张硕,王家进,高文凯,等. 高温—超高温随钻测量技术现状及发展趋势[J]. 石油钻采工艺,2026,48(1):1-9. DOI: 10.13639/j.odpt.202508035
引用本文: 张硕,王家进,高文凯,等. 高温—超高温随钻测量技术现状及发展趋势[J]. 石油钻采工艺,2026,48(1):1-9. DOI: 10.13639/j.odpt.202508035
ZHANG Shuo, WANG Jiajin, GAO Wenkai, et al. Current status and development trend of high and ultra-high temperature measurement while drilling technology[J]. Oil Drilling & Production Technology, 2026, 48(1): 1-9. DOI: 10.13639/j.odpt.202508035
Citation: ZHANG Shuo, WANG Jiajin, GAO Wenkai, et al. Current status and development trend of high and ultra-high temperature measurement while drilling technology[J]. Oil Drilling & Production Technology, 2026, 48(1): 1-9. DOI: 10.13639/j.odpt.202508035

高温—超高温随钻测量技术现状及发展趋势

Current status and development trend of high and ultra-high temperature measurement while drilling technology

  • 摘要: 随着油气勘探开发持续向深层、超深层拓展,井下温度已达高温(150~175 ℃)、超高温(175~200 ℃)范畴,对随钻测量(MWD)技术的耐温、耐压、抗振等性能提出了严峻的挑战。目前,常规随钻测量系统耐温能力多限于150 ℃,难以满足深井及超深井钻井需求。国际油服公司如斯伦贝谢、哈里伯顿等,通过高效热管理、电源管理、抗振、模块化与高可靠性设计等主流技术路线,已成功研制出耐温175 ℃、185 ℃、200 ℃的系列化产品。尽管已在耐温方面取得标志性进展,但现有系统在长期高温高压环境下仍面临信号传输稳定性不足、元器件可靠性下降、系统集成度有限等共性挑战。在油气勘探开发向万米深层迈进的背景下,钻井工程难度持续攀升,未来发展趋势主要聚焦高温适应性提升、数据传输速率优化、系统稳定性强化、高精度动态姿态测量实现、随钻测量参数集成度提高、智能化升级等方面,这些突破将有力推动高温—超高温随钻测量技术与装备持续迭代升级,以期为万米深地钻探中精细化井眼轨迹控制与地质导向提供技术支撑,助力深层、超深层油气安全高效勘探开发。

     

    Abstract: With continuous advance of oil and gas exploration and development into deep and ultra-deep formations, the downhole temperature has reached the range of high temperature (150~175 ℃) and ultra-high temperature (175~200 ℃), which poses a severe challenge to the temperature resistance, pressure resistance and vibration resistance of MWD technology. At present, the temperature resistance of conventional MWD system is mostly limited to 150 ℃, which is difficult to meet the needs of deep and ultra-deep well drilling. International oilfield service companies such as Schlumberger and Halliburton have successfully developed a series of products with temperature resistance of 175 ℃, 185 ℃ and 200 ℃ by using mainstream technical methods such as efficient thermal management, power management, vibration resistance, modularization and high reliability design. Although significant progress has been made in high-temperature resistance, existing systems still face common challenges such as insufficient signal transmission stability, reduced component reliability, and limited system integration in long-term high temperature and high pressure environments. There is still room for improvement in data transmission rate and dynamic attitude measurement accuracy. Under the background of oil and gas exploration and development advancing towards ten-thousand-meter depth, the drilling engineering becomes more challenging. The future development trend mainly focuses on the improvement of high temperature adaptability, optimization of data transmission rate, enhancement of system stability, realization of high-precision dynamic attitude measurement, improvement of integration of measurement parameters while drilling, and intelligent upgrading. These breakthroughs will promote the continuous iteration and upgrading of high and ultra-high temperature measurement while drilling technology and equipment, in order to provide technical support for fine wellbore trajectory control and geosteering in ten-thousand-meter deep drilling, and facilitate the safe and efficient exploration and development of deep and ultra-deep oil and gas.

     

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