Because of the increased fuel-film effect and dropped combustion temperature, sparkignited (SI) gasoline engines always expel large amounts of HC and CO emissions during the cold start period. This paper experimentally investigated the effect of hydrogen addition on improving the cold start performa
Reducing the idle speed of a spark-ignited gasoline engine with hydrogen addition
β Scribed by Shuofeng Wang; Changwei Ji; Minyue Zhang; Bo Zhang
- Publisher
- Elsevier Science
- Year
- 2010
- Tongue
- English
- Weight
- 879 KB
- Volume
- 35
- Category
- Article
- ISSN
- 0360-3199
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β¦ Synopsis
Reducing idle speed is an effective way for decreasing engine idle fuel consumption.
Unfortunately, due to the increased residual dilution and dropped combustion temperature, spark-ignited (SI) gasoline engines are prone to suffer high cyclic variation and even stall at low idle speeds. This paper investigated the effect of hydrogen addition on the performance of an SI gasoline engine at reduced idle speeds of 600, 700 and 800 rpm. The test results shows that cyclic variation was raised with the decrease of idle speed but reduced obviously with the increase of hydrogen energy fraction Γ°b H2 Γ. Decreasing idle speed and adding hydrogen were effective for reducing engine idle fuel consumption. The total fuel energy flow rate was effectively dropped from 30.8 MJ/h at 800 rpm and b H2 ΒΌ 0% to 17.6 MJ/h at 600 rpm and b H2 ΒΌ 19.9%. Because of the dropped fuel energy flow rate causing the reduced combustion temperature, both cooling and exhaust losses were markedly reduced after decreasing idle speed and adding hydrogen. HC and CO emissions were dropped with the increase of b H2 , but increased after reducing idle speed. However, NOx emissions were decreased after reducing idle speed and adding hydrogen, due to the dropped peak cylinder temperature.
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Fluid Mechanics, and Thermodynamics 153 and the plasma power of 600W, and CO concentration generated in the exhaust gas was above 300 ppm. The NOx removal ratio was reduced considerably by the addition of H20 and the removal ratio was highest for the low reaction temperature of less than 500K. Argon