循环空气加热器热特性计算方法的改进

V. Yurko, A. Ganzha, O. Tarasenko, L. Tiutiunyk
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引用次数: 1

摘要

利用waelz工艺中气体产生的热量是提高其能源效率和环境安全性的一种有前途的方法。考虑到气体含尘性,最合理的是采用循环空气加热器,这是一种多道多段换热器,冷却剂运动混合方案复杂。在现代条件下,当这些装置的计算方法和手段简化时,获得改进的计算方法和手段,确定其工作的效率和可靠性的任务是相关的。采用两个数学模型对多道管式空气加热器的传热过程和流体空气动力学过程进行了分析。所开发的循环空气加热器模型是基于热计算的主要方法:一种更简单的平均对数温度压力修正系数法和一种离散P-NTU法,该方法可以获得表面的局部热特性。构造了传热系数、传热、烟气局部温度、空气和管壁的分布图。确定了粉尘和粉尘粒径对传热的影响。当烟气含尘量为50 g/Nm3,粉尘粒径为1 μm时,换热系数提高12%。验证了不同冷却液移动方案的空气加热器设计的应用。所开发的通用方法允许确定热交换器的热效率并获得受热面上局部温度特性的分布。考虑到回热器的设计、操作条件、操作模式和冷却剂移动的不同方案,还可以识别换热表面可能过热的地方和腐蚀过程的过程
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Improvement of Methods for Calculating Thermal Characteristics of Loop Air Heaters
Utilization of heat from gases leaving the waelz process is a promising way to increase its energy efficiency and environmental safety. Taking into account the gas dustiness, the most rational is the use of a loop air heater, which is a multi-pass and multi-section heat exchanger with a complex mixed scheme of coolant movement. In modern conditions, when the methods and means of calculation of such devices are simplified, the task of obtaining improved methods and means of calculation, determining the efficiency and reliability of their work is relevant. Two mathematical models of the process of heat transfer and hydroaerodynamics in a multi-pass tubular air heater with a cross-circuit of coolants are used. The developed models for the loop air heater are based on the main methods of thermal calculation: a simpler method of correction factor to the average logarithmic temperature pressure and a discrete P-NTU method, which allows obtaining local thermal characteristics of the surface. Diagrams of distribution of heat transfer coefficients, heat transfer, local temperatures of flue gases, air and pipe walls are constructed. The influence of dust and dust particle size on heat transfer is determined. When the flue gas dust is 50 g/Nm3 and with a dust particle size of 1 μm, the heat transfer coefficient increases by 12 %. The application of the air heater design with different schemes of coolant movement is substantiated. The developed universal methods allow determining the thermal productivity of heat exchangers and obtaining the distribution of local temperature characteristics on the heating surface. It is also possible to identify places of possible overheating of the heat exchange surface and the course of corrosion processes, taking into account the design of recuperators, operating conditions, operating modes and different schemes of coolant movement
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