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Improving performance and rotordynamic characteristics of injection compressors via much longer balance-piston and division-wall seals

机译:通过更长的平衡活塞和分隔壁密封来改善喷射压缩机的性能和转子动力特性

摘要

Predictions are presented for a selected compressor using longer hole-pattern seals with L/D ratios from 0.5 to 2.5. Results were obtained for back-to-back and in-line compressors with the seal located at mid-span and at 82% of rotor span respectively, considering different seal lengths, radial seal clearances, as well as constant clearance and convergent-tapered seal geometries. Predictions of the synchronous rotordynamic coefficients and leakage were estimated using a code developed by Kleynhans and Childs with zero preswirl and constant pressure ratio of 0.5. This code does not include moment coefficients; which can affect the results. Results of all configurations show an increase of stiffness and damping coefficients with increasing seal length. In addition, a significant reduction in leakage (approximately 47 percent) as L/D increases is exhibited for constant clearance and convergent-tapered hole-pattern seals. For the back-to-back compressor, the stability analysis predicts that the system is stable for all speeds and L/D ratios. In fact, the rotor cylindrical-bending mode becomes more stable with lengthening the seals, for both constant clearance and convergent-tapered hole-pattern seals. For constant clearance seals (Case A), the synchronous response at mid-span show a critical speed at 8,000 rpm (cylindrical-bending mode) for all L/D ratios, while a reduction of 85 percent in the peak response is exhibited as L/D increases. Case B, in which the radial clearance is increased as L/D increases to have the same leakage as case A, slightly increases the synchronous response of the model compared to case A. For convergent-tapered seals (Case C), the synchronous response at mid-span shows a higher critical speed (9,000 rpm) for all L/D ratios, and a larger reduction (89 percent) in peak response with increasing L/D, compared to Case A. However, the magnitude of the peak response is larger for convergent-tapered seals than that for constant clearance seals, for all L/D ratios. For in-line compressor, the stability analysis predicts two critical speeds at 6,000 (conical mode) and 18,000 rpm (first bending mode) respectively. Both modes are predicted to be stable for all speed and L/D ratios. Synchronous response at the mid-span for Case A shows the peak response at the first critical speed is slightly reduced as L/D increases while the response at the second critical speed is increased for most of the cases. In addition, the second critical speed is reduced from 18,000 to 13,000 rpm, which is not a concern because it remains above the running speed. This was also the trend for convergent-tapered hole-pattern seal. In addition, the increase of radial clearance in Case B slightly increases the amplitude of vibration, compared to Case A.
机译:给出了使用较长孔型密封且L / D比为0.5到2.5的压缩机的预测结果。考虑到不同的密封长度,径向密封间隙,恒定间隙和会聚锥度密封,背靠背式压缩机和在线压缩机的密封分别位于中跨和转子跨度的82%时得到的结果几何形状。同步转子动力系数和泄漏的预测是使用Kleynhans和Childs开发的代码进行的,该代码的预旋流为零,恒压比为0.5。该代码不包括弯矩系数。这会影响结果。所有配置的结果都表明,随着密封长度的增加,刚度和阻尼系数也会增加。此外,对于恒定间隙和会聚锥形孔型密封,随着L / D的增加,泄漏量显着降低(约47%)。对于背对背压缩机,稳定性分析预测该系统在所有速度和L / D比率下均稳定。实际上,对于恒定的间隙和渐缩的孔型密封,转子的弯曲方式随着密封件的加长而变得更加稳定。对于恒定间隙密封(情况A),对于所有L / D比率,中跨的同步响应在8,000 rpm(圆柱弯曲模式)下均显示临界速度,而峰值响应则降低了85%,显示为L / D增加。情况B(径向间隙随L / D的增加而增加,从而具有与情况A相同的泄漏),与情况A相比,模型的同步响应略有增加。对于会聚锥形密封件(情况C),同步响应与案例A相比,在中跨时,所有L / D比的临界速度都更高(9,000 rpm),并且随着L / D的增加,峰响应的降低幅度更大(89%)。但是,峰响应的幅度对于所有L / D比率,会聚锥形密封件的尺寸要大于恒定间隙密封件的尺寸。对于直列式压缩机,稳定性分析预测两个临界转速分别为6,000(锥形模式)和18,000 rpm(第一弯曲模式)。预测这两种模式对于所有速度和L / D比率都是稳定的。对于案例A,中跨的同步响应显示,在大多数情况下,随着L / D的增加,第一临界速度下的峰值响应会略有降低,而第二临界速度下的响应会增加。此外,第二临界速度从18,000 rpm降低到13,000 rpm,这并不重要,因为它保持高于运行速度。这也是收敛锥形孔型密封的趋势。此外,与情况A相比,情况B中径向间隙的增加会稍微增加振动幅度。

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