Numercal investigation on floating disturbance effect of differential diameter brush seal with fluid-structure coupling
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摘要:
传统刷式密封易受气流作用产生浮升扰动效应导致提前失效寿命0过短的问题,基于简化悬臂梁模型理论分析刷丝浮升扰动效应力学模型,提出能够抑制刷丝浮升扰动效应新型差异化直径刷式密封,基于Arbitrary Lagrange-Eulerian(ALE)流固耦合方法建立差异化直径刷式密封三维瞬态求解模型,量化分析刷丝自由端变形特性,研究不同结构参数和工况参数对差异化直径刷式密封浮升扰动效应影响规律。研究结果表明:新型差异化直径刷式密封通过刷丝差异化排列,增大前排刷丝直径进而增加刷丝刚度,能够增强刷丝的抗扰动能力,提升传统刷式密封封严性能。增大压比、前挡板保护高度、前挡板与刷丝束轴向间隙均会增强刷丝的浮升扰动效应,差异化直径刷式密封能够抑制刷丝浮升扰动效应。在本文工况参数和结构参数下,相对于传统刷式密封,新型差异化直径刷式密封刷丝自由端平均变形量减少10.98%~20.39%。
Abstract:The traditional brush seal has the problem that the premature failure life is too short due to the bristles floating disturbance effect. The dynamic model of bristles floating disturbance of brush seal was analyzed theoretically. New type of brush seal structure with differential diameter to suppress the floating disturbance effect of bristles was proposed. A three-dimensional transient solution model of differential diameter brush seal was established based on the Arbitrary Lagrange-Eulerian (ALE) fluid-solid coupling method. The deformation characteristic of bristle tips were quantitatively analyzed, and the influence of structural parameters and working condition parameters on the bristles floating disturbance effect of differential diameter brush seal was studied. The results showed the differential diameter brush seal through the differential arrangement of the brush wire and increases the bristles stiffness by increasing the diameter of the front bristles, which can enhance the anti-disturbance ability of the brush wire and improve the sealing performance of the traditional brush seal. Increasing the pressure ratio, the protection height of the front plate, and the axial clearance between the front plate and the brush beam can enhance the floating disturbance effect of the bristles. The differential diameter brush seal can suppress the brush floating disturbance effect. Under the working condition parameters and structural parameters of this paper, the average deformation of the free end of the bristles of the differential diameter brush seal can be reduced by 10.98%—20.39% compared with the traditional brush seal.
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表 1 差异化直径刷式密封结构参数表
Table 1. Differential diameter brush seal structure parameter table
结构参数 数值 前挡板宽度wf/mm 1.50 后挡板宽度wb/mm 2.00 前挡板保护高度L1/mm 2.00,3.00,4.00 后挡板保护高度L3/mm 1.00 刷丝束与转子面间隙hr/mm 0 刷丝束与前挡板间隙hf/mm 0.46,0.76,1.06 刷丝直径/mm D1 0.07 D2 0.12 刷丝间距/mm d1 0.007 d2 0.021 d3 0.0136 刷丝径向长度L2/mm 10.50 刷丝排数N1 7 前排刷丝排数N2 2,4,6 -
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