China Mechanical Engineering ›› 2026, Vol. 37 ›› Issue (8): 1824-1831.DOI: 10.3969/j.issn.1004-132X.2026.08.002

Previous Articles    

Effects of Wear-reducing Groove Depth on Leakage and Flow Characteristics of Graphite Circumferential Seal

WANG Zhuang1, ZHAO Huan1(), SUN Dan1, ZHANG Lijing2,3, WANG Xinyu1, WEN Shuaifang1, FAN Rufeng1   

  1. 1.School of Aero-engine,Shenyang Aerospace University,Shenyang,110136
    2.Shenyang Engine Research Institute,Aero Engine Corporation of China,Shenyang,110015
    3.Key Laboratory for Power Transmission of Aero Engine Technology,Aero Engine Corporation of China,Shenyang,110015
  • Received:2025-04-12 Online:2026-08-25 Published:2026-09-17
  • Contact: ZHAO Huan

减磨槽深度对石墨圆周密封泄漏流动特性影响研究

王壮1, 赵欢1(), 孙丹1, 张立静2,3, 王鑫宇1, 温帅方1, 樊汝凤1   

  1. 1.沈阳航空航天大学航空发动机学院, 沈阳, 110136
    2.中国航发沈阳发动机研究所, 沈阳, 110015
    3.中国航发集团航空发动机动力传输航空科技重点实验室, 沈阳, 110015
  • 通讯作者: 赵欢
  • 作者简介:王 壮,男,2000年生,硕士研究生。研究方向为石墨圆周密封性能分析技术
  • 基金资助:
    国家自然科学基金(52375195);辽宁省自然科学基金(2022-MS-301);辽宁省属本科高校基本科研业务费专项资金(20240241)

Abstract:

During the operation of graphite circumferential seals, degradation in tracking performance may cause contact between the inner sealing surface and the rotor runway, leading to wear and subsequent failure of the dynamic-pressure wear-reducing groove. However, a theoretical basis for determining the groove depth in engineering applications remains lacking. In this study, a numerical model of leakage and flow characteristics for the graphite circumferential seal is established and validated through experiments. Based on the validated model, the airflow evolution and leakage variation through the seal clearance are comparatively analyzed under different inlet/outlet pressure differences and groove depths, aiming to reveal the influence mechanism of groove depth on the leakage and flow characteristics. The results indicate that as the groove depth increases to 150 μm, the area of the local high-pressure zone around the groove gradually decreases, suggesting a weakening of the hydrodynamic pressure effect. However, this decreasing trend becomes less pronounced with increasing inlet/outlet pressure difference. The airflow velocity near the groove wall decreases significantly with increasing groove depth. Notably, when the groove depth exceeds 100 μm, a local high-velocity region appears near the groove bottom, and its area expands with both increasing groove depth and increasing pressure difference. When the groove depth exceeds 25 μm, reverse flow is observed at the groove end due to the obstruction of the step wall. Further increase in groove depth intensifies the reverse flow velocity, which consequently reduces the hydrodynamic pressure effect of the graphite circumferential seal.

Key words: graphite circumferential sealing, wear-reducing groove, leakage flow characteristics, hydrodynamic pressure effect, groove depth

摘要:

石墨圆周密封随动性下降引起内表面与转子跑道碰磨,导致动压减磨槽磨损失效,工程应用中槽深设计缺少理论依据。建立动压式石墨圆周密封泄漏流动特性数值求解模型,在实验验证数值模型准确性的基础上,对比分析不同进出口压差下、不同深度减磨槽的石墨圆周密封间隙内气流流动演变的过程和泄漏量的变化规律,揭示减磨槽深度对密封泄漏流动特性的影响机理。研究结果表明:随着减磨槽深度的增加,槽内局部高压区域面积逐渐减小,减磨槽内流体动压效应减弱,进出口压差增大使高压区域面积减小的趋势减弱。气流流经槽内壁面附近流速显著降低,特别是减磨槽深度大于100 μm时,靠近减磨槽底部出现局部增速区,且随着槽深和进出口压差的增加而逐渐增大。减磨槽深度大于25 μm时,由于槽末端台阶壁面阻挡,部分气流发生回转倒流,槽深增加,回转气流流速增加,密封流体动压效应随之减弱。

关键词: 石墨圆周密封, 减磨槽, 泄漏流动特性, 流体动压效应, 槽深

CLC Number: