新葡京娱乐场-大陆娱乐场开户注册

|
高校科技成果轉化對接服務平臺

陳赟

2021-12-31 19:27:41
云上高博會 http://www.g2h0uzv.xyz
關鍵詞: 環境工程
專家職稱:

副教授

專家職務:

講師

擅長領域:

資源與環境

所在單位:

南京師范大學環境學院

專家介紹:

電子郵箱:75010@njnu.edu.cn  

辦公室:南京師范大學仙林校區環境學院 素質樓406室

通信地址:南京市棲霞區文苑路1號,210023

Researchgate: https://www.researchgate.net/profile/Yun_Chen57

專家履歷:

教育背景

2011.09-2017.06    中國科學技術大學,環境工程,工學博士(碩博連讀)

2015.08-2016.12    新加坡南洋理工大學,環境工程,聯合培養博士(國家公派)

2007.09-2011.06    南京師范大學,環境工程,工學學士

工作經歷

2017.09-至今,南京師范大學,環境科學與工程,講師

所獲獎項:

1陳赟,混菌厭氧發酵代謝產物調控機制研究,第十一屆奧加諾(水質與水環境)獎學金,二等獎學金,2017。

2. 江蘇省雙創博士人才,2018

3南京留學人員科技創新項目C類人才,2019

學術成果:

1. X. Wang, Y. Zhi, Y. Chen*, N. Shen, G. Wang, Y. Yan, Realignment of phosphorus in lake sediment induced by sediment microbial fuel cells (SMFC), Chemosphere (2021) 132927.

2. Y. Cheng, X. Wang, J. Wu, Y. Chen*, N. Shen, G. Wang, X. Liu, Improvement of Methane Production and Sludge Dewaterability by FeCl3-Assisted Anaerobic Digestion of Aluminum Waste-Activated Sludge, ACS ES&T Water (2021).

3. Y. Chen, R. Ruhyadi, J. Huang, W. Yan, G. Wang, N. Shen, W. Hanggoro, Comprehensive comparison of acidic and alkaline anaerobic fermentations of waste activated sludge, Bioresour. Technol. 323 (2021) 124613.

4. Z. Liang, N. Shen, H. Huang, Y. Chen*, Evaluating decolorization capacity about alginate encapsulation system of Shewanella oneidensis MR-1 mingled with conductive materials, Environmental Technology & Innovation 21 (2021) 101344.

5. W. Yan, J. Wu, Y. Chen*, N. Shen, G. Wang, X. Liu, Short reaction times coupled with alkalization improves the release of phosphorus from Al-waste activated sludge, Bioresour. Technol. (2021) 125168.

6. Y. Chen, R. Ruhyadi, J. Huang, W. Yan, G. Wang, N. Shen, W. Hanggoro, A novel strategy for improving volatile fatty acid purity, phosphorus removal efficiency, and fermented sludge dewaterability during waste activated sludge fermentation, Waste Management 119 (2021) 195-201.

7. W. Yan, Y. Chen*, N. Shen, G. Wang, J. Wan, J. Huang, The influence of a stepwise pH increase on volatile fatty acids production and phosphorus release during Al-waste activated sludge fermentation, Bioresour. Technol. 320 (2021) 124276.

8. N. Shen, Z. Liang, Y. Chen*, H. Song, J. Wan, Enhancement of syntrophic acetate oxidation pathway via single walled carbon nanotubes addition under high acetate concentration and thermophilic condition, Bioresour. Technol. 2020; 306: 123182.

9. H. Lin, Y. Chen*, N. Shen, Y. Deng, W. Yan, R. Ruhyadi, G. Wang, Effects of individual volatile fatty acids (VFAs) on phosphorus recovery by magnesium ammonium phosphate, Environ. Pollut. 2020; 261: 114212.

10. Y. Chen, R. Ruhyadi, N. Shen, Y. Wu, W. Yan, Z. Liang, J. Huang, G. Wang, Three birds with one stone: Lower volatile fatty acids (VFAs) reduction, higher phosphorus (P) removal, and lower alkali consumption via magnesium dosing after waste activated sludge (WAS) alkaline fermentation, J. Cleaner Prod. 2020; 258: 120687.

