姓名:芮振華
職稱(chēng):二級(jí)教授/博士生導(dǎo)師
教育與工作經(jīng)歷:
2000.9-2004.7 南京師范大學(xué)數(shù)學(xué)與應(yīng)用數(shù)學(xué)(師范) 學(xué)士
2004.9-2007.1 中國(guó)石油大學(xué)(北京) 地球探測(cè)與信息技術(shù) 碩士
2006.8-2009.5 美國(guó)阿拉斯加大學(xué)費(fèi)爾班克斯分校石油工程 碩士
2010.9-2011.12 美國(guó)阿拉斯加大學(xué)費(fèi)爾班克斯分校資本市場(chǎng) 碩士
2009.8-2011.12 美國(guó)阿拉斯加大學(xué)費(fèi)爾班克斯分校能源與采礦工程管理(跨學(xué)科) 博士
2011.12-2017.12 美國(guó)IPA能源研究部高級(jí)研究員
2018.2-2020.12 美國(guó)麻省理工學(xué)院(MIT)研究科學(xué)家
2021.2-至今 中國(guó)石油大學(xué)(北京) 教授
2021.9 -2025.9 中國(guó)石油大學(xué)(北京) 碳中和未來(lái)學(xué)院副院長(zhǎng)
2024.11-至今 中國(guó)石油大學(xué)(北京) 碳捕集利用封存國(guó)際創(chuàng)新研究院院長(zhǎng)
2025.10-至今 中國(guó)石油大學(xué)(北京) 地球物理學(xué)院院長(zhǎng)
電子郵箱:[email protected]
研究方向:(1)CO2封存安全與檢測(cè);(2)CO2提高采收率與封存;(3)非常規(guī)油氣開(kāi)發(fā)理論與技術(shù);(4)數(shù)值模擬,數(shù)據(jù)挖掘與人工智能
代表性論文(以下為一作或通訊作者文章,“*”為通訊作者):
[1]Rui, Z., Zeng, L., & Dindoruk, B. (2024). Challenges in the Large-Scale Deployment of CCUS. Engineering.
[2]Liu, Y., Hu, T., Rui, Z.*, et al., (2023). An Integrated Framework for Geothermal Energy Storage with CO2 Sequestration and Utilization. Engineering.
[3]Khan, W., Rui, Z. *, Hu, T., et al., (2024). Application of machine learning and optimization of oil recovery and CO2 sequestration in the tight oil reservoir. SPE Journal, 1-21.
[4]Liu, Y., & Rui, Z. * (2022). A storage-driven CO2 EOR for a net-zero emission target. Engineering, 18, 79-87.
[5]Qian, C., Rui, Z. *, Liu, Y., et al.,(2025). Microfluidic investigation on microscopic flow and displacement behavior of CO2 multiphase system for CCUS-EOR in heterogeneous porous media. Chemical Engineering Journal, 505, 159135.
[6]Hu, T., Chen, S., Rui, Z. *, et al., (2024). Data-Driven Quantitative Study of Synergistic Effects on CCUS-EOR─ A Case Study of Ultralow-Permeability Sandstone Reservoirs. Energy & Fuels, 38(7), 5777-5790.
[7]Zhao, Y., Wen, X., Rui, Z. *, et al., (2024). A novel dual-network CO2-responsive particle gel for mitigating CO2 channeling and leakage in hydrocarbon recovery and carbon storage. Chemical Engineering Journal, 498, 155187.
[8]Ma, M., Emami-Meybodi, H., Zhang, F., & Rui, Z.* (2024). Mass transport modelling of two partially miscible, multicomponent fluids in nanoporous media. Journal of Fluid Mechanics, 999, A21.
[9]Liu, Y., Rui, Z. *, Yang, T., et al., (2022). Using propanol as an additive to CO2 for improving CO2 utilization and storage in oil reservoirs. Applied Energy, 311, 118640.
[10]Rui, Z., Qian, C., Liu, Y. , et al., (2024). Adsorption characteristics of CO2/CH4/H2S mixtures in calcite nanopores with the implications for CO2 sequestration. SPE Journal, 1-15.
[11]Zhao, Y., Rui, Z. *, Zhang, Z., et al., (2022). Importance of conformance control in reinforcing synergy of CO2 EOR and sequestration. Petroleum Science, 19(6), 3088-3106.
[12]Rui, Z. *, Li, C., Peng, F., et al., (2017). Development of industry performance metrics for offshore oil and gas project. Journal of natural gas science and engineering, 39, 44-53.
[13]Rui, Z. *, Cui, K., Wang, X., et al., (2018). A quantitative framework for evaluating unconventional well development. Journal of Petroleum Science and Engineering, 166, 900-905.
[14]Rui, Z. *, Cui, K., Wang, X., et al., (2018). A comprehensive investigation on performance of oil and gas development in Nigeria: Technical and non-technical analyses. Energy, 158, 666-680.
