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首頁(yè)» 過刊瀏覽» 2024» Vol.9» lssue(2) 260-281???? DOI : 10.3969/j.issn.2096-1693.2024.02.019
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地?zé)醿?chǔ)能技術(shù)研究進(jìn)展及未來展望
芮振華, 劉月亮, 張政, 李根生.
1 中國(guó)石油大學(xué)( 北京) 油氣資源與工程全國(guó)重點(diǎn)實(shí)驗(yàn)室,北京 102249 2 中國(guó)石油大學(xué)( 北京) 石油工程學(xué)院,北京 102249 3 中國(guó)石油大學(xué)( 北京) 碳中和未來技術(shù)學(xué)院,,北京 102249 4 中國(guó)石油大學(xué)( 北京) 克拉瑪依校區(qū),克拉瑪依 834000
Research progress and prospect of geothermal energy storage technology
RUI Zhenhua, LIU Yueliang, ZHANG Zheng, LI Gensheng.
1 State Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum-Beijing, Beijing 102249, China 2 School of Petroleum Engineering, China University of Petroleum-Beijing, Beijing 102249, China 3 College of Carbon Neutrality Future Technology, China University of Petroleum-Beijing, Beijing 102249, China 4 College of Petroleum, China University of Petroleum-Beijing at Karamay, Karamay 834000, China

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摘要? 地?zé)醿?chǔ)能技術(shù)是以地下流體為熱載體,,利用地下多孔介質(zhì)空間存儲(chǔ)能量,,在必要時(shí)將其采至地面進(jìn)行綜合利用的一類技術(shù),。該技術(shù)從20 世紀(jì)六十年代至今不斷發(fā)展,,針對(duì)不同行業(yè)的取能及減排需求,,形成了基于不同熱載體、不同規(guī)模,、不同儲(chǔ)能方式的技術(shù)體系,,在技術(shù)創(chuàng)新過程中,在地?zé)醿?chǔ)能理念上實(shí)現(xiàn)了從“地球電池”的單一儲(chǔ)能形式向“地球充電/熱寶”多能互補(bǔ)儲(chǔ)/供能系統(tǒng)的轉(zhuǎn)變,,充分利用地?zé)醿?chǔ)能技術(shù)“規(guī)模大,、應(yīng)用廣、跨季節(jié)以及成本低”的特點(diǎn),,具有儲(chǔ)熱空間大,、熱利用效率高、安全性好以及綠色低碳等優(yōu)點(diǎn),,目前全球范圍內(nèi)已經(jīng)有多個(gè)項(xiàng)目試驗(yàn)了工業(yè)余熱以及可再生能源的地?zé)峄鎯?chǔ)并取得了良好的效果,,展現(xiàn)了較好的技術(shù)實(shí)用性和廣闊的發(fā)展空間。對(duì)能源的穩(wěn)定供應(yīng)和高效利用意義重大,。地?zé)醿?chǔ)能與熱提取的主要機(jī)理有熱傳導(dǎo),、對(duì)流換熱、熱彌散,、熱虹吸效應(yīng)以及物理化學(xué)作用等,,同時(shí)通過流體與巖石之間的熱—流—固耦合作用實(shí)現(xiàn)能量在地下的儲(chǔ)存、傳遞與轉(zhuǎn)換,,因此地?zé)醿?chǔ)能的效果取決于流體—巖石相互作用以及地?zé)醿?chǔ)能的方式等,,且儲(chǔ)熱層內(nèi)流體類型越多,所涉及到的機(jī)理越復(fù)雜,。本文首先闡述了地?zé)醿?chǔ)能技術(shù)在國(guó)內(nèi)外的發(fā)展歷程,,歸納總結(jié)了地?zé)醿?chǔ)能過程中基于流體—巖石相互作用的傳熱與儲(chǔ)能機(jī)理,在總結(jié)前人工作的基礎(chǔ)上對(duì)地?zé)醿?chǔ)層過程中儲(chǔ)熱層選址,、含水層深度選取以及儲(chǔ)能載體選擇等關(guān)鍵技術(shù)難題及其研究現(xiàn)狀進(jìn)行了分析,,同時(shí)對(duì)全球范圍內(nèi)主要的地?zé)醿?chǔ)能項(xiàng)目概況及運(yùn)營(yíng)現(xiàn)狀進(jìn)行了梳理和總結(jié)。研究認(rèn)為,,儲(chǔ)熱層的孔隙度,、滲透率、厚度,、各向異性及非均質(zhì)性等參數(shù)對(duì)其儲(chǔ)熱效率及規(guī)模有較大影響,,在選址過程中應(yīng)當(dāng)綜合考慮儲(chǔ)熱層性質(zhì)、熱載體性質(zhì)以及與地面熱源的匹配程度,。在此基礎(chǔ)上,,本文對(duì)地?zé)醿?chǔ)能技術(shù)的應(yīng)用前景進(jìn)行了展望,,同時(shí)從儲(chǔ)熱機(jī)理上指出了該技術(shù)可能面臨的一系列挑戰(zhàn),認(rèn)為未來地?zé)醿?chǔ)能技術(shù)的研究突破點(diǎn)在于與碳捕集,、利用與封存技術(shù)以及風(fēng),、光、電等可持續(xù)能源的聯(lián)合存儲(chǔ)與利用,,尋找隔熱性能好的地下空間,,研發(fā)和利用高性能的熱能載體以及防堵塞與腐蝕技術(shù)的攻關(guān)等。作為對(duì)現(xiàn)有能源體系的進(jìn)一步高效利用方式以及有益補(bǔ)充,,地?zé)醿?chǔ)能以其在削峰填谷,、節(jié)能減排以及能源綜合利用等方面的獨(dú)特優(yōu)勢(shì),具有巨大的潛在資源量與市場(chǎng)潛力,,是未來低碳地質(zhì)能源發(fā)展方向,。
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關(guān)鍵詞 : 地?zé)醿?chǔ)能,儲(chǔ)熱層選址,含水層,熱能載體,CO2 封存
Abstract

