贺维鹏

副教授

基本情况

姓名:贺维鹏

职称:副教授;博士生导师(2019至今)、硕士生导师(2013至今)

学位:工学博士

籍贯:山西省稷山县

所在专业:市政工程/给排水科学与工程

通讯地址:湖南省长沙市麓山南路2号 伟德官网土木工程公司

邮箱地址:heweipeng@hnu.edu.cn

邮编:410082

教育及工作经历

2002.09-2006.07伟德官网土木工程公司(给水排水工程本科学习)

2006.09-2008.07哈尔滨工业大学市政环境工程公司(市政工程硕士研究生/推免)

2008.09-2012.04哈尔滨工业大学市政环境工程公司(市政工程博士研究生/直博)

2012.04至今 伟德官网土木工程公司助理教授、副教授

2016.11-2017.11加拿大University of Manitoba土木与环境工程系访问学者

科研项目

贺维鹏博士自2012年入职伟德官网以来,主持(或参与)国家自然科学基金项目、国家科技支撑计划项目子课题、国家科技基础性工作专项项目、湖南省自然科学基金项目、伟德官网“青年教师成长计划”项目以及校企合作项目等共计40余项;2012-2022年指导国家级及校级“老员工创新性实验计划”项目10余项,并有3项获校二等奖、1项获校老员工创新创业成果一等奖;指导硕士研究生20余名(其中合作指导2名),且已完成答辩的学位论文中有1篇被评为湖南省优秀硕士学位论文、多篇被评为伟德官网优秀硕士学位论文,多名研究生获得硕士研究生国家奖学金;在《Water Research》、《Separation and Purification Technology》、《Chemical Engineering Research and Design》、《Desalination and Water Treatment》、《Journal of Environmental Sciences》、《中国给水排水》、《中国环境科学》、《环境工程学报》和《环境科学与技术》等国内外学术期刊以及国际会议相关刊物上公开发表论文近50篇。

近年来主持或参与的部分科研项目:

