首页> 外文期刊>Archives of acoustics >Design and Numerical Simulation of the Performance of Acoustic Plenum Chamber of a Marine Gas Turbine Air Supply System
【24h】

Design and Numerical Simulation of the Performance of Acoustic Plenum Chamber of a Marine Gas Turbine Air Supply System

机译:船用燃气轮机供气系统全声室性能的设计与数值模拟

获取原文
获取原文并翻译 | 示例
           

摘要

In the present work, an approach to obtain a design method for the size of the plenum chamber cross-section of a marine gas turbine air supply system has been investigated. Flow in ducts makes noise which is very high in the turbine inlet part because of the large amount of flow. Therefore, this phenomenon should be considered in the design process. A suitable approach to design the duct is proposed (considering acoustic and aerodynamic performance at the same time). In this method, an air supply channel system of the marine gas turbine has been categorized into three sections according to the requirements of the aerodynamic and acoustic; inlet, plenum chamber, and outlet channels with circular cross-sections. The geometrical dimensions of inlet and outlet channels have been determined using the plane waves theory about a channel, in which the effects of flow is ignored. Space limitations of battleships at the dominant frequency have been considered. Then, the optimized size of the mid-channel section, in terms of both aerodynamic and acoustic requirements, using numerical methods and regarding the effects of flow has been calculated. Various 3D turbulent flows inside the plenum chamber have been considered, in which large eddy simulation turbulence model is utilized. Ffowcs, Williams and Hawkings models are used for the sound propagation process based on the Lighthill integral equation. The validity of the simulation has been checked by comparing results (sound pressure level) with experimental data obtained from a chamber. The comparison revealed the acceptable errors for a variety of frequencies. The results disclosed that the performance of channel system aerodynamic decreased when the fraction of plenum chamber cross-section to inlet/outlet channel cross-section increased. With an increase in the cross-section size at first Acoustic performance is improved and then worsen. Six different cases of marine gas turbine air supply system configurations have been presented, in which the limitation of the battleship space is considered. Examining and comparing the acoustic performance of different cases of the air supply channel system, it was found that the amount of sound pressure level, around the air supply channel system, and the high-pressure sound area can move along the air supply channel system. Additionally, deviations from plane waves considering the effects of flow have been inspected in all cases. The reason for this deviation is the effects of the airflow through the channel system and quadrupole sources in the production of sound in the channel system, which causes higher modes.
机译:在当前的工作中,已经研究了一种获得用于船用燃气轮机空气供应系统的增压室横截面尺寸的设计方法的方法。管道中的流动会由于大量的流动而在涡轮机入口部分产生很高的噪音。因此,在设计过程中应考虑这种现象。提出了一种设计管道的合适方法(同时考虑声学和空气动力学性能)。在这种方法中,根据空气动力学和声学的要求,将船用燃气轮机的空气供应通道系统分为三部分:具有圆形横截面的入口,气室和出口通道。入口和出口通道的几何尺寸已使用关于通道的平面波理论确定,其中忽略了流动的影响。已经考虑了主力频率战舰的空间限制。然后,就空气动力学和声学要求而言,使用数值方法并考虑流动的影响,计算出了通道中段的最佳尺寸。已经考虑了增压室内的各种3D湍流,其中利用了大涡模拟湍流模型。 Ffowcs,Williams和Hawkings模型用于基于Lighthill积分方程的声音传播过程。通过将结果(声压级)与从腔室获得的实验数据进行比较,检查了模拟的有效性。比较显示了各种频率下可接受的误差。结果表明,当增压室横截面与入口/出口通道横截面的比例增加时,通道系统的空气动力学性能会下降。首先,随着横截面尺寸的增加,声学性能得到改善,然后恶化。提出了六种不同情况的船用燃气轮机供气系统配置,其中考虑了战舰空间的局限性。通过检查和比较送风通道系统不同情况的声学性能,发现送风通道系统周围的声压级和高压声区可以沿着送风通道系统移动。此外,在所有情况下都检查了考虑流动影响的平面波偏差。这种偏离的原因是在通道系统中产生声音时,通过通道系统和四极杆源的气流的影响,从而导致更高的模态。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号