图学学报 ›› 2025, Vol. 46 ›› Issue (6): 1346-1354.DOI: 10.11996/JG.j.2095-302X.2025061346
蔡勇1(
), 曾翔1, 王胜全1, 王强1, 何小伟2, 李光耀3(
)
收稿日期:2025-04-22
接受日期:2025-10-23
出版日期:2025-12-30
发布日期:2025-12-27
通讯作者:李光耀(1963-),男,教授,博士。主要研究方向为新能源汽车制造、异种材料高效连接技术等。E-mail:gyli@hnu.edu.cn第一作者:蔡勇(1986-),男,副教授,博士。主要研究方向为面向多CPU/GPU异构平台的并行工程计算和优化软件开发。E-mail:caiyong@hnu.edu.cn
基金资助:
CAI Yong1(
), ZENG Xiang1, WANG Shengquan1, WANG Qiang1, HE Xiaowei2, LI Guangyao3(
)
Received:2025-04-22
Accepted:2025-10-23
Published:2025-12-30
Online:2025-12-27
First author:CAI Yong (1986-), associate professor, Ph.D. His main research interests cover parallel engineering computing and optimization software development for multi-CPU /GPU heterogeneous platforms. E-mail:caiyong@hnu.edu.cn
Supported by:摘要:
多物理场耦合分析是复杂工程产品设计与优化的重要工具,但在实际应用中,CAE软件与算法的增量替换面临诸多困难,如商业软件封闭性强、开源软件功能单一和自主开发算法集成复杂等。为解决这些问题,通过深入研究多物理场耦合方案,并基于增量集成式架构、非结构网格映射算法的松耦合方案,依托开源及自研CAE软件开发了全自动增量替换式的多物理场耦合平台。平台采用模块化设计,支持CPU/GPU异构并行计算,通过数据(Field)、模块(Module)、节点(Node)和场景图(SceneGraph)的多层次框架,实现了仿真流程的灵活管理与定制,基于插件系统实现了自定义算法快速集成。通过平台实现了流固耦合分析计算中数据传递算法、流体分析软件和结构分析软件的拓展开发,证明了该平台在多物理场分析的增量替换上具有更加简便的优势,可以满足实际工程仿真需求。
中图分类号:
蔡勇, 曾翔, 王胜全, 王强, 何小伟, 李光耀. 增量集成式多物理耦合分析平台开发与应用[J]. 图学学报, 2025, 46(6): 1346-1354.
CAI Yong, ZENG Xiang, WANG Shengquan, WANG Qiang, HE Xiaowei, LI Guangyao. Development and application of an incremental integrated multiphysics coupled analysis platform[J]. Journal of Graphics, 2025, 46(6): 1346-1354.
图14 平板模型位移云图((a) CVT计算结果;(b) RBF计算结果;(c) 商业软件平台计算结果)
Fig. 14 Plate model displacement cloud image ((a) CVT result; (b) RBF result; (c) Commercial software platforms result)
图15 叶片模型压力及结构工况示意图((a) 流体压力示意图;(b) 网格及边界工况模型)
Fig. 15 Schematic diagram of blade model pressure and structural conditions; (a) Schematic diagram of fluid pressure; (b) Grid and boundary working condition model)
图19 车门模型位移云图((a) Abaqus位移云图;(b) OptiStruct位移云图;(c) 耦合平台位移云图)
Fig. 19 Car door model displacement cloud image ((a) Abaqus cloud image; (b) OptiStruct cloud image; (c) Coupling platform cloud image)
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