
职称:副教授/博士生导师
学历:博士研究生
籍贯:四川眉山
职务:储运工程系副主任
办公室:工科D323
邮箱:yaobo@upc.edu.cn
研究领域
流变学,多介质流动保障与弹性输送,功能材料开发与应用,管网智能化,新能源储运
教育经历
2009年9月-2013年6月,中国石油大学(华东),储运工程系,学士
2013年9月-2018年12月,中国石油大学(华东),储运工程系,博士
工作经历
2019年4月-2021年7月
中国石油大学(华东),储运工程系,讲师、师资博士后
2021年8月-2023年7月
加拿大阿尔伯塔大学,化学工程系,博士后
2021年8月-至今
中国石油大学(华东),储运工程系,副教授
主要论文
2026
1.Yao, B., Chang, M., Chen, J., Wang, Y., Sun, G., & Yang, F. (2027). Synergistic stabilization of lignite slurry using waste engine oil and Tween-80: Interface competition and amphiphilic particle engineering. Fuel, 429, 140934. https://doi.org/10.1016/j.fuel.2026.140934
2.Zhao, K., Li, C., Yang, F., Sun, G., & Yao, B. (2026). The influence of coal/liquid interfacial characteristics on the macroscopic rheology of coal-water slurry: A review. International Journal of Coal Preparation and Utilization, 46(7), 2159–2178. https://doi.org/10.1080/19392699.2025.2527833
3.Sun, G., Zhu, X., Li, D., Sheng, F., Yao, B., & Yang, F. (2026). Experimental study on CO₂ bubble detachment dynamics within static water-in-oil emulsion droplets. Physics of Fluids, 38(3). https://doi.org/10.1063/5.0265432
4.Yao, B., Wang, Y., Sun, G., & Yang, F. (2026). Conformational characteristics of modified ethylene-vinyl acetate copolymer (EVA) facilitate the pour-point depression of waxy oils. Energy & Fuels, 40(26), 13777–13789. https://doi.org/10.1021/acs.energyfuels.6c00647
5.Yao, B., Gan, H., Yang, F., Sun, G., Sun, Y., & Zeng, H. (2026). Biomass-derived aerogels for CO₂ capture: Hierarchical structure design, fabrication strategies, and adsorption performance. Journal of Environmental Chemical Engineering, *14*(2), 124622. https://doi.org/10.1016/j.jece.2026.124622
2025
1.Lv, S., Yang, F., Yu, Z., Li, C., Sun, G., Sun, Y., Zeng, H., Li, X., & Yao, B. (2025). Enhancing shear resistance in ultrahigh-molecular-weight polyolefin drag-reducing agents via siloxane bond integration. Energy, 320, 135281. https://doi.org/10.1016/j.energy.2025.135281
2.Sun, G., Sheng, F., Li, Q., Li, C., Yang, F., Yao, B., & Zhao, Y. (2025). Rheological properties and coalescence stability of degassed crude oil emulsion: Influence of supercritical CO₂ treatment. Journal of CO₂ Utilization, *92*, 103030. https://doi.org/10.1016/j.jcou.2025.103030
3.Li, W., Yang, F., Li, C., Sun, G., Zhu, H., & Yao, B. (2025). Role of asphaltene origin in the sol-gel transition and deposition of waxy model oil. SPE Journal, 30(7), 4303–4314. https://doi.org/10.2118/228290-PA
4.Yang, F., Zhu, B., Li, C., Sun, G., Wang, Y., Yao, B., & Li, X. (2025). Ultrasonic treatment improves the synergistic modification effect of EVA and asphaltenes on Nanyang crude oil. Energy & Fuels, 39(22), 10304–10313. https://doi.org/10.1021/acs.energyfuels.5c01234
5.Zhao, K., Chen, J., Chang, M., Sheng, F., Li, C., Sun, G., Yang, F., & Yao, B. (2025). Utilization of water/waste engine oil emulsion for the preparation of chemical additives-free coal slurry. Fuel, 400, 135777. https://doi.org/10.1016/j.fuel.2025.135777
