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首頁(yè)» 過(guò)刊瀏覽» 2019» Vol.4» Issue(4) 378-389???? DOI : 10.3969/j.issn.2096-1693.2019.04.034
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中深層特稠油重力泄油模擬實(shí)驗(yàn)
王成1,,鐘立國(guó)1*,,劉建斌1,劉義剛2,張偉2
1 中國(guó)石油大學(xué)( 北京) 非常規(guī)油氣科學(xué)技術(shù)研究院,,北京 102249 2 中海石油( 中國(guó)) 有限公司天津分公司,,天津 300459
Experiments of physical simulation of gravity drainage for a mid-deep extra-heavy oil reservoir
WANG Cheng1, ZHONG Liguo1, LIU Jianbin1, LIU Yigang2, ZHANG Wei2
1 Institute of Unconventional Oil and Gas Science and Technology, China University of Petroleum-Beijing, Beijing 102249, China 2 Tianjin Subcompany of CNOOC, Tianjin 300459, China

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摘要? 針對(duì)原始地層壓力較高的中深層特稠油油藏,,為了研究重力泄油開(kāi)采效果,,利用高溫高壓三維物理模擬系統(tǒng)開(kāi)展了重力泄油模擬實(shí)驗(yàn)。研究了不同壓力下SAGD生產(chǎn)過(guò)程蒸汽腔發(fā)育特征和生產(chǎn)動(dòng)態(tài)特征,,優(yōu)選出中深層特稠油開(kāi)展SAGD的合理壓力范圍,;對(duì)比了SAGD和MFAGD的開(kāi)采效果,研究了氣水比對(duì)MFAGD開(kāi)采效果的影響,。在此基礎(chǔ)上,,提出了高效開(kāi)采高壓稠油油藏的重力泄油方法,即SAGD轉(zhuǎn)MFAGD,,并對(duì)MFAGD開(kāi)采階段的氣水比進(jìn)行了優(yōu)化。研究結(jié)果表明:SAGD生產(chǎn)壓力對(duì)蒸汽腔擴(kuò)展和開(kāi)采動(dòng)態(tài)具有明顯的影響,。生產(chǎn)壓力高時(shí),,蒸汽腔擴(kuò)展慢,開(kāi)采初期蒸汽腔呈橢圓狀,、產(chǎn)油量上升較慢,。蒸汽腔升至油藏頂部后,,蒸汽腔上部向兩側(cè)擴(kuò)展速度加快,蒸汽腔呈“漏斗”形,。生產(chǎn)壓力越高,,蒸汽腔溫度越高,蒸汽腔內(nèi)殘余油飽和度越低,,SAGD開(kāi)采采收率越高,。但是,生產(chǎn)壓力越高,,采出液溫度也越高,,對(duì)采油設(shè)備的要求越高。結(jié)合油田現(xiàn)場(chǎng)條件,,推薦SAGD生產(chǎn)階段的生產(chǎn)壓力為5~7 MPa,。MFAGD開(kāi)采初期產(chǎn)量上升快,開(kāi)采后期產(chǎn)量遞減較慢,,瞬時(shí)產(chǎn)油量和瞬時(shí)油汽較高,。隨著氣水比的增加,MFAGD階段采油量和累積油汽比均上升,。但氣水比超過(guò)50 后,,階段采油量和累積油汽比上升幅度減緩。在生產(chǎn)壓力5 MPa條件下,,MFAGD推薦氣水比為50,。在相同生產(chǎn)壓力下,SAGD后期轉(zhuǎn)MFAGD開(kāi)采可提高采收率5% 左右,。SAGD轉(zhuǎn)MFAGD開(kāi)采的初期建議采用較高的氣水比,,后期逐漸降低。
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關(guān)鍵詞 : 蒸汽輔助重力泄油;多元熱流體輔助重力泄油,;物理模擬實(shí)驗(yàn),;中深層特稠油油藏
Abstract

To study the development of gravity drainage, physical simulation experiments were conducted with a high-temperature and high-pressure 3D physical simulation system for a mid-deep extra-heavy oil reservoir. The characteristics of steam chamber development and production dynamics in SAGD processes under different pressures were studied to optimize the reasonable production pressure for SAGD development in a mid-deep extra-heavy oil reservoir. The development effects of SAGD and MFAGD (Multi-thermal Fluid Assisted Gravity Drainage) were compared, and the influence of gas-water ratio on the development effects of MFAGD was studied. On this basis, a gravity drainage method, SAGD-MFAGD, is proposed to efficiently develop high-pressure heavy oil reservoirs, and the gas-water ratio in the MFAGD stage is optimized. The research results show that the production pressure of SAGD has a significant effect on steam chamber expansion and recovery performance. At higher production pressure, the steam chamber expands slowly, and at the initial stage of production, the steam chamber is elliptical and the oil production rises slowly. After the steam chamber rises to the top of the reservoir, the upper part of the steam chamber expands to both sides at a faster speed, and the steam chamber is shaped like a funnel. The higher the production pressure, the higher the temperature of the steam chamber, the lower the residual oil saturation in the steam chamber, and the higher the recovery rate of SAGD production. However, the temperature of produced fluid increases with the increase of production pressure.If the temperature of the produced fluid is too high, it will damage the production equipment. Based on the oilfield conditions,it is recommended that the production pressure in SAGD process is 5~7 MPa. In the early stage of MFAGD, oil production increases rapidly, while in the later stage of MFAGD, oil production decreases slowly, and instantaneous oil production and the instantaneous oil-steam ratio are higher. With an increase of the gas-water ratio, the oil recovery and cumulative oil-steam ratio in MFAGD both increased. However, when the gas-water ratio exceeds 50, the increase of oil production and cumulative oil-steam ratio slows down. So the recommended gas-water ratio for MFAGD is 50 at a production pressure of 5 MPa. Under the same production pressure, conversion of SAGD to MFAGD in the later stage can improve recovery by about 5%. In the initial stage of SAGD to MFAGD, a higher gas-water ratio is recommended, which will gradually decrease in the later stage.

Key words: steam assisted gravity drainage; multi-thermal fluid assisted gravity drainage; physical simulation; mid-deep extra-heavy oil reservoir
收稿日期: 2019-12-30 ????
PACS: ? ?
基金資助:國(guó)家科技重大專項(xiàng)“海上稠油熱采調(diào)剖工藝及配套技術(shù)研究”(2016ZX05058-003-007) 和國(guó)家自然科學(xué)基金面上項(xiàng)目“蒸汽—?dú)怏w協(xié)同
驅(qū)替與重力泄油開(kāi)采方法研究”(51474227) 資助
通訊作者: [email protected], [email protected]
引用本文: ??
王成, 鐘立國(guó), 劉建斌, 劉義剛, 張偉. 中深層特稠油重力泄油模擬實(shí)驗(yàn). 石油科學(xué)通報(bào), 2019, 04: 378-389
鏈接本文: ?
WANG Cheng, ZHONG Liguo, LIU Jianbin, LIU Yigang, ZHANG Wei. Experiments of physical simulation of gravity drainage for a mid-deep extra-heavy oil reservoir. Petroleum Science Bulletin, 2019, 04: 378-389.
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