[1]县级水厂自控及电气系统智慧化升级技术咨询服务,校企合作项目,2026

[2]城市管道直饮水集成化制水装备及智慧管控平台研发,校企合作项目,2025-2028

[3]典型供水厂新污染物治理工程示范项目技术咨询服务,校企合作项目,2025-2026

[4]老化微塑料及附着生物膜对MBR内污泥活性、污染组分降解、预混凝缓解膜污染的协同影响机制,长沙市自然科学基金项目,2024-2025

[5]蓝山县三蓝水厂(新圩及太平圩镇)配套管网设计咨询,校企合作项目,2024-2025

[6]临空经济区公共绿地海绵城市专项设计咨询,校企合作项目,2024-2025

[7]污废水环境下生物膜在微塑料表面附着行为对MBR内污泥活性和膜污染的影响分析,湖南省自然科学基金项目,2024-2026

[8]洛阳国宏新能源电池产业基地项目电芯厂房BIM三维模型(含给排水、电气、暖通管线)制作,校企合作项目,2024

[9]净水厂低成高效工况下水质监测参数优化与颗粒图像采集分析系统构建,校企合作项目,2023-2024

[10]5GW高效异质结电池及组件生产基地项目室外排水方案及轻质隔墙深化设计,校企合作项目,2023-2024

[11]基于5G技术的城市供水全流程水质监测预警和智能分析关键技术研究与示范技术,校企合作项目,2023-2025

[12]次生微塑料吸附行为在混凝-超滤联用工艺中的协同净化效应及膜污染微观机理的分形解析,湖南省自然科学基金项目,2021-2023

[13]湖南省《垃圾渗沥液处理技术导则》编制,湖南省住房和城乡建设厅项目,2021

[14]催化电解及高级氧化技术处理垃圾渗沥液的试验研究,校企合作项目,2021

[15]粉末载体活性污泥法二沉池的模拟及优化研究,校企合作项目,2020-2021

[16]长沙县乡镇排水与污水处理专项规划,校企合作项目,2020-2021

[17]长善垸污水厂污泥化学法除臭研究,校企合作项目,2020

[18]花桥水质净化厂生物脱氮除磷工艺优化运行研究,校企合作项目,2020-2021

[19]利用餐厨垃圾废水回收可溶性碳源试验研究,校企合作项目,2019-2020

[20]平江县乡镇排水与污水处理专项规划,校企合作项目,2019

[21]株洲市城区排水系统现状调查与提质增效研究,湖南省住房和城乡建设厅项目,2019

[22]锑微污染水体增强捕集深度净化技术研究及应用示范,湖南省重点研发计划项目,2019-2021

[23]乡村宜居环境建设关键技术集成与示范,湖南省重点研发计划项目,2018-2020

[24]东安县饮用水源水降锑试验研究,校企合作项目,2018-2020

[25]生物接触A/O法高效去除生活污水中磷的试验研究,校企合作项目,2018-2020

[26]农村生活污水治理技术研究,湖南省住房和城乡建设厅项目,2017-2018

[27]海外给水项目含铁锰及氨氮微污染水源饮用水处理技术研究,校企合作项目,2017-2019

[28]基于水质调控的强化混凝去除水源水中典型重金属作用机制研究,湖南省自然科学基金项目,2015-2017

[29]新丰江水库、丹江口水库、梁子湖、部分洞庭湖有毒有害化学品赋存特征与水环境调查,国家基础专项课题,2015-2020

[30]强化混凝去除饮用水源水中重金属锑时絮体成长的计算机模拟及其影响机制研究,国家自然科学基金项目,2014-2016

[31]益阳自来水厂夏季沉后水超滤降锑中试试验研究,校企合作项目,2014

[32]长沙市低影响开发雨水综合利用技术研究,长沙市建设科技项目,2014-2015

[33]基于人工智能的高层建筑无负压自适应供水控制系统研究,校企合作项目,2014-2018

[34]水中絮体分形成长特征及其对锑去除效能影响研究,湖南省自然科学基金项目,2013-2015

[35]益阳市饮用水源降锑中试试验研究,校企合作项目,2013

[36]村镇环境监测技术集成与应用示范,国家科技支撑计划项目,2012-2015

[37]新化县饮用水源降锑中试试验研究,校企合作项目,2012

[38]长沙市用水数据分析及定额编制,校企合作项目,2012

[39]伟德官网青年教师成长计划资助,中央高校基本科研业务费,2012-2016

[40]株洲市神农城水资源综合利用系统应用技术研究与示范建设,校企合作项目,2012-2013

学术成果

科研著作:

[1]CFD-DEM Investigations on Turbid Particle Migration and Filter Layer Clogging in Downflow and Upflow Sand Filtration:Role of Particle Properties[J].Separation and Purification Technology,2026,Under Review.

[2]Mechanistic Insights into Molecular Weight-Driven and Hydrophobicity-Mediated Effects on Floc Growth Properties during Two-stage Ballasted Flocculation for Organics Removal[J].Water Research,2026,Under Review.

[3]Addressing Polypropylene and Sodium Dodecyl Sulfate Co-Contamination in Coagulation-Ultrafiltration Combined Process:Efficiency,Mechanisms and Backwash Strategies[J].Separation and Purification Technology,2026,386:136579.

[4]Insights into Adsorption Behaviors and Mechanisms of Aged Polypropylene(PP)Microplastics for Mn(II)Ions:Critical Effect of Different Valence Cations Coexisting in Water Solution[J].Separation and Purification Technology,2025,377:134506.

[5]CFD-based Prediction of Vortex-Induced Turbulent Flow in Urban Stormwater Manholes:Insights into Gravity and Pressure Flow Dynamics[J].Journal of Water Process Engineering,2025,77:108346.

[6]Downflow and Upflow Sand Filtration for Removing Turbid Particles with Diverse Morphological and Surface-Charge Characteristics:Comparisons of Filtered Water Quality and Head Loss Distribution[J].Separation and Purification Technology,2025,354:128678.

[7]Effects of Inlet Water Flow and Potential Aggregate Breakage on the Change of Turbid Particle Size Distribution during Coagulation-Sedimentation-Filtration(CSF):Pilot-Scale Experimental and CFD-Aided Studies[J].Chemical Engineering Research and Design,2025,216:135-148.

[8]CFD-aided Analysis of Inlet Velocity and Pipeline Bending Angle Effects on Flow and Energy in Urban Stormwater Manholes[J].Journal of Water Process Engineering,2025,74:107876.

[9]Pilot-Scale Study of Turbid Particle Evolutional/Removal Characteristics during Coagulation-Sedimentation-Filtration(CSF):Effects of Coagulant Dosage and Secondary Dosing after Breakage[J].Journal of Water Process Engineering,2024,68:106325.

[10]Treatment Process of Pre-Coagulated Waters Involving Polyethylene(PE)Microplastics by Ultrafiltration Membranes Coupled without or with Pre-Deposited Aggregate-Based Layer[J].Journal of Environmental Chemical Engineering,2024,12:113964.

