Dynamic leakage calculation of brush seal under hysteresis effect
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摘要:
为了准确预测刷式密封泄漏特性,将刷丝束区域等效为多孔介质,构建了考虑迟滞效应的刷式密封动态泄漏特性计算模型,明确了模型中黏性损失系数、惯性损失系数、孔隙率等关键参数的计算方法,并通过超高速刷式密封试验平台对模型的准确性进行了验证。采用所建计算方法研究了升降速过程中的泄漏差异产生原因以及工况、结构参数对刷式密封迟滞特性和泄漏特性的影响规律。研究结果表明:考虑迟滞效应的泄漏特性数值计算结果与试验结果吻合良好,最大误差为8.6%;工况参数中,进气压力升高会使泄漏量增大并显著强化迟滞效应;结构参数中,增大刷丝直径可减弱迟滞效应但会导致泄漏量上升,而减小刷丝高度、刷丝排列角度则会同时削弱迟滞效应并降低泄漏量。本文研究成果为刷式密封泄漏特性精确预测和性能提高提供了方法和理论基础。
Abstract:To accurately predict the leakage characteristics of brush seals, this study developed a dynamic leakage prediction method considering hysteresis effects. The brush pack region was equivalently treated as a porous medium, and a dynamic leakage prediction model for brush seals considering hysteresis effects was established. The calculation methods for key parameters in the model, including the viscous loss coefficient, inertial loss coefficient, and porosity, were clarified, and the accuracy of the model was validated using an ultra-high-speed brush seal test rig. The proposed method was used to investigate the causes of leakage differences during acceleration and deceleration processes, as well as the effects of operating conditions and structural parameters on the hysteresis and leakage characteristics of brush seals. The results showed that the numerical predictions of leakage characteristics considering hysteresis effects agreed well with the experimental results, with a maximum error of 8.6%. Among operating parameters, an increase in inlet pressure increased the leakage and significantly intensified the hysteresis effect. Among structural parameters, increasing the bristle diameter weakened the hysteresis effect but led to higher leakage, whereas decreasing the bristle height and bristle arrangement angle simultaneously weakened the hysteresis effect and reduced the leakage. The findings of this study provide methods and a theoretical basis for the accurate prediction and performance improvement of brush seal leakage characteristics.
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Key words:
- brush seal /
- porous media /
- leakage characteristics /
- hysteresis effect /
- minimum hysteresis
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表 1 刷式密封结构参数
Table 1. Structural parameters of brush seal
结构参数 数值 刷丝直径d/mm 0.07 刷束厚度B/mm 1 刷环内径rib/mm 77.5 刷丝高度H/mm 12 前挡板径向保护高度Hf/mm 1 后挡板径向保护高度Hb/mm 1 刷丝排列角度β/(°) 45 表 2 边界条件
Table 2. Boundary conditions
进口压力
pi/MPa出口压力
po/MPa进、出口温度
T/K转轴转速
N/(r/min)0.05~0.15 0 300 0~ 50000 表 3 转子转速升降过程中密封间隙和刷丝变形量
Table 3. Seal gap and bristle deformation during rotor speed increase and decrease
工况 条件 滞后间隙和刷丝
径向变形量转速上升 Isp = 0;δ = Δrz 转速下降 Δrz-max ≤ Δrh-min Isp = Δrz-max−Δrz;
δ = Δrz-maxΔrz-max > Δrh-min Δrz ≥ Δrh-min Isp = 0;δ = Δrz Δrz < Δrh-min Isp =Δrh-min−Δrz;
δ = Δrh-min -
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