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Enhanced Steel Alloys Outperform Typical Bottomhole-Assembly Chemistries in Sour-Service Applications

机译:增强型钢合金优于酸疗应用中的典型底孔 - 组装化学品

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Many of today's aggressive drilling programs require well construction through sour formations to reach remote reservoirs.This has exposed limitations of traditional steel Chemistries used for bottom hole assembly(BHA)components.For many years,the industry has used traditional API materials in environments with low concentrations of hydrogen sulfide(H2S)and carbon dioxide(CO2).Higher temperature and low stress conditions in the deeper portion of the well have allowed for these BHA materials to operate adequately with few issues.However,the drive to drill in more corrosive and sour environments has increased the need to develop materials more aptly suited for harsh sour service conditions.To date,standardization bodies such as API and ISO do not provide specifications for the manufacture of sour service drill stem components.Consequently,organizational bodies such as the Industry Recommended Practices(IRP)in Canada are developing their own requirements for sour applications.The stringent requirements and improved mechanical properties required for sour applications prompted the industry to move away from API materials.This paper will present test results comparing standard API material and several alloyed variations.Results indicate that alloyed variations show a slight increase in resistance to hydrogen sulfide under low level concentrations while under higher concentrations;the materials show little to zero improvement.This paper will also present emerging alloying technology and enhanced heat treatment processes that have yielded materials exceptionally suited for aggressive sour applications.These materials exhibit excellent resistance to sulfide stress cracking(SSC)and have been successfully used in some of the most severe corrosive environments in the world(also presented).These enhanced BHA materials will significantly improve drilling efficiency by eliminating the risk of failure due to H2S and CO2 exposure.
机译:今天的许多侵略性钻井计划需要通过酸性地层进行良好的结构来达到远程水库。这具有用于底部孔组件(BHA)组件的传统钢化学物质的局限性。该行业在低的环境中使用了传统API材料硫化氢(H2S)和二氧化碳(CO2)的浓度。高温和低应力条件在井中的较深部分中允许这些BHA材料用很少的问题充分运行。然而,在更腐蚀性和更腐蚀性的驱动器中钻孔酸性环境增加了开发更适合苛刻的酸性服务条件的材料的需求。迄今为止,API和ISO等标准化机构不提供酸维修钻杆组件的制造规范。所在的,行业等组织机构加拿大的推荐实践(IRP)正在为酸申请制定自己的要求。Stringen酸应用所需的要求和改进的机械性能促使行业远离API材料。本文将呈现测试结果比较标准API材料和几种合金变异。结果表明合金化变化显示出对硫化氢的耐受性略微增加低水平浓度在较高浓度下;这些材料表现出很少的改善。本文还将出现新出现的合金化技术和增强的热处理过程,这些过程产生了极其适用于侵袭性酸的应用。这些材料表现出优异的耐硫化物应力裂解抗性( SSC)并已成功用于世界上一些最严重的腐蚀性环境(也提出)。这些增强的BHA材料将通过消除由于H2S和CO2暴露而导致的失效风险显着提高钻井效率。

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