IP Library Granted Patent US 12,229,481
Granted Patent B2
US 12,229,481 · App. 18/427,858 · Granted Feb 18, 2025

Construction method and system for hydrodynamic joint computation model, device, and medium

Inventors: Hao Yuan (Chongqing, CN); Peiyi Peng (Chongqing, CN); Dewei Mu (Chongqing, CN); Wei Diao (Chongqing, CN); Yiming Zhang (Chongqing, CN); Di Xu (Chongqing, CN)
Assignees: CHONGQING JIAOTONG UNIVERSITY; CHONGQING XIKE CONSULTING CO., LTD. FOR WATER TRANSPORT ENGINEERING
G06F30/28G06F30/23G06F2111/10
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Quick Facts
Patent No.
US 12,229,481
App. No.
18/427,858
Granted
Feb 18, 2025
Kind
B2
Abstract

The present disclosure belongs to the field of computational hydraulics and aims at providing a construction method and system for a hydrodynamic joint computation model, a device, and a medium. The present disclosure, by coupling a two-dimensional model and a three-dimensional model in an initial hydrodynamic joint computation model, model parameters of inner boundaries of the two-dimensional model and the three-dimensional model are unified, and the hydrodynamic joint computation model is established, so that the technical effect of accurately depicting change and distribution situations of a water depth and a flow velocity within a range of large-scale reservoirs in a three-dimensional space is achieved based on boundary flow conditions of the large-scale reservoirs and the hydrodynamic joint computation model, the advantages of high efficiency of the two-dimensional model and high accuracy of the three-dimensional model are fully taken, and then, accurate and efficient simulation for reservoir flow fields is achieved.

Claims (25)

1. A construction method for a hydrodynamic joint computation model, comprising:

constructing an initial hydrodynamic joint computation model, the initial hydrodynamic joint computation model comprising a two-dimensional model and a three-dimensional model which are connected in sequence, a plurality of layers of computational grids being nested in a junction of the two-dimensional model and the three-dimensional model, the plurality of layers of computational grids of the two-dimensional model forming inner boundaries of the two-dimensional model, and the plurality of layers of computational grids of the three-dimensional model forming inner boundaries of the three-dimensional model;

respectively initializing the two-dimensional model and the three-dimensional model;

obtaining three-dimensional definition parameters of the inner boundaries of the three-dimensional model according to two-dimensional initial parameters of the computational grids in the inner boundaries of the two-dimensional model, and then, assigning the three-dimensional definition parameters to the inner boundaries of the three-dimensional model;

obtaining two-dimensional definition parameters of the computational grids in the inner boundaries of the two-dimensional model according to the three-dimensional definition parameters of the inner boundaries of the three-dimensional model, and then, assigning the two-dimensional definition parameters to the computational grids in the inner boundaries of the two-dimensional model; and

updating the two-dimensional definition parameters into new two-dimensional initial parameters, and then, reobtaining the three-dimensional definition parameters of the inner boundaries of the three-dimensional model according to the two-dimensional initial parameters of the computational grids in the inner boundaries of the two-dimensional model until computation is converged or ended when a preset simulation time is reached to obtain the hydrodynamic joint computation model, wherein

obtaining three-dimensional definition parameters of the inner boundaries of the three-dimensional model according to two-dimensional initial parameters of the computational grids in the inner boundaries of the two-dimensional model comprises:

obtaining actual physical quantities of the computational grids in the inner boundaries of the two-dimensional model according to the two-dimensional initial parameters of the computational grids in the inner boundaries of the two-dimensional model; and

obtaining the three-dimensional definition parameters of the inner boundaries of the three-dimensional model according to the actual physical quantities of the computational grids in the inner boundaries of the two-dimensional model;

assigning the three-dimensional definition parameters to the inner boundaries of the three-dimensional model comprises:

obtaining a number of vertical grids in the inner boundaries of the three-dimensional model according to the three-dimensional definition parameters;

obtaining unit definition parameters of all vertical computational grids in the inner boundaries of the three-dimensional model according to the three-dimensional definition parameters and the number of the vertical grids, wherein, the unit definition parameters are equal to the three-dimensional definition parameters or the number of the vertical grids; and

respectively assigning the unit definition parameters to all the vertical computational grids in the inner boundaries of the three-dimensional model; and

obtaining two-dimensional definition parameters of the computational grids in the inner boundaries of the two-dimensional model according to the three-dimensional definition parameters of the inner boundaries of the three-dimensional model comprises:

obtaining actual physical quantities of any computational grids in the inner boundaries of the three-dimensional model according to the three-dimensional definition parameters of the inner boundaries of the three-dimensional model; and

obtaining the two-dimensional definition parameters of the inner boundaries of the two-dimensional model according to the actual physical quantities of the computational grids in the inner boundaries of the three-dimensional model.

