Dynamic Analysis and Design Methods for Combustion Turbine Exhaust Silencers Employing Acoustical Baffles

A. Gjinolli, Jason E. Dorgan, Elden F. Ray
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引用次数: 3

Abstract

Combustion turbines are frequently used because they provide the most power in the smallest footprint and their modular design makes them an economical choice. These machines are used across all land-based industries as well as marine applications. The exhaust system must perform its basic function of conducting exhaust gases, which can be as high as 1250° F (675° C), safely away from the adjacent equipment and workers, and mitigate the exhaust noise under a wide range of requirements and conditions. In addition, new requirements limit shell temperatures and exhaust leakage to prevent fire or explosion of fuel gas that may leak from equipment (ATEX). This paper presents a review of the analytical processes used in the development of a silencer system to achieve optimal performance metrics. These systems are typically comprised of parallel baffles for a wide range of conditions including aero-acoustical performance, system pressure and high flow rates, thermal stresses, environmental conditions (ocean, seismic and wind), flow-induced vibration, corrosion, and fatigue – design life analysis. The specific requirements of the baffle design will be discussed through a specific case study relative to typical rectilinear (parallel) baffles used in many installations, including land-based power generation plants (Figure 1), and offshore platforms (Figure 2). This paper will discuss the analytical methods used to address these challenges via a case study. A combination of static, vibration-pulsation and dynamic structural analysis with specific attention to the seismic analysis of the parallel baffles used in skirt and structural steel supported vessels, as well as acoustical design and flow modeling techniques are used to evaluate the design options.
采用声隔板的燃烧涡轮排气消声器的动态分析与设计方法
燃烧涡轮机经常被使用,因为它们以最小的占地面积提供最大的动力,并且它们的模块化设计使它们成为经济的选择。这些机器用于所有陆基工业以及海洋应用。排气系统必须执行其传导废气的基本功能,其可高达1250°F(675°C),安全地远离邻近的设备和工人,并在各种要求和条件下减轻排气噪音。此外,新要求限制外壳温度和排气泄漏,以防止可能从设备泄漏的燃料气体发生火灾或爆炸(ATEX)。本文介绍了在消声器系统开发中使用的分析过程,以达到最佳的性能指标。这些系统通常由平行挡板组成,适用于各种条件,包括气动声学性能、系统压力和高流量、热应力、环境条件(海洋、地震和风)、流激振动、腐蚀和疲劳设计寿命分析。挡板设计的具体要求将通过具体的案例研究来讨论,这些案例研究涉及许多设施中使用的典型直线(平行)挡板,包括陆基发电厂(图1)和海上平台(图2)。本文将通过案例研究讨论用于解决这些挑战的分析方法。结合静态、振动脉动和动态结构分析,特别关注裙边和钢支撑容器中使用的平行挡板的地震分析,以及声学设计和流动建模技术,用于评估设计方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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