER ASSISTED CO CONVERSION IN AN OXIDATION CATALYST AT LOW LOADS AND COLD START CONDITIONS

机译:低负荷和冷启动条件下氧化催化剂中电加热器辅助CO转化的数学模型

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The emission regulations for internal combustion engines are becoming more and more stringent with the aim to reduce the pollutants emitted to the atmosphere. One of the most efficient means to meet upcoming stringent emission regulations is by reducing the pollutants emitted during the warm-up time and at low-load operating conditions by using an oxidation catalyst. In the present work, a 1-D mathematical model of an electrical heater assisted oxidation catalyst has been developed to study the effect of heater on CO conversion at low operating loads and during cold start conditions. The study has been conducted considering different power levels, heating durations (continuous and temporary) and heating volumes, and it promises to be helpful in tackling the problem. The results revealed that heater assistance to the oxidation catalyst improved the light-off performance, and temporary heating was found to be as effective as continuous heating in reducing the CO emission. Moreover, an indication parameter (light-off time reduction per unit power) has been developed, which can be used to optimize the power requirement of the heater.
机译:为了减少排放到大气中的污染物,内燃机的排放法规变得越来越严格。满足即将颁布的严格排放法规的最有效方法之一是通过使用氧化催化剂减少在预热时间和低负荷运行条件下排放的污染物。在目前的工作中,已经开发了电加热器辅助氧化催化剂的一维数学模型,以研究加热器在低工作负载下和冷启动条件下对CO转化的影响。进行该研究时考虑了不同的功率水平,加热持续时间(连续和暂时)和加热量,它有望对解决该问题有所帮助。结果表明,加热器辅助氧化催化剂改善了起燃性能,并且发现临时加热在减少CO排放方面与连续加热一样有效。此外,已经开发了指示参数(每单位功率的起燃时间减少),该参数可以用于优化加热器的功率需求。

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