6.Yao, B., Wang, Y., Miao, S., Zhao, K., Li, Q., Yang, F., & Sun, G. (2025). High amphiphilicity of polymeric pour point depressants facilitates the aggregation of co-crystallized wax crystals for Nanyang crude oil. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 723, 137372. https://doi.org/10.1016/j.colsurfa.2025.137372
7.Lv, S., Yang, F., Yu, Z., Li, C., Sun, G., Li, X., & Yao, B. (2025). Enhancing pipeline flow assurance: Sacrificial conformation strategy for improved shear stability in ultrahigh-molecular-weight polyolefin drag-reducing agents. Colloids and Surfaces A: Physicochemical and Engineering Aspects, *732*, 139184. https://doi.org/10.1016/j.colsurfa.2025.139184
8.Yang, F., An, F., Sun, G., Li, C., & Yao, B. (2025). Performance evaluation of nano-Mg(OH)₂/EVA composite pour point depressants on the flowability of Nanyang waxy crude oil. Energy & Fuels, *39*(50), 23556–23566. https://doi.org/10.1021/acs.energyfuels.5c04218
2024
1.Xia, X., Shi, H., Li, C., Li, X., Sun, G., Yao, B., Zhao, Y., & Yang, F. (2024). Mechanistic study on the effect of molecular structure characteristics of asphaltene on the synergistic modification with EVA on model waxy oil. Energy & Fuels, 38(3), 1836–1844. https://doi.org/10.1021/acs.energyfuels.3c04436
2.Zhu, H., Lei, Y., Yu, P., Li, C., Yao, B., Yang, S., Lu, Y., & Peng, H. (2024). Novel high-precision wax molecular diffusion coefficient correlation based on the diffusion laboratory apparatus coupled with differential scanning calorimeter. Fuel, 355, 129452. https://doi.org/10.1016/j.fuel.2023.129452
3.Shi, L., Yang, F., Li, C., Sun, G., Wang, Y., Yao, B., & Ma, R. (2024). Morphology of wax crystals affects the rheological properties and thermal conductivity of waxy oils. Industrial & Engineering Chemistry Research, 63(36), 15683–15695. https://doi.org/10.1021/acs.iecr.4c02248
4.Wang, Y., Yao, B., Li, C., Yang, F., & Sun, G. (2024). Mechanism study on rheological response of thermally pretreated waxy crude oil. Geoenergy Science and Engineering, *243*, 213364. https://doi.org/10.1016/j.geoen.2024.213364
2023
1.Yang, F., Dou, Z., Xia, X., Liu, D., Li, C., Yao, B., Sun, G., & Zhao, Y. (2023). Influence of thermal treating temperature on the performance of EVA wax inhibitor for Changqing Shale Oil. Energy & Fuels, 37(11), 7798–7808. https://doi.org/10.1021/acs.energyfuels.3c00787
2.Xia, X., Li, C., Qi, Y., Shi, H., Sun, G., Yao, B., Yang, F., & Zhao, Y. (2023). Asphaltene dispersants weaken the synergistic modification effect of ethylene-vinyl acetate and asphaltene for model waxy oil. Fuel, 341, 127628. https://doi.org/10.1016/j.fuel.2023.127628
3.Yao, B., Zhu, H.-R., Yan, B.-D., Li, C.-X., Yang, F., Sun, G.-Y., & Zeng, H.-B. (2023). Pre-heating temperature induced flowability and wax deposition characteristics of crude oil adding wax inhibitors. Petroleum Science, 20(4), 2468–2478. https://doi.org/10.1016/j.petsci.2023.02.030
