Co-pyrolysis with pine sawdust reduces the environmental risks of copper and zinc in dredged sediment and improves its adsorption capacity for cadmium

被引:9
作者
Liu, Qunqun [1 ]
Sheng, Yanqing [1 ]
Wang, Zheng [1 ]
机构
[1] Chinese Acad Sci, Yantai Inst Coastal Zone Res, Res Ctr Coastal Environm Engn Technol Shandong Pro, Yantai 264003, Peoples R China
关键词
Dredged sediment; Heavy metal stabilization; Co; -pyrolysis; Ecological risk; Adsorption; HEAVY-METALS; CD; STABILIZATION; TRANSFORMATION; SULFUR;
D O I
10.1016/j.jenvman.2023.117502
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Proper treatment of heavy metal-contaminated dredged sediment (DS) is crucial to avoid secondary pollution. Effective and sustainable technologies are desired for the treatment of Zn-and Cu-contaminated DS. Due to the advantages of low energy consumption and time saving, co-pyrolysis technology was innovatively applied to treat Cu-and Zn-polluted DS in this study, and the effects of the co-pyrolysis conditions on Cu and Zn stabili-zation efficiencies, potential stabilization mechanisms, and the possibility for resource utilization of co-pyrolysis product were also investigated. The results showed that pine sawdust is an appropriate co-pyrolysis biomass for the stabilization of Cu and Zn based on the leaching toxicity analysis. The ecological risks of Cu and Zn in DS were reduced after co-pyrolysis treatment. The total concentrations of Zn and Cu in co-pyrolysis products were decreased by 5.87%-53.45% and 8.61%-57.45% of that in DS before co-pyrolysis. However, the total concen-trations of Zn and Cu in DS remained basically unchanged after co-pyrolysis, which indicating the decreases in total concentrations of Zn and Cu in co-pyrolysis products were mainly related to dilution effect. Fraction analysis indicated that co-pyrolysis treatment contributed to transforming weakly bound Cu and Zn into stable fractions. The co-pyrolysis temperature and mass ratio of pine sawdust/DS had a greater influence than co -pyrolysis time on the fraction transformation of Cu and Zn. The leaching toxicity of Zn and Cu from the co -pyrolysis products was eliminated when the co-pyrolysis temperature reached 600 and 800 degrees C, respectively. Analysis of the X-ray photoelectron spectroscopy and X-ray diffraction results demonstrated that co-pyrolysis treatment could transform mobile Cu and Zn in DS into metal oxides, metal sulfides, phosphate compounds, etc. Batch adsorption procedures suggested that the co-pyrolysis product possessed a high adsorption capacity for Cd (95.70 mg/g at 318 K). The formation of CdCO3 precipitates and the complexation effects of oxygen -containing functional groups were the principal adsorption mechanisms of the co-pyrolysis product. Overall, this study provides new insights into sustainable disposal and resource utilization for heavy metal-contaminated DS.
引用
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页数:12
相关论文
共 48 条
[1]   Effects of Cu and Zn contamination on chicken manure-based bioponics: Nitrogen recovery, bioaccumulation, microbial community, and health risk assessment [J].
Aksorn, Satja ;
Kanokkantapong, Vorapot ;
Polprasert, Chongrak ;
Noophan, Pongsak ;
Khanal, Samir Kumar ;
Wongkiew, Sumeth .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2022, 311
[2]   Stabilization of heavy metals during co-pyrolysis of sewage sludge and excavated waste [J].
Chen, Guanyi ;
Tian, Shu ;
Liu, Bin ;
Hu, Mingtao ;
Ma, Wenchao ;
Li, Xiangping .
WASTE MANAGEMENT, 2020, 103 :268-275
[3]   Roles of biochar in cement-based stabilization/solidification of municipal solid waste incineration fly ash [J].
Chen, