[1] N.B. Gao, K. Kamran, C. Quan, P.T. Williams, Thermochemical conversion of sewage sludge: a critical review, Prog. Energy Combust. Sci. 79 (2020) 100843. [2] M.C. Collivignarelli, M. Canato, A. Abba, M. Carnevale Miino, Biosolids: What are the different types of reuse? J. Clean. Prod. 238 (2019) 117844. [3] M. Yan, J.T. Cui, T. Li, H.Y. Feng, D. Hantoko, E. Kanchanatip, Transformation and distribution of nitrogen and phosphorus in sewage sludge during supercritical water gasification, Fuel 332 (2023) 125918. [4] T. Pan, Y.Y. Zhou, Q. Xiang, X.L. An, Q. Pu, J.Q. Su, Efficient elimination of antibiotics and antibiotic resistance genes in hyperthermophilic sludge composting, J. Hazard. Mater. 479 (2024) 135525. [5] H. Hudcova, J. Vymazal, M.Rozkosny, Present restrictions of sewage sludge application in agriculture within the European Union, Soil Water Res. 14 (2) (2019) 104-120. [6] T.P. Vo, R.C. Zhang, J. Rintala, K.K. Xiao, C. He, Effect of thermochemical treatment of sewage sludge on its phosphorus leaching efficiency: Insights into leaching behavior and mechanism, Waste Manag. 190 (2024) 24-34. [7] Z.Y. Chang, G.C. Long, J.L. Zhou, C. Ma, Valorization of sewage sludge in the fabrication of construction and building materials: a review, Resour. Conserv. Recycl. 154 (2020) 104606. [8] S.Y. Sun, D.H. Xu, Y. Liang, G.Y. Jiang, Y.F. Diao, X.H. Gong, B.S. Wang, Effect of temperature, oxygen concentration, and CaO addition on SO2 and NOx emissions during oxygen-fuel combustion of municipal sludge, J. Energy Inst. 105 (2022) 424-432. [9] C.A. Wang, M.J. Chen, P.B. Zhao, L. Zhou, Y.J. Hou, J.M. Zhang, Q. Lyu, D.F. Che, Investigation on co-combustion characteristics and NOx emissions of coal and municipal sludge in a tangentially fired boiler, Fuel 340 (2023) 127608. [10] Z.B. Li, T.W. Fan, M.S. Lun, Q.W. Li, Optimization of municipal solid waste incineration for low-NOx emissions through numerical simulation, Sci. Rep. 14 (2024) 19309. [11] K. Wu, X. Zhang, X.Z. Li, Q.X. Yuan, R.X. Liu, Investigation of hydrochar properties and bio-oil composition from two-stage hydrothermal treatment of dairy manure, Fuel 339 (2023) 126945. [12] G.Z. Sun, W.Z. Liang, K. Wang, J.L. Li, W.W. Cui, L.S. Yang, G.Z. Chang, C.P. Wang, G.X. Yue, Investigation on hydrogen-rich syngas preparation from high wet sludge mixed with sawdust based on iron oxygen carrier, Fuel 343 (2023) 127853. [13] M.L. Wang, M.M. Mao, M. Zhang, G.D. Wen, Q.W. Yang, B.G. Su, Q.L. Ren, Highly efficient treatment of textile dyeing sludge by CO2 thermal plasma gasification, Waste Manag. 90 (2019) 29-36. [14] A.A. Alqadami, S.M. Wabaidur, B.H. Jeon, M.A. Khan, Co-hydrothermal valorization of food waste: process optimization, characterization, and water decolorization application, Biomass Convers. Biorefin. 14 (14) (2024) 15757-15768. [15] X.Y. Zheng, Z.W. Jiang, Z. Ying, Y.T. Ye, W. Chen, B. Wang, B.L. Dou, Migration and transformation of phosphorus during hydrothermal carbonization of sewage sludge: focusing on the role of pH and calcium additive and the transformation mechanism, ACS Sustainable Chem. Eng. 8 (21) (2020) 7806-7814. [16] W.Y. Deng, X.D. Li, J.H. Yan, F. Wang, Y. Chi, K.F. Cen, Moisture distribution in sludges based on different testing methods, J. Environ. Sci. (China) 23 (5) (2011) 875-880. [17] D.N. Li, R. Shan, L.X. Jiang, J. Gu, Y.Y. Zhang, H.R. Yuan, Y. Chen, A review on the migration and transformation of heavy metals in the process of sludge pyrolysis, Resour. Conserv. Recycl. 