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副教授

毛佩筱

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毛佩筱(Dr. Peixiao Mao),博士,副教授


个人简介

毛佩筱,中共党员,2026年起任中国地质大学(武汉)海洋学院副教授,长期从事海洋沉积体系中气–水–沉积物相互作用研究。主持国家自然科学基金青年科学基金项目(C类)、中国博士后科学基金面上项目、中国科学院天然气水合物重点实验室开放基金等科研项目,获国家资助博士后研究人员计划B档,参与国家重点研发计划、国家自然科学基金面上项目、中国地质调查局二级项目等。已发表学术论文30余篇,其中以第一作者在Applied EnergyEnergyGas Science and Engineering、天然气工业等国内外期刊发表论文14篇。授权国家发明专利2项,参与出版学术专著1部。曾赴德国波茨坦地学研究中心(GFZ)联合培养、英国曼彻斯特大学访问交流。联系方式:maopeixiao@cug.edu.cn

教育经历

Ø 201109月至201506月,中国地质大学(武汉),海洋科学(海洋地质与资源)专业,理学学士

Ø 201509月至201806月,浙江大学,海洋地质专业,理学硕士(推荐免试)

Ø 201809月至202306月,青岛海洋地质研究所、中国地质大学(武汉),地质工程专业,工学博士,师从吴能友研究员和宁伏龙教授

Ø 202112月至202212月,德国波茨坦地学研究中心(GFZ)联合培养博士研究生,海洋地质与地球化学,师从Judith Schicks教授


工作经历

Ø 202306月至202606月,中国地质大学(武汉)海洋学院,博士后(A类岗位),合作导师:吕万军教授

Ø 202311月至202401月,英国曼彻斯特大学,访问学者

Ø 202607月至今,中国地质大学(武汉)海洋学院,副教授

究兴趣

依托自主搭建实验平台、多物理场数值模拟与机器学习数据挖掘,围绕海洋沉积体系中气、水与沉积物耦合演化及其资源-环境效应展开研究。具体研究方向涵盖:沉积成岩作用与物性演变规律、成矿成藏过程与资源富集机制、物质循环与海洋环境响应等。

科研项目

Ø 气烟囱对天然气水合物–浅层气共生体系降压开采产能的影响机制(20262028),国家自然科学基金青年科学基金项目(C类),负责人,在研;

Ø 南海神狐海域断层对泥质粉砂型水合物储层降压开采的影响研究(20232025),中国博士后科学基金第74批面上资助项目,负责人,已结题;

Ø 储层倾角对水合物降压开采影响机制研究(20202021),中国科学院天然气水合物重点实验室开放基金项目,负责人,已结题;

Ø 水合物试采、环境监测及综合评价应用示范(20182022),国家重点研发计划“深海关键技术与装备”重点专项,参与,已结题;

Ø 南海神狐海域水合物储层的蠕变特征与主控因素研究(20212024),国家自然科学基金面上项目,参与,已结题;

Ø 海域天然气水合物试采体系更新与新技术应用(20182022),中国地质调查局二级项目,参与,已结题;

Ø 南海北部水合物多分支孔降压开采方法研究(20182021),崂山实验室开放基金项目,参与,已结题;

Ø 滇黔桂地区上古生界页岩气资源调查评价与选区(20152018),国土资源部科技项目,参与,已结题;

Ø 海相泥页岩孔隙发育特征及影响因素——以桂中坳陷下石炭统岩关组为例(20162017),浙江大学海洋学院“海潮杯”学生创新创业项目,负责人,已结题;

Ø 国际大洋发现计划(IODP)南海349航次释光样品分析及其古气候古海洋意义(20132015),大学生自主创新资助计划启航项目,参与,已结题

科研奖励

Ø 国家资助博士后研究人员计划(B档)中国博士后科学基金委,20232025

学术论文

Ø Mao P., Schicks J.*, 2026. CH4-C3H8 mixed gas hydrate behavior in natural marine sediments: influence of sediment type and dissociation pathways. Frontiers in Marine Science, 13:1688347.

Ø Mao P., Schicks J.*, Pan M., Wu N., 2025. CH4-C3H8 mixed gas hydrates formation in marine mud and foraminifera-rich sand from the South China Sea: an experimental approach. Frontiers in Marine Science, 12: 1510050.

