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首頁(yè)» 過(guò)刊瀏覽» 2024» Vol.9» lssue(3) 476-486???? DOI : 10.3969/ j.issn.2096-1693.2024.03.035
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滲透率各向異性對(duì)地?zé)犭姵馗咝?chǔ)能發(fā)電系統(tǒng)的影響
甘泉, 劉艷婷, 馬躍強(qiáng), 汪濤, 胡大偉, 郅勝
1 重慶大學(xué)煤礦災(zāi)害動(dòng)力學(xué)與控制國(guó)家重點(diǎn)實(shí)驗(yàn)室,,重慶 400044 2 重慶大學(xué)資源與安全學(xué)院,重慶 400044 3 中國(guó)科學(xué)院武漢巖土力學(xué)研究所,,武漢 430071 4 中國(guó)華融國(guó)際控股有限公司,,香港 999077
Influence of permeability anisotropy on high-efficiency energy storage power generation system of geothermal battery
GAN Quan, LIU Yanting, MA Yueqiang, WANG Tao, HU Dawei, ZHI Sheng
1 State Key Laboratory of Coal Mine Disaster Dynamics and Control, Chongqing University, Chongqing 400044, China 2 School of Resources and Safety Engineering, Chongqing University, Chongqing 400044, China 3 Institute of Rock and Soil Mechanics, Chinese Academy of Sciences, Wuhan 430071, China 4 Huarong International Financial Holdings Limited, Hong Kong 999077, China

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摘要? 在當(dāng)前能源轉(zhuǎn)型的大背景下,,清潔能源利用的創(chuàng)新技術(shù)市場(chǎng)日益擴(kuò)大,。地?zé)犭姵貎?chǔ)能發(fā)電技術(shù)有望解決太陽(yáng)能,、風(fēng)能等可再生能源間歇性問(wèn)題,,受到清潔能源領(lǐng)域的關(guān)注,。地?zé)犭姵貎?chǔ)能系統(tǒng)利用沉積地層中形成的低滲透率,、低孔隙度的蓋層和基層以及高滲透率、高孔隙度的中間儲(chǔ)層實(shí)現(xiàn)熱水的儲(chǔ)存,。這些熱水創(chuàng)造了一個(gè)高溫地?zé)醿?chǔ)層,,已有研究表明這些儲(chǔ)熱可以高效回收,,甚至可能實(shí)現(xiàn)長(zhǎng)期甚至季節(jié)性的存儲(chǔ)。在沉積結(jié)構(gòu)中,,其物理特征等方面存在十分明顯各向異性,,其中滲透率各向異性在流體的流動(dòng)過(guò)程中發(fā)揮著重要作用。因此,,研究滲透率各向異性對(duì)儲(chǔ)能產(chǎn)能的影響至關(guān)重要,。本研究利用TOUGHREACT-FLAC3D耦合軟件建立了地?zé)醿?chǔ)能溫度場(chǎng)—滲流場(chǎng)—應(yīng)力場(chǎng)(THM)多場(chǎng)耦合模型,模擬了4 種滲透率各向異性的情況,,并分析了4 種條件下熱水注入和生產(chǎn)中熱水流動(dòng)路徑,、溫度和壓力的分布以及發(fā)電效率。結(jié)果表明:(1)滲透率各向異性對(duì)注采過(guò)程中壓力的演變有強(qiáng)烈的影響,,壓力鋒面在滲透率大的方向快速移動(dòng),,而且各向異性越小,儲(chǔ)層等效滲透率越大,,注入熱水需要的壓力越小,。(2)熱水流動(dòng)優(yōu)先在滲透率大的方向流動(dòng),溫度和壓力的傳播與熱水流動(dòng)方向一致,,但是溫度分布主要由流體流動(dòng)的方向決定,,在流動(dòng)過(guò)程中熱水用于加熱初始環(huán)境中較冷的巖石和水造成熱量損失,所以滲透率各向異性對(duì)儲(chǔ)層溫度的分布情況影響較小,。(3)儲(chǔ)層的巖石在高溫?zé)崴淖饔孟掳l(fā)生膨脹,,其孔隙壓力恢復(fù)值隨溫度的升高逐漸高于儲(chǔ)層初始的孔隙壓力(12 MPa)。(4) 在進(jìn)行的30 個(gè)注采循環(huán)結(jié)束后滲透率各向異性為1000 時(shí)產(chǎn)生的電量最高可以達(dá)到5.2 MW,。因此,,在地?zé)犭姵貎?chǔ)能系統(tǒng)進(jìn)行選取時(shí),選擇水平方向與垂直方向滲透率各向異性大的儲(chǔ)層產(chǎn)能效率更高,。
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關(guān)鍵詞 : 地?zé)犭姵?滲透率各向異性,地?zé)醿?chǔ)能,可再生能源,數(shù)值模擬
Abstract

