Carbon footprint analysis of advanced biological wastewater treatment plant

被引:4
|
作者
Karakas, Aysenur [1 ]
Tozum-Akgul, Seda [2 ]
Komesli, Okan Tarik [1 ]
Kaplan-Bekaroglu, Sehnaz Sule [3 ]
机构
[1] Ataturk Univ, Dept Environm Engn, TR-25240 Erzurum, Turkiye
[2] Isparta Univ Appl Sci, Yalvac Tech Sci, Vocat Sch, TR-32400 Isparta, Turkiye
[3] Suleyman Demirel Univ, Dept Environm Engn, TR-32260 Isparta, Turkiye
关键词
Carbon footprint; N2O emissions; CH4; emissions; Advanced wastewater treatment; GREENHOUSE-GAS EMISSIONS; METHANE EMISSIONS; NITROUS-OXIDE; BIOREACTOR; FLOW;
D O I
10.1016/j.jwpe.2024.105254
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study presents the carbon footprint assessment of an advanced biological wastewater treatment plant. The greenhouse gas (GHG) emission sources of the plant have been identified and the processes from which these emissions originate have been determined. In the carbon footprint assessment, direct and indirect emissions were considered by utilizing the United Nations Framework on Climate (UNFCC), Intergovernmental Panel on Climate Change (IPCC) methodology and National Greenhouse Accounts Factors. The total GHG emission amount of the plant is estimated as 10,389 and 53,529 tCO 2eq for 2018 and 2019, respectively. In 2019, the carbon footprint increased by approximately 5 times compared to 2018 due to poor operation of the plant. The largest share in total GHG emissions belongs to direct emissions. On the other hand, the main source of direct emissions is methane emissions from anaerobic stabilization ponds. Emissions from the electricity consumption were identified as the main source of indirect emissions. The present study is a preliminary study for taking measures to reduce GHG emissions by evaluating the carbon footprint by determining the source and amount of GHG emissions of the plant. Operating conditions of each processes is crucial in analyzing the carbon footprint of different treatment configurations. GHG emissions of the plant can be reduced by operational improvements such as increasing the amount and efficiency of biogas and reducing the consumption of chemicals. In addition, the use of clean energy sources such as wind, solar and biomass energy can increase energy efficiency and reduce GHG emissions of the plant.
引用
收藏
页数:8
相关论文
共 50 条
  • [31] Full-scale implementation of an advanced control system on a biological wastewater treatment plant
    Midas, Michela
    Corona, Francesco
    Sirvio, Jukka
    Hyvonen, Seppo
    Vahala, Riku
    IFAC PAPERSONLINE, 2016, 49 (07): : 1163 - 1168
  • [32] ADVANCED BIOLOGICAL TREATMENT OF TANNERY WASTEWATER.
    Refling, David R.
    Biesinger, Mark G.
    Barber, Lawrence K.
    Industrial wastes, 1981, 27 (03): : 16 - 18
  • [33] Application of the DIY carbon footprint calculator to a wastewater treatment works
    Chetty, Siva
    Pillay, Kaverajen
    WATER SA, 2015, 41 (02) : 263 - 272
  • [34] Energy Consumption and Carbon Footprint of Greek Wastewater Treatment Plants
    Goliopoulos, Nikos
    Mamais, Daniel
    Noutsopoulos, Constantinos
    Dimopoulou, Argyri
    Kounadis, Christos
    WATER, 2022, 14 (03)
  • [35] Energy use and carbon footprint for potable water and wastewater treatment
    Presura, Elena
    Robescu, Lacramioara Diana
    PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON BUSINESS EXCELLENCE, 2017, 11 (01): : 191 - 198
  • [36] Biological treatment of crab processing plant wastewater
    Geiger, E.L.
    Wheaton, F.W.
    Brinsfield, R.B.
    Alleman, J.E.
    Journal of the Water Pollution Control Federation, 1985, 57 (12): : 1128 - 1133
  • [37] Comprehensive carbon footprint analysis of wastewater treatment: A case study of modified cyclic activated sludge technology for low carbon source urban wastewater treatment
    Wang, Yuting
    Gao, Wenfang
    Lv, Longyi
    Ma, Xiaotian
    Ren, Zhijun
    Sun, Li
    Liu, Xiaoyang
    Wang, Pengfei
    Sun, Zhi
    Tian, Yu
    Zhang, Guangming
    SCIENCE OF THE TOTAL ENVIRONMENT, 2024, 923
  • [38] Sustainable operation of a biological wastewater treatment plant
    Trikoilidou, E.
    Samiotis, G.
    Bellos, D.
    Amanatidou, E.
    20TH INNOVATIVE MANUFACTURING ENGINEERING AND ENERGY CONFERENCE (IMANEE 2016), 2016, 161
  • [39] Kinetics and Performance of Biological Activated Carbon Reactor for Advanced Treatment of Textile Dye Wastewater
    Lin, Yen-Hui
    Ho, Bing-Han
    PROCESSES, 2022, 10 (01)
  • [40] Carbon footprint of a conventional wastewater treatment plant: An analysis of water-energy nexus from life cycle perspective for emission reduction
    He, Xinxia
    Li, Zhe
    Xing, Chongyang
    Li, Yuchen
    Liu, Mengmeng
    Gao, Xu
    Ding, Yunsong
    Lu, Lunhui
    Liu, Chen
    Li, Chong
    Wang, Dianchang
    JOURNAL OF CLEANER PRODUCTION, 2023, 429