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Laser Gun: The Next Perforation Technology

机译:激光枪:下一个穿孔技术

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Establishing communication between the wellbore and hydrocarbon-bearing formations is critical to ensure optimal production. Laser technology utilizes the power of light to perforate rocks and achieve this goal. The technology is non-damaging, safe (nonexplosive), and affords precise control over the perforation's geometry (size and shape). The technology has been successfully demonstrated in the lab environment. The process creates an enhanced tunnel that improves the flow and increases production. The results have guided the development of a field deployment strategy. In the field, the laser source will be mounted on a coiled tubing unit on the surface and the beam transmitted downhole via optical fibers. Downhole, the beam will be out-coupled and directed to the target using an optical bottom-hole assembly (oBHA). This tool combines optical and mechanical components to control the beam and produce multiple shots per foot as needed to create the desired perforation network. High power laser perforation is the next intelligent perforation generation that will change current well perforation. Laser-rock interaction drives in the transformation of electromagnetic (EM) energy into thermal energy. This results in a highly localized and controllable temperature surge that can melt or vaporize the rocks. These properties make the technology a unique alternative to current perforation techniques based on shaped charge guns. The thermal process induced by the laser enhances the flow properties of the rock, especially in tight formations. Laser perforation has been tested on all types for rocks, including unconventional tight sands. This has been proven through extensive pre- and post-perforation characterization over the last two decades. This work presents the development and evolution of the high power laser tools for subsurface applications. These tools provide innovative and non-damaging alternatives to current downhole technologies. In the lab, the laser technology has been proven to improve the flow properties; therefore, it can improve communication between the welibore and formation. To achieve this efficiently in the field, it is necessary to develop different tool designs and configurations, manufacture prototypes, conduct extensive tests, and optimize each part before upscaling for field operations. The laser source is mounted in a coil tubing rig at the surface; the coil contains the optical fiber cable used to convey the energy to the downhole tool. The tool combines mechanical and optical components to transform, control, and direct the laser beam. The design and configuration of each tool assembly varies depending on the targeted application. For example, the perforation tool converts and splits the beam into several horizontal beams; whereas the drilling tool emits a straight beam with a controlled size for deeper penetration. They also incorporate purging capabilities to circulate fluids to clean the hole from the debris and carry the cuttings. The entire assembly must be made to fit in slim holes as small as 4", and be ruggedized to operate in a complex environment with high-pressures and high temperatures. The technology improves reach and provides versatility in a compact and environmentally friendly manner. For example, it is a waterless technology when it is used for fracturing, and a nonexplosive-based perforation when it is used to perforate. The unique features of the technology enable a precise, controlled, and oriented delivery of energy in any direction, regardless of the reservoir stress orientation and magnitude. Therefore, it enhances reach to produce from pay zones that are bypassed by current conventional technologies and practice. The motivations to search alternative technologies are the advancement of technologies, including elevated higher power laser systems, and the need to enhance several applications in deeper wells in an environmentally friendly manner.
机译:建立井筒和含烃地层之间的沟通至关重要,确保最佳生产。激光技术利用光的力量来穿孔岩石,实现这一目标。该技术是非损坏的,安全(非缺乏),并在穿孔的几何形状(尺寸和形状)上提供精确的控制。该技术已在实验室环境中成功展示。该过程创建增强隧道,可提高流量并增加生产。结果引导了现场部署策略的发展。在该领域中,激光源将安装在表面上的盘管单元上,并且光束通过光纤传递井下。井下,光束将使用光学底孔组件(OBHA)外耦合并向目标引导。该工具结合了光学和机械部件来控制光束并根据需要产生多个镜头以产生所需的穿孔网络。高功率激光穿孔是下一个智能穿孔产生,将改变电流井穿孔。激光岩相互作用驱动电磁(EM)能量的变化为热能。这导致高度本地化和可控的温度浪涌,可以熔化或蒸发岩石。这些属性使技术成为基于形状的电荷枪的当前穿孔技术的独特替代方案。由激光诱导的热处理增强了岩石的流动性质,尤其是在狭小地层中。激光穿孔已经在所有类型的岩石上进行了测试,包括非常规紧身的沙子。这已在过去二十年中经过广泛的穿孔特征而被证明。这项工作介绍了用于地下应用的高功率激光工具的开发和演变。这些工具为当前井下技术提供了创新和非损坏的替代品。在实验室中,已被证明激光技术以改善流动性质;因此,它可以改善韦米尔和地层之间的沟通。为了在现场中有效地实现,有必要开发不同的工具设计和配置,制造原型,进行广泛的测试,并在升高前进行现场操作之前优化每个部分。激光源安装在表面的线圈管道中;线圈包含用于将能量传送到井下工具的光纤电缆。该工具结合了机械和光学元件来变换,控制和引导激光束。每个工具组件的设计和配置根据目标应用而变化。例如,穿孔工具转换并将光束分成几个水平梁;虽然钻孔工具用控制尺寸发射直梁,以便更深的渗透。它们还采用了吹扫功能来循环流体以清洁碎屑的孔并携带扦插。必须使整个组件适合小于4“的细长孔,并坚固耐用地在具有高压和高温的复杂环境中操作。该技术以紧凑且环保的方式提供多功能性。对于例如,当它用于穿孔时,它是一种无水技术,当其用于穿孔时,它是一种无水型穿孔。该技术的独特特征能够在任何方向上实现精确,受控和导向的能量输送,无论如何储层应力取向和幅度。因此,它增强了从当前传统技术和实践旁路的工资区域产生的达到。搜索替代技术的动机是技术的进步,包括高功率激光系统,并且需要提升以环保的方式增强深层井中的若干应用。

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