11. Y. Chen#, H. Lin#, N. Shen, W. Yan, J. Wang, G. Wang, Phosphorus release and recovery from Fe-enhanced primary sedimentation sludge via alkaline fermentation, Bioresour. Technol. 2019; 278: 266-271.

12. Y. Chen#, H. Lin#, W. Yan, J. Huang, G. Wang, N. Shen, Alkaline fermentation promotes organics and phosphorus recovery from polyaluminum chloride-enhanced primary sedimentation sludge, Bioresour. Technol. 2019; 294: 122160.

13. R. Ruhyadi#, Y. Chen#, N. Shen, W. Yan, Z. Liang, H. Wang, G. Wang, Multiple uses of magnesium chloride during waste activated sludge alkaline fermentation, Bioresour. Technol. 2019; 290: 121792.

14. Y. Chen, K. Xiao, N. Shen, R.J. Zeng, Y. Zhou, Hydrogen production from a thermophilic alkaline waste activated sludge fermenter: Effects of solid retention time (SRT), Chemosphere. 2018; 206: 101-106.

15. Y. Chen, K. Xiao, X. Jiang, N. Shen, R.J. Zeng, and Y. Zhou, Long solid retention time (SRT) has minor role in promoting methane production in a 65°C single-stage anaerobic sludge digester, Bioresource Technology. 2018; 247: 724-729.

16. Y. Chen, X. Jiang, K. Xiao, N. Shen, R. J. Zeng, Y. Zhou, Enhanced volatile fatty acids (VFAs) production in a thermophilic fermenter with stepwise pH increase -Investigation on dissolved organic matter transformation and microbial community shift, Water Research. 2017; 112:261-8.

17. Y. Chen, K. Xiao, X. Jiang, N. Shen, R. J. Zeng, Y. Zhou, In-situ sludge pretreatment in a single-stage anaerobic digester, Bioresource Technology. 2017; 238:102-108.

18. Y. Chen, N. Shen, T. Wang, F. Zhang, R. J. Zeng, Ammonium level induces high purity propionate production in mixed culture glucose fermentation, RSC Advances. 2017; 7:518-25.

19. Y. Chen, F. Zhang, T. Wang, N. Shen, Z.-W. Yu, R.J. Zeng, Hydraulic retention time affects stable acetate production from tofu processing wastewater in extreme-thermophilic (70oC) mixed culture fermentation, Bioresource Technology. 2016; 216:722-728.

20. Y. Chen, T. Wang, N. Shen, F. Zhang, R.J. Zeng, High-purity propionate production from glycerol in mixed culture fermentation, Bioresource Technology. 2016; 219:659-667.

21. Y. Chen, Man. Chen, N. Shen, R.J. Zeng, H2 production by the thermoelectric microconverter coupled with microbial electrolysis cell, International Journal of Hydrogen Energy. 2016; 41:22760-22768.

22. Y. Chen, J. He, Y.-Q. Wang, T.A. Kotsopoulos, P. Kaparaju, R.J. Zeng, Development of an anaerobic co-metabolic model for degradation of phenol, m-cresol and easily degradable substrate, Biochemical Engineering Journal. 2016; 106:19-25.

23. Y. Chen, J. He, Y. Mu, Y.C. Huo, Z. Zhang, T.A. Kotsopoulos, R.J. Zeng, Mathematical modeling of upflow anaerobic sludge blanket (UASB) reactors: Simultaneous accounting for hydrodynamics and bio-dynamics, Chemical Engineering Science. 2015; 137:677-684.

24. N. Shen, Y. Chen, Y. Zhou, Multi-cycle operation of enhanced biological phosphorus removal (EBPR) with different carbon sources under high temperature, Water Research. 2017; 114:308-315.

25. K. Xiao, Y. Chen, X. Jiang, Y. Zhou, Evaluating filterability of different types of sludge by statistical analysis: The role of key organic compounds in extracellular polymeric substances, Chemosphere. 2017; 170:233-41.

