Optimization Design of Myring Streamlined Volume Sink Based on NSGA-Ⅱ Genetic Algorithm

被引:0
作者
Yang Y. [1 ]
Zhang K. [1 ,2 ]
Yao T. [1 ]
Li K. [1 ]
Lu H. [1 ]
Wang M. [1 ]
机构
[1] Key Laboratory of Agricultural Soil and Water Engineering in Arid and Semiarid Areas, Northwest a and F University, Ministry of Education, Shaanxi, Yangling
[2] State Key Laboratory of Soil Erosion and Dryland Farming on Loess Plateau, Northwest a and F University, Shaanxi, Yangling
来源
Nongye Jixie Xuebao/Transactions of the Chinese Society for Agricultural Machinery | 2024年 / 55卷 / 04期
关键词
neural network; NSGA-E genetic algorithm; numerical simulation; optimization of body shape; streamlined volume sink;
D O I
10.6041/j.issn.1000-1298.2024.04.024
中图分类号
学科分类号
摘要
In order to find a new type of quantitative tank with better hydraulic performance and broaden the research ideas in the field of quantitative tank, the obstruction state of the quantitative tank in the channel has certain similarities with the resistance of the submersible when diving, so based on the structural characteristics of Myring streamlined submersible, the body shape design of the measuring tank was carried out, and the better linear type and its hydraulic characteristics with the least hindered volume tank were explored. The length of contraction section, the sharpness factor of contraction section, the length of diffusion section and the departure angle of diffusion section were the variables, totally 40 sets of experimental schemes were designed for streamlined parameters by using the optimal Latin hypercube design method, and 40 sets of simulation data values were obtained based on FLOW -3D software. These data included percentage head loss and upstream Froude number, which were used to train RBF neural networks, and the coefficients of determination were 0. 989 16 and 0. 999 78, respectively, indicating that the neural network had high accuracy; the neural network was used as the fitness value of NSGA-E genetic algorithm, and then the Patero frontier solution evaluation and screening by TOPSIS method were used to obtain the comprehensive optimal individual; the contraction segment length was 45. 9 cm, the contraction section sharpness factor was 0.74, the diffusion segment length was 49.2 cm, and the diffusion angle was 14. 63°. The corresponding head loss and upstream Froude number simulation values were 13.00% and 0. 327, respectively, and the error of the prediction results did not exceed 5%. A total of six contraction ratios were obtained by equal scale scaling of the optimal individuals, and model experiments were carried out under nine groups of flow rates, and it was found that the Ferude number of upstream under different working conditions was less than 0. 5, which met the requirements of the flow measurement specification, and the hydraulic performance was better when the shrinkage ratio was in the range of 0. 58 ~ 0. 66. Based on the principles of critical flow measurement and dimensional analysis, the accuracy of the current measurement formula was high, and the average relative error was 2. 09% . The research result proved the feasibility of applying streamline to the field of quantitative sink research and optimization through neural networks and genetic algorithms. At the same time, it was shown that the optimized Myring streamlined water tank had good performance and high flow measurement accuracy, which had a wide application prospect in irrigation channels. © 2024 Chinese Society of Agricultural Machinery. All rights reserved.
引用
收藏
页码:241 / 250
页数:9
相关论文
共 39 条
[1]  
SHANG Songhao, JIANG Lei, YANG Yuting, Review of remote sensing-based assessment method for irrigation and crop water use efficiency [J], Transactions of the Chinese Society for Agricultural Machinery, 46, 10, pp. 81-92, (2015)
[2]  
WANG Qingyi, Observations and recommendations on water education in the new era [J], China Water Resources, 12, pp. 7-8, (2019)
[3]  
MA Tao, LIU Jiufu, PENG Anbang, Et al., Progress in development and utilization of non-conventional water resources in China [J], Advances in Water Science, 31, 6, pp. 960-969, (2020)
[4]  
DENG Mingjiang, TAO Wanghai, WANG Quanjiu, Et al., Theory and technical guarantee system construction of modern ecological irrigation district in northwest China [J], Transactions of the Chinese Society for Agricultural Machinery, 53, 8, pp. 1-13, (2022)
[5]  
GUO Ping, PAN Qi, YUE Qiong, Et al., Multi-objective modelling for optimal allocation of agricultural-ecological water and land resources based on type-2 fuzzy sets [J], Transactions of the Chinese Society for Agricultural Machinery, 5 3, pp. 353-365, (2022)
[6]  
PAN Zhibao, LU Hongxing, WEI Xi, Current applied research and advances of measuring flume in irrigation district [J], Journal of Northwest A&F University (Natural Science Edition), 35, 4, pp. 213-217, (2007)
[7]  
WANG Changde, The technology applied to irrigation water measurement in China[J], China Water Resources, 7, pp. 26-28, (2005)
[8]  
CASTRO-ORGAZ O, MATEOS L., Water discharge measurement in agricultural catchments using critical depth flumes affected by sediment deposition[J], Journal of Irrigation and Drainage Engineering, 140, 3, (2014)
[9]  
SKOGERBOE G V, HYATT M L, ENGLAND J D, Et al., Measuring water with Parshall flumes, pp. 1-49, (1966)
[10]  
XU Yijun, HAN Qibiao, Summary of current research on measuring flume in irrigation districts of China[J], Water Saving Irrigation, 5, pp. 56-59, (2012)