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Bringing Forward the Next-Generation Multiphase Compressor

机译:推出下一代多相压缩机

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The world's energy demand is continuously increasing, and natural gas will play a vital role in covering the future need for energy as part of a shift toward a cleaner carbon fuel mix. Offshore reserves constitute a considerable part of the world's recoverable gas. Accordingly, viable development of these reserves is instrumental for future socially responsible energy production and meeting the commitments of the Paris agreement. The competitive marketplace for natural gas is challenging the subsea project economics now more than ever. This is driving the innovation for field enabling subsea technology solutions, targeting reduced capital and operational costs while increasing recovery of reserves compared with conventional offshore extraction. In 2015, the world's first subsea multiphase gas compression system was installed offshore Norway. The system comprises two-off 5-MW machines configurable for serial or parallel compression. This system has now gained considerable and valuable operational experience. One of the most noticeable learnings from the field operation is the way the multiphase compressor has been utilized to unlock abandoned liquid reserves. In addition to the gas produced, a cyclic production of more than 5,000 bbl/d has been documented. Operation of the system has also shown how the subsea compressors regulates the wells' backpressure and thus constitutes an effective pressure filter toward topside. This allows the operators to be more flexible with well operation without disturbing topside pressures. To effectively produce and improve ultimate recovery in large offshore gas fields, the next-step requirements for volumetric flow capacity and drawdown pressure become substantial for multiphase compressors. Accordingly, this also applies to the required shaft power. State-of-the-art computer modeling and aerodynamic testing has been applied to improve the compressor design and throughput capacity. The differential pressure capability of the multiphase compressor has, up until now, been limited by the ultimate load capability of the axial thrust bearing. A thrust-balancing solution is now being included, and detailed design work is ongoing as part of a larger technology collaboration with major operators. Enhancements of the motor technology to larger outputs is part of this program as well. Combined, these improvements are fundamental for the ongoing qualification of the 8 M W and later 12 MW multiphase compressors while adding flexibility to the associated system design. Shifting focus from compressor to system is a key factor to ensure the life-of-field return on investment. As tieback and power rating increases, minimizing the power system cost and complexity can entail rethinking of the compressor topology. This further justifies this focus shift in terms of field development planning. Ensuring an effective fit and compatibility with the subsea power system key units currently in qualification with world-leading powerhouses is a competitive advantage. The multiphase compressor, with its two-motor contrarotating design, ensures not only efficient power system compatibility but can contribute to game changing step-out topologies due to the low transmission frequency required for the power supply. Minimizing the complexity of both process and power architecture is crucial in terms of cost, robustness, and system reliability.
机译:世界的能源需求不断增加,天然气将在涵盖未来的能量方面发挥至关重要的作用,作为朝向清洁碳燃料混合物的转变的一部分。离岸储备构成了世界上可收回气体的相当大部分。因此,这些储备的可行发展是对未来的社会负责能源生产和符合巴黎协定承诺的工具。现在,天然气的竞争市场现在比以往任何时候都在挑战海底项目经济学。这是推动领域的创新,使海底技术解决方案,针对常规海上提取而增加了储量的减少和运营成本。 2015年,世界上第一个海底多相气体压缩系统安装了海上挪威。该系统包括用于串行或并联压缩的次开5-MW机器。该系统现已获得了相当大,有价值的业务体验。来自现场操作的最引人注目的学习之一是多相压缩机已经利用以解锁废弃的液体储备方式。除了产生的气体外,还记录了超过5,000桶/天的循环生产。系统的操作还示出了海底压缩机如何调节井的背压,从而构成有效压力过滤器朝向顶部。这使得操作员能够在不扰乱顶部压力的情况下具有良好的操作。为了在大型海上气田中有效地生产和改善最终的恢复,对多相压缩机的体积流量和凹凸压力的下一步要求变得很大。因此,这也适用于所需的轴功率。已应用最先进的计算机建模和空气动力学测试来提高压缩机设计和吞吐量容量。多相压缩机的差压能力直到现在,由轴向推力轴承的最终负载能力受到限制。现在正在包括推力平衡解决方案,并将详细的设计工作作为与主要运营商更大技术合作的一部分。电机技术的增强较大输出也是该程序的一部分。结合,这些改进是8 M W和更晚12 MW多相压缩机的持续资格的基础,同时增加了相关系统设计的灵活性。从压缩机到系统的转换焦点是确保现场终身投资回报的关键因素。随着RITBACK和额定功率的增加,最小化电力系统成本和复杂性可能需要重新思考压缩机拓扑。这进一步证明了在现场开发规划方面的焦点转变。确保与当前与世界领先的Powershouses有效的符合符合资格的海底电力系统关键单位的有效合适和兼容性是竞争优势。多相压缩机,其双电机逆向设计,不仅可以效率兼容,而且由于电源所需的低传输频率,可以为游戏改变拓扑拓扑产生贡献。最小化过程和功率架构的复杂性在成本,鲁棒性和系统可靠性方面至关重要。

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