磷酸铁锂电池与智能控制技术在输油气管道阀室光伏供电系统的应用

Application of lithium iron phosphate batteries and intelligent control technology in photovoltaic power supply systems for valve chambers

  • 摘要: 为提升偏远地区输油气管道阀室的供电可靠性,解决传统铅酸电池系统存在的寿命短、维护频繁、环境适应性差等问题,本研究设计并应用了一套基于磷酸铁锂电池与智能控制的新型光伏供电系统。以塔里木油田克东1#阀室为试验对象,集成混合钝化背接触(Hybrid Passivated Back Contact,HPBC)高效组件、双轴追光系统、蓄电池组智能管理系统(Battery Management System,BMS)、电池分组切换、远程监控及智能温控等技术,构建了一体化智能电源系统。试验结果表明:系统后备时间达74.2 h,日均有效发电时长达10.5 h,充电时间为78.5 h,电池剩余电量稳定在89% 以上,柜内温度控制在20 ~ 30 ℃;在极端环境下运行稳定,全生命周期成本较传统系统降低20% ~ 40%。该系统通过光—储—控协同优化,实现了阀室供电从“被动响应”到“主动预警”的智能化运维,显著提升了能源利用效率与系统可靠性。研究成果可为输油气管道阀室及其他偏远无人值守站场的供电系统建设提供技术参考,具备良好的推广应用前景。

     

    Abstract:
    To enhance the power supply reliability of valve chambers in remote oil and gas pipelines and overcome the limitations of traditional lead-acid battery systems-such as short lifespan, frequent maintenance, and poor environmental adaptability-this study designed and implemented a photovoltaic power supply system based on lithium iron phosphate batteries and intelligent control. Using Kedong 1# Valve Chamber in the Tarim Oilfield as a test site, an integrated intelligent power supply system was developed, incorporating high-efficiency Hybrid Passivated Back Contact modules, a dual-axis solar tracking system, an intelligent battery management system(BMS), battery bank switching, remote monitoring, and intelligent temperature control. The test results indicated that the system achieved a backup time of 74.2 hours, an average daily effective power generation duration of 10.5 hours, and a charging time of 78.5 hours, with the remaining battery capacity consistently maintained above 89%. The internal cabinet temperature was controlled between 20 ℃ and 30 ℃. The system operated stably under extreme conditions and reduced life-cycle costs by 20% ~ 40% compared to traditional systems. Through the collaborative optimization of photovoltaic, storage, and control technologies, the system transitioned valve chamber power supply from "passive response" to "active early warning", significantly improving energy efficiency and system reliability. These findings provide a valuable technical reference for developing power supply systems for oil and gas pipeline valve chambers and other remote, unattended stations, with considerable potential for widespread application.

     

/

返回文章
返回