In the context of the current energy transition, the market for innovative technologies for clean energy utilization is growing. Geothermal battery storage power generation technology is expected to solve the problem of intermittency of renewable energy sources such as solar and wind power, and is attracting attention in the clean energy field. Geothermal battery energy storage system uses the low permeability, low porosity cap and base layers and the high permeability, high porosity intermediate reservoirs formed in the sedimentary strata to realize the storage of hot water. This hot water creates a high-temperature geothermal reservoir, and it has been shown that this stored heat can be efficiently recovered and may even enable long-term or even seasonal storage. In sedimentary structures, there are very obvious anisotropy in their physical characteristics and other aspects, among which permeability anisotropy plays an important role in the flow process of fluids. Therefore, it is crucial to study the effect of permeability anisotropy on energy storage capacity. In this study, a multi-field coupled model of temperature-percolation-stress field (THM) for geothermal energy storage was developed using TOUGHREACT-FLAC3D coupling software to simulate four permeability anisotropies and analyze the hot water flow paths, temperature and pressure distributions, and power generation efficiency. The results showed that: (1) permeability anisotropy has a strong influence on the evolution of pressure during injection and production, pressure fronts move rapidly in the direction of high permeability and the lower the anisotropy the larger equivalent permeability the lower the pressure required to inject hot water. (2) Hot water flows preferentially in the direction of large permeability, and the propagation of temperature and pressure is consistent with the direction of hot water flow, but the temperature distribution is mainly determined by the direction of fluid flow, and hot water is used to heat up the colder rocks and water in the initial environment during the flow process resulting in heat loss, so the permeability anisotropy has less effect on the distribution of temperature in the reservoir. (3) The rock of the reservoir expands under the action of high-temperature hot water, and its pore pressure recovery value is gradually higher than the initial pore pressure of the reservoir (12 MPa) with the increase of temperature. (4) At the end of the 30 injection cycles, the maximum power generated at an anisotropy of 1000 permeability can reach 5.2 MW. Therefore, when selecting the geothermal cell storage system, the reservoir with a large permeability in the horizontal direction is more efficient.


Key words: geothermal battery; permeability anisotropy; geothermal energy storage; renewable energy storage; numerical simulation
收稿日期: 2024-06-28 ????
PACS: ? ?
基金資助:科技部重點(diǎn)研發(fā)計(jì)劃(2021YFC3000603),、國(guó)家自然科學(xué)基金委面上項(xiàng)目(5217041034)、四川省重點(diǎn)項(xiàng)目(2022YFSY0008),、中國(guó)石油科技創(chuàng)新基金(2023DQ02-0206) 和中國(guó)博士后科學(xué)基金第72 批面上資助(2022M720555) 聯(lián)合資助
通訊作者: [email protected]
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甘泉, 劉艷婷, 馬躍強(qiáng), 汪濤, 胡大偉, 郅勝. 滲透率各向異性對(duì)地?zé)犭姵馗咝?chǔ)能發(fā)電系統(tǒng)的影響. 石油科學(xué)通報(bào), 2024, 03: 476-486 GAN Quan, LIU Yanting, MA Yueqiang, WANG Tao, HU Dawei, ZHI Sheng. Influence of permeability anisotropy on high-efficiency energy storage power generation system of geothermal battery. Petroleum Science Bulletin, 2024, 03: 476-486.
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