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A study of top of the line corrosion under dropwise condensation .

机译:滴结条件下管线顶部腐蚀的研究。

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Top of the Line Corrosion (TLC) is a phenomenon encountered in wet gas transportation when problems of corrosion appear inside the pipe due to the condensation of water containing dissolved corrosive gases at the top of the line. Theoretically, TLC can be seen as consisting of three major processes: condensation, chemical reactions in the condensed water, and corrosion at the steel surface. In this study, the theories behind dropwise condensation, corrosion, and droplet transport are investigated. Based on the mechanisms, mathematic models are developed to predict the condensation rate, the corrosion rate, and the possibility of effective droplet transport.;In the dropwise condensation model, the heat and mass conservation equations are established to account for the effect of all important heat and mass transfer resistances. A numerical method is proposed to solve the non-linear equation system and predict the condensation rate. Meanwhile, through force analysis on a single droplet, the maximum droplet size and the condensation regime can be determined. With the inputs of the condensation rate and the droplet growth scenario from the dropwise condensation model, an electrochemical mechanism from Nesic et al. (1996) is adapted to model the corrosion process at the top of the line. The breakdown of species concentrations in the droplet is established through the main thermodynamic and chemical equilibria. The general corrosion rate is predicted using the kinetics of the electrochemical reactions at the steel surface and by taking into account the mass transfer and chemical reactions occurring inside the droplet. In order to verify the mechanistic model, long term experiments are conducted in large scale flow loops equipped with an in situ camera. In comparison with the experimental results, the model was able to predict reasonably well the condensation rate, the corrosion rate, and the condensation regime.;Being a standard method for corrosion control in the oil and gas industry, corrosion inhibitors are not useful for TLC prevention since traditional inhibitors are liquid and flow at the bottom of the line and cannot easily reach the top of the line where the aggressive condensed water is formed. However, it is believed that under certain circumstances inhibitors may be transported to the top of the line as entrained droplets are deposited there. In order to theoretically describe how and when a droplet is entrained from the liquid at the bottom and then deposited at the top of the line, several inception and transition criteria have been defined. Firstly, two mechanisms (undercutting and tearing) are determined for the onset of droplet formation. Secondly, according to the wave-mixing and entrainment-deposition mechanism, two criteria for the transition from stratified to non-stratified flow are established, respectively. Finally, an effective zone with well defined boundaries is introduced to provide operational guidance for the utilizing of corrosion inhibitors in TLC prevention.
机译:管道顶部腐蚀(TLC)是在湿气运输中遇到的一种现象,当管道内部由于包含溶解性腐蚀性气体的水在管道顶部凝结而出现腐蚀问题时,就会出现腐蚀问题。从理论上讲,TLC可以看作由三个主要过程组成:冷凝,冷凝水中的化学反应以及钢表面的腐蚀。在这项研究中,研究了滴状凝结,腐蚀和液滴传输背后的理论。基于这些机理,建立了数学模型来预测冷凝速率,腐蚀速率以及有效的液滴传输的可能性。在逐滴冷凝模型中,建立了热量和质量守恒方程来考虑所有重要因素的影响。传热和传质阻力。提出了一种数值方法来求解非线性方程组并预测冷凝速率。同时,通过对单个液滴的力分析,可以确定最大液滴尺寸和冷凝状态。根据凝结速率和液滴逐滴凝结模型中液滴生长情况的输入,Nesic等人的电化学机理。 (1996年)适用于模拟生产线顶部的腐蚀过程。液滴中物质浓度的分解是通过主要的热力学和化学平衡来确定的。通过使用钢表面电化学反应的动力学并考虑到液滴内部发生的传质和化学反应,可以预测一般的腐蚀速率。为了验证机械模型,在配备有现场摄像头的大型流量回路中进行了长期实验。与实验结果相比,该模型能够较好地预测冷凝速率,腐蚀速率和冷凝方式。;作为石油和天然气工业腐蚀控制的标准方法,缓蚀剂对TLC无效。由于传统的抑制剂是液体,并且在管线的底部流动并且不能轻易到达形成侵蚀性冷凝水的管线的顶部,因此可以预防。然而,据信在某些情况下,当夹带的液滴沉积在那里时,抑制剂可能被运输到管线的顶部。为了从理论上描述液滴是如何以及何时从底部的液体中夹带然后沉积在管线的顶部的,已定义了几种起始和转移标准。首先,确定了液滴形成的两种机制(底切和撕裂)。其次,根据波混和夹带-沉积机理,分别建立了从分层流向非分层流过渡的两个准则。最后,引入边界明确的有效区域,为在TLC预防中使用腐蚀抑制剂提供操作指导。

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