一个相当的循环密度预测模型,用于扩展范围的水平井,考虑到钻孔绳的正弦曲折
Zhao Huang1, Yanfei Li1, Kun Jiang2
1Drilling & Completion Project Team, Pinghu Oil & Gas Field in the East China Sea, CNOOC (China) Limited, Shanghai, 200335, China.
Scientific reports
|July 22, 2025
概括
钻孔弦的侧侧曲导致长距离井的深度测量误差. 一个新的模型纠正了同等循环密度 (ECD) 的计算,提高了井控制的准确性.
科学领域:
- 石油工程是石油工程中的一个.
- 钻井机械学 钻井机械学
背景情况:
- 扩展范围的水平井 (ERHWs) 面临着钻孔绳曲的挑战.
- 曲导致井深和垂直深度测量不准确.
- 这些错误显著影响等效循环密度 (ECD) 计算和井控制.
研究的目的:
- 为ERHWs开发一个更正的ECD计算模型.
- 为了解决由钻孔绳曲引起的井深和垂直深度测量误差.
- 为了提高钻井操作期间的ECD控制的准确性.
主要方法:
- 纠正了传统的ECD计算模型.
- 嵌入的测量错误来自侧面钻孔弦曲.
- 专门为ERHWs建立了一个新的ECD模型.
- 使用来自东中国海的现场数据验证了模型.
主要成果:
- 拟议模型的预测与 sinus 曲过程中记录的 ECD 值非常相匹配.
- 新模型预测,由于钻孔绳长度增加,在发生曲时,ECD值较低.
- 钻机绳曲度增加导致预测的ECD值较小.
结论:
- 开发的模型为ERHWs提供了更准确的ECD预测,其中有形钻弦曲.
- 这种提高的精度降低了钻探风险,并提高了井控制操作.
- 该模型提供可靠的参考数据,用于在具有挑战性的井口中进行精细的ECD控制.
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