LAPSE:2023.4478
Published Article

LAPSE:2023.4478
Optimal Design of Computational Fluid Dynamics: Numerical Calculation and Simulation Analysis of Windage Power Losses in the Aviation
February 23, 2023
Abstract
Based on the theory of computational fluid dynamics (CFD), with the help of the Fluent software and the powerful parallel computing capability of the super cloud computer, the single-phase flow transient simulation calculation of the windage power loss of the engagement spiral bevel gear pair (SBGP) was performed. The two-equation SST k-ω turbulence model based on the assumption of eddy viscosity was adopted, which was improved from the standard k-ε model combined with the Wilcox k-ω model. The SST k-ω turbulence model inherited the respective advantages of the Wilcox k-ω model in the near-wall region and the k-ε model in the free shear layer and could more accurately describe the resistance and separation effect of the gear tooth surface on the airflow. The simulation analyzed the airflow characteristics around SBGP and the mechanism of the windshield to reduce the windage loss of the gear. It also studied the influence of the windshield clearance and opening size on the windage power loss. Then the orthogonal experimental analysis method was adopted to perform numerical simulation analysis. The windage torque was studied under different clearance values between the windshield and the gear tooth surface, as well as the large end and the small end. The variance analysis was performed on the numerical simulation data. The results showed that when the windshield clearance value was 1 mm and the engagement opening was 30°, the windage torque was the smallest, and the effect of reducing the windage power loss was the best. According to the changes in the pressure, velocity, and turbulent kinetic energy cloud diagram of the flow field in the reducer during multi-group simulation tests, the local optimal windshield configuration was obtained, which provided a method for further research on the multi-objective optimization of the windshield and the windage loss of the gear pair under the oil−gas two-phase flow and also provided a reference for the practical engineering application of the windshield.
Based on the theory of computational fluid dynamics (CFD), with the help of the Fluent software and the powerful parallel computing capability of the super cloud computer, the single-phase flow transient simulation calculation of the windage power loss of the engagement spiral bevel gear pair (SBGP) was performed. The two-equation SST k-ω turbulence model based on the assumption of eddy viscosity was adopted, which was improved from the standard k-ε model combined with the Wilcox k-ω model. The SST k-ω turbulence model inherited the respective advantages of the Wilcox k-ω model in the near-wall region and the k-ε model in the free shear layer and could more accurately describe the resistance and separation effect of the gear tooth surface on the airflow. The simulation analyzed the airflow characteristics around SBGP and the mechanism of the windshield to reduce the windage loss of the gear. It also studied the influence of the windshield clearance and opening size on the windage power loss. Then the orthogonal experimental analysis method was adopted to perform numerical simulation analysis. The windage torque was studied under different clearance values between the windshield and the gear tooth surface, as well as the large end and the small end. The variance analysis was performed on the numerical simulation data. The results showed that when the windshield clearance value was 1 mm and the engagement opening was 30°, the windage torque was the smallest, and the effect of reducing the windage power loss was the best. According to the changes in the pressure, velocity, and turbulent kinetic energy cloud diagram of the flow field in the reducer during multi-group simulation tests, the local optimal windshield configuration was obtained, which provided a method for further research on the multi-objective optimization of the windshield and the windage loss of the gear pair under the oil−gas two-phase flow and also provided a reference for the practical engineering application of the windshield.
Record ID
Keywords
Computational Fluid Dynamics, dynamic mesh model, multi-objective optimization, spiral bevel gear pair, windage power loss, windshield
Subject
Suggested Citation
Zhang Y, Li L, Zhao Z. Optimal Design of Computational Fluid Dynamics: Numerical Calculation and Simulation Analysis of Windage Power Losses in the Aviation. (2023). LAPSE:2023.4478
Author Affiliations
Zhang Y: School of Computing, Henan University of Engineering, Zhengzhou 451191, China
Li L: School of Mechanical Engineering, Northwestern Polytechnical University, Xi’an 710072, China
Zhao Z: School of Mathematics and Statistics, Henan Finance University, Zhengzhou 450046, China; School of Economics and Management, Southern Federal University, 344006 Rostov-on-Don, Russia
Li L: School of Mechanical Engineering, Northwestern Polytechnical University, Xi’an 710072, China
Zhao Z: School of Mathematics and Statistics, Henan Finance University, Zhengzhou 450046, China; School of Economics and Management, Southern Federal University, 344006 Rostov-on-Don, Russia
Journal Name
Processes
Volume
9
Issue
11
First Page
1999
Year
2021
Publication Date
2021-11-09
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr9111999, Publication Type: Journal Article
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LAPSE:2023.4478
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https://doi.org/10.3390/pr9111999
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