2. The construction method for the hydrodynamic joint computation model according to claim 1 , wherein four layers of computational grids are nested in the junction of the two-dimensional model and the three-dimensional model, the four layers of computational grids of the two-dimensional model form the inner boundaries of the two-dimensional model, the four layers of computational grids of the three-dimensional model form the inner boundaries of the three-dimensional model, and the inner boundaries of the two-dimensional model are aligned with the inner boundaries of the three-dimensional model.

3. The construction method for the hydrodynamic joint computation model according to claim 1 , wherein the respectively initializing the two-dimensional model and the three-dimensional model comprises:

defining reference quantities to achieve conversion between grid units and physical units in the two-dimensional model and the three-dimensional model.

4. The construction method for the hydrodynamic joint computation model according to claim 1 , wherein the respectively initializing the two-dimensional model and the three-dimensional model further comprises:

defining a dimensional relation so as to obtain all reference quantities according to a specified reference quantity based on the dimensional relation.

5. An electronic device, comprising:

a non-transitory memory configured to store a computer program instruction; and

a processor configured to execute the computer program instruction, thereby completing the operation of the construction method for the hydrodynamic joint computation model according to claim 1 .

6. A computer-readable non-transitory storage medium, configured to store a computer-readable computer program instruction, wherein the computer program instruction is configured to, when operating, perform the operation of the construction method for the hydrodynamic joint computation model according to claim 1 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2024
From: YUAN, HAO; PENG, PEIYI; MU, DEWEI; DIAO, WEI; ZHANG, YIMING; XU, DI
To: CHONGQING JIAOTONG UNIVERSITY; CHONGQING XIKE CONSULTING CO., LTD FOR WATER TRANSPORT ENGINEERING
Reel/Frame 066316/0324 →
Priority Claims (1)
CN 202310085150.6 · Feb 1, 2023 · national
Continuity (1)
Related Publication 20240296266A1 · Sep 5, 2024
References Cited (24)
US 7542890B2 · Yang · 2009 [cited by examiner]
US 10409950B2 · Dweik · 2019 [cited by examiner]
US 11180975B2 · Renaudeau · 2021 [cited by examiner]
US 20120303339A1 · Cruz · 2012 [cited by examiner]
US 20130218538A1 · Fuecker · 2013 [cited by examiner]
US 20140278298A1 · Maerten · 2014 [cited by examiner]
US 20160131800A1 · Pecher · 2016 [cited by examiner]
US 20190093469A1 · Williams · 2019 [cited by examiner]
US 20220043952A1 · Giljarhus · 2022 [cited by examiner]
US 20220114302A1 · Skripkin · 2022 [cited by examiner]
US 20220309199A1 · Rao · 2022 [cited by examiner]
US 20220391567A1 · Zhou · 2022 [cited by examiner]
US 20230383622A1 · Han · 2023 [cited by examiner]
CN 108897940A · 2018 [cited by applicant]
CN 109145316A · 2019 [cited by applicant]
CN 112257352A · 2021 [cited by applicant]
CN 114332395A · 2022 [cited by applicant]
WO 2015110599A1 · 2015 [cited by applicant]
D.H. Stright Jr. (Grand Forks—Modelling a Three-Dimensional Reservoir With Two-Dimensional Reservoir Simulators, 1974, the Journal of Canadian Petroleum, pp. 45-52) (Year: 1974). [cited by examiner]
Hui-luan al. (A Coupling hydrodynamic model of a whole basin, 2008, IEEE, 684-688) (Year: 2008). [cited by examiner]
Author:Hu Kaiheng, Cui Peng, Tian Mi, Yang Hongjuan Title of article: A review of the debris flow dynamic models and numerical simulation Title of book: Journal of Water Resources Date: Dec. 2012 pp. 79-84. [cited by applicant]
Author:Cui Guan-zhe, Shen Lin-fang, Wang Zhi-liang, Tang Zheng-guang, Xu Ze-min Title of article: Numerical simulation of mesoscopic seepage field of soil CT scanned slice based on lattice Boltzmann method Title of book… [cited by applicant]
Author: Huang Yu-xin, Zhang Ning-chuan Title of article: Research on a coupled 2D-3D hydrodynamic model I: model establishment Title of book: Journal of Waterway and Harbor Date: Aug. 2013 pp. 304-310. [cited by applicant]
Author:Yongqin Peng, Wei Diao, Xujin Zhang, Chunze Zhang and Shuqing Yang Title of article: Three-Dimensional Numerical Method forSimulating Large-Scale Free Water Surface byMassive Parallel Computing on a GPU Title of … [cited by applicant]