Surrogate Model‐Based Visualization Program for Groundwater Engineering Computation

MODFLOW 脱水 计算机科学 地下水 工作流程 Python(编程语言) 地下水模型 可视化 地下水流 顶石 土木工程 软件 工程教育 水文模型 人工神经网络 人工智能 用户界面 软件工程 数据可视化 计算 工程地质 挖掘机
作者
Jie Zhou,Chao Ban,Kangdi Mu,Huade Zhou,Chengjun Liu,Zhenming Shi,Yu Huang
出处
期刊:Computer Applications in Engineering Education [Wiley]
卷期号:34 (5)
标识
DOI:10.1002/cae.70257
摘要

ABSTRACT In groundwater engineering practice, dewatering design and groundwater flow analysis are essential for the stability assessment of underground excavations, such as foundation pits and tunnels. Traditional groundwater engineering education often suffers from several limitations, including abstract theoretical concepts, complex modeling procedures, and insufficient experiential learning. To address these challenges, intelligent foundation pit dewatering prediction (IFPDP) simulation software was developed in this study, designed specifically for groundwater engineering education to enhance students’ understanding of seepage mechanisms, dewatering processes, and groundwater numerical simulation. The IFPDP employed MODFLOW files generated in GMS and uses FloPy as a Python interface to enable model execution and repeated simulations. In addition, a surrogate model based on the BP neural network was integrated to enhance computational efficiency and supports parameterized teaching. The system was designed to integrate numerical simulation, visualization, and interactive learning with autonomous modeling and case‐library expansion, thereby enabling students to complete the full workflow from theoretical learning to model construction and intelligent prediction. A teaching experiment and questionnaire survey were conducted involving 120 undergraduate students across different academic levels. The results indicate that the IFPDP significantly improves students’ knowledge acquisition, learning motivation, and modeling practice skills. Students widely acknowledged the software's intuitive visualization, engineering relevance, and interactive experience, while also suggesting further expansion of the case library and enhanced parameter guidance. Overall, the study demonstrates that the IFPDP provides an efficient virtual simulation platform for groundwater engineering education and shows strong potential for future application.
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