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Numerical and experimental evaluation of performance of centrifugal seals

机译:离心密封件性能的数值和实验评估

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‘Centrifugal seals’ or ‘Slinger seals’ offer an attractive choice as non-contact-type sealing in fluid machinery. These seals utilize the radial pressure gradient caused by centrifugal forces in a rotating fluid ring, to create a sealing of the working fluid. Basic construction of a typical seal consists of a rotating disc inside astationary casing; one side of the disc (sealing side) is provided with a set of slots (Type-1) or vanes (Type-2) to enhance the tangential velocity of the fluid. The other side of the disk (back side) in both the configurations is exposed to high pressure liquid being sealed. Both numerical and experimental investigations of the performance of Type-1 seal (with slots) have been carried out so as to optimize the seal configuration to achieve maximum sealing capacity, with minimum power consumption. A comparison of the performance of Type-1 seal has been made with that of conventional one (Type-2) in view of economy of construction and better sealing with minimal expense of power consumption. A test rig that allows for varying the major geometrical and operating parameters was designed and tests were conducted with water as the medium. Influence of major geometric parameters like dimensions and number of slots, axial/radial clearances and major operating parameters like rotational speed, inlet pressure and sealing fluid bypass flow rate has been investigated. Apart from variouspressure, temperature, flow and torque measurements, the interface between the sealing and working fluid for the experiments was captured and recorded using a high speed camera at 26,000 frames per second. Geometrical configuration for the slots that maximizes the sealing capacity is arrived through 3D numerical simulations using commercial CFD solver ANSYS Fluent ? . A good agreement is obtained with respect to experimental results. In view of economy of construction and better sealing with minimal expense of operating power, a modified version of Type-1 seal termed as Type-3 seal is investigated. A simple 1D model for prediction of the interface radius during the seal operation, which could be used as a quick design guide, is also presented.
机译:作为流体机械中的非接触式密封件,“离心式密封件”或“斯林格密封件”提供了一个有吸引力的选择。这些密封件利用旋转的流体环中的离心力引起的径向压力梯度来形成工作流体的密封。典型密封件的基本结构由固定外壳内部的转盘组成。圆盘的一侧(密封侧)设有一组狭槽(类型1)或叶片(类型2),以增强流体的切线速度。在两种配置中,盘的另一侧(背面)都暴露于被密封的高压液体中。已经对Type-1密封件(带槽)的性能进行了数值和实验研究,以优化密封件配置,从而以最小的功耗实现最大的密封能力。考虑到结构的经济性和更好的密封性以及最小的功率消耗,已经将类型1密封件的性能与常规密封件1的性能进行了比较。设计了可以改变主要几何和工作参数的试验台,并以水为介质进行了试验。已经研究了主要几何参数(例如槽的尺寸和数量,轴向/径向间隙)以及主要操作参数(例如转速,入口压力和密封液旁路流量)的影响。除了测量各种压力,温度,流量和扭矩外,还使用高速相机以每秒26,000帧的速度捕获和记录实验用密封液和工作液之间的界面。通过使用商用CFD求解器ANSYS Fluent进行3D数值模拟,可以得出使密封能力最大化的槽的几何结构。 。关于实验结果获得了良好的一致性。考虑到结构的经济性和更好的密封性以及最小的工作功率消耗,研究了一种称为Type-3密封件的Type-1密封件的改进版本。还介绍了一个简单的一维模型,用于预测密封操作过程中的界面半径,可以用作快速设计指南。

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