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Coupled Heat Transfers in a Refinery Furnace in View of Fouling Prediction

机译:鉴于结垢预测,精炼炉中的传热耦合

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摘要

In industrial refinery furnaces, the efficiency of thermal transfer to heat crude oil before distillation is often altered by coke deposition inside the fuel pipes. This leads to increased production and maintenance costs, and requires better understanding and control. Crude oil fouling is a chemical reaction that is, at first order, thermally controlled. In such large furnaces, the predominant heat transfer process is thermal radiation by the hot combustion products, which directly heats the pipes. As radiation fluxes depend on temperature differences, the pipe surface temperature also plays an important role and needs to be predicted with sufficient accuracy. This pipe surface temperature results from the energy balance between thermal radiation, connective heat transfer, and conduction in the solid material of the pipe, meaning that the thermal behavior of the whole system is a coupled radiation-convection-conduction problem. In this work, this coupled problem is solved in a cylindrical furnace, in which the crude oil flowing in vertical pipes is heated. The thermal radiation of combustion gases is modeled using the discrete ordinate method (DOM) with accurate spectral models and is coupled to heat conduction in the pipe to predict its wall temperature. The flame is described with a complex chemistry combustion model. An energy balance confirms that heat transfers are effectively dominated by thermal radiation. Good agreement with available measurements of the radiative heat flux on a real furnace shows that the proposed approach predicts the correct heat transfers to the pipe. This allows an accurate prediction of the temperature field on the pipe surface, which is a key parameter for liquid fouling inside the pipe. This shows that the thermal problem in furnaces can be handled with relatively simple models with good accuracy.
机译:在工业精炼炉中,在蒸馏前加热原油的热传递​​效率通常会因燃料管内的焦炭沉积而改变。这导致生产和维护成本增加,并且需要更好的理解和控制。原油结垢是一阶受热控制的化学反应。在这样的大型熔炉中,主要的传热过程是热燃烧产物产生的热辐射,该燃烧产物直接加热管道。由于辐射通量取决于温度差,因此管道表面温度也起着重要作用,需要以足够的精度进行预测。管道表面温度是由热辐射,结缔热传递和管道固体材料中的热传导之间的能量平衡引起的,这意味着整个系统的热行为是辐射-对流-传导耦合问题。在这项工作中,这种耦合问题在圆柱形炉中得以解决,其中在垂直管中流动的原油被加热。使用离散纵坐标方法(DOM)对燃烧气体的热辐射进行建模,并采用精确的光谱模型,并与管道中的热传导耦合以预测其壁温。用复杂的化学燃烧模型描述火焰。能量平衡证实了热传递有效地控制了热传递。与真实炉子上辐射热通量的可用测量值的良好一致性表明,所提出的方法可预测正确的热传递给管道。这可以精确预测管道表面的温度场,这是管道内部液体结垢的关键参数。这表明可以用相对简单的模型以较高的精度处理熔炉中的热问题。

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  • 来源
    《Journal of Heat Transfer》 |2016年第7期|072101.1-072101.10|共10页
  • 作者单位

    CERFACS, 42 Avenue G. Coriolis, Toulouse 31170, France;

    CERFACS, 42 Avenue G. Coriolis, Toulouse 31170, France;

    CERFACS, 42 Avenue G. Coriolis, Toulouse 31057, France;

    CERFACS and IMFT, 2 Al. Pr. C. Soula, Toulouse 31400, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 00:22:18

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