计算流体力学
涡轮机械
机械工程
迷宫式密封
超临界流体
蜂窝结构
印章(徽章)
泄漏(经济)
涡轮机
转子动力学
质量流量
空气动力学
涡流
计算机模拟
蜂巢
数值分析
工程类
结构工程
流量(数学)
流体力学
后缘
管道
体积流量
定子
边值问题
总压比
机械
压力降
转子(电动)
斜面
材料科学
航空发动机
边界层
流体力学
毯子
风阻
作者
Gour Chandra Mandal,Al-Muthanna Al-Ani,Zamir Londono,Abhilash Manjula Prasad,Marcel Otto,Erik Fernández,Jayanta Kapat
摘要
Leakage in turbomachinery significantly reduces system efficiency, with labyrinth seals playing a critical role in minimizing fluid or gas leakage. This research focuses on improving sealing technology by developing a new seal design that uses supercritical CO2 (sCO2) as the sealing fluid and a honeycomb structure inspired by gas turbine applications, which can operate under high pressures and temperatures. To optimize the seal to operate under these conditions, the dimensions are chosen according to proven gas turbine designs scaled to meet sCO2 design parameters and iterated over multiple simulations to recommend appropriate dimension ranges. A typical honeycomb structure is a proven method for sealing for gas turbine applications to both minimize leakage and manipulate the pressure of the flow. This study includes a detailed numerical study of how this honeycomb structure performs as a seal in an sCO2 cycle. To test and validate the design, Computational Fluid Dynamics (CFD) simulations were conducted using ANSYS under both static and dynamic conditions. Using CFD provides key insights into the structure's mass flow rate to better understand this design's impact through vortex formations and the efficiency of this seal. The honeycomb is fixed to the stator, while the rotor moves freely, creating a vortex flow in two directions, leading to a pressure difference and forming a strong boundary layer due to this flow pattern. Identifying the validity of a honeycomb structure will provide additional recommended labyrinth seal designs for future consideration
科研通智能强力驱动
Strongly Powered by AbleSci AI