TY - JOUR
T1 - Effects of multitype intake structures on combustion performance of different opposed-piston engines
AU - Wang, Wenxiao
AU - Liang, Yongsen
AU - Zuo, Zhengxing
AU - Jia, Boru
AU - Wang, Wei
N1 - Publisher Copyright:
© 2023 Elsevier Ltd
PY - 2023/11/25
Y1 - 2023/11/25
N2 - The uniflow scavenging opposed-piston (USOP) engine has more potential for performance improvement than the conventional engine. The combustion performance of the USOP engine is greatly affected by the uniflow scavenging process. However, the uniflow scavenging process fluctuates greatly. In addition, the opposed free piston linear generator (OFPLG) and the opposed-piston two-stroke (OP2S) belonging to the USOP engine have different piston motion laws, so the influence of intake structure on different USOP engines should be explored. This study established and verified a CFD simulation model and selected three optimization directions (intake swirl, scavenging performance, and exhaust gas backflow inhibition). The effects of intake wall thickness, intake port shape, intake port offset, and the number of intake ports were investigated by an orthogonal test. Last, three optimum schemes that respond to the three optimization directions were used to compare the combustion performance of different USOP engines. Results showed that the intake wall thickness, intake port shape, and intake port offset significantly affect the combustion performance. Improving the intake swirl and scavenging performance are effective methods to optimize comprehensive performance. Intake swirl regulation improves combustion performance by accelerating the uniform distribution of oil spray. Scavenging performance optimization improves combustion performance by increasing the in-cylinder fresh air mass. Intake wall thickness and intake port offset can simultaneously improve the intake swirl and scavenging performance.
AB - The uniflow scavenging opposed-piston (USOP) engine has more potential for performance improvement than the conventional engine. The combustion performance of the USOP engine is greatly affected by the uniflow scavenging process. However, the uniflow scavenging process fluctuates greatly. In addition, the opposed free piston linear generator (OFPLG) and the opposed-piston two-stroke (OP2S) belonging to the USOP engine have different piston motion laws, so the influence of intake structure on different USOP engines should be explored. This study established and verified a CFD simulation model and selected three optimization directions (intake swirl, scavenging performance, and exhaust gas backflow inhibition). The effects of intake wall thickness, intake port shape, intake port offset, and the number of intake ports were investigated by an orthogonal test. Last, three optimum schemes that respond to the three optimization directions were used to compare the combustion performance of different USOP engines. Results showed that the intake wall thickness, intake port shape, and intake port offset significantly affect the combustion performance. Improving the intake swirl and scavenging performance are effective methods to optimize comprehensive performance. Intake swirl regulation improves combustion performance by accelerating the uniform distribution of oil spray. Scavenging performance optimization improves combustion performance by increasing the in-cylinder fresh air mass. Intake wall thickness and intake port offset can simultaneously improve the intake swirl and scavenging performance.
KW - Combustion characteristics
KW - Exhaust gas backflow
KW - Intake structures
KW - Intake swirl
KW - Scavenging characteristics
KW - Uniflow scavenging
UR - http://www.scopus.com/inward/record.url?scp=85168844491&partnerID=8YFLogxK
U2 - 10.1016/j.applthermaleng.2023.121438
DO - 10.1016/j.applthermaleng.2023.121438
M3 - Article
AN - SCOPUS:85168844491
SN - 1359-4311
VL - 235
JO - Applied Thermal Engineering
JF - Applied Thermal Engineering
M1 - 121438
ER -