[15]Jiang, J., Rui, Z. *, Hazlett, R., et al., (2019). An integrated technical-economic model for evaluating CO2 enhanced oil recovery development. Applied energy, 247, 190-211.
[16]Rui, Z. *, Lu, J., Zhang, Z., et al., (2017). A quantitative oil and gas reservoir evaluation system for development. Journal of Natural Gas Science and Engineering, 42, 31-39.
[17]Zhao, X., Rui, Z. *, Liao, X., et al., (2015). The qualitative and quantitative fracture evaluation methodology in shale gas reservoir. Journal of Natural Gas Science and Engineering, 27, 486-495.
[18]Rui, Z., Guo, T., Feng, Q., et al., (2018). Influence of gravel on the propagation pattern of hydraulic fracture in the glutenite reservoir. Journal of Petroleum Science and Engineering, 165, 627-639.
代表性專(zhuān)利與軟著:
1、Devices and Methods for Testing Retrograde Condensation Damage in Near Well Zones of Condensate Gas Reservoirs with High Condensate Content,US 11.982.182 B1
2、一種利用二甲基醚輔助CO2驅(qū)實(shí)現(xiàn)稠油油藏高效開(kāi)發(fā)的方法,CN 110552671A.
3、全巖心尺度二氧化碳吸附封存量的實(shí)驗(yàn)裝置,CN 115165700B.
4、基于油氣井排采動(dòng)態(tài)數(shù)據(jù)的綜合分析方法,CN 116579263 B
5、非常規(guī)油氣藏裂縫堵塞表皮系數(shù)及裂縫參數(shù)的反演方法,CN 116502553 B
6、基于壓裂液返排數(shù)據(jù)的頁(yè)巖油氣藏裂縫參數(shù)反演方法,CN 114169263 B
7、基于排采數(shù)據(jù)的頁(yè)巖油氣藏裂縫參數(shù)確定方法及裝置,CN 114818533 B
8、測(cè)量致密氣藏巖心滲透率的實(shí)驗(yàn)方法,CN 115791565 B
9、基于井點(diǎn)消除法的直井井位縫網(wǎng)一體化優(yōu)化部署方法,CN 117709213 B
10、非常規(guī)儲(chǔ)層壓裂井氣水兩相動(dòng)態(tài)分析軟件,2023SR1034415
11、CO2提高油氣采收率與地質(zhì)封存一體化模擬軟件,2023SR0496623
科研項(xiàng)目:
1、國(guó)家重點(diǎn)研發(fā)計(jì)劃,二氧化碳提高油藏采收率與地質(zhì)封存一體化關(guān)鍵技術(shù)及應(yīng)用示范, 主持, 在研
2、高等學(xué)校學(xué)科創(chuàng)新引智計(jì)劃項(xiàng)目(“111”引智計(jì)劃),二氧化碳提高油氣采收率與地質(zhì)封存創(chuàng)新引智基地, 主持, 在研
3、國(guó)家海外引進(jìn)高層次領(lǐng)軍人才支撐項(xiàng)目,頁(yè)巖油氣綠色高效開(kāi)發(fā)與CO2地質(zhì)封存一體化技術(shù), 主持, 在研
4、中國(guó)石油大學(xué)(北京)引進(jìn)人才科研啟動(dòng)基金項(xiàng)目,頁(yè)巖油綠色高效開(kāi)發(fā)一體化技術(shù), 主持, 在研
5、高端外國(guó)專(zhuān)家引進(jìn)計(jì)劃項(xiàng)目, CO2提高油氣采收率與地質(zhì)封存關(guān)鍵科學(xué)問(wèn)題研究, 主持, 結(jié)題
6、陜西延長(zhǎng)石油(集團(tuán))有限責(zé)任公司揭榜掛帥項(xiàng)目, 致密砂巖氣藏CO2埋存與驅(qū)氣機(jī)理研究, 主持, 在研
7、陜西延長(zhǎng)石油(集團(tuán))有限責(zé)任公司研究院技術(shù)開(kāi)發(fā)項(xiàng)目,雙重介質(zhì)蓄能增滲機(jī)理及關(guān)鍵參數(shù)測(cè)試, 主持, 結(jié)題
8、長(zhǎng)慶油田2022年“賽馬制”科技項(xiàng)目, 超低滲透油藏百萬(wàn)噸級(jí)CCUS地質(zhì)工程地面一體化協(xié)同關(guān)鍵技術(shù)及效益評(píng)價(jià)研究, 結(jié)題
榮譽(yù)獎(jiǎng)勵(lì):
1、國(guó)家級(jí)領(lǐng)軍人才(入選兩項(xiàng));
2、國(guó)際石油工程師協(xié)會(huì)(SPE)國(guó)際技術(shù)獎(jiǎng);
3、國(guó)際石油工程師協(xié)會(huì)(SPE)國(guó)際杰出服務(wù)貢獻(xiàn)獎(jiǎng);
4、