Ø Mao P., Wu N.*, Wan Y., Hu G., Wang X., 2023. Optimization of a multi-fractured multilateral well network in advantageous structural positions of ultralow-permeability hydrate reservoirs. Energy, 268: 126623.Nature index期刊

Ø Mao P., Wan Y., Sun J., Li Y., Hu G., Ning F.*, Wu N.*, 2021. Numerical study of gas production from fine-grained hydrate reservoirs through a multilateral horizontal well system. Applied Energy, 301: 117450.Nature index期刊

Ø Mao P., Lu, W.*, Wan, Y., Wu, N., 2025. Effects of submarine methane-rich fluids on gas hydrate production during depressurization. Journal of Marine Science and Engineering, 13: 2166.

Ø Mao P., Wu N.*, Ning F., Sun J., Wan Y., Wang X., Hu G., 2023. Gas production from muddy hydrate reservoirs by a spiral multilateral well network: Effects of well deployment and production methods. Gas Science and Engineering, 118: 205087.

Ø Mao P., Wu N.*, Wan Y.*, Ning F., Sun J., Wang X., Hu G., 2022. Gas recovery enhancement from fine-grained hydrate reservoirs through positive inter-branch interference and optimized spiral multilateral well network. Journal of Natural Gas Science and Engineering, 107: 104771.

Ø Mao P., Wu N.*, Sun J.*, Ning F., Chen L., Wan Y., Hu G., Cao X., 2021. Numerical simulations of depressurization-induced gas production from hydrate reservoirs at site GMGS3-W19 with different free gas saturations in the northern South China Sea. Energy Science & Engineering, 9: 14161439.

Ø Mao P., Sun J., Ning F.*, Chen L., Wan Y., Hu G., Wu N.*, 2021. Numerical simulation on gas production from inclined layered methane hydrate reservoirs in Nankai Trough: A case study. Energy Reports, 7: 86088623.

Ø Mao P., Sun J., Ning F.*, Hu G., Wan Y., Cao X., Wu N.*, 2020. Effect of permeability anisotropy on depressurization-induced gas production from hydrate reservoirs in the South China Sea. Energy Science & Engineering, 8: 26902707.

Ø Qin, F., Sun, J., Cao, X., Mao P., Zhang, L., Lei, G., Jiang, G., Ning, F., 2025. Numerical simulation on combined production of hydrate and free gas from silty clay reservoir in the South China Sea by depressurization: Formation sealing. Applied Energy, 377: 124343.

Ø Qin, F., Sun, J., Gu, Y., Cao, X., Mao P., Ning, F., Jiang, G., 2024. Numerical simulation on production trials by using depressurization for typical marine hydrate reservoirs: well type and formation dip. Journal of Ocean University of China, 23: 661675.

Ø Sun, J., Qin, F., Ning, F., Gu, Y., Li, Y., Cao, X., Mao P., Liu, T., Qin, S., Jiang, G., 2023. Gas recovery from silty hydrate reservoirs by using vertical and horizontal well patterns in the South China Sea: Effect of well spacing and its optimization. Energy, 275: 127440.

Ø Cao X., Sun J., Qin F., Ning F., Mao P., Gu Y., Li Y., Zhang H., Yu Y., Wu N., 2023. Numerical analysis on gas production performance by using a multilateral well system at the first offshore hydrate production test site in the Shenhu area. Energy, 270: 126690.

Ø Ning F., Chen Q., Sun J., Wu X., Cui G., Mao P., Li Y., Liu T., Jiang G., Wu N., 2022. Enhanced gas production of silty clay hydrate reservoir using multilateral wells and reservoir reformation techniques: Numerical simulations. Energy, 254: 124220.

Ø Sun J., Gu Y., Qin F., Ning F., Li Y., Cao X., Mao P., Liu T., Wang R., Jiang G., 2022. Key factors analyses for prediction of accurate gas production rate in hydrate reservoirs during model construction. Journal of Natural Gas Science and Engineering, 102: 104566.

Ø Chen J., Hu G., Bu Q., Liu C., Dong L., Wan Y., Mao P., Guo Y., Wang Z., 2021. Elastic wave velocities of hydrate-bearing sands containing methane gas bubbles: Insights from CT-acoustic observation and theoretical analysis. Journal of Natural Gas Science and Engineering, 88(1): 103844.

