Open Access
Issue
E3S Web Conf.
Volume 375, 2023
8th International Conference on Energy Science and Applied Technology (ESAT 2023)
Article Number 03009
Number of page(s) 4
Section Energy Sustainability & Energy-Related Environmental Science
DOI https://doi.org/10.1051/e3sconf/202337503009
Published online 27 March 2023
  1. Gogate PR. Cavitation: an auxiliary technique in wastewater treatment schemes[J]. Advances in Environmental Research, 2002, 6(3):335-358. [CrossRef] [Google Scholar]
  2. Badve M, Gogate P, Pandit A, et al. Hydrodynamic cavitation as a novel approach for wastewater treatment in wood finishing industry[J]. Separation & Purification Technology, 2013, 106(Complete):15-21. [CrossRef] [Google Scholar]
  3. Mandar P. Badve and Parag R. Gogate and Aniruddha B. Pandit and Levente Csoka. Hydrodynamic cavitation as a novel approach for delignification of wheat straw for paper manufacturing[J]. Ultrasonics Sonochemistry, 2014. [Google Scholar]
  4. Prasad SV, Thomas SA, Vinayak RV. Modelling of vortex based hydrodynamic cavitation reactors[J]. Chemical Engineering Journal, 2018, 377:S138589471831492X-. [Google Scholar]
  5. Zhang Xiaodong, Yang Huizhong, Li Zhiyi. Relationship between Hydrodynamic cavitation strength and free radical production [J]. Journal of chemical industry, 2007, 58 (1) : 27-32. [Google Scholar]
  6. Yan Jun, Gou Xiaojun, Zou Quanfu, et al. Spectrophotometric determination of hydroxyl radical produced by Fenton reaction [J]. Journal of Chengdu University: Natural Science Edition, 2009, 28(2):4. [Google Scholar]
  7. Xu Xiangrong, Wang Wenhua. Fluorometric method for determination of hydroxyl radicals produced by Fenton reaction [J]. Chinese Journal of Analytical Chemistry, 1998, 26(12):4. [Google Scholar]
  8. Esplugas S, J Giménez, Contreras S, et al. Comparison of different advanced oxidation processes for phenol degradation[J]. Water Research, 2002, 36( 4):1034-1042. [CrossRef] [PubMed] [Google Scholar]
  9. Jia Zhi-Shen, WU Jian-min, TANG Meng-cheng. Colorimetric determination of hydroxyl radicals produced by Fenton reaction [J]. Progress in Biochemistry and Biophysics, 1996, 23(2):4. [Google Scholar]
  10. Shao-An, Cheng, and, et al. Optimizing electron spin resonance detection of hydroxyl radical in water[J]. Chemosphere, 2003. [PubMed] [Google Scholar]
  11. Li Jiwu, Yu Jie, Fan Lei. Quantitative detection of hydroxyl radical produced by high voltage corona liquid film discharge using bromophenol blue [J]. High Voltage Technology, 2012, 38(7): 1576-1581. [Google Scholar]
  12. Yan Jun, Gou Xiaojun, Zou Quanfu, et al. Spectrophotometric determination of hydroxyl radical produced by Fenton reaction [J]. Journal of Chengdu University (Natural Science Edition), 2009, 28(2): 91-93, 103. [Google Scholar]
  13. Yang Chunwei, Wang Dong. Detection of hydroxyl radicals produced by Fenton reaction in environmental simulated water by visible spectrophotometry [J]. Environmental Technology, 2005, (1): 29-31. [Google Scholar]
  14. Wang Jingang, Li Guifang, Wang Xikui, et al. Detection of hydroxyl radical and nitrite produced by cavitation effect [C]// Proceedings of the Third National Conference on Environmental Chemistry, 2005:29-30. [Google Scholar]
  15. Liu Ting, You Hong, Chen Qiwei, et al. Determination of hydroxyl radical in photoassisted heterogeneous Fenton system by fluorescence spectrometry and its influencing factors [J]. Environmental Science, 2009, 30(9): 2560-2564. [Google Scholar]
  16. X.F. Yang, X.Q. Guo. Investigation of the anthracene-nitroxide hybrid molecule as a probe for hydroxyl radicals[J]. The Analyst, 2001, 126(10): 1800-4. [CrossRef] [PubMed] [Google Scholar]
  17. Ding Haiyang, Feng Yujie, Lv Jiangwei, et al. Detection and electrocatalytic mechanism of hydroxyl radical in Titanium based tin dioxide Electrode electrolysis [J]. Chinese Journal of Analytical Chemistry, 2007, (10): 1395-1399. [Google Scholar]
  18. Liu Huimin, Wu Yongwu, Xiang Wenhao, et al. Study on on-line detection method of hydroxyl radical concentration based on optical fiber spectrum [J]. Laser Journal, 2020, 41(5): 62-66. [Google Scholar]
  19. Zhao BL. Application of electron spin resonance (ESR) technology in biology and medicine [J]. Chinese Journal of Spectroscopy, 2010, 27(1): 51-67. [Google Scholar]
  20. Yang Chunwei, Wang Dong, Guo Jianbo, et al. Comparison of hydroxyl radical detection methods in advanced oxidation of organic compounds in water [J]. Environmental Pollution Treatment Technology and Equipment, 2006, (1): 136-141. [Google Scholar]
  21. Ding Qinxue, Lin Futian, Lu Daohui, et al. Study on spin capture of hydroxyl radicals produced by antitumor antibiotic boamycin in vitro [J]. Chinese Journal of Antibiotics, 1997, (1): 49-53. [Google Scholar]
  22. Cong Jianbo, Sun Cunpu, Mo Jian. Low temperature preservation of short-lived free radicals by spin trapping [J]. Progress in Biochemistry and Biophysics, 1993, (4): 326-327. [Google Scholar]
  23. Xue Juanqin, Jiang Meng, Yu Lihua, et al. Effect of trapping agent on detection of hydroxyl radical in electrochemical oxidation system [J]. Chinese Journal of Analytical Science, 2015, 31(5): 606-610. [Google Scholar]
  24. Han Yao, Li Jialong, Yang Yalei, et al. Determination of hydroxyl radical by dimethyl sulfoxide capture and high performance liquid chromatography [J]. Chinese Journal of Analytical Sciences, 2021, 37(2): 177-182. [CrossRef] [PubMed] [Google Scholar]
  25. Yang W, Deng YL. HPLC-ECD method for the detection of hydroxyl radicals [J]. Analytical Laboratory, 2007, (09):120-122. [Google Scholar]

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