首页> 外文会议>International Symposium on Combustion; 20060805-11; University of Heidelberg(DE) >Feasibility of 'intermittent' active control of combustion instabilities in liquid fueled combustors using a 'smart' fuel injector
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Feasibility of 'intermittent' active control of combustion instabilities in liquid fueled combustors using a 'smart' fuel injector

机译:使用“智能”喷油器对液体燃料燃烧器进行“间歇性”主动控制燃烧不稳定性的可行性

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This paper describes an experimental investigation of the feasibility of an "intermittent" active control approach for suppressing combustion instabilities in liquid fueled combustors. The developed controller employs a "smart" fuel injector that can modify the spray properties in response to changes in combustor operating conditions. This action weakens or breaks up the coupling between the combustion process and combustor acoustic modes oscillations, thus preventing the excitation of large amplitude instabilities. This approach differs significantly from previously proposed active control methods, both in concept and implementation, as it requires only "intermittent" modification of the combustion process by a single control action as opposed to the continuous action required by most other active control methods. The "smart" fuel injector used in this study consisted of a double-staged, air-assisted atomizer in which counter swirling, primary (inner stage) and secondary (outer stage) air streams were supplied to the injector through separate sets of tangentially oriented orifices. Control of the ratio of air mass flow rates supplied to these two stages, by use of a diverter valve, resulted in significant changes in the spray shape and its axial, tangential, and radial velocity components. This variation in spray properties of the "smart" injector was characterized for different values of the inner to outer air flow rate ratio in cold flow tests with a PDPA system. These results were then correlated with the characteristics of the "intermittently" controlled combustor. Measured quantities included the instability amplitudes, axial dependence of the mean and oscillatory heat release amplitudes, and the characteristics of the recirculation zones, which were all shown to depend on the fuel spray properties. The results of this study demonstrate the feasibility of using "smart" fuel injectors with capabilities for varying the combustion process characteristics to reduce the amplitudes of detrimental combustion instabilities in real engines to acceptable levels.
机译:本文描述了一种实验性研究,旨在研究“间歇性”主动控制方法在抑制液体燃料燃烧器中燃烧不稳定性的可行性。开发的控制器采用了“智能”喷油器,可以根据燃烧室运行条件的变化来改变喷雾特性。该作用削弱或破坏了燃烧过程与燃烧器声模振荡之间的耦合,从而防止了大幅度不稳定性的激发。这种方法在概念和实施上都与先前提出的主动控制方法有很大不同,因为与大多数其他主动控制方法所要求的连续操作相比,该方法仅需要通过单个控制动作对燃烧过程进行“间歇性”修改。本研究中使用的“智能”喷油器由两级空气辅助雾化器组成,其中反向旋流,主要(内部)和次要(外部)空气流通过单独的切向取向组提供给喷射器孔口。通过使用分流阀控制提供给这两个阶段的空气质量流率之比,会导致喷雾形状及其轴向,切向和径向速度分量发生重大变化。在采用PDPA系统进行的冷流测试中,对于不同的内外空气流量比值,“智能”喷射器的喷雾特性发生了变化。然后将这些结果与“间歇性”受控燃烧器的特性相关联。测得的量包括不稳定性幅度,平均值和振荡放热幅度的轴向相关性以及再循环区的特性,所有这些都取决于燃油喷雾特性。这项研究的结果证明了使用“智能”喷油器的能力,该喷油器具有改变燃烧过程特性的功能,可以将实际发动机中有害燃烧不稳定性的幅度降低到可接受的水平。

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