系统仿真学报 ›› 2026, Vol. 38 ›› Issue (8): 2379-2391.doi: 10.16182/j.issn1004731x.joss.25-0967

• 论文 • 上一篇    

高空冷浸条件下灭火飞机水箱凝固结冰数值模拟

刘冠冕1,2, 程志航1,2, 秦何军1,2, 杨康智1,2, 温庆1,2, 高坤1,2   

  1. 1.中航通飞华南飞机工业有限公司,广东 珠海 519000
    2.中航通用飞机有限责任公司,广东 珠海 519000
  • 收稿日期:2025-10-09 修回日期:2026-01-22 出版日期:2026-08-28 发布日期:2026-08-31
  • 第一作者简介:刘冠冕(1986-),男,高工,硕士,研究方向为计算流体力学、飞机气动设计、结冰适航。

Numerical Simulation of Water Tank Solidification in a Firefighting Aircraft Under High-altitude Cold-soak Conditions

Liu Guanmian1,2, Cheng Zhihang1,2, Qin Hejun1,2, Yang Kangzhi1,2, Wen Qing1,2, Gao Kun1,2   

  1. 1.AVIC General Huanan Aircraft Industry Co. , Ltd. , Zhuhai 519000, China
    2.China Aviation Industry General Aircraft Co. , Ltd. , Zhuhai 519000, China
  • Received:2025-10-09 Revised:2026-01-22 Online:2026-08-28 Published:2026-08-31

摘要:

针对灭火飞机在高空低温环境下内部水箱凝固结冰的问题,开展了系统的数值模拟研究。基于计算流体动力学方法,采用考虑流固耦合换热与相变过程的凝固-融化模型对复杂几何模型进行合理简化,构建了适用于工程分析的准三维计算模型。研究了高空冷浸温度、地面初始水温及冷浸时间等关键参数对水箱结冰特性的影响规律。结合参数影响分析规律,提出了以投水舱门平均结冰厚度和水箱中心温度为判据的安全准则。仿真结果表明:地面初始水温是影响结冰风险的首要因素,当其低至5 ℃时,高空飞行的冷浸结冰风险较高;高空冷浸温度与冷浸时间的组合效应显著,需严格控制低温条件下的飞行时间。研究结果可以为同类飞机的水箱设计、安全性分析与飞行作业运营等提供技术支撑。

关键词: 凝固结冰, 灭火飞机, 水箱, 高空, 冷浸, 数值模拟

Abstract:

A systematic numerical simulation study was conducted to address the issue of internal water tank solidification in firefighting aircraft under high-altitude low-temperature conditions. Based on computational fluid dynamics methods, a solidification-melting model considering fluid-structure interaction heat transfer and phase change processes was adopted. Through reasonable simplification of the complex geometric model, a quasi-three-dimensional computational model suitable for engineering analysis was developed. The influence laws of key parameters, including high-altitude cold-soak temperature, ground initial water temperature, and cold-soak time, on the freezing characteristics of the water tank were investigated. Combining with the parameter influence laws, a safety criterion using the average ice thickness of the water-release door and the water tank center temperature as criteria was proposed. The simulation results indicate that the ground initial water temperature is the primary factor affecting the freezing risk. When it is as low as 5 ℃, the cold-soak freezing risk during high-altitude flight is relatively high. The combined effect of high-altitude cold-soak temperature and cold-soak time is significant, and the flight time under low-temperature conditions needs to be strictly controlled. The research results can provide technical support for the water tank design, safety analysis, and flight operation of similar aircraft.

Key words: solidification and freezing, firefighting aircraft, water tank, high altitude, cold soak, numerical simulation

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