中国建筑材料研究总院博士后,澳大利亚Monash University国家公派联合培养。致力于固井功能胶凝材料基础理论与复杂油气井固井工程乐鱼在线登录关键技术研究,主持国家自然科学基金项目、国家重点实验室开发基金项目、中石油重大项目等10余项;作为骨干研究人员参与了国家重大研发计划及油田合作科研项目10余项,发表学术论文40余篇,授权/公开发明专利12项,参编专著2部、参编教材1本,获省部级科研奖励1项。四川省专家服务团专家,《钻井液与完井液》学术期刊青年编委,《Cement and Concrete Research》、《Construction and Building Materials》、《Powder Technology》、《材料导报》等学术期刊审稿专家。
(2) Improvement of the microstructure of hydration products in cement paste by epoxy resin under high temperature and high pressure. Construction and Building Materials, 2024, 438: 137167. (SCI一区TOP,第一作者)
(3) Preparation of cellulose fibre-sheets and its impact on pore connectivity of cement paste during early hydration. Construction and Building Materials, 2024, 411: 134535. (SCI一区TOP,第一作者)
(4) Preparation of cellulose nanofibrils and their effects on the rheological properties and compressive strength of oil-well cement paste. Construction and Building Materials, 2023, 394: 132313. (SCI一区TOP,第一作者)
(5) Optimisation of early hydration, microstructure, and elevated-temperature resistance of calcium aluminate cement using steel-making slag. Ceramics International, 2022, 48(23): 35328-35339. (SCI一区,第一作者)
(6) Microstructural feature of cellulose fibre in cement-based composites at different curing temperature. Journal of Building Engineering, 2023, 63: 105569. (SCI二区,第一作者)
(7) Quantitative determination of the hydrostatic pressure of oil-well cement slurry using its hydration kinetics [J]. Construction and Building Materials, 2022, 340: 127704.(SCI一区TOP,第一作者)
(8) Pore connectivity of oil well cement in the early hydration stage by in situ electrical resistivity measurements and low-field nuclear magnetic resonance [J]. Construction and Building Materials, 2021, 303: 124448.(SCI一区TOP,第一作者)
(9) Time-varying characteristics and mechanisms of hydrostatic pressure descent of Portland cement slurry [J], Powder Technology, 2021, 385: 434–443. (SCI二区,第一作者)
(10) Visualization and quantification of pore structure of oil-well cement slurry in liquid-solid transition stage using high-resolution computed tomography [J]. Cement and Concrete Composites, 2020, 111: 103633.(SCI一区TOP,第一作者)
(11) Analysis of interfacial nanostructure and interaction mechanisms between cellulose fibres and calcium silicate hydrates using experimental and molecular dynamics simulation data [J]. Applied Surface Science, 2020, 506: 144914. (SCI二区,第一作者)
(12) Effects of steam on the compressive strength and microstructure of cement paste cured under alternating ultrahigh temperature [J]. Cement and Concrete Composites, 2020, 112: 103681. (SCI一区TOP,第一作者)
(13) Effects of microstructure and pore water on electrical conductivity of cement slurry during early hydration [J]. Composites Part B, 2019, 177: 107435. (SCI一区TOP,第一作者)
(14) Evolution of pore structure of oil well cement slurry in suspension–solid transition stage [J]. Construction and Building Materials, 2019, 214: 382–398. (SCI一区TOP,第一作者)
(15) Effect of the hydration rate and microstructure of Portland cement slurry on hydrostatic pressure transfer [J]. Powder Technology, 2019, 352: 251–261. (SCI二区,第一作者)
(16) Design of low-density cement optimized by cellulose-based fibre for oil and natural gas wells [J]. Powder Technology, 2018, 338: 506–518. (SCI二区,第一作者)
(17) Effects of steam on the compressive strength and microstructure of cement paste cured under alternating ultrahigh temperature [J]. Cement and Concrete Composites, 2020, 112: 103681 (SCI一区,通讯作者)
(18) Effect of CO2 solution on Portland cement paste under flowing, migration, and static conditions [J]. Journal of Natural Gas Science and Engineering, 2021, 95: 104179 (SCI二区,通讯作者)