[11]Two-Stage Injection of Polymer and Microsand During Ballasted Flocculation for Treating Kaolin Waters with or without Humic Acid:Floc Evolutional Characteristics,Performance and Mechanisms[J].Water Research,2024,259:121846.

[12]Differently Charged Polyacrylamides(PAMs)Significantly Affect Adsorption Affinity and Associated Floc Growth Behaviors During Ballasted Flocculation:Performance and Mechanism[J].Separation and Purification Technology,2024,329:125279.

[13]Ballasted Flocculation Pretreatment for Mitigating Ultrafiltration Membrane Fouling:Role of Differently Charged Polyacrylamides at Typical Coagulant Dosages[J].Separation and Purification Technology,2024,328:125029.

[14]Effect of Microplastic Aging Degree on Filter Cake Formation and Membrane Fouling Characteristics in Ultrafiltration Process with Pre-coagulation[J].Separation and Purification Technology,2023,310:123221.

[15]Internal Interaction between Chemically-pretreated Polypropylene Microplastics and Floc Growth during Flocculation:Critical Effect on Floc Properties and Flocculation Mechanisms[J].Separation and Purification Technology,2023,306:122710.

[16]Adsorption Behavior of Aged Polystyrene Microplastics(PSMPs)for Manganese in Water:Critical Role of Hydrated Functional Zone surrounding the Microplastic Surface[J].Journal of Environmental Chemical Engineering,2022,10:109040.

[17]Alkaline Aging Significantly Affects Mn(II)Adsorption Capacity of Polypropylene Microplastics in Water Environments:Critical Roles of Natural Organic Matter and Colloidal Particles[J].Journal of Hazardous Materials,2022,438:129568.

[18]Efficiency Analysis of Enhanced Sb(V)Removal via Dynamic Preloaded Floc in Coordination with Ultrafiltration[J].Separation and Purification Technology,2020,249:117115.

[19]Comparative Analysis on Floc Morphological Evolution in Cylindrical and Square Stirred-Tank Flocculating Reactors with or without Baffles:Flocculation-Test and CFD-Aided Investigations[J].Chemical Engineering Research and Design,2019,147:278-291.

[20]Comparative Analysis on Floc Growth Behaviors During Ballasted Flocculation by Using Aluminum Sulphate(AS)and Polyaluminum Chloride(PACl)as Coagulants[J].Separation and Purification Technology,2019,213:176-185.

[21]Effect of Impeller Clearance on Floc Growth Behaviors in a Baffled Square Stirred-Tank Reactor:Flocculation-Test and CFD-Aided Studies[J].Separation and Purification Technology,2019,212:233-244.

[22]Experimental and CFD Studies of Floc Growth Dependence on Baffle Width in Square Stirred-Tank Reactors for Flocculation[J].Separation and Purification Technology,2018,190:228-242.

[23]Comparative Analysis on Flocculation Performance in Unbaffled Square Stirred Tanks with Different Height-to-Width Ratios:Experimental and CFD Investigations[J].Chemical Engineering Research and Design,2018,132:518-535.

[24]The Role of Mixing Hydrodynamics on Floc Growth in Unbaffled Square Stirred-Tank Reactors for Flocculation[J].Journal of Environmental Chemical Engineering,2018,6(2):3041-3053.

[25]Characteristic Analysis on Temporal Evolution of Floc Size and Structure in Low-Shear Flow[J].Water Research,2012,46(2):509-520.

[26]Study on the Impact of Particle Size Distribution on Turbidity in Water[J].Desalination and Water Treatment,2012,41(1-3):26-34.

[27]Characteristic Analysis of Morphological Evolution of Suspended Particles in Water during Dynamic Flocculation Process[J].Desalination and Water Treatment,2012,41(1-3):35-44.

[28]Impact of Geometric Structure of Flocculation Reactor on Flow Field and Flocculation Efficiency[C].2010 IWA World Water Congress and Exhibition in Montreal,Canada.(Oral presentation)

[29]Quantitative Characterization of Floc Size and Fractal Structure during Dynamic Flocculation Process[C].2010 IWA World Water Congress and Exhibition in Montreal,Canada.(Poster presentation)

[30]Impact of Dynamic Distribution of Floc Particles on Flocculation Effect[J].Journal of Environmental Sciences,2009,21(8):1059-1065.