4.Xia, X., Lian, W., Li, C., Sun, G., Yao, B., Ma, W., & Yang, F. (2023). Exploration of the fundamental factor for the synergistic modification of model waxy oil by EVA and asphaltene: An experiment and simulation study. Geoenergy Science and Engineering, 223, 211494. https://doi.org/10.1016/j.geoen.2023.211494
2022
1.Xia, X., Li, C., Dai, S., Duan, Z., Lian, W., Yao, B., Sun, G., & Yang, F. (2022). Modification effect of macroporous comb-like polymeric pour point depressants on the flow behavior of model waxy oils. Fuel, 314, 123113. https://doi.org/10.1016/j.fuel.2021.123113
2.Xia, X., Li, C.-X., Sun, G.-Y., Zhao, K.-K., Zhang, J., Yao, B., & Yang, F. (2022). Performance improvement of ethylene−vinyl acetate copolymer pour point depressant (EVA PPD) by adding small dosages of laurylamine (LA). Petroleum Science, 19(5), 2472–2482. https://doi.org/10.1016/j.petsci.2022.04.005
3.Yao, B., Li, C., Yang, F., Sun, G., Xia, X., Ashmawy, A. M., & Zeng, H. (2022). Advances in and perspectives on strategies for improving the flowability of waxy oils. Energy & Fuels, 36(15), 7987–8025. https://doi.org/10.1021/acs.energyfuels.2c01295
2021
1.Yao, B., Chen, J., Li, C., Yang, F., Sun, G., & Lu, Y. (2021). Prediction of wax deposits for crude pipelines using time-dependent data mining. SPE Journal, 26(4), 1980–2001. https://doi.org/10.2118/205374-pa
2.Yang, F., Zhu, H., Li, C., Yao, B., Wang, F., Chen, J., & Sun, G. (2021). Investigation on the mechanism of wax deposition inhibition induced by asphaltenes and wax inhibitors. Journal of Petroleum Science and Engineering, 204, 108723. https://doi.org/10.1016/j.petrol.2021.108723
2020
1.Liu, D., Zhang, H., Li, C., Yang, F., Sun, G., & Yao, B. (2020). Experimental investigation on the interactions between asphaltenes and comb-like octadecyl acrylate (OA) polymeric flow improvers at the model oil/water interface. Energy & Fuels, 34(3), 2693–2702. https://doi.org/10.1021/acs.energyfuels.9b03502
2.Yao, B., Chen, W., Li, C., Yang, F., Sun, G., Wang, G., & Xu, H. (2020). Polar asphaltenes facilitate the flow improving performance of polyethylene-vinyl acetate. Fuel Processing Technology, 207, 106481. https://doi.org/10.1016/j.fuproc.2020.106481
3.Zhu, H., Li, C., Fan, Y., Guo, P., Yang, F., Sun, G., Yao, B., & Xia, Z. (2020). A novel heterogeneous wax deposit structure triggered by polyethylene vinyl acetate (EVA) wax inhibitors. Journal of Dispersion Science and Technology, 41(13), 2002–2013. https://doi.org/10.1080/01932691.2019.1645027
4.Zhu, H., Li, C., Xiu, Z., Zhao, Z., Mu, K., Dai, H., Wang, F., Yang, F., & Yao, B. (2020). Effect of ethylene-vinyl acetate copolymer/amino-functionalized polymethylsilsesquioxane composite wax inhibitor on the rheological and wax depositing characteristics of waxy crude oil. Energy & Fuels, 34(7), 8120–8128. https://doi.org/10.1021/acs.energyfuels.0c01284
5.Yu, T., Li, C.-x., Yao, B., Zhang, Z.-j., Guo, Y., & Liu, L.-j. (2020). Standard friction prediction model of long-distance hot oil pipelines. Petroleum Science, 17(2), 487–498. https://doi.org/10.1007/s12182-019-00417-w
