首页> 外文会议>ASME Fluids Engineering Division summer meeting >GEOMETRICAL OPTIMIZATION OF A STEAM JET-EJECTOR USING THE COMPUTATIONAL FLUID DYNAMICS
【24h】

GEOMETRICAL OPTIMIZATION OF A STEAM JET-EJECTOR USING THE COMPUTATIONAL FLUID DYNAMICS

机译:计算流体动力学的蒸汽射流喷射器几何优化

获取原文

摘要

The vacuum systems play crucial role in various industries including, but not limited to, power generation, refrigeration, desalination, and aerospace engineering. There are different types of vacuum systems. Among them, the ejector or vacuum pump is highly utilized due to its low capital cost and easy maintenance. Generally, the better operation of a vacuum system can dramatically affect the performance of its upper-hand systems, e.g., the general efficiency of a thermal power plant cycle. This can be achieved if such vacuum systems are correctly designed, implemented, and operated. The focus of this work is on an existing steam jet-ejector, whose primary flow is a high pressure superheated steam and the suction flow is a mixture of steam and air. The main goal of this work is to optimize the geometry of the ejector including the nozzle exit position (NXP), the primary nozzle diverging angle, and the secondary throat length, etc. From the computational fluid dynamics perspective, there are some major challenges to simulate this ejector. It requires predicting the correct turbulent fluid flow and heat transfer phenomena with great complexities in treating the mixed subsonic and supersonic flow regimes, very high and very low pressure regions adjacent to each other, and complex mixing two phase flow jets. Indeed, the latter one has been almost neglected in literature. The main concern of this study is to reduce the consumption of motive steam, i.e., to increase the entrainment ratio via modifying the ejector geometry and investigating its performance under different operating conditions that helps to save the water consumption.
机译:真空系统在包括但不限于发电,制冷,脱盐和航空航天工程在内的各种行业中都发挥着至关重要的作用。有不同类型的真空系统。其中,由于喷射器或真空泵的投资成本低且易于维护,因此得到了高度的利用。通常,真空系统的更好的操作会极大地影响其上级系统的性能,例如,热电厂循环的总体效率。如果正确设计,实施和操作此类真空系统,则可以实现此目的。这项工作的重点是现有的蒸汽喷射器,其主要流量是高压过热蒸汽,而吸入流量是蒸汽和空气的混合物。这项工作的主要目的是优化喷射器的几何形状,包括喷嘴出口位置(NXP),主喷嘴发散角和副喉长等。模拟此弹出器。在处理混合的亚音速和超音速流态,彼此相邻的非常高和非常低的压力区域以及复杂地混合两相流射流时,需要非常正确地预测正确的湍流和传热现象。确实,后一种在文学中几乎被忽略了。这项研究的主要关注点是减少动力蒸汽的消耗,即通过修改喷射器的几何形状并研究其在不同操作条件下的性能来提高夹带率,从而节省了水的消耗。

著录项

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