胡欢欢,王攀,朱韦达,等. 航空发动机锥齿轮典型失效分析及可靠性优化设计[J]. 失效分析与预防,2025,20(2):114-123. doi: 10.3969/j.issn.1673-6214.2025.02.006
    引用本文: 胡欢欢,王攀,朱韦达,等. 航空发动机锥齿轮典型失效分析及可靠性优化设计[J]. 失效分析与预防,2025,20(2):114-123. doi: 10.3969/j.issn.1673-6214.2025.02.006
    HU Huanhuan,WANG Pan,ZHU Weida,et al. Typical failure analysis and reliability-based design optimization of aero-engine bevel gear[J]. Failure analysis and prevention,2025,20(2):114-123. doi: 10.3969/j.issn.1673-6214.2025.02.006
    Citation: HU Huanhuan,WANG Pan,ZHU Weida,et al. Typical failure analysis and reliability-based design optimization of aero-engine bevel gear[J]. Failure analysis and prevention,2025,20(2):114-123. doi: 10.3969/j.issn.1673-6214.2025.02.006

    航空发动机锥齿轮典型失效分析及可靠性优化设计

    Typical Failure Analysis and Reliability-Based Design Optimization of Aero-engine Bevel Gear

    • 摘要: 锥齿轮具有传输稳定、低噪声和结构紧凑的优点,作为航空发动机关键传动部件,其弯曲断裂、接触磨损等失效将导致整机停转甚至灾难性事故。传统确定性优化难以应对工况波动、材料分散性等不确定性因素,因此为保障发动机锥齿轮的安全性,亟需开展锥齿轮的失效分析与可靠性优化设计(RBDO)。针对发动机锥齿轮进行了几何参数化建模,在梳理典型失效模式的基础上,分析了锥齿轮的弯曲强度、接触强度以及磨损失效。同时,考虑了锥齿轮运行过程中存在的不确定性因素,建立了以降低锥齿轮啮合损失效率为目标、3种典型失效模式为可靠性约束的可靠性优化设计模型。为了提升可靠性优化设计的计算效率,本文提出了一种融合交叉熵重要抽样(CE-IS)与自适应Kriging模型(AK)的混合可靠性优化设计方法,并将其命名为CIK-RBDO。通过数值算例验证了该方法的有效性,进而对锥齿轮开展可靠性优化设计。结果表明:该方法在保证锥齿轮99.87%的可靠性条件下,降低了8.17%的啮合损失效率,为高可靠锥齿轮传动系统的设计提供思路。

       

      Abstract: Bevel gear has advantages of stable transmission, low noise, and compact structure. As a critical transmission component in aero-engines, its bending fracture, contact wear, and other failures will cause the whole system shutdown or even catastrophic accidents. Traditional deterministic optimization struggles to deal with uncertainties such as operating condition fluctuation and material dispersion. Therefore, it is urgent to carry out failure analysis and reliability-based design optimization (RBDO) for engine bevel gears to ensure operational safety. Based on the geometric parametric modeling of the engine bevel gear, its bending strength, contact strength, and wear failure are analyzed. Considering the uncertainty factors existing in the operation process of the bevel gear, a reliability optimization model is established to minimize meshing loss efficiency with three typical failure modes as reliability constraints. To improve the computational efficiency of reliability optimization, a CIK-RBDO method is proposed by integrating a cross-entropy important sampling (CE-IS) and an adaptive Kriging model (AK). The efficacy of the method is verified by numerical examples, and the reliability-based design optimization of bevel gear is conducted. The analysis results show that the meshing loss efficiency is reduced by 8.17% when the reliability of the bevel gear is guaranteed as 99.87%. These findings provides ideas for designing highly reliable bevel gear transmission systems.

       

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