TY - JOUR
T1 - Effect of Valve Core Speed on the Characteristics of Cavitation Flow during Fuel Pressure Relief
AU - Liang, Yuxiu
AU - Li, Yikai
AU - Liu, Hui
N1 - Publisher Copyright:
© 2025, Chinese Mechanical Engineering Society. All rights reserved.
PY - 2025/11/20
Y1 - 2025/11/20
N2 - To obtain the influence of valve core speed on the cavitation and pressure characteristics during the pressure relief process of the high-pressure fuel, a visualization experiment was conducted to validate a three-dimensional numerical calculation model. Based on the validated model, numerical calculations were conducted to study the cavitation flow during the opening process of the solenoid valve at different valve core speeds. The results show that the cavitation in the throttling section and downstream is caused by flow separation and jet entrainment, respectively. Moreover, at the same valve lift, higher valve core speeds result in more vapor at the throttling section, and the influence of valve core speed decreases as the valve lift increases. When the valve lift is less than 0.08 mm, increasing valve core speed leads to a decrease in downstream vapor volume at the same valve lift. When the valve lift is greater than 0.08 mm, a gradually weakening periodic vortex cavitation appears above the stroke stop, and the higher the speed of the valve core, the stronger the vortex cavitation. Additionally, the pressure fluctuations at the throttling section and downstream both originate from changes in total vapor volume fraction. The pressure in the throttling section exhibits attenuated fluctuations when the valve lift is less than 0.04 mm, and both frequency components of the fluctuations increase linearly with the valve core speed. The downstream pressure fluctuations occur when the valve core stroke is less than 0.06 mm, and with increasing valve core speed, the pressure peak increases.
AB - To obtain the influence of valve core speed on the cavitation and pressure characteristics during the pressure relief process of the high-pressure fuel, a visualization experiment was conducted to validate a three-dimensional numerical calculation model. Based on the validated model, numerical calculations were conducted to study the cavitation flow during the opening process of the solenoid valve at different valve core speeds. The results show that the cavitation in the throttling section and downstream is caused by flow separation and jet entrainment, respectively. Moreover, at the same valve lift, higher valve core speeds result in more vapor at the throttling section, and the influence of valve core speed decreases as the valve lift increases. When the valve lift is less than 0.08 mm, increasing valve core speed leads to a decrease in downstream vapor volume at the same valve lift. When the valve lift is greater than 0.08 mm, a gradually weakening periodic vortex cavitation appears above the stroke stop, and the higher the speed of the valve core, the stronger the vortex cavitation. Additionally, the pressure fluctuations at the throttling section and downstream both originate from changes in total vapor volume fraction. The pressure in the throttling section exhibits attenuated fluctuations when the valve lift is less than 0.04 mm, and both frequency components of the fluctuations increase linearly with the valve core speed. The downstream pressure fluctuations occur when the valve core stroke is less than 0.06 mm, and with increasing valve core speed, the pressure peak increases.
KW - cavitation
KW - high-pressure fuel
KW - pressure fluctuation
KW - solenoid valve
KW - valve core speed
UR - https://www.scopus.com/pages/publications/105041830509
U2 - 10.3901/JME.2025.22.155
DO - 10.3901/JME.2025.22.155
M3 - Article
AN - SCOPUS:105041830509
SN - 0577-6686
VL - 61
SP - 155
EP - 166
JO - Jixie Gongcheng Xuebao/Chinese Journal of Mechanical Engineering
JF - Jixie Gongcheng Xuebao/Chinese Journal of Mechanical Engineering
IS - 22
ER -