6.Li, C., Liu, D., Yang, F., Sun, G., Yao, B., & Wang, B. (2020). Experimental investigation on the interactions of asphaltenes and ethylene–vinyl acetate (EVA) copolymeric flow improvers at the interface between brine water and model oil. Fuel, 262, 116530. https://doi.org/10.1016/j.fuel.2019.116530
专利
1.一种多相流中气泡生成与扰动的实验系统及实验方法,CN122524388A
2.基于Optuna调优L-LSTM的原油管道蜡沉积厚度预测方法及系统,CN121958875A
3.一种基于拓扑结构的机械互锁型减阻剂及其制备方法和应用,CN121108516A
4.一种减阻剂及其制备方法和应用,CN121270763A
5.一种聚烯烃减阻剂及其制备方法和应用,CN121226591A
6.一种基于碳纳米管改性的抗剪切型聚烯烃油品减阻剂及其制备方法与应用,CN121248864A
7.一种基于木质素改性的抗剪切型聚烯烃油品减阻剂、制备方法及应用,CN121248861A
8.一种挂片法测试原油凝点的方法,CN120214010A
9.一种可控速率CO2降压破乳测试评价系统及方法,CN115372596A
10.一种低聚型天然气管输减阻剂及其制备方法,ZL202210508469.0
11.一种用于轻质原油的沥青质分散剂及其制备方法,ZL202110852747.X
12.一种涂料及其制备方法、一种原油输送管道防结蜡的方法,ZL202010952301.X
13.一种原油的全粘温曲线确定方法及系统,ZL202010766855.0
14.降凝防蜡剂及其制备方法,ZL201910573534.6
15.基于静摩擦力的原油储罐底部沉积物原位取样装置及方法,CN109900520A
16.一种复合降凝剂,CN108997991A
17.一种磁性脱蜡剂及磁性脱蜡方法,ZL201810784505.X
18.原油管道在线凝点测定装置,ZL201810397740.1
19.一种含蜡原油降凝降粘复合剂,ZL201610210933.2
研究项目
1.国家自然科学基金-面上项目,2026-2029,共聚物降凝剂的序构可控合成及构-效机制研究,主持;
2.国家自然科学基金-青年基金项目,2020-2022,高密度接枝梳状聚合物的聚巯基硅微纳米球复合防蜡剂对蜡油蜡沉积特性的调控机理研究,主持;
3.中国博士后科学基金-特别资助,2019-2021,高密度可控接枝的聚合物石墨烯复合蜡晶改进剂对蜡油流变与结蜡特性的调控研究,主持;
4.中国博士后科学基金-面上项目,2019-2021,仿生耐久的含蜡原油管道防蜡内涂层的构建与机理研究,主持;
5.中国博士后科学基金-派出项目,2021-2023,深水油气安全储运的界面科学研究与新型功能性材料开发,主持;
6.多介质灵活输运与智能化高效利用,2024-2025,国家石油天然气管网集团有限公司科学技术研究总院分公司,主持;
7.兰郑长成品油管道顺序输送甲醇投产方案研究,2025-2027,国家管网集团北方管道分公司,主持;
8.新型储罐防腐保温材料的研制和开发,2025-2027,国家石油天然气管网集团有限公司山东分公司,主持;
9.胜利油输送工艺优化研究,2025-2027,国家管网集团东部原油储运有限公司,主持;
10.国家自然科学基金-联合基金重点项目,2020-2023,深水蜡晶与水合物多相混输管道固相沉积与安全输运机制,主研;
11.国家自然科学基金-面上项目,2022-2025,超临界CO2驱采出W/O原油乳状液的发泡特性与乳化水滴稳定性的相互作用机制,主研;
12.国家自然科学基金-面上项目,2018-2021,表面可控接枝聚合物降凝剂分子的复合PSQ微球对蜡油体系析蜡特性与流变行为的调控机理研究,主研;
13.山东省重点研发计划,面向含蜡原油管道输送的POSS基高效纳米复合流动改进剂的开发,2022,主研;
14.水冷防火围油栏及高性能绿色吸油材料的研发,2024,山东省科学技术厅,主研;
15.抗剪切高端聚烯烃减阻剂的研发及应用,2024,廊坊开发区中油科新化工有限责任公司,主研;
16.超临界CO2管道缓蚀技术研究,2023,廊坊开发区中油科新化工有限责任公司,主研;
17.非常规介质管道输送必要性和技术可行性分析,2022-2023,国家管网集团工程技术创新有限公司,主研;
18.魏荆线老旧管道整治工程魏荆新线结蜡规律及清管周期研究、加剂原油流变性实验研究,2023,国家管网集团东部原油储运有限公司,主研;
19.基于原油关键组分分子工程特征的新型降凝剂研发,2022-2024,国家石油天然气管网集团有限公司科学技术研究总院分公司,主研;
20.山东管道供气保障与智能化研究,山东省天然气管道有限责任公司,2020,主研;
21.码头接卸原油安全储运的物性控制研究,中国石化管道储运有限公司,2019,主研;
22.中国石化管道储运有限公司,储罐原油沉降规律研究,2018,主研;
23.西安长庆科技工程有限责任公司,长庆油田5000万吨持续高效稳产关键技术研究与应用,2018,主研;
主要成果及获奖情况
1.2026,中国发明协会发明创业成果二等奖,1/6;
2.2026,河北省科技进步二等奖,5/8;
3.2026,中国石油教育学会教学成果奖特等奖,4/10;
4.2025,中国商业联合会技术发明二等奖,2/6;
5.2020,山东省优秀博士论文,1/1;
6.2020,中国石油和化工工业联合会科技进步三等奖,2/6;
7.2018,王涛英才奖,1/1;
8.2021,中国石油大学(华东)优秀班主任,1/1.
学术任职
1.中国流变学专业委员会青年委员
2.中国石油学会石油储运专业委员会青年委员
3.《油气储运》编委
4.《Petroleum Science》《涂料工业》青年编委
5.美国石油协会SPE会员;
6.中国化学会会员;
7.SCI期刊Fuel、SPE Journal等审稿人
Personal research website:
Orcid: https://orcid.org/0000-0001-8029-2514
ResearchGate: https://www.researchgate.net/profile/Bo-Yao-4
GoogleSchoolar: https://scholar.google.ca/citations?hl=en&user=pO9A1iQAAAAJ
备注
1、招收研究生情况:
招收油气储运工程博士研究生、学术/专业型研究生,欢迎储运、热工、化工、数学、计算机等专业本科生报考,注重培养学生的独立思考能力和学术品味,鼓励前沿探索,容忍试错,提供充足的科研经费支持与国内外学术交流机会。
学年校历