For the two-stroke marine diesel engine, the action of exhaust valve has a significant impact on scavenging and combustion processes and ultimately affects the engine performances and emissions. In order to reduce nitrogen oxides (NOx) emissions of a two-stroke marine diesel engine, different exhaust valve lifts (EVLs) were achieved by computational fluid dynamics simulation method in this study. The NOx reduction effect and influence mechanism of EVL on a two-stroke marine diesel engine were investigated in detail. The results showed that the in-cylinder residual exhaust gas and the internal exhaust gas recirculation (EGR) rate gradually increased with the decreasing EVL. Although the total mass of charge enclosed in the cylinder did not change much, the composition changed gradually and the maximum internal EGR rate reached 13.17% in this study. The maximum compression pressure and combustion pressure both rose first and then decreased with the decreasing EVL. While the start of combustion and the maximum combustion temperature were basically unaffected by EVL, the indicated power of the engine was also not much impacted when the EVL was changed from increasing 10 mm to decreasing 20 mm. The indicated specific fuel consumption first declined slowly and then rose rapidly as the EVL reduction exceeded 20 mm. NOx emissions decreased monotonously with the decreasing EVL. The reduction of NOx formation rate and the amount of NOx formation mass mainly occurred at the middle and late stages of combustion for the downward moving of residual exhaust gas. NOx emissions were reduced by 12.57% without compromising other engine performances at medium-reduced EVL in this study. However, in order to further reduce NOx emissions at low EVLs, other measures may be needed to make the residual exhaust gas more evenly distributed during the initial stage of combustion.
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August 2019
Research-Article
Nitrogen Oxides Reduction Effect and the Influence Mechanism of Exhaust Valve Lift on a Two-Stroke Marine Diesel Engine
Lijiang Wei,
Lijiang Wei
Merchant Marine College,
Shanghai Maritime University,
No. 1550 Haigang Dadao,
Pudong New District
Shanghai 201306, China
e-mail: ljwei0630@yahoo.com
Shanghai Maritime University,
No. 1550 Haigang Dadao,
Pudong New District
Shanghai 201306, China
e-mail: ljwei0630@yahoo.com
1Corresponding author.
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Anmin Wu,
Anmin Wu
China Shipbuilding Power Engineering
Institute Co., Ltd.,
Shanghai 200120, China
Institute Co., Ltd.,
Shanghai 200120, China
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Jie Liu,
Jie Liu
Merchant Marine College,
Shanghai Maritime University,
Shanghai 201306, China
Shanghai Maritime University,
Shanghai 201306, China
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Mingliang Zhong,
Mingliang Zhong
Merchant Marine College,
Shanghai Maritime University,
Shanghai 201306, China
Shanghai Maritime University,
Shanghai 201306, China
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Xuebai Wang
Xuebai Wang
Kunshan Jiangjin Machinery Co. Ltd.,
Kunshan 215331, China
Kunshan 215331, China
Search for other works by this author on:
Lijiang Wei
Merchant Marine College,
Shanghai Maritime University,
No. 1550 Haigang Dadao,
Pudong New District
Shanghai 201306, China
e-mail: ljwei0630@yahoo.com
Shanghai Maritime University,
No. 1550 Haigang Dadao,
Pudong New District
Shanghai 201306, China
e-mail: ljwei0630@yahoo.com
Anmin Wu
China Shipbuilding Power Engineering
Institute Co., Ltd.,
Shanghai 200120, China
Institute Co., Ltd.,
Shanghai 200120, China
Jie Liu
Merchant Marine College,
Shanghai Maritime University,
Shanghai 201306, China
Shanghai Maritime University,
Shanghai 201306, China
Mingliang Zhong
Merchant Marine College,
Shanghai Maritime University,
Shanghai 201306, China
Shanghai Maritime University,
Shanghai 201306, China
Xuebai Wang
Kunshan Jiangjin Machinery Co. Ltd.,
Kunshan 215331, China
Kunshan 215331, China
1Corresponding author.
Manuscript received December 5, 2018; final manuscript received March 2, 2019; published online March 27, 2019. Assoc. Editor: Nadir Yilmaz.
J. Eng. Gas Turbines Power. Aug 2019, 141(8): 081006 (9 pages)
Published Online: March 27, 2019
Article history
Received:
December 5, 2018
Revised:
March 2, 2019
Citation
Wei, L., Wu, A., Liu, J., Zhong, M., and Wang, X. (March 27, 2019). "Nitrogen Oxides Reduction Effect and the Influence Mechanism of Exhaust Valve Lift on a Two-Stroke Marine Diesel Engine." ASME. J. Eng. Gas Turbines Power. August 2019; 141(8): 081006. https://doi.org/10.1115/1.4043138
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