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Sustainable Energy 2023
水能源的研究现状与芬顿氧化法治污的应用
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Abstract:
水能具有很大的潜力可以开发和利用。特别是在中国这类水电资源较为丰富的国家,水力发电已经成为国内主要的电力供应方式之一。但是发展水能依然面临许多挑战,其中人类活动对于水资源的影响,是目前影响水能发展的主要原因之一。由于工农业的发展,导致水资源被污染的现象愈发严重,这便导致水能的开发受到了极大地限制。为了解决这一现状,我国积极倡导可持续发展理念,许多科研人员开始着手这一理念来解决水污染问题。本文主要综述了近些年来国内外水能开发的现状,并对光芬顿氧化法及非均相芬顿催化氧化法在解决水污染问题方面的可持续性进行了分析。
Hydropower has great potential to be developed and utilized. Particularly in countries such as China, which is rich in hydropower resources, hydropower has become one of the main forms of electricity supply in the country. However, there are still many challenges to the development of hydropower, including the impact of human activities on water resources, which is one of the main reasons affecting the development of hydropower. As a result of the development of agriculture and industry, the phenomenon of water resources being polluted has become more and more serious, which has led to the development of hydro energy being greatly restricted. In order to solve this situation, China actively advocates the concept of sustainable development; many researchers began to embark on this concept to solve the problem of water pollution. In this paper, the current situation of water energy development at home and abroad in recent years is reviewed, and the sustainability of photo-Fenton oxidation and non-homogeneous Fenton catalytic oxidation in solving the water pollution problem is analyzed.
[1] | 王雪, 王良, 赵爽, 高林. Fenton催化应用于治理环境水体中有机污染物[J]. 科技创新与应用, 2020(2): 181-182. |
[2] | 韩冬, 赵增海, 严秉忠, 崔正辉, 任艳. 2021年中国常规水电发展现状与展望[J]. 水力发电, 2022, 48(6): 1-5+72. |
[3] | 魏景东, 郭雁珩, 艾琳, 邱辰. 我国构建新型电力系统实现路径分析[J]. 水力发电, 2023, 49(11): 11-15. |
[4] | 张瑜, 胡春妍. 水能发电技术发展专利趋势[J]. 中国科技信息, 2023(18): 19-21. |
[5] | Bogoviz, A.V., Lobova, S.V. and Alekseev, A.N. (2020) Current State and Future Prospects of Hydro Energy in Russia. Interna-tional Journal of Energy Economics and Policy, 10, 482-488. https://doi.org/10.32479/ijeep.8968 |
[6] | Aroonrat, K. and Wongwises, S. (2015) Current Status and Potential of Hydro Energy in Thailand: A Review. Renewable and Sus-tainable Energy Reviews, 46, 70-78. https://doi.org/10.1016/j.rser.2015.02.010 |
[7] | Igliński, B. (2019) Hydro En-ergy in Poland: The History, Current State, Potential, SWOT Analysis, Environmental Aspects. International Journal of Energy and Water Resources, 3, 61-72. https://doi.org/10.1007/s42108-019-00008-w |
[8] | 邓南圣, 吴峰. 环境光化学[M]. 北京: 化学工业出版社, 2003: 274-284. |
[9] | 相欣奕, 郑怀礼. Fenton反应处理染料废水研究进展[J]. 重庆建筑大学学报, 2004(4): 126-130. |
[10] | 包木太, 王娜, 陈庆国, 郭省学, 李希明. Fenton法的氧化机理及在废水处理中的应用进展[J]. 化工进展, 2008(5): 660-665. |
[11] | Fernandes, A., Pacheco, M.J., Ciríaco, L. and Lopes, A. (2015) Review on the Electrochemical Processes for the Treatment of Sanitary Landfill Leachates: Present and Future. Applied Catalysis B: Environmental, 176-177, 183-200.
https://doi.org/10.1016/j.apcatb.2015.03.052 |
[12] | 田江南. 非均相电芬顿法处理制药废水的研究[D]: [硕士学位论文]. 北京: 中国科学院大学(中国科学院过程工程研究所), 2017. |
[13] | 冉玉芳, 徐春, 李鑫鹏, 宫瑶, 冯卫博, 胡家硕, 赵承旺. Fenton氧化处理焦化废水的工艺优化及有机物降解机制[J]. 中国环境科学, 2023. |
[14] | Avetta, P., Pensato, A., Minella, M., et al. (2015) Activation of Persulfate by Irradiated Magnetite: Implications for the Degrada-tion of Phenol under Heterogeneous Photo-Fenton-Like Conditions. Environmental Science & Technology, 49, 1043-1050. https://doi.org/10.1021/es503741d |
[15] | 林爱秋, 程和发. 芬顿及光芬顿法降解氟喹诺酮类抗生素研究进展[J]. 环境化学, 2021, 40(5): 1305-1318. |
[16] | 阮洋, 邹禾宇, 白红霞, 吴必玉, 张伟. 光芬顿法在废水处理中的应用进展[J]. 山东化工, 2021, 50(15): 61-62. |
[17] | Ahmed, Y., Zhong, J., Yuan, Z. and Guo, J. (2021) Simul-taneous Removal of Antibiotic Resistant Bacteria, Antibiotic Resistance Genes, and Micropollutants by a Modified Pho-to-Fenton Process. Water Research, 197, Article ID: 117075.
https://doi.org/10.1016/j.watres.2021.117075 |
[18] | Sun, S., Yao, H., Fu, W., Xue, S. and Zhang, W. (2019) En-hanced Degradation of Antibiotics by Photo-Fenton Reactive Membrane Filtration. Journal of Hazardous Materials, 386, Article ID: 121955.
https://doi.org/10.1016/j.jhazmat.2019.121955 |
[19] | Lin, X., Xie, F., Yu, X., Tang, X., Guan, H., Chen, Y. and Feng, W. (2019) Ultraviolet Light Assisted Hierarchical Porous Fe2O3 Catalyzing Heterogeneous Fenton Degradation of Tetracycline under Neutral Condition with a Low Requirement of H2O2. Chemical Research in Chinese Universities, 35, 304-310.
https://doi.org/10.1007/s40242-019-8238-y |
[20] | 高崇, 李亚峰, 龚飞铭. 芬顿法在水处理中的发展与现状[J]. 辽宁化工, 2021, 50(3): 372-374. |
[21] | 李翠翠. 芬顿氧技术处理难降解有机废水的研究进展[J]. 广东化工, 2019, 46(10): 97-99. |
[22] | 李慧玲, 程凡, 石冬妮, 滕然, 蒋进元, 陈明, 谭伟. 非均相芬顿催化剂催化机理及性能提升策略综述[J]. 工业水处理, 2022. |
[23] | Wang, T., Wang, Z., Wang, P. and Tang, Y. (2018) An Integration of Pho-to-Fenton and Membrane Process for Water Treatment by a PVDF@CuFe2O4 Catalytic Membrane. Journal of Mem-brane Science, 572, 419-427.
https://doi.org/10.1016/j.memsci.2018.11.031 |
[24] | Gumy, D., Fernández-Ibá?ez, P., Malato, S., Pulgarin, C., Enea, O. and Kiwi, J. (2005) Supported Fe/C and Fe/Nafion/C Catalysts for the Photo-Fenton Degradation of Orange II under Solar Irradiation. Catalysis Today, 101, 375-382.
https://doi.org/10.1016/j.cattod.2005.03.036 |
[25] | 兰美晨. 基于活性炭载体催化裂解废塑料制备碳纳米管的研究[D]: [硕士学位论文]. 天津: 河北工业大学, 2020. |
[26] | Rodrigues, C.S.D., Soares, O.S.G.P., Pinho, M.T., Pereira, M.F.R. and Madeira, L.M. (2017) p-Nitrophenol Degradation by Heterogeneous Fenton’s Oxidation over Activated Carbon-Based Catalysts. Applied Catalysis B: Environmental, 219, 109-122. https://doi.org/10.1016/j.apcatb.2017.07.045 |
[27] | Secula, M.S., Vajda, A., Cagnon, B., Warmont, F. and Mamaliga, I. (2019) Photo‐Fenton‐Peroxide Process Using FE (II)‐Embedded Composites Based on Activated Carbon: Characteri-zation of Catalytic Tests. The Canadian Journal of Chemical Engineering, 98, 650-658. https://doi.org/10.1002/cjce.23662 |
[28] | Wang, X., Zhang, X., Zhang, Y., Wang, Y., Sun, S.-P., Wu, W.D. and Wu, Z. (2020) Nanostructured Semiconductor Supported Iron Catalysts for Heterogeneous Photo-Fenton Oxidation: A Re-view. Journal of Materials Chemistry A, 8, 15513-15546. https://doi.org/10.1039/D0TA04541A |
[29] | 李渊. 半导体氧化物复合光催化剂降解有机废水及其应用研究[D]: [硕士学位论文]. 秦皇岛: 华北理工大学, 2019. |
[30] | 杨婷婷. g-C3N4基光芬顿催化剂的制备及其降解四环素的性能研究[D]: [硕士学位论文]. 合肥: 合肥工业大学, 2021. |
[31] | 孟汝浩, 班新星, 左宏森, 李跃, 栗正新, 邵俊永, 孙冠男, 郝素叶, 韩少星, 张霖, 张国威, 周少杰. TiO2/g-C3N4复合粉体的制备及其在紫外/芬顿反应中光催化性能[J]. 人工晶体学报, 2022, 51(8): 1466-1472. |