HyFLOW:国家数值风洞工程高速流动仿真软件

  • 陈坚强 ,
  • 丁明松 ,
  • 李鹏 ,
  • 何琨 ,
  • 江涛 ,
  • 刘健 ,
  • 郭永恒 ,
  • 许勇
展开
  • 1. 中国空气动力研究与发展中心
    2. 中国空气动力研究与发展中心计算空气动力研究所

收稿日期: 2026-04-03

  修回日期: 2026-08-18

  网络出版日期: 2026-08-21

基金资助

国家数值风洞工程

HyFLOW: high-speed flow simulation software for the National Numerical Windtunnel project

  • CHEN Jian-Qiang ,
  • DING Ming-Song ,
  • LI Peng ,
  • HE Kun ,
  • JIANG Tao ,
  • LIU Jian ,
  • GUO Yong-Heng ,
  • XU Yong
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Received date: 2026-04-03

  Revised date: 2026-08-18

  Online published: 2026-08-21

Supported by

National Numerical Windtunnel project

摘要

高速流动仿真工业软件是航空航天仿真领域的核心工具之一。依托国家数值风洞工程(NNW),中国空气动力研究与发展中心计算空气动力研究所建成了拥有自主知识产权的高速流动CFD仿真工业软件,简称NNW-HyFLOW。软件结合现代化大型工业软件设计思想,基于结构/非结构网格有限体积求解方法和大规模并行技术,发展建立了多类自主模型算法,可模拟高速流动中高机动非定常、高温非平衡、高空稀薄滑移、高雷诺数湍流与转捩、高焓气体电离与辐射等多种复杂物理效应,具备友好的用户界面和良好的国产硬件环境适应性,可实现各类复杂外形飞行器气动力特性、气动热环境、等离子包覆体电磁特性、目标辐射特性以及气动光学效应的综合预测与高效评估。多类标模算例校验和复杂工程应用表明,软件计算鲁棒高效,精度可靠,工程实用性强,综合性能优异。通过对软件设计方法、主要功能及工程应用的介绍,使业内人员能更好的了解HyFLOW软件,进而促进高速流动仿真领域及国产自主软件生态更好发展。

本文引用格式

陈坚强 , 丁明松 , 李鹏 , 何琨 , 江涛 , 刘健 , 郭永恒 , 许勇 . HyFLOW:国家数值风洞工程高速流动仿真软件[J]. 航空学报, 0 : 1 -0 . DOI: 10.7527/S1000-6893.2026.33678

Abstract

Industrial simulation software for high-speed flows is one of the core tools in the aerospace simulation fields. Based on the National Numerical Windtunnel project, the Computational Aerodynamics Institute of the China Aerodynamics Research and Development Center has developed an industrial CFD simulation software for high-speed flows with independent intellectual property rights, abbreviated as NNW-HyFLOW. The software integrates modern large-scale industrial software design methodologies, and is developed based on structured/unstructured grid finite volume solvers and large-scale parallel computing technologies. It has established a series of autonomous model algorithms to simulate complex physical effects in high-speed flows, including unsteady flows of high-maneuver flight, high-temperature nonequilibrium effects, high-altitude rarefied slip effects, turbulence and transition with high Reynolds number, ionization and radiation of high-enthalpy gas. The software features a user-friendly interface and excellent compatibility with domestic hardware environments, enabling comprehensive and efficient prediction of aerodynamic characteristics, aerodynamic heating environments, plasma electromagnetic characteristics, target radiation characteristics, and aerodynamic optical effects for various complex-shaped flight vehicles. Validation through various standard model cases and complex engineering applications demonstrates that the software exhibits robust, efficient computation, reliable accuracy, strong engineering practicality, and superior overall performance. By introducing the software design methodology, core functions, and engineering applications, this article aims to help professionals better understand the HyFLOW software, thereby promoting the development of the high-speed flow simulation field and the domestic autonomous industrial software ecosystem.

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