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首頁» 過刊瀏覽» 2025» Vol.10» lssue(1) 156-168???? DOI : 10.3969/j.issn.2096-1693.2025.02.001
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天然氣水合物巖心樣品帶壓參數(shù)測(cè)試系統(tǒng)與實(shí)驗(yàn)研究
魯浩然, 盧春華, 黃柳松, 譚疇江, 喬夢(mèng)迪
中國(guó)地質(zhì)大學(xué)( 武漢) 工程學(xué)院,,武漢 430074
Testing system and experimental study on pressure parameters of natural gas hydrate core samples
LU Haoran, LU Chunhua, HUANG Liusong, TAN Choujiang, QIAO Mengdi.
Faculty of Engineering, China University of Geosciences, Wuhan 430074, China

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摘要? 天然氣水合物被認(rèn)為極有可能成為未來最有遠(yuǎn)景的新型接替能源,,引起世界各國(guó)的廣泛關(guān)注,。天然氣水合物性能參數(shù)帶壓測(cè)試分析,,對(duì)解釋賦存于地層中的水合物生長(zhǎng)機(jī)理與預(yù)測(cè)水合物分解過程中地層物理力學(xué)性質(zhì)變化等極為重要,更是構(gòu)建上述復(fù)雜情況下水合物賦存地層行為預(yù)測(cè)模型的關(guān)鍵所在,,對(duì)評(píng)估儲(chǔ)層內(nèi)天然氣水合物賦存方式和資源量都具有重要意義,。通過地震或者測(cè)井所得數(shù)據(jù)對(duì)水合物巖心各項(xiàng)參數(shù)進(jìn)行估算往往與實(shí)際值存在較大誤差,且在現(xiàn)有技術(shù)條件下又很難進(jìn)行原位地層參數(shù)測(cè)試,,所以通過鉆井獲取水合物地層巖心再對(duì)其物理化學(xué)及力學(xué)性質(zhì)進(jìn)行測(cè)試與分析是最為可靠的方法,。歐盟、美國(guó),、德國(guó)等少數(shù)發(fā)達(dá)國(guó)家和地區(qū)已成功研制出水合物保真巖心樣品后處理和現(xiàn)場(chǎng)測(cè)試分析裝置并在生產(chǎn)現(xiàn)場(chǎng)應(yīng)用,,中國(guó)目前與深部海洋天然氣水合物保壓取樣鉆具對(duì)接的巖心現(xiàn)場(chǎng)測(cè)試分析和后處理技術(shù)仍不成熟,現(xiàn)場(chǎng)測(cè)試多數(shù)依靠國(guó)外相關(guān)檢測(cè)裝置和檢測(cè)方法,。本文介紹了一種天然氣水合物保壓巖心樣品現(xiàn)場(chǎng)參數(shù)測(cè)試分析系統(tǒng)的工作原理,、關(guān)鍵技術(shù)及相關(guān)實(shí)驗(yàn)研究。該系統(tǒng)主要由巖心抓捕和切割單元,,取樣器保壓?jiǎn)卧?,巖心樣品參數(shù)測(cè)試單元,巖心樣品存儲(chǔ)單元,、溫度和壓力維持單元等組成,,論文詳細(xì)介紹了各單元的結(jié)構(gòu)和工作原理。為了驗(yàn)證參數(shù)測(cè)試系統(tǒng)的工作性能及不同壓力環(huán)境對(duì)參數(shù)測(cè)試的影響,,制備了3 種不同組分的模擬巖心,,在不同壓力下進(jìn)行了縱波波速、電阻率和剪切強(qiáng)度測(cè)試,。研究表明:該天然氣水合物巖心樣品帶壓參數(shù)測(cè)試系統(tǒng)能夠在30 MPa的高壓下穩(wěn)定可靠工作,;壓力對(duì)巖心樣品電阻率的影響不大;對(duì)波速測(cè)試有影響,,壓力越大,,縱波波速度越大;壓力對(duì)巖心剪切強(qiáng)度的影響也比較大。
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關(guān)鍵詞 : 天然氣水合物,保壓,巖心樣品,參數(shù)測(cè)試,實(shí)驗(yàn)研究
Abstract

Natural gas hydrates are considered highly likely to become the most promising new alternative energy source in the future, attracting widespread attention from countries around the world.The analysis of performance parameters of natural gas hydrates through pressure testing is extremely important for explaining the growth mechanism of hydrates existing in the formation and predicting changes in the physical and mechanical properties of the formation during hydrate decomposition. It is also the key to constructing a prediction model for the occurrence behavior of gas hydrates in the complex situations mentioned above, which is of great significance for evaluating the occurrence mode and resource quantity of natural gas hydrates in the reservoir. Estimating various parameters of hydrate cores using seismic or logging data often results in significant errors from actual values, and it is difficult to conduct in-situ formation parameter testing under existing technical conditions. So obtaining hydrate formation cores through drilling and testing their physical, chemical, and mechanical properties is the most reliable method. A few developed countries and regions, such as the European Union, the United States, and Germany, have successfully developed post-processing and on-site testing analysis devices for hydrate fidelity core samples and applied them in production sites. Currently, China’s on-site testing analysis and post-processing technology for core samples connected to deep marine natural gas hydrate pressure sampling drilling tools is still immature, and most on-site testing relies on relevant foreign detection devices and methods. This article introduces the working principle, key technologies, and related experimental research of a field parameter testing and analysis system for natural gas hydrate pressure retaining core samples. The system is mainly composed of core capture and cutting units, sampler pressure maintaining units, core sample parameter testing units, core sample storage units, temperature and pressure maintaining units, etc. The structure and working principle of each unit are introduced in detail. In order to verify the working performance of the parameter testing system and the influence of different pressure environments on the parameter testing, the system tested the longitudinal wave velocity, resistivity and shear strength of three different hydrate simulation cores under different pressures. Research has shown that the pressure parameter testing system for natural gas hydrate core samples can work stably and reliably at a high pressure of 30 MPa. The influence of pressure on resistivity testing of hydrate core samples is not significant. Pressure has an impact on the wave velocity testing of hydrate core samples, and the higher the pressure, the greater the longitudinal wave velocity. The pressure has a great influence on test of core shear strength.


Key words: natural gas hydrate; pressure maintaining; core samples; parameter testing; experimental research
收稿日期: 2025-02-26 ????
PACS: ? ?
基金資助:國(guó)家重點(diǎn)研發(fā)計(jì)劃戰(zhàn)略性國(guó)際科技創(chuàng)新合作重點(diǎn)專項(xiàng)“天然氣水合物勘查開發(fā)技術(shù)聯(lián)合研究”(2018YFE0208200) 資助
通訊作者: lchct@163.com
引用本文: ??
魯浩然, 盧春華, 黃柳松, 譚疇江, 喬夢(mèng)迪. 天然氣水合物巖心樣品帶壓參數(shù)測(cè)試系統(tǒng)與實(shí)驗(yàn)研究. 石油科學(xué)通報(bào), 2025, 10(01): 156-168 LU Haoran, LU Chunhua, HUANG Liusong, TAN Choujiang, QIAO Mengdi. Testing system and experimental study on pressure parameters of natural gas hydrate core samples. Petroleum Science Bulletin, 2025, 10(01): 156-168.
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