Ø Wu N., Li Y., Wan Y., Sun J., Huang L., Mao P., 2020. Prospect of marine natural gas hydrate stimulation theory and technology system. Natural Gas Industry B, 8: 173187.

Ø Sun J., Ning F., Liu T., Liu C., Chen Q., Li Y., Cao X., Mao P., Zhang L., Jiang G., 2019. Gas production from a silty hydrate reservoir in the South China Sea using hydraulic fracturing: A numerical simulation. Energy Science & Engineering, 7(4): 11061122.

Ø Li Y., Wan Y., Chen Q., Sun J., Wu N., Hu G., Ning F., Mao P., 2019. Large borehole with multi-lateral branches: A novel solution for exploitation of clayey silt hydrates. China Geology, 2(3): 331339.

Ø Ou W., Geng L., Lu W., Guo H., Qu K., Mao P., 2015. Quantitative Raman spectroscopic investigation of geo-fluids high-pressure phase equilibria: Part II. Accurate determination of CH4 solubility in water from 273 to 603 K and from 5 to 140 MPa and refining the parameters of the thermodynamic model. Fluid Phase Equilibria, 391: 1830.

Ø 毛佩筱,吴能友*,宁伏龙*,胡高伟,孙嘉鑫,陈强,郭洋,卜庆涛,万义钊. 不同井型下的天然气水合物降压开采产气产水规律,天然气工业,20204011):114125.

Ø 毛佩筱,吴能友*,万义钊,陈强,胡高伟. 多分支井射孔程度和布设位置对倾斜泥质水合物储层开采产能的影响,海洋地质与第四纪地质,2022426):207217.

Ø 毛佩筱,金爱民*,楼章华,朱蓉,朱振宏. 桂中坳陷环江凹陷上古生界海相页岩储层孔隙结构和分形特征研究,地质科学,2019541):130144.

Ø 毛佩筱,王星星,吴凯凯,李梦瑶,朱振宏,金爱民*,楼章华. 桂中坳陷西北部下石炭统岩关组泥页岩储层特征研究:以环页1井为例,地质科技情报(现《地质科技通报》),2018373):169176.

Ø 王自豪,万义钊,刘乐乐,卜庆涛,王壮壮,毛佩筱,胡高伟. 含水合物沉积物相对渗透率研究进展. 海洋地质前沿,2022381429.

Ø 郭洋,胡高伟,李彦龙,陈强,卜庆涛,万义钊,毛佩筱,陈杰,王自豪. 含水合物沉积物电阻率演化规律实验研究进展. 海洋地质前沿,202137113.

Ø 孙嘉鑫,赵洪宝,曹鑫鑫,毛佩筱. 南海荔湾区域水合物水平井降压开采模拟研究. 科学技术与工程,2021211024610256.

Ø 吴能友,李彦龙,万义钊,孙建业,黄丽,毛佩筱. 海域天然气水合物开采增产理论与技术体系展望. 天然气工业,2020408):100115.

Ø 景鹏飞,胡高伟,卜庆涛,陈杰,万义钊,毛佩筱. 基于岩石物理模拟与声学实验识别孔隙—裂隙充填型水合物. 海洋地质与第四纪地质,2020406):208218.

专利专著

Ø 毛佩筱,吴能友,宁伏龙,李彦龙,胡高伟,万义钊,陈强,2021. 海洋天然气水合物系统多气合采模拟装置及方法. 授权公号CN 112855129 B.

Ø 李彦龙,陈强,胡高伟,吴能友,万义钊,毛佩筱2019. 泥质粉砂水合物多分支孔开采钻完井一体化方法. ZL 2018 1 1486319.4,授权公号CN 109707349 B.

Ø 《海洋天然气水合物开采基础理论与模拟》书籍(主编:吴能友),参与第五、第七和第八章编写.

学术主页

      ResearchGate: https://www.researchgate.net/profile/Peixiao-Mao

联系方式

  通讯地址:湖北省武汉市洪山区鲁磨路388号 东教楼A座 海洋学院

  邮箱:maopeixiao@cug.edu.cnpeixiao_m@hotmail.com

      QQ786946980


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