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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >The ultra-high efficiency gas turbine engine, UHEGT, part Ⅲ: Dynamic behavior of the system in variable performance conditions
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The ultra-high efficiency gas turbine engine, UHEGT, part Ⅲ: Dynamic behavior of the system in variable performance conditions

机译:超高效燃气涡轮发动机,UHEGT,第Ⅲ部分:变量性能条件下系统的动态行为

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This paper investigates the dynamic behavior of an Ultra-High Efficiency Gas Turbine Engine (UHEGT) with Stator Internal Combustion. The UHEGT-technology was introduced for the first time to the gas turbine design community at the Turbo Expo 2015. In developing the UHEGT-technology, the combustion process is no longer contained in isolation between the compressor and turbine, rather distributed in the first three HP-turbine stator rows. Noticeable improvement in the engine thermal efficiency and power along with other performance advantages are brought by this technology. In the current paper, dynamic simulation is performed on the entire gas turbine engine (UHEGT) using the nonlinear dynamic simulation code GETRAN. The simulations are in 2 D (space-time) and include the majority of the engine components including rotor shaft, turbine and compressor, fuel injectors, diffuser, pipes, valves, controllers, etc. The thermo-fluid conservation laws are applied to the flow in each component which create a system of nonlinear partial differential equations that is solved numerically. Two different fuel schedules (steep rise and Gaussian) are applied to all injectors and the engine response is studied in each case. The results show that fluctuations in the fuel flow lead to fluctuations in most of the system parameters such as temperatures, power, shaft speed, etc. However, the shapes and amplitudes of the fluctuations are different and there is a time lag in the response profiles relative to the fuel schedules. It is shown that an increase in average fuel flow in the system leads to a small drop in efficiency due to the cycle change from the design point. Moreover, it is seen that the temperatures usually rise fast with increase of fuel flow, but the system tends to cool down at a slower rate as the fuel is reduced.
机译:本文研究了超高效燃气轮机(UHEGT)与定子内燃机的动态行为。 uhegt-Technology是在2015年Turbo Expo的燃气轮机设计界首次引入的。在开发UHEGT技术时,燃烧过程不再包含在前三个中的压缩机和涡轮机之间的隔离HP-Turbine定子行。这项技术引发了发动机热效率和功率以及其他性能优势的显着提高。在本纸张中,使用非线性动态模拟代码Getran对整个燃气涡轮发动机(UHEGT)进行动态仿真。模拟在2d(时空)中,包括大部分发动机部件,包括转子轴,涡轮机和压缩机,燃料喷射器,漫射器,管道,阀门,控制器等。热流体保护法适用于在每个组件中的流动,该组件创建在数字上解决的非线性部分微分方程的系统。两个不同的燃料计划(陡峭升高和高斯)应用于所有喷射器,并且在每种情况下研究发动机响应。结果表明,燃料流量的波动导致大多数系统参数的波动,例如温度,功率,轴速度等。然而,波动的形状和幅度不同,响应轮廓中存在时间滞后相对于燃油计划。结果表明,由于从设计点的循环变化,系统中的平均燃料流量的增加导致效率的小幅降低。此外,看来,温度通常随着燃料流量的增加而迅速上升,但由于燃料减小,系统趋于以较慢的速率冷却。

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