首页> 外文会议>ASME international mechanical engineering congress and exposition >A NOVEL MAGNETICALLY-LEVITATED FLYWHEEL ENERGY STORAGE ALTERNATIVE TO LITHIUM-ION BATTERY PACKS FOR OILFIELD SERVICE
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A NOVEL MAGNETICALLY-LEVITATED FLYWHEEL ENERGY STORAGE ALTERNATIVE TO LITHIUM-ION BATTERY PACKS FOR OILFIELD SERVICE

机译:新型锂磁悬浮飞轮能量存储,可替代锂离子电池组用于油田服务

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In this study, a novel concept for a downhole flywheel energy storage module to be embedded in a bottom-hole-assembly (BHA) is presented and modeled, as an alternative power source to existing lithium-ion battery packs currently deployed in drilling operations. Lithium-ion batteries disadvantages include deteriorated performance in high temperature, limited lifetime that necessitates frequent replacement which elevates operation costs, and environmental hazards associated with its proper disposal. Extreme and harsh downhole conditions necessitate that the flywheel module withstands temperatures and pressures exceeding 300 ℉ and 20 kpsi, respectively, as well as violent vibrations encountered during drilling. Moreover, the flywheel module should adhere to the geometric constraints of the wellbore and the BHA in which it is embedded. A five-axis magnetic levitation control system was designed and tuned to maintain continuous suspension of the flywheel under the harsh lateral, axial and torsional drilling vibrations of the BHA. This necessitated complete identification and modeling of the drillstring dynamics and the sources of vibrations excitation that include stick-slip, bit-bounce, and whirling. Thus, an integrated finite element model was developed that included the rotordynamic behavior of the flywheel and the BHA, the component dynamics of the magnetic levitation control system, and the drillbit cutting dynamics. The model also included a newly developed model for coupling between lateral, axial and torsional vibrations. It was demonstrated through numerical simulations that the active magnetic bearings (AMB) successfully maintain continuous flywheel suspension due to all different types of external vibration as well as its own lateral vibration due to mass imbalance.
机译:在这项研究中,提出并建模了将井下飞轮储能模块嵌入井底钻具(BHA)中的新概念,并对其进行建模,以作为当前部署在钻井作业中的现有锂离子电池组的替代电源。锂离子电池的缺点包括高温下的性能下降,使用寿命有限(需要频繁更换,这会增加运行成本)以及与正确处置相关的环境危害。极端恶劣的井下条件使得飞轮模块必须承受超过300 respectively和20 kpsi的温度和压力,以及钻进过程中遇到的剧烈振动。此外,飞轮模块应遵守井筒和埋入其中的BHA的几何约束。设计并调整了五轴磁悬浮控制系统,以在BHA剧烈的横向,轴向和扭转钻探振动下保持飞轮的连续悬挂。这需要对钻具动力学和振动激发源(包括粘滑,钻头弹跳和回旋)进行完整的识别和建模。因此,开发了一个集成的有限元模型,其中包括飞轮和BHA的转子动力学行为,磁悬浮控制系统的组件动力学以及钻头切削动力学。该模型还包括一个新开发的模型,用于横向,轴向和扭转振动之间的耦合。通过数值模拟表明,由于所有不同类型的外部振动以及由于质量不平衡而产生的自身横向振动,主动电磁轴承(AMB)成功地保持了连续的飞轮悬架。

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