185 (2022) 106452. [18] N. Schmitt, A. Apfelbacher, N. Jager, R. Daschner, F. Stenzel, A. Hornung, Thermo-chemical conversion of biomass and upgrading to biofuel: The Thermo-Catalytic Reforming process-A review, Biofuels Bioprod. Biorefin. 13 (3) (2019) 822-837. [19] Q. Hu, Y. Shen, J.W. Chew, T.S. Ge, C.H. Wang, Chemical looping gasification of biomass with Fe2O3/CaO as the oxygen carrier for hydrogen-enriched syngas production, Chem. Eng. J. 379 (2020) 122346. [20] X.Y. Yan, J.J. Hu, Q.G. Zhang, S.H. Zhao, J.T. Dang, W. Wang, Chemical-looping gasification of corn straw with Fe-based oxygen carrier: Thermogravimetric analysis, Bioresour. Technol. 303 (2020) 122904. [21] D.M. Stearns, K.D. Courtney, P.H. Giangrande, L.S. Phieffer, K.E. Wetterhahn, Chromium(VI) reduction by ascorbate: role of reactive intermediates in DNA damage in vitro, Environ. Health Perspect. 102 (Suppl 3) (1994) 21-25. [22] M.I. Inyang, B. Gao, Y. Yao, Y.W. Xue, A. Zimmerman, A. Mosa, P. Pullammanappallil, Y.S. Ok, X.D. Cao, A review of biochar as a low-cost adsorbent for aqueous heavy metal removal, Crit. Rev. Environ. Sci. Technol. 46 (4) (2016) 406-433. [23] R. Deng, D.L. Huang, J. Wan, W.J. Xue, X.F. Wen, X.G. Liu, S. Chen, L. Lei, Q. Zhang, Recent advances of biochar materials for typical potentially toxic elements management in aquatic environments: a review, J. Clean. Prod. 255 (2020) 119523. [24] W.S. Zeng, D.H. Wang, Z.Y. Wu, L.T. He, Z.F. Luo, J. Yang, Recovery of nitrogen and phosphorus fertilizer from pig farm biogas slurry and incinerated chicken manure fly ash, Sci. Total Environ. 782 (2021) 146856. [25] B.X. Peng, Y.B. Zhu, L.X. Tang, Study on the fate of phosphorus, fluorine and chlorine in sludge during incineration, Fuel 358 (2024) 130331. [26] K.K. Xiao, Z.C. Yu, H. Wang, J.K. Yang, S. Liang, J.P. Hu, H.J. Hou, B.C. Liu, Investigation on emission control of NO(x) precursors and phosphorus reclamation during pyrolysis of ferric sludge, Sci. Total Environ. 670 (2019) 932-940. [27] S. V. Qaramaleki, J.A. Villamil, A.F. Mohedano, C.J. Coronella, Factors affecting solubilization of phosphorus and nitrogen through hydrothermal carbonization of animal manure, ACS Sustainable Chem. Eng. 8 (33) (2020) 12462-12470. [28] C.I. Aragon-Briceno, A.K. Pozarlik, E.A. Bramer, L. Niedzwiecki, H. Pawlak-Kruczek, G. Brem, Hydrothermal carbonization of wet biomass from nitrogen and phosphorus approach: a review, Renew. Energy 171 (2021) 401-415. [29] L.P. Wang, Y.Z. Chang, Q.F. Liu, Fate and distribution of nutrients and heavy metals during hydrothermal carbonization of sewage sludge with implication to land application, J. Clean. Prod. 225 (2019) 972-983. [30] C. Vogel, C. Adam, B. Peplinski, S. Wellendorf, Chemical reactions during the preparation of P and NPK fertilizers from thermochemically treated sewage sludge ashes, Soil Sci. Plant Nutr. 56 (4) (2010) 627-635. [31] C. Adam, B. Peplinski, M. Michaelis, G. Kley, F.G. Simon, Thermochemical treatment of sewage sludge ashes for phosphorus recovery, Waste Manag. 29 (3) (2009) 1122-1128. [32] X.Y. Zhang, J. Zhou, Z.J. Xu, P.R. Zhu, J.Y. Liu, Characterization of heavy metals in textile sludge with hydrothermal carbonization treatment, J. Hazard. Mater. 402 (2021) 123635. |