首页> 外文学位 >Jet fluid mixing control through manipulation of inviscid flow structures.
【24h】

Jet fluid mixing control through manipulation of inviscid flow structures.

机译:通过操纵无粘性的流动结构来控制喷射流体的混合。

获取原文
获取原文并翻译 | 示例

摘要

Rapid mixing is crucial for the efficient and environment-friendly operation of many industrial and propulsion devices involving jet flows. In this dissertation, two methodologies, self-excited nozzles and radially lobed nozzles, are studied and presented in order to enhance mixing in the near field of coflowing, subsonic, turbulent, free jet flows.; The characteristics of the concentration field and the mixing performance are examined, mainly in quantitative manner. Two new parameters, mixing index and mixing efficiency index, are defined for free jets, allowing quantitative analysis of the mixing performance and efficiency. The flow fields are studied with hot wire anemometry, and with CFD simulation for some of the radially lobed nozzles. Due to the large vectoring angle of the jet flows from these nozzles, a new definition for the entrainment ratio is also adopted in order to take the large radial velocity component into consideration.; Self-excited nozzles, rectangular and square shaped, are examined at Reynolds numbers of 17,000 and 31,000. The self-excited square jet has fastest mixing and highest mixing efficiency, with 400% higher mixing index at 4 diameters downstream than the unexcited square jet. The mixing is improved as the Strouhal number or coflow-to-jet velocity ratio increases. The study of flow field shows the presence of one pair of periodic, coherent array of large-scale, streamwise, counter-rotating inviscid vortices shedding from each of the two flaps which dominate the mean flow and the mixing process. The coflow is primarily entrained into the jet in the minor plane while the jet fluid vectors in the major plane. Significant increase in turbulent kinetic energy immediately downstream the nozzle exit improves small-scale mixing.; Radially lobed nozzles, a cross-shaped and a clover-shaped with four lobes each, are analyzed in comparison to a conical nozzle. In addition, a few modified radially lobe nozzles, including a 6-lobe nozzle and an 8-lobe nozzle, two type of fully penetrating nozzles, and a cross-shaped nozzle with centerbody, are examined in order to achieve better mixing than the cross-shaped nozzle. At 4 diameters downstream, the mixing index of the cross-shaped nozzle is 650% higher than that of the conical nozzle. The cross-shaped shaped nozzle with centerbody, the 6-lobe and 8-lobe nozzles have slower mixing and lower efficiency than the cross-shaped nozzle, but the fully-penetrating nozzles are generally better than the cross-shaped nozzle, especially at low coflow-to-jet velocity ratios and in the far field. The flow field study shows that parallel lobe walls and deep penetration of the coflow are importance factors responsible for the observed mixing enhancement.
机译:快速混合对于许多涉及喷射流的工业和推进装置的高效环保操作至关重要。本文研究并提出了两种方法,即自激喷嘴和径向波瓣喷嘴,以增强在同流,亚音速,湍流,自由射流的近场中的混合。主要以定量方式检查浓度场的特性和混合性能。为自由射流定义了两个新参数,混合指数和混合效率指数,从而可以定量分析混合性能和效率。使用热线风速仪和某些径向凸角喷嘴的CFD模拟研究了流场。由于从这些喷嘴流出的射流的矢量角较大,为了考虑较大的径向速度分量,还采用了新的夹带比定义。矩形和正方形的自激式喷嘴的雷诺数分别为17,000和31,000。自激方形射流具有最快的混合速度和最高混合效率,在下游4个直径处的混合指数比未激升方形射流高400%。随着斯特劳哈尔数或同流喷射速度比的增加,混合得到改善。对流场的研究表明,从两个襟翼中的每一个都散发出一对周期性的,连贯的,大面积的,沿流向,反向旋转的无粘性涡流阵列,它们决定了平均流量和混合过程。该同流主要在次平面内被带入射流中,而射流流体在主平面中被向量化。紧邻喷嘴出口下游的湍动能显着增加,改善了小规模的混合。与圆锥形喷嘴相比,分析了放射状喷嘴(十字形喷嘴和三叶草形喷嘴,每个都有四个凸角)。此外,还研究了几种改进的径向凸角喷嘴,包括6凸角喷嘴和8凸角喷嘴,两种类型的全穿透喷嘴和带有中心体的十字形喷嘴,以实现比十字形更好的混合。形喷嘴。在下游4个直径处,十字形喷嘴的混合指数比圆锥形喷嘴的混合指数高650%。具有中心体的十字形喷嘴,六叶形喷嘴和八叶形喷嘴的混合速度比十字形喷嘴慢,但效率较低,但是完全穿透的喷嘴通常比十字形喷嘴好,尤其是在低流量的情况下并流喷射速度比和远场。流场研究表明,平行的叶壁和同流的深度渗透是导致观察到的混合增强的重要因素。

著录项

  • 作者

    Yuan, Yiqing.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 262 p.
  • 总页数 262
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

  • 入库时间 2022-08-17 11:46:55

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