宁致远 副教授 博士 上海市 研究领域: 精细化工 研究方向: 低温等离子体强化催化过程及其机理研究;化工过程模拟与仿真;化学工程与环境工程交叉领域,污染物降解/控制的新方法与新工艺。 所在单位: 云南大学

基本信息

所在单位:
云南大学
机构细分:
化学科学与工程学院
单位类型:
高等院校
职务:
副教授
职称:
副教授
最高学历:
博士
教育经历:
2013-09至2016-06,浙江大学,化学工程与生物工程学院,博士;
2011-09至2013-06,昆明理工大学,环境科学与工程学院,硕士;
2006-09至2011-06,中国石油大学,化学工程与工艺学院,学士。
工作经历:
2023-08至今,云南大学,化学科学与工程学院,副教授;
2016-09至2023-08,云南大学,化学科学与工程学院,讲师。

科研能力

研究领域:
精细化工
研究方向:
低温等离子体强化催化过程及其机理研究;化工过程模拟与仿真;化学工程与环境工程交叉领域,污染物降解/控制的新方法与新工艺。
英文标签:
Catalyst Modification;Particle Image Velocimetry;Electrohydrodynamic Flow;Dielectric Barrier Discharge;Aluminum Flue Gas Desulfurization;Methane Activation;Metal-support Interactions;Heterogeneous Catalysis;Catalysis;Electrostatic Precipitator
论文著作:
[1] Z.  Ning, P. Liu, K. Xin, L. Liu, W. Fang, and P. Ning, “Deciphering the  mechanisms of plasma-enhanced CO reduction of SO2 on Ag-based  catalysts supported by Al2O3: An in-situ desorption  approach,” Sep Purif Technol, vol.  354, Feb. 2024, doi: 10.1016/j.seppur.2024.129128.
[2] Z.  Ning et al.,  “Understanding the Enhanced Catalytic Desulfurization Mechanism: Gas-Phase and  Surface Reactions with a CuCeOx Catalyst under Nonthermal Plasma Conditions,” J Phys Chem Lett, vol. 15, no. 5, pp.  1397–1411, Feb. 2024, doi: 10.1021/acs.jpclett.3c02894.
[3] Z.  Ning et al., “Elevating  hydrogen evolution performance with plasma-induced sulfur vacancies and  heteroatom doping in hollow-structured MnS–CoS catalysts,” J Alloys Compd, vol. 977, no. October  2023, p. 173461, 2024, doi: 10.1016/j.jallcom.2024.173461.
[4] Z.  Ning et al., “Oxygen  vacancy-enriched Cu/CeO2–ZrO2 catalyst with highly  dispersed Cu0 towards plasma catalytic advanced CO2 utilization,” J Clean Prod, vol. 442, no. October  2023, p. 141010, Feb. 2024, doi: 10.1016/j.jclepro.2024.141010.
[5] Z.  Ning et al.,  “Heterogeneous Surface Reaction Analysis of Non-Thermal Plasma-Enhanced  Spherical MOx/(Ce0.7Ti0.3)O2 Catalyst  Desulfurization: Effects of Plasma and MOx Loading on Surface Oxygen Defects,”  The Journal of Physical Chemistry C,  vol. 127, no. 16, pp. 7640–7658, Apr. 2023, doi:  10.1021/acs.jpcc.2c08979.
[6] X. Shi et al., “Excellent capture of Pb(II)  and Cu(II) by hierarchical nanoadsorbent Fe3O4@SiO2@PAA-SO3H:  A combined experimental and theoretical study,” Chemosphere, vol. 309, no. October, 2022, doi:  10.1016/j.chemosphere.2022.136791.
[7] Y. Wang  et al., “Theoretical  Exploration of Peculiar Sandwich-Type Clusters Formed by the Coordination of  E92-(E = Si, Ge, Sn) Zintl Clusters: Structural Properties, Active Sites, and  Hydrogen Storage,” Langmuir, vol.  38, no. 47, pp. 14485–14496, 2022, doi: 10.1021/acs.langmuir.2c02600.
[8] Y.  Wang, G. Zhang, X. Shi, L. Tang, and Z. Ning, “New insights in the  hydrolysis mechanism of carbon disulfide (CS2): a density  functional study,” Struct Chem, vol.  34, no. 1, pp. 71–82, Feb. 2023, doi: 10.1007/s11224-022-01963-7.
[9] Z.  Ning, R. Hu, R. Zhu, S. Gong, Z. Yang, and L. Tang, “Enhancing the  catalytic desulfurization capacity of CuO-LaCoO3 using two  dielectric barrier discharge configurations,” Molecular Catalysis, vol. 517, p. 112024, Jan. 2022, doi:  10.1016/j.mcat.2021.112024.
[10] X. Zhang  et al., “Stability study of  the As(V)-Fe(III) oxyhydroxide coprecipitate over a broad pH range:  Characteristics and mechanism,” Science  of The Total Environment, vol. 806, p. 150794, Feb. 2022, doi:  10.1016/j.scitotenv.2021.150794.
