李瑞

点击数:   更新日期: 2018-04-04

李瑞2.jpg

李瑞 副教授、硕士生导师


性 别:男

电子邮箱BOXLR@126.com

办公电话010-62337320

研究方向:化学工程 生物质资源化利用 生命周期分析

详细资料

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教育/工作经历

2005.3-至今 北京林业大学材料学院 副教授

2002.3-2005.3 清华大学、清华紫光英力工作站,博士后

1999.3-2002.3 天津大学,化工研究所,博士

1992.9-1999.3 河北工业大学,化工学院,学士/硕士

主讲课程

《工程热力学》《生物质能源设备及设备设计》《生命周期分析》

科研工作及成果

生物质高效提质利用工艺开发;生物质热化学转化过程中机理、热质传递及工艺:

1、生物质热转化(热解及超临界水热裂解)过程机理研究及工艺、设备开发;

2、生物质组分分离工艺开发及设计;

3、污泥水热转化实现减量化、资源化利用;

4、生物质油脂制备高级燃料催化剂及工艺开发;

5、生物质催化制氢;

   6、工艺过程生命周期及环境影响评价


学术成果展示(不超30个)

1、 The high-efficient utilization of sludge and its hydrothermal aqueous-phase through multi-stage hydrothermal-pyrolysis process: experiments, mechanisms, and life cycle assessment[J]. Renewable Energy, 2026, 256: 124121.

2、 Broadly Substrate-Applicable Efficient Conversion of Lignin-Derived Guaiacol to Cyclohexanol over Co-Ni Alloy Catalyst Supported on MWCNT[J]. ACS Sustainable Chemistry & Engineering, 2025, 13: 16390-16402.

3、 Exploring iodine-sulfur and hybrid sulfur cycles for integration of hydrogen production and power generation in high temperature gas-cooled reactors and life cycle assessment[J]. Energy Conversion and Management, 2025, 341: 120077.

4、 Multi-stage thermal-chemical transformation of reed to produce phenol bio-oil and biochar: Process exploration and life cycle assessment[J]. Industrial Crops and Products, 2025, 226: 120609.

5、 Efficient in-situ transfer hydrogenation of palmitic acid into alkanes over Ni/CexZr1-xO2 solid solution catalysts in aqueous medium with methanol as the hydrogen donor[J]. Fuel, 2025, 394: 135141.

6、 The influence of CeO2 different morphologies effects on hydrodeoxygenation for guaiacol on Ni/CeO2 catalysts[J]. Renewable Energy, 2024, 237: 121637.

7、 Catalytic transfer hydrogenation with methanol over Pt/C catalyst for synergistic hydrothermal hydrogenation of palmitic acid[J]. Energy, 2024, 304: 132071.

8、 Influences of Ni/CeO2 morphologies on steam reforming for acetic acid-a model compound of bio-oil[J]. International Journal of Hydrogen Energy, 2024, 73: 362-372.

9、 Highly selective hydrogenation of guaiacol to cyclohexanol over carbon-encapsulated highly dispersed cobalt catalyst[J]. Chemical Engineering Science, 2024, 290: 119779.

10、 Directional hydrothermal hydrogenation of palmitic acid to alcohol over carbon-encapsulated highly dispersed Co catalyst[J]. Chemical Engineering Science, 2024, 296: 120236.

11、 Hydrothermal hydrogenation/deoxygenation of palmitic acid to alkanes over Ni/activated carbon catalyst[J]. Chinese Journal of Chemical Engineering, 2024, 66: 8-18.

12、 Temperature-Controlled hydrothermal hydrogenation of palmitic acid to alkanol or alkanes over Co@CN-x catalysts derived from ZIF-67[J]. Chemical Engineering Journal, 2024, 481: 148565.

13、 Insights into influence of CeO2 crystal structure effects on hydrothermal hydrogenation for palmitic acid over Ni/CeO2 catalysts[J]. Chemical Engineering Journal, 2023, 475: 146357.

14、 Hydrothermal stable Ni nanoparticles encapsulated in carbon for hydrothermal hydrogenation of long-chain fatty acids to alkanes[J]. Chemical Engineering Journal, 2023, 471: 144336.

15、 Potassium-assisted activation strategy regulating metal-support interaction to promote hydrothermal hydrogenation/deoxygenation of palmitic acid[J]. Fuel Processing Technology, 2023, 250: 107892.

16、 Unveiling the pyrolysis mechanisms of hemicellulose: Experimental and theoretical studies. Renewable Energy, 2020, 147: 1120-1130

17、 Environmental evaluation of a distributed-centralized biomass pyrolysissystem: A case study in Shandong, China. Science of the Total Environment, 2020, 716: 136915.

18、 Synergistic effect of catalytic co-pyrolysis of cellulose and polyethylene over HZSM-5[J]. Journal of Thermal Analysis and Calorimetry, 2020,140: 363-371.

19、 Migration and transformation of nitrogen during hydrothermal liquefaction of penicillin sludge[J]. The Journal of Supercritical Fluids, 2020, 157: 104714.

20、 Catalytic Pyrolysis of Guaiacol over Ni/La–Modified Hierarchical HZSM‐5[J]. ChemistrySelect,2020,5(10).

21、 Synergistic effects on cellulose and lignite co-pyrolysis and co-liquefaction[J]. Bioresource Technology, 2020, 299: 122627.

22、 Environmental impact comparison of typical and resource-efficient biomass fast pyrolysis systems based on LCA and Aspen Plus simulation. Journal of Cleaner Production, 2019, 231: 254-267.

23、 Comprehensive modeling of heat transfer in cellulose pyrolysis with detailed kinetic schemes. Energy & Fuels, 2019, 33:6501-6508.

A modified kinetic analysis method of cellulose pyrolysis based on TG–FTIR technique. Thermochimica Acta, 2018, 665:20-27.