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Carbon capture and high-capacity supercritical fluid processing with supersonic separator: Natural gas with ultra-high CO2 content

机译:具有超声波分离器的碳捕获和高容量超临界流体加工:天然气具有超高二氧化碳含量

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Some deep-water offshore fields produce oil with high gas/oil ratios and ultra-high %CO2 (> 60% mol) with the onus of processing low-grade gas simultaneously handling huge CO2 dispatch goals. Thus, processing solutions are needed to make feasible such high-capacity gas rigs hundreds of kilometers offshore. Feasibility relies on the choices for CO2 capture and adjustment of water and hydrocarbon dew-points of such high flow rate gas. This problem was approached adopting supersonic separators for dew-point adjustments and for CO2 capture on a floating-hub processing 50 MMsm(3)/d of CO2 ultra-rich gas, reinjecting 96% of treated CO2-rich gas for enhanced oil recovery, while reserving 4% as fuel-gas after CO2 abatement to 20% mol for power production. Process alternatives were assessed in terms of power demand and profitability comparing supersonic separator with membrane-permeation for CO2 removal. Results show that 1st supersonic separator for dew-point adjustments of raw gas recycling condensate to the oil-gas-water separator and 2nd supersonic separator for CO2 removal avoiding CO2 freeze-out, give optimum net present value and minimum CO2 emissions. On one hand, these facts are consequences of less compressor investment as 2nd supersonic separator ejects pressurized CO2 condensate requiring 5% less compression power for enhanced oil recovery relatively to the power required by the lowpressure CO2-rich permeate from the membrane-permeation alternative. On the other hand, the best net value of supersonic separator alternative also reflects its highest revenues derived from recycling condensate from 1st supersonic separator entailing 18% higher oil production.
机译:一些深水海上田野,用高级气体和超高%CO2(> 60%摩尔)生产油,加工低级气体同时处理巨大的二氧化碳派遣目标。因此,需要加工解决方案来制造可行的这种高容量的燃气钻机数百公里的海上。可行性依赖于二氧化碳捕获和调整水和烃露点的选择的选择。接近该问题采用超声波分离器进行露点调节,并在浮动中心处理50mMSM(3)/ d的CO2超富气体上的CO2捕获,重新加入96%的经处理的CO 2富含储存的气体,以增强采油,在二氧化碳减少到20%摩尔的电力生产后,保留4%的燃料气体。根据电力需求和盈利能力评估过程替代方案,比较超音速分离器与膜渗透的CO 2去除。结果表明,第一个超音速分离器用于对油气 - 水分离器的原料气体回收冷凝物的露点调节,用于避免CO2冻结的二氧化碳 - 水 - 水分离器和第二超声波分离器,得到最佳的净现值和最小二氧化碳排放。一方面,这些事实是压缩机投资的后果,因为第二超声波分离器喷射加压的CO2冷凝物,需要5%的压缩动力,用于相对于从膜 - 渗透替代方案中富含低压CO 2的渗透物所需的功率而增强的采油。另一方面,超音速分离器替代方案的最佳净值也反映了其从10%的石油产量提高18%的超音速分离器的回收冷凝物的最高收入。

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