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Breaking New Grounds and Records for Unconventional Reservoirs Characterization Using the New Formation Testing and Sampling Technology

机译:利用新的地层测试和采样技术打破了对非传统水库特征的新地面和记录

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An exploration deep well crossing two reservoirs with different quality and properties, having an objective of: Fluid identification and sampling in extremely tight section (~0.02mD/cP mobility) as well as in another section that is suspected to be depleted with very high overbalance exceeding legacy tools, knowing the hydrostatic pressure being ~9500psia. Wireline formation tester was run using single probe, leading to 65% of tight stations, the rest were valid but with very low mobility. This exposes the tool to an increasing pressure differential exceeding its physical limit and leading to damaging it. This makes any further analysis impossible. The toolstring was upgraded with latest technology of WFT, that is a merge between probe based and dual packer modules. This new technology was designed with extreme environments in mind, that allows sampling in all mobility range from extreme tight to very high with its capability of holding up to 8000psia differential pressure. In the job described here, some of the tested reservoir sections were differentially depleted, something unknown to customer as this was an exploration environment. Since this information were not know even after the completion of the first and second run, a third run was carried out with the objective of re-investigating the same depths performed by the single probe, but this time 3D Radial Probe was used instead. This gave the advantage of taking the pressure down to almost 0 psia. The potential hydrocarbon zone which was bypassed (seen dry with single probe) was then tested with 3D radial probe giving a reservoir pressure of 2864psia with a mobility of ~300mD/cP where gas condensate was identified and captured. Now for the extreme tight reservoir section, in combination with high hydrostatic, the mechanical limitation of traditional tools remains the same making sampling and/or fluid ID impossible. An attempt was made using the 3D radial probe, and despite the extreme low mobility ~0.02mD/cP, an identification of the reservoir fluid (water) was successfully completed without any issue. The use of 3D Radial Probe technology gave a completely different picture from what was expected, enabled the completion of all objectives and made the impossible (with conventional technology) possibly and easily achievable. This resulted in changing the well strategies accordingly and complete the well successfully. The new technology made the testing of unconventional reservoirs a reality.
机译:探索深井跨越两个具有不同质量和性质的储层,具有以下目标:在极其紧密的部分(〜0.02md / cp流动性)中的流体识别和取样,以及怀疑耗尽的另一部分具有非常高的过分抑制超出遗留工具,了解静水压力为9500psia。有线形成测试仪使用单个探头进行运行,导致65%的紧张站,其余的有效,但移动性非常低。这使工具暴露于越来越大的压差超过其物理限制并导致损坏它。这使得任何进一步的分析是不可能的。使用最新技术的WFT技术升级了该工具机,这是基于探头和双封装模块之间的合并。这项新技术旨在考虑极端环境,允许在所有移动性范围内采样从极端紧张到非常高,其能力保持高达8000psia差压。在这里描述的作业中,一些测试的储层部分差异耗尽,顾客未知的东西,因为这是一个探索环境。由于即使在第一和第二运行完成之后,该信息尚不知道,则采用第三次运行,目的是重新调查单个探针执行的相同深度,但代替该时间3D径向探针。这使得将压力降至几乎0 PSIA的优势。然后用3D径向探针旁路(用单一探针检测干燥的含烃区,3D径向探针为2864ps的储层压力为〜300md / Cp,鉴定和捕获气体冷凝物。现在,对于极端的储层部分,与高静水液压,传统工具的机械限制保持相同的制作采样和/或流体ID不可能。尝试使用3D径向探针进行,尽管极低的迁移率〜0.02MD / CP,但储存液(水)的鉴定而没有任何问题。 3D径向探测技术的使用从预期的内容中获得了完全不同的图片,使所有目标的完成能够完成并使不可能的(与传统技术)可能并且很容易实现。这导致相应地改变了井策略并成功完成了良好的策略。新技术取得了现实的非传统水库的测试。

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