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An experimental and numerical study of confined non-reacting and reacting turbulent jets to facilitate homogeneous combustion in industrial furnaces.

机译:有限的无反应湍流射流促进工业炉内均匀燃烧的实验和数值研究。

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摘要

Confined non-reacting turbulent jets are ideal for recirculating the hot flue gas back into the furnace from an external exhaust duct. Such jets are also used inside the furnace to internally entrain and recirculate the hot flue gas to preheat and dilute the reactants. Both internal and external implementation of confined turbulent jets increase the furnace thermal efficiency. For external implementation, depending on the circumstances, the exhaust gas flow may be co- or counter-flow relative to the jet flow. Inside the furnaces, fuel and air jets are injected separately. To create a condition which can facilitate near homogeneous combustion, these jets have to first mix with the burned gas inside the furnace and simultaneously being heated and diluted prior to combustion. Clearly, the combustion pattern and emissions from reacting confined turbulent jets are affected by jet interactions, mixing and entrainment of hot flue gas. In this work, the flow and mixing characteristics of a non-reacting and reacting confined turbulent jet are investigated experimentally and numerically. This work consists of two parts:;(i) A study of flow and mixing characteristics of non-reacting confined turbulent jets with co- or counter-flowing exhaust/flue gas. Here the axial and radial distributions of temperature, velocity and NO concentration (used as a tracer gas) were measured. FLUENT was used to numerically simulate the experimental results. This work provides the basic understanding of the flow and mixing characteristics of confined turbulent jets and develops some design considerations for recirculating flue gas back into the furnace as expressed by the recirculation zone and the stagnation locations.;(ii) Numerical calculations of near homogeneous combustion are performed for the existing furnace. The exact geometry of the furnace in the lab is used and the real dimensional boundary conditions are considered. The parameters such as air nozzle diameter (dair), fuel nozzle diameter (df), equivalence ratio (&PHgr;), oxygen concentration, gravity, different bottom temperature and separation distance as well as soot radiation that influence the establishment of homogeneous combustion to improve combustion efficiency and reduce pollutant emissions will be numerically studied. These results will help to understand the influence from the selected parameters on the main large scale flow characteristics and provide some insight to the conditions that can facilitate near homogeneous combustion in furnaces.
机译:受限的无反应湍流射流是从外部排气管将热烟道气再循环回炉内的理想选择。这种射流还用于炉子内部以夹带和再循环热烟道气以预热和稀释反应物。内部和外部采用受限湍流射流均可提高炉子的热效率。对于外部实施,根据情况,排气流可以相对于喷射流为顺流或逆流。在炉子内部,燃料和空气喷嘴分别注入。为了产生可以促进近乎均匀燃烧的条件,这些喷嘴必须首先与炉内燃烧的气体混合,并在燃烧前同时进行加热和稀释。显然,受限的湍流射流的燃烧方式和排放受射流相互作用,热烟道气的混合和夹带的影响。在这项工作中,通过实验和数值研究了未反应和反应的受限湍流的流动和混合特性。这项工作包括两个部分:(i)研究未反应的密闭湍流射流与同流或逆流废气/烟气的流动和混合特性。在此测量了温度,速度和NO浓度(用作示踪气体)的轴向和径向分布。 FLUENT用于数值模拟实验结果。这项工作提供了对受限湍流射流的流动和混合特性的基本理解,并提出了一些将烟气再循环回到炉内的设计考虑,如再循环区和停滞位置所表示的;(ii)接近均匀燃烧的数值计算对现有的熔炉进行。使用实验室中炉子的精确几何形状,并考虑实际尺寸边界条件。诸如空气喷嘴直径(dair),燃料喷嘴直径(df),当量比(&PHgr;),氧气浓度,重力,不同的塔底温度和分离距离以及烟灰辐射等参数会影响均质燃烧的建立以改善将对燃烧效率和减少污染物排放进行数值研究。这些结果将有助于了解所选参数对主要的大型流动特性的影响,并为可以促进炉中近乎均匀燃烧的条件提供一些见识。

著录项

  • 作者

    Lee, Insu.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Mechanical engineering.;Aerospace engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 282 p.
  • 总页数 282
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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