首页> 外文会议>ASME(American Society of Mechanical Engineers) Fluids Engineering Division Summer Conference(FEDSM2005) vol.1 pt.B; 20050619-23; Houston,TX(US) >FLOW IN ATOMIZERS: INFLUENCE OF DIFFERENT PARAMETERS ON THE PERFORMANCE CHARACTERISTICS OF PLAIN ORIFICE ATOMIZER AND PRESSURE SWIRL ATOMIZER OF A FUEL INJECTION SYSTEM OF GAS TURBINE COMBUSTOR
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FLOW IN ATOMIZERS: INFLUENCE OF DIFFERENT PARAMETERS ON THE PERFORMANCE CHARACTERISTICS OF PLAIN ORIFICE ATOMIZER AND PRESSURE SWIRL ATOMIZER OF A FUEL INJECTION SYSTEM OF GAS TURBINE COMBUSTOR

机译:原子流量:不同参数对燃气轮机燃烧器燃料喷射系统的平原有机物雾化器和旋流式雾化器性能的影响

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The atomization process is essentially one in which bulk liquid is converted into small drops. Basically, it can be considered as a disruption of the consolidating influence of surface tension by the action of internal and external forces. In the absence of such disruptive forces, surface tension tends to pull the liquid into the form of a sphere, since this has the minimum surface energy. Liquid viscosity exerts a stabilizing influence by opposing any change in system geometry. On the other end, aerodynamic forces acting on the liquid surface may promote the disruption process by applying an external distortion force to the bulk liquid. Breakup occurs when the magnitude of the disruptive force just exceeds the consolidating surface tension force. In twin fluid atomizers of the air-blast type and air assist type, atomization and spray dispersion tend to be dominated by air momentum forces, with hydrodynamic processes playing only a secondary role. With pressure swirl nozzles, the internal flow characteristics are of primary importance, because they govern the thickness and uniformity of the annular liquid film formed in the final discharge orifice as well as the relative magnitude of the axial and tangential components of velocity of this film. It is therefore of great practical interest to examine the interrelationships that exist between internal flow characteristics, nozzle design variables, and important spray features such as cone angle and mean drop size. The various equations that have been derived for nozzle discharge coefficient are discussed because this coefficient not only affects the flow rate of any given nozzle but also can be used to calculate its velocity coefficients and spray cone angle. Consideration is also given to the complex flow situations that arise on the surface of a rotating cup or disk. These flow characteristics are of basic importance to the successful operation of atomizers, because they exercise a controlling influence on the nature of the atomization process, the quality of atomization, and distribution of drop sizes in the spray. For plain orifice atomizers, the key geometrical variables are the orifice length and diameter. Final orifice diameter is of prime importance for pressure swirl atomizers. The absence of any theoretical treatment of the atomization process has led to the evolution of empirical equations to express the relationship between the mean drop size in a spray and the variable liquid properties. This paper includes the study of different parameters that affect the flow in plain orifice and pressure swirl atomizers. The paper also includes the performance characteristics of plain orifice and pressure swirl atomizers.
机译:雾化过程本质上是一种将大量液体转化为小液滴的过程。基本上,可以认为这是由于内力和外力的作用而破坏了表面张力的综合影响。在没有这种破坏力的情况下,表面张力趋于将液体拉成球形,因为这具有最小的表面能。液体粘度通过抵抗系统几何形状的任何变化而发挥稳定作用。另一方面,作用在液体表面上的空气动力可以通过向散装液体施加外部变形力来促进破坏过程。当破坏力的大小刚好超过固结表面张力时,就会发生破裂。在鼓风型和空气辅助型的双流体雾化器中,雾化和喷雾分散往往受空气动量的支配,而流体动力学过程仅起次要作用。对于压力旋流喷嘴,内部流动特性是最重要的,因为它们决定了最终排放孔中形成的环形液体薄膜的厚度和均匀性,以及该薄膜速度的轴向和切向分量的相对大小。因此,研究内部流动特性,喷嘴设计变量和重要的喷雾特性(例如锥角和平均液滴尺寸)之间存在的相互关系具有极大的实践意义。讨论了为喷嘴排放系数导出的各种方程式,因为该系数不仅影响任何给定喷嘴的流量,而且可以用来计算其速度系数和喷雾锥角。还考虑了旋转杯或圆盘表面上出现的复杂流动情况。这些流动特性对雾化器的成功运行至关重要,因为它们对雾化过程的性质,雾化的质量以及喷雾中液滴尺寸的分布具有控制作用。对于普通孔口雾化器,关键的几何变量是孔口长度和直径。最终孔口直径对于压力旋流雾化器至关重要。缺少对雾化过程的任何理论处理,导致经验方程式的发展,以表达喷雾中平均液滴尺寸与可变液体性质之间的关系。本文包括对影响普通孔板和压力旋流雾化器流量的不同参数的研究。本文还介绍了普通孔板和压力旋流雾化器的性能特征。

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