[31]Characteristics of the Dynamic Distribution of Suspended Particles in the Flocculation Process[J].Journal of Zhejiang University SCIENCE A,2009,10(9):1350-1358.

[32]Application of Numerical Simulation to Investigate Fractal Structure of Floc Formed in Flocculation Process of Water Treatment[C].2009 International Conference on Energy and Environment Energy.2009,2:441-445.

[33]Fractal Growth Characteristics of Flocs in Flocculation Process in Water Treatment[C].2009 International Conference on Energy and Environment Energy.2009,2:582~588.

[34]Fractal Characteristics of Particle Size Distribution in Dynamic Flocculation Process[J].Wuhan University Journal of Natural Sciences,2009,14(6):511-517.

发明专利

[1]一种基于FLUENT的雨水检查井流场分析优化模型及其应用[P].专利号:ZL 2024 1 1369011.7,授权公告日:2026年01月06日.

[2]基于浊质粒径分布演变的絮凝沉淀工艺滞后性分析[J].中国给水排水,2025,41(7):24-32.

[3]不同流向下浊质特性对砂过滤效能及流阻分布影响[J].中国给水排水,2024,已录用.

[4]氧氟沙星与聚苯乙烯微塑料复合污染对剩余污泥厌氧消化的影响[J].环境工程学报,2022,16(7):2335-2346.

[5]椰壳颗粒活性炭活化过硫酸钠预处理促进高固污泥水解产酸性能[J].环境工程学报,2022,16(6):1892-1899.

[6]发明专利:铁调控钝化SOM定向氧化土壤中原油的方法及钝化土壤[P].专利号:ZL 2020 1 0653675.1,授权公告日:2021年10月01日.

[7]助凝剂投加量及pH对BF-UF工艺膜污染的影响[J].环境工程学报,2021,15(5):1567-1576.

[8]不同清洗剂对BF/UF联用工艺膜污染的减缓特性[J].中国给水排水,2021,37(19):33-39.

[9]加载絮体形态对短流程超滤膜污染影响效应[J].中国环境科学,2021,41(3):1155-1161.

[10]絮体动态预负载协同超滤对水中锑(V)的去除机制[J].中国给水排水,2020,36(13):26-30.

[11]铁盐絮体预负载-超滤除锑(V)效能研究[J].中国环境科学,2020,40(9):3829-3834.

[12]二次供水系统优化控制的智能休眠模式[C].中国土木工程学会水工业分会水系统智能化技术研讨会2019论文集(山东·济南).2019,9:439-442.

[13]基于CFD的网格絮凝池内水流紊动协同效应分析[J].湖南师范大学自然科学学报,2017,40(4):14-20.

[14]强化混凝去除水中锑的中试运行效果分析[J].中国给水排水,2016,32(3):41-45.

[15]基于常规净水工艺的强化混凝除锑生产性试验研究[J].给水排水,2015,41(12):22-26.

[16]强化混凝过程絮体形态对锑(Ⅴ)去除效果的影响[J].环境工程学报,2015,9(10):4772-4779.

[17]聚硫酸铁强化混凝除锑(V)作用机制探讨[J].中国环境科学,2015,35(11):3346-3351.

[18]絮体破碎再形成行为的计算机模拟[J].环境工程学报,2013,7(9):3277-3282.

[19]絮体破碎过程的仿真及试验分析[J].中国环境科学,2013,33(10):1779-1784.

[20]饮用水水源中重金属污染防控技术与对策[J].给水排水,2012,38(8):1-3,94.(水业导航)

[21]动态絮凝过程水中絮体形态演变特征分析[C].清华大学第四届全国博士生学术会议论文集.2010,1:263-269.

[22]颗粒计数仪在水处理絮凝过程中的应用研究[J].环境科学与技术,2008,31(12):132-135.

[23]絮凝过程絮体粒度分布特征及流场仿真[J].北京工业大学学报,2010,36(3):353-358.

[24]水处理变速絮凝工艺优化设计探讨[J].环境科学与技术,2010,33(12F):196-198.

奖励与荣誉

[1]曾荣获教育部第一届博士研究生学术新人奖、

[2]第二届《李圭白专项基金》市政工程学科优秀工学博士学位论文奖、

[3]湖南省优秀硕士学位论文指导老师、

[4]伟德官网优秀硕士学位论文指导老师、

[5]伟德官网本科毕业论文(设计)优秀指导教师、

[6]伟德官网优秀实习指导教师、

[7]伟德官网优秀共产党员称号、

[8]伟德官网招生宣传工作先进个人称号等奖项

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