Geothermal energy storage technology is a kind of technology using injected and subsurface in-situ fluid as heat carrier and underground porous media as storage space to store energy, and exploiting it to the ground for comprehensive utilization when necessary. The technology has been continuously developed since the 1960s to keep balance between energy consumption and emission of different industries, and thus establish a technical system based on different heat carriers, scales and energy storage methods. In the process of technological innovation, the geothermal energy storage concept has realized the transformation from a single energy storage form of "Earth Battery" to a multi-energy complementary storage/energy supply system of "Earth Charge and Geothermal Storage", and made full use of the characteristics of geothermal energy storage technology "large scale, wide application, cross-season and low cost", with the advantages of large heat storage space, high heat utilization efficiency, safety, green and low carbon, etc. At present, there are a number of projects around the world to test the geothermal storage of industrial waste heat and renewable energy, and which has achieved good results. It shows better technical practicability and broad development space. It has great significance to the stable supply and efficient utilization of energy. The main mechanisms of geothermal energy storage and heat extraction include heat conduction, convective heat transfer, heat dispersion, thermosiphon effect and physicochemical interaction, etc. At the same time, energy is stored, transferred and converted underground through the heat-fluid-solid coupling effect between fluid and rock. Therefore, the effect of geothermal energy storage depends on the fluid-rock interaction and the way of geothermal energy storage. And the more fluid types in the reservoir, the more complicated the mechanism involved. This paper first described the developing history of geothermal energy storage technology at home and abroad, summarized the heat transfer and energy storage mechanism based on fluid-rock interaction in the process of geothermal energy storage, and analyzed the key technical problems and research status in the process of geothermal reservoir location, aquifer depth selection and energy storage carrier selection on the basis of summarizing previous work. At the same time, the overview and operation status of major geothermal energy storage projects around the world were sorted out and summarized. It was concluded that the porosity, permeability, thickness, anisotropy and heterogeneity of the thermal reservoir have a great influence on its thermal storage efficiency and scale, and the properties of thermal reservoir and heat carrier, and the matching degree with the ground heat source should be considered comprehensively in the selection process. On this basis, this paper looked forward to the application prospect of geothermal energy storage technology, and pointed out a series of challenges that the technology may face from the perspective of heat storage mechanism. It was believed that the breakthrough point of geothermal energy storage technology in the future lies in the joint storage and utilization of carbon capture, utilization and storage technology, sustainable energy such as wind, light and electricity, searching for underground space with good thermal insulation performance, development and utilization of high-performance thermal energy carriers and anti-blocking and corrosion technology. As a further efficient use of the existing energy system and beneficial supplement, with its unique advantages in peak cutting and valley filling, energy conservation and emission reduction and comprehensive utilization of energy, geothermal energy storage has huge potential resources and market potential, and is the future direction of low-carbon geological energy development.


Key words: geothermal energy storage; location of heat storage layer; aquifer; thermal energy carrier; CO2 sequestration
收稿日期: 2024-04-30 ????
PACS: ? ?
基金資助:國(guó)家自然科學(xué)基金重大項(xiàng)目(52192620) 和中國(guó)石油大學(xué)( 北京) 科研啟動(dòng)基金項(xiàng)目(2462021YJRC012,,2462021QNXZ012) 聯(lián)合資助
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芮振華, 劉月亮, 張政, 李根生. 地?zé)醿?chǔ)能技術(shù)研究進(jìn)展及未來展望. 石油科學(xué)通報(bào), 2024, 02: 260-281 RUI Zhenhua, LIU Yueliang, ZHANG Zheng, LI Gensheng. Research progress and prospect of geothermal energy storage technology. Petroleum Science Bulletin, 2024, 02: 260-281.
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