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The Use of Flexible Pipe for CO_2 Enhanced Oil Recovery Applications.

机译:将挠性管用于CO_2增强采油的应用。

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The use of CO_2 rich gas mixtures as injection fluid is nowadays considered in order to enhance the oil recovery process. Flexible pipes, which have been used to transport oil and gas in offshore applications for more than 35 years, are attractive products for the transportations of such fluids. The CO_2 content encountered for these applications can be higher than 90%. This value being superior to what is found in standard applications (<15%), and CO_2 being known to behave as a supercritical fluid as soon as the temperature and the pressure are higher than 31.1°C, 72.8 atm, the compatibility of the pipe materials with the CO_2 rich gas mixture had to be verified.This paper will present the qualification work carried out so far on several thermoplastic materials used for flexible pipe pressure sheathes and stainless steel carcasses. This qualification work covers application as high as 90°C/600bar/100%CO_2.The formation of blisters (blistering) is known as a possible degradation mode of thermoplastic materials when subjected to rapid gas decompression. This phenomenon is directly linked to the fluid solubility in the polymer. Different materials have been tested for their ability to withstand rapid gas decompression in CO_2 rich gas mixtures.Long time exposure tests have been carried out. The objectives of these tests were to check the impact of CO_2 on the physical, mechanical and chemical properties of the polymer grades. A special attention has been brought to the plasticizer effect of CO_2. The impact of supercritical CO_2 on the hydrolysis degradation mode has also been assessed.Finally, CO_2 being a small molecule, it will permeate through the pressure sheath to reach the annulus. The metallic layers which are constitutive of this annulus are potentially sensitive to corrosion phenomenon in acidic conditions. A good knowledge of the permeation properties of the polymer materials when subjected to high pressure CO_2 is necessary in order to assess the severity of this annulus and to select the appropriate steel grade. The results of such tests will also be presented.
机译:如今考虑使用富含CO_2的气体混合物作为注入流体,以增强采油过程。在海上应用中已使用石油和天然气运输超过35年的挠性管是用于此类流体运输的诱人产品。这些应用遇到的CO_2含量可能高于90%。该值优于标准应用中的值(<15%),并且一旦温度和压力高于31.1°C,72.8 atm,即与管道兼容,CO_2就会表现出超临界流体的作用。含有丰富CO_2气体混合物的材料必须进行验证。本文将介绍迄今为止对用于挠性管压力护套和不锈钢骨架的几种热塑性材料进行的鉴定工作。这项鉴定工作涵盖了高达90°C / 600bar / 100%CO_2的应用。在快速减压下,形成气泡(起泡)是热塑性材料可能的降解方式。这种现象与聚合物中的流体溶解度直接相关。已测试了各种材料在富含CO_2的气体混合物中承受快速气体减压的能力。已进行了长时间的暴露测试。这些测试的目的是检查CO_2对聚合物牌号的物理,机械和化学性质的影响。特别关注了CO_2的增塑剂效果。还评估了超临界CO_2对水解降解方式的影响。最后,CO_2是一个小分子,它将通过压力护套渗透并到达环空。构成该环的金属层可能对酸性条件下的腐蚀现象敏感。为了评估该环空的严重程度并选择合适的钢种,有必要对聚合物材料在承受高压CO_2时的渗透性能有充分的了解。还将显示此类测试的结果。

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