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生物酶增效DTPA螯合剂解除重晶石堵塞的机理与性能

王稳石 王虎 任妮 王杰 蔡隽 蔡记华

王稳石,王虎,任妮,等. 生物酶增效DTPA螯合剂解除重晶石堵塞的机理与性能[J]. 钻井液与完井液,2026,43(3):357-365 doi: 10.12358/j.issn.1001-5620.2026.03.008
引用本文: 王稳石,王虎,任妮,等. 生物酶增效DTPA螯合剂解除重晶石堵塞的机理与性能[J]. 钻井液与完井液,2026,43(3):357-365 doi: 10.12358/j.issn.1001-5620.2026.03.008
WANG Wenshi, WANG Hu, REN Ni, et al.Mechanism and performance of bioenzyme-enhanced dtpa chelator in removing barite plugging[J]. Drilling Fluid & Completion Fluid,2026, 43(3):357-365 doi: 10.12358/j.issn.1001-5620.2026.03.008
Citation: WANG Wenshi, WANG Hu, REN Ni, et al.Mechanism and performance of bioenzyme-enhanced dtpa chelator in removing barite plugging[J]. Drilling Fluid & Completion Fluid,2026, 43(3):357-365 doi: 10.12358/j.issn.1001-5620.2026.03.008

生物酶增效DTPA螯合剂解除重晶石堵塞的机理与性能

doi: 10.12358/j.issn.1001-5620.2026.03.008
基金项目: 中国地质调查局地质调查项目“东部地区战略性矿产靶区查证技术支撑(长沙中心)”(DD20242960);国家自然科学基金面上项目“深部煤层气水平井钻井液流变特性及其图像识别方法研究”(42572289)、“钻井液侵入作用下纳米纤维 - 颗粒协同堆积演化与页岩封堵抑制机制研究”(42472375)。
详细信息
    作者简介:

    王稳石,1982 年生,正高级工程师,勘查技术与工程专业,主要从事钻探工艺研究工作。E-mail:wangwenshi05@163.com

    通讯作者:

    王虎,高级工程师,主要从事钻探工程研究工作。E-mail:516775129@qq.com

  • 中图分类号: TE 254.4

Mechanism and Performance of Bioenzyme-Enhanced DTPA Chelator in Removing Barite Plugging

  • 摘要: 低温地热井钻遇高压地层时,加重钻井液中的重晶石(BaSO4)在压差作用下侵入地层裂缝,形成难溶性滤饼堵塞渗流通道,导致产能下降。常规酸化措施难以有效溶解重晶石,而以氨基多羧酸盐(如二乙烯三胺五乙酸,DTPA)为主的螯合型解堵剂成为潜在解决方案。该研究以DTPA为主剂,系统考察了反应温度、主剂浓度、生物酶(α-淀粉酶)和碱性转化剂(K2CO3)对重晶石溶蚀效果的影响,通过泥饼溶解实验与扫描电镜(SEM)评价了解堵剂性能,揭示其作用机理。结果表明:①DTPA溶液对重晶石的溶蚀能力随温度升高而增强;在温度为65 ℃时,DTPA的最佳浓度为15%;在此基础上,添加0.5% α-淀粉酶和4% K2CO3可协同提升溶蚀效果,并由此获得了最优的解堵配方(15% DTPA+0.5% α-淀粉酶+4% K2CO3),重晶石的溶蚀能力达35.3 g/L;②SEM分析结果表明,处理后的重晶石颗粒表面呈现多孔破碎形貌,粗糙度显著增加;泥饼溶解实验证实,该解堵剂能高效渗透并溶蚀分散重晶石滤饼;机理研究表明,DTPA通过诱导晶格畸变与螯合作用协同溶解重晶石;③提出了“溶质比”指标,用以表征井壁上重晶石清除效率。不同钻孔中溶质比均大于1,说明该解堵剂可一次性有效清除井壁上附着的滤饼。研究成果为低温地热井钻井储层保护提供了技术参考。

     

  • 图  1  反应温度与重晶石溶蚀能力的关系

    图  2  65 ℃下DTPA浓度与重晶石溶蚀能力的关系

    图  3  生物酶对重晶石的溶蚀能力的影响

    图  4  不同浓度碳酸钾与重晶石溶蚀能力的关系

    图  5  重晶石泥饼溶解前后状态

    图  6  重晶石溶解前后的扫描电镜图

    图  7  螯合剂清除重晶石泥饼机理示意图

    表  1  转化剂对重晶石溶蚀能力的影响

    转化剂溶蚀能力/(g·L−1转化剂溶蚀能力/(g·L−1
    空白32.1KCl25.7
    Na2CO331.9KOH23.5
    K2CO333.8CaCl2
    下载: 导出CSV
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出版历程
  • 收稿日期:  2026-01-08
  • 修回日期:  2026-03-02
  • 网络出版日期:  2026-06-12
  • 刊出日期:  2026-06-12

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