26. K. Xiao, Y. Chen, X. Jiang, Q. Yang, W.Y. Seow, W. Zhu, and Y. Zhou, Variations in physical, chemical and biological properties in relation to sludge dewaterability under Fe (II)  Oxone conditioning, Water Research. 2017; 109:13-23.

27. K. Xiao, Y. Chen, X. Jiang, V.K. Tyagi, Y. Zhou, Characterization of key organic compounds affecting sludge dewaterability during ultrasonication and acidification treatments, Water Research. 2016; 105:470-478.

28. F. Zhang, Y. Chen, K. Dai, R.J. Zeng, The chemostat study of metabolic distribution in extreme-thermophilic (70oC) mixed culture fermentation, Applied Microbiology and Biotechnology. 2014; 98:10267-10273.

29. F. Zhang, Y. Chen, K. Dai, N. Shen, R.J. Zeng, The glucose metabolic distribution in thermophilic (55oC) mixed culture fermentation: A chemostat study, International Journal of Hydrogen Energy. 2014; 40:919-926.

30. X.-R. Pan, Y.-K. Wang, W.-W. Li, Y.-S. Wang, X. Wang, Y. Chen, Y.-K. Geng, C.-X. Li, H.-q. Yu, P.K. Lam, (2017) Selective co-production of acetate and methane from wastewater during mesophilic anaerobic fermentation under acidic pH conditions. Environmental Science: Water Research & Technology.

31. K. Xiao, W.Y. Seow, Y. Chen, D. Lu, X. Jiang, Y. Zhou, (2017) Effects of thermal-Fe (II) activated oxone treatment on sludge dewaterability. Chemical Engineering Journal.

32. W. Yan, N. Shen, Y. Xiao, Y. Chen, F. Sun, V.K. Tyagi, Y. Zhou, (2017) The role of conductive materials in the start-up period of thermophilic anaerobic system. Bioresource Technology.

33. F. Zhang, J.H. Yang, K. Dai, Y. Chen, Q.R. Li, F.M. Gao, R.J. Zeng, Characterization of microbial compositions in a thermophilic chemostat of mixed culture fermentation, Applied Microbiology and Biotechnology. 2016; 100:1511-1521.

34. F. Zhang, Y. Zhang, Y. Chen, K. Dai, M.C.M. van Loosdrecht, R.J. Zeng, Simultaneous production of acetate and methane from glycerol by selective enrichment of hydrogenotrophic methanogens in extreme-thermophilic (70oC) mixed culture fermentation, Applied Energy. 2015; 148:326-333.

35. N. Shen, X.Y. Xia, Y. Chen, H. Zheng, Y.C. Zhong, R.J. Zeng, Palladium nanoparticles produced and dispersed by Caldicellulosiruptor saccharolyticus enhance the degradation of contaminants in water, RSC Advances. 2015; 5:15559-15565.

百家乐智能系统| 大发888娱乐城手机| 百家乐庄闲统计数| 长葛市| 百家乐官网娱乐城官方网| 太阳城百家乐官网杀祖玛| 湄潭太阳城房价| 百家乐赌博现金网平台排名| 在线百家乐官网下注| 百家乐哪家信誉好| 百家乐平注法到656| 大发888在线娱乐城21点| 侯马市| 百家乐官网多少钱| 百家乐一年诈骗多少钱| 送彩金百家乐的玩法技巧和规则| 澳门顶级赌场手机版| 百家乐官网游戏补牌规则| 百家乐网址皇冠现金网| 大发888在线体育官网| 网上百家乐官网大转轮| 真人百家乐源代码| 娱乐城注册送金| 太子百家乐官网娱乐城| 致胜百家乐软件| 百家乐官网赌博在线娱乐| 职业赌百家乐技巧| 大发888娱乐城官方下载lm0| 百家乐官网专业赌| 88娱乐城官网| 2024九紫离火| 威尼斯人娱乐网最新地址| 百家乐官网经验博彩正网| 百家乐楼梯缆| 菠菜百家乐官网娱乐城| 淘宝博百家乐的玩法技巧和规则| 磐安县| 百家乐新规则| 百家乐官网代理荐| 丰合网上娱乐| 百家乐手机版|