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隨鉆核磁共振測(cè)井探測(cè)器構(gòu)建方法研究
李新,,羅嗣慧,,肖立志,孫哲,,汪正垛
1 中國(guó)石化石油工程技術(shù)研究院頁(yè)巖油氣富集機(jī)理與有效開(kāi)發(fā)國(guó)家重點(diǎn)實(shí)驗(yàn)室,,北京 100101
Construction method study of NMR probe for logging while drilling
LI Xin, LUO Sihui, XIAO Lizhi, SUN Zhe, WANG Zhengduo
1 State Key Laboratory of Shale Oil and Gas Enrichment Mechanisms and Effective Development, Sinopec Research Institute of

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摘要? 隨鉆核磁共振測(cè)井技術(shù)在鉆井過(guò)程中實(shí)時(shí)獲得油氣藏的地球物理信息,鉆井條件下的惡劣環(huán)境對(duì)隨鉆核 磁共振測(cè)井探測(cè)器的設(shè)計(jì)和實(shí)現(xiàn)提出挑戰(zhàn),。本文探討了隨鉆核磁共振探測(cè)器設(shè)計(jì)的基礎(chǔ)工程和科學(xué)問(wèn)題,,基于 井下條件和核磁共振測(cè)量的特殊性研究探測(cè)器構(gòu)建方法。采用居中式測(cè)量,、旋轉(zhuǎn)對(duì)稱(chēng)低梯度靜磁場(chǎng),、單一工作 頻率,、適中探測(cè)深度、中等敏感區(qū)高度等構(gòu)建適于標(biāo)準(zhǔn)鉆鋌的探測(cè)器實(shí)用結(jié)構(gòu),。主磁體基于經(jīng)典“inside-out” 組合,引入聚焦磁體改善敏感區(qū)形狀,,利用 2D和 3D有限元方法仿真模擬電磁場(chǎng)分布,,研究得到共振頻率、靜 磁場(chǎng)梯度和敏感區(qū)等探測(cè)特性,。磁體組合產(chǎn)生的靜磁場(chǎng)旋轉(zhuǎn)對(duì)稱(chēng),、梯度中等,有利于降低儀器軸向和徑向?qū)y(cè) 量的影響,。收發(fā)線(xiàn)圈由多匝銅帶繞螺線(xiàn)管構(gòu)成,,產(chǎn)生軸對(duì)稱(chēng)的射頻場(chǎng),推導(dǎo)調(diào)諧和匹配計(jì)算方法得到諧振快速 調(diào)節(jié)圖版,,將樣機(jī)天線(xiàn)阻抗調(diào)諧與譜儀系統(tǒng)匹配提高發(fā)射效率,。在實(shí)驗(yàn)室搭建了全尺寸隨鉆核磁共振測(cè)井探測(cè) 器,利用自研電路系統(tǒng)聯(lián)調(diào)驗(yàn)證方案,。開(kāi)展了多等待時(shí)間和多回波間隔的回波串采集實(shí)驗(yàn),,利用正則化拉普拉 斯逆變換得到單相流體樣品的橫向弛豫時(shí)間分布。實(shí)驗(yàn)結(jié)果表明,,核磁共振回波串信號(hào)信噪比良好,,橫向弛豫 時(shí)間分布呈單峰分布并與期望值一致,驗(yàn)證了探測(cè)器構(gòu)建方法和方案設(shè)計(jì),。
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關(guān)鍵詞 : 隨鉆核磁共振,;聚焦磁體,;探測(cè)器;梯度磁場(chǎng)
Abstract
The nuclear magnetic resonance logging while drilling (NMR LWD) technique has advantages of providing real-time petrophysical information of in-situ oil & gas reservoirs during drilling. However, rigorous and harsh downhole conditions during NMR measurement pose great challenges for NMR LWD sensor design and implementation, including restricted space, motion states and limited downhole power supply. In this paper, fundamental engineering and scientific issues of NMR-LWD sensors are discussed based on special drilling downhole conditions and special features of NMR measurements. Key suggestions for NMR LWD sensor design are proposed. These are mandrel centered-type measurement, axis-symmetric low gradient fields, single frequency, moderate depth of investigation (DOI) and region of interest (ROI) height, a simple and practical assembly structure suitable for drill collars. A novel NMR LWD probe design is proposed based on the above understanding, where DOI and ROI are developed by using an optimized magnet configuration and permanent magnetic materials. The main magnet assembly is based on a classical inside-out configuration with a size constraint of a standard 6.75 inch non-magnetic drill collar, which is then improved by utilizing a circular focusing magnet between them. Static magnetic field distributions of the designed NMR sensor are given with 2D and 3D FEM methods. Characteristics were investigated including Larmor frequencies, static magnetic field gradient and sensitive volumes. The static magnetic field B0z produced by this magnet assembly is rotationally symmetrical with high resonant frequency, signal intensity and a compromised magnetic gradient, which has the advantage of alleviating axial and radial movement effects on measurement. The TR coil is a solenoid made of several turns of copper belts, resulting in an axisymmetric RF B1 field, which has a natural perpendicular relationship with B0z. Tuning and matching procedures are also discussed and calculated, several reference charts of capacities combination are given for rapid resonance circuit adjustment. The prototype antenna is tuned to have an impedance of about 500 Ω consistent with the spectrometer’s to improve power transmission efficiency. A full-size prototype NMR LWD sensor was built and tested jointly with the electronic circuits on a testing platform under laboratory conditions. In-house electronics and acquisition systems are used to validate the sensor design. Multi TW and TE CPMG experiments are carried out while the sensor is in a static state. Echo trains are successfully obtained and T2 distribution is demonstrated using 1D inverse Laplace transforms. The echo trains have adequate SNR and all T2 distribution have a single peak in accordance with fluid samples prepared as expected. The results show the NMR LWD design’s feasibility and potential.  

 

Key words: nuclear magnetic resonance logging while drilling; focusing magnet; probe; gradient magnetic field
收稿日期: 2020-06-30 ????
PACS: ? ?
基金資助:國(guó)家重大科研儀器研制項(xiàng)目“極端環(huán)境核磁共振科學(xué)儀器研制”(21427812) 和國(guó)家科技重大專(zhuān)項(xiàng)“低滲透儲(chǔ)層高精度隨鉆成像技術(shù)研
究”(2016ZX05021-002) 資助
通訊作者: [email protected]
引用本文: ??
LI Xin, LUO Sihui, XIAO Lizhi, SUN Zhe, WANG Zhengduo. Construction method study of NMR probe for logging while drilling. Petroleum Science Bulletin, 2020, 02: 172-181.
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