Multi-Objective Optimization of Rear Guide Vane of Diagonal Flow Fan Based on Robustness Design Theory
Abstract
:1. Introduction
2. Introduction of Research Subjects
3. Numerical Simulation Calculation Method and Experimental Validation
3.1. Computational Model and Meshing
3.2. Boundary Conditions
4. Multi-Objective Geometric Uncertainty Pneumatic Robustness Optimization
4.1. Determining Variable Parameters
4.2. Pearson Correlation Coefficient
5. Analysis of Results
5.1. Analysis of Test Results
5.2. Numerical Calculation Analysis before and after Optimization
6. Conclusions
- (1)
- The Pearson correlation analysis in the correlation analysis method is combined with the multi-objective optimization method to optimize the design of the rear guide vane of a small diagonal flow fan under uncertain aerodynamic performance conditions, reducing the influence of other parameters on the primary analysis parameters and showing the net correlation between each parameter. The total pressure is increased by 86 Pa, and the noise is reduced by 2.4 dB in the interval around the operating design point.
- (2)
- The multi-objective robustness optimization design under aerodynamic performance uncertainty balances the traditional requirements of performance optimization and robustness design to ensure the robustness of performance while changing the mean value of aerodynamic performance to meet the requirements of fan performance under actual operating conditions. The optimization process is simple with few variables and has engineering application value, which can be extended to the optimal design of similar fluid machinery.
- (3)
- The research in this paper provides insight into the characteristics of the flow field inside the rear guide vane of an inclined-flow fan under actual operating conditions. It optimises the blade shape of the rear guide vanes. The airflow velocity between the guide vanes is more uniform, thus significantly reducing flow losses in the fluid domain. The study provides a theoretical reference for improving the resistance to disturbances in the aerodynamic performance of the fan under uncertain conditions and ensuring the efficient, safe and stable operation of other impeller machinery such as the diagonal flow fan.
Author Contributions
Funding
Conflicts of Interest
References
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Name | Design Parameters | Upper Limit | Lower Limit |
---|---|---|---|
Bend angle | θ | 85° | 76° |
Length of string | C | 84 mm | 62 mm |
Mounting angle | β | 19° | 10° |
Design speed | n | 2300 rpm | 2000 rpm |
Guide leaf thickness | b | 1 mm | 3 mm |
Name | Bend Angle θ (°) | Length of String C (mm) | Mounting Angle β (°) | Design Speed n (rpm) |
---|---|---|---|---|
original | 78 | 62 | 10 | 2250 |
optimization | 84 | 81 | 16 | 2250 |
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Zhou, S.; Xu, B.; Lu, L.; Jin, W.; Mao, Z. Multi-Objective Optimization of Rear Guide Vane of Diagonal Flow Fan Based on Robustness Design Theory. Appl. Sci. 2022, 12, 9858. https://doi.org/10.3390/app12199858
Zhou S, Xu B, Lu L, Jin W, Mao Z. Multi-Objective Optimization of Rear Guide Vane of Diagonal Flow Fan Based on Robustness Design Theory. Applied Sciences. 2022; 12(19):9858. https://doi.org/10.3390/app12199858
Chicago/Turabian StyleZhou, Shuiqing, Biao Xu, Laifa Lu, Weiya Jin, and Zijian Mao. 2022. "Multi-Objective Optimization of Rear Guide Vane of Diagonal Flow Fan Based on Robustness Design Theory" Applied Sciences 12, no. 19: 9858. https://doi.org/10.3390/app12199858
APA StyleZhou, S., Xu, B., Lu, L., Jin, W., & Mao, Z. (2022). Multi-Objective Optimization of Rear Guide Vane of Diagonal Flow Fan Based on Robustness Design Theory. Applied Sciences, 12(19), 9858. https://doi.org/10.3390/app12199858