Use of heat recovery technology to increase thermal efficiency of rotary furnaces

Valerii Shcherbina, Olena Ivanenko, Oleksandr Sokolskyi, Gennady Vasilchenko
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Abstract

The article considers the problem of increasing the energy efficiency of rotary kilns, which are used in various industries for thermal processing of materials, such as metallurgical, chemical, construction, electrode and others. The source of heat for the kilns is gaseous fuel, which is supplied through special burners located at one end of the cylinder. The material for processing is loaded at the opposite end and moves towards the burner due to the force of gravity and rotation of the kiln. One of the important aspects of operating rotary kilns is energy efficiency, which depends on many factors and generally characterizes the degree of use of heat from fuel for heating the material. However, a significant part of the heat from fuel is lost through the kiln shell, which leads to an increase in fuel consumption and a decrease in kiln productivity. Therefore, it is necessary to look for ways to reduce heat losses and use part of the heat for other purposes. In this context, heating secondary air can be one of the important methods for increasing the thermal efficiency of rotary kilns, especially for kilns that operate in a mode for pyrolysis firing of materials such as coal, wood, peat, etc. The aim of the work is to increase the energy efficiency of a rotary kiln using a spiral heat exchanger, using the heat from the external shell of the kiln to heat secondary air. The paper proposes the use of a sectional heat exchanger, which can perform the functions of a cooler, a thermal insulator and a regulator of temperature regimes of the kiln. The heat exchanger consists of several sections that are attached to the outer surface of the kiln shell and have channels for air passage. The air is heated by contact with the hot shell and then supplied to the burner as secondary air. Thus, the heat exchanger allows to reduce the temperature of the shell and provide an additional source of hot air. A mathematical model for numerical calculation of a spiral heat exchanger has been developed, which allows to evaluate its thermal and temperature characteristics. It is shown that by using the heat from the shell it is possible to heat secondary air to a temperature of 270 °C in an amount sufficient to ensure the operation of the burner. An analysis of the location of the heat exchanger and the use of insulation coating has been carried out, which made it possible to significantly reduce its size without changing the total thermal effect compared to a heat exchanger installed along the entire length of the kiln shell. The effectiveness of using thermal insulation has been shown, which makes it possible to increase the temperature of air by 50 °C with its thickness 7 mm. The obtained results can be useful for further development and optimization of projects aimed at improving heat exchange systems and efficient use of thermal resources in rotary kilns.
利用热回收技术提高转炉热效率
本文探讨了在冶金、化工、建筑、电极等行业中广泛应用的回转窑节能问题。窑炉的热源是气体燃料,它通过位于钢瓶一端的特殊燃烧器提供。待加工的物料在另一端装载,并由于重力和窑炉的旋转而向燃烧器移动。操作回转窑的一个重要方面是能源效率,它取决于许多因素,并且通常表征了燃料用于加热材料的热量的使用程度。然而,很大一部分来自燃料的热量通过窑壳损失,这导致燃料消耗增加和窑生产率下降。因此,有必要寻找减少热损失的方法,并将部分热量用于其他目的。在这种情况下,加热二次风可以成为提高回转窑热效率的重要方法之一,特别是对于以煤、木材、泥炭等材料的热解燃烧模式运行的窑炉。工作的目的是利用螺旋热交换器提高回转窑的能源效率,利用回转窑外壳的热量加热二次空气。本文建议采用分段式换热器,它可以起到冷却器、隔热器和窑炉温度调节器的作用。热交换器由几个部分组成,这些部分附着在窑壳的外表面,并具有用于空气通道的通道。空气通过与热壳接触而加热,然后作为二次空气供给燃烧器。因此,热交换器可以降低壳体的温度,并提供额外的热空气来源。本文建立了螺旋换热器数值计算的数学模型,用以评价螺旋换热器的热特性和温度特性。结果表明,利用壳体的热量可以将二次空气加热到270°C的温度,其量足以保证燃烧器的运行。对热交换器的位置和隔热涂层的使用进行了分析,与沿着窑壳的整个长度安装热交换器相比,这使得在不改变总热效应的情况下显著减小其尺寸成为可能。使用隔热材料的有效性已被证明,它可以使厚度为7毫米的空气温度提高50°C。所得结果可用于进一步开发和优化旨在改进回转窑热交换系统和有效利用热资源的项目。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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