[11] Z.  Ning, J. Chen, and K. Yan, “Numerical analysis of ionic wind induced EHD  turbulence flow inside ESP,” Plasma and  Electrostatic Technologies for Environmental Application 2015 (PETEA 2015),  vol. 11, no. 1, pp. 64–68, 2017.
[12] Z.  Ning, Z. Zhou, Z. Yang, X. Liu, L. Duan, and L. Tang, “Two configurations  of a dielectric barrier discharge enhanced nanoparticle (CexTi1-x)O2  catalyst for the removal of low-concentration SO2,” Sep Purif Technol, vol. 278, no. July  2021, p. 119501, Dec. 2021, doi: 10.1016/j.seppur.2021.119501.
[13] 周正华, 蒋连爽, 张震宇, 黄锐, 宁静远, 宁致远, “CuSnZr三元催化剂应用于NTP强化催化脱硫过程的特性研究,” 中国环境科学, 2021, doi: 10.19674/j.cnki.issn1000-6923.20210713.002.
[14] 张志宾、宁致远, 化工安全概论. 电子科技大学出版社, 2021.
[15] Z.  Ning et al.,  “Electrohydrodynamic Flow and Its Impact on Particle Trajectories Inside Wet  Electrostatic Precipitator: Experimental and Numerical Analysis,” Environ Eng Sci, vol. 38, no. 6, pp.  513–525, Jun. 2021, doi: 10.1089/ees.2020.0151.
[16] Z.  Ning et al., “Non-thermal  plasma-enhanced low-temperature catalytic desulfurization of electrolytic  aluminum flue gas by CuO-ZrSnO4: experimental and numerical  analysis,” Environmental Science and  Pollution Research, vol. 27, no. 31, pp. 39474–39489, Nov. 2020,  doi: 10.1007/s11356-020-09602-6.
[17] Z. Y.  Ning, Q. Q. Guan, N. Ping, and J. J. Gu, “Partial Oxidation of Phenol in  Supercritical Water,” Adv Mat Res,  vol. 726–731, pp. 2714–2717, Aug. 2013, doi:  10.4028/www.scientific.net/AMR.726-731.2714.
[18] 宁致远, 沈欣军, 李树然, and 闫克平, “湿式除尘器内部湍流场与粒子轨迹的数值分析,” 浙江大学学报(工学版), vol. 51, no. 2, pp. 384–392, 2017.
[19] Z.  Ning et al., “Electrode  geometry optimization in wire-plate electrostatic precipitator and its impact  on collection efficiency,” J Electrostat,  vol. 80, pp. 76–84, 2016, doi: 10.1016/j.elstat.2016.02.001.
[20] 沈欣军, 郑钦臻, 宁致远, 王仕龙, 韩平, and 闫克平, “燃煤电厂电除尘PM10和PM2.5的排放控制 IV:采用二维PIV除尘,” 科技导报, vol. 32, no. 33, pp. 43–50, 2014, doi:  10.3981/j.issn.1000-7857.2014.33.005.
[21] Z.  Ning, L. Cheng, X. Shen, S. Li, and K. Yan, “Electrode configurations  inside an electrostatic precipitator and their impact on collection efficiency  and flow pattern,” The European Physical  Journal D, vol. 70, no. 6, p. 126, Jun. 2016, doi:  10.1140/epjd/e2016-60736-2.
发明专利:
[1] 宁致远,杨正璐,龚世友,  “一种同时处理生活垃圾热解烟气中焦油和CO的系统及方法,”  ZL202210034080.7,2022
[2] 魏家峰,宁致远,  “一种利用溢流水幕进行阳极清洁的湿式电捕焦装置,”  ZL202121568438.1, 2022
[3] 宁致远,  王则月, 郝天辉,  蒋连爽, 黄锐,  and 张震宇, “一种用于等离子体降解VOCs装置的自清洁防火系统,”  ZL202010137356.5, 2021
[4] 宁平,  殷在飞, 王学谦,  宁致远, “一种完全熄灭黄磷电炉放散火炬的装置,”  CN202852836 U, 2013
[5] 田森林,  宁致远, 宁平,  “一种浆料混合输送装置及其应用方法,”  CN201210191759.3, 2012
科研项目:
(1) 云南省科技厅, 基础研究专项-面上项目,202101AT070239低温等离子体强化催化脱除低浓度SO2的机理研究,2022-06至2025-05,10万元,在研,主持
(2) 云南省科技厅,创新引导与科技型企业培育计划,202104AP080081,基于复合金属催化剂的绿色高效烟气脱硫工工艺,2021-01至2022-12,10万元,在研,主持
(3) 云南省人才工作领导小组,2020年云南省高层次人才培养支持计划“青年拔尖人才”专项入选人才,2022-01至2025-12,50万元,在研,主持
(4) 云南大学,2021年东陆中青年骨干教师培养计划入选,2019-01至2022-12,8万元,在研,主持
(5) 云南省科技厅,基础研究青年项目,2018FB004,电解铝工业烟气中SO2的等离子体协同催化降解研究,2018-06至2021-05,5万元,已结题,主持
(6) 浙江省科技厅,浙江省重点科技创新团队计划项目,2013TD07,燃煤工业锅炉窑烟气污染控制技术创新团队,2014-01至2016-12,30万元,已结题, 参与
(7) 中华人民共和国科学技术部,国家863项目,2013AA065000,重点行业PM2.5过程控制与减排技术与装备,2013-01至2015-12,628万元,已结题,参与
(8) 中华人民共和国科学技术部,科技部支撑计划,2011BAC01B0301,高炉煤气的资源化利用关键技术,2011-01至2015-12,213万元,已结题,参与
(9) 中华人民共和国科学技术部,国家863项目,2008AA062602,氰化氢混合废气净化技术与设备研究,2009-05至2012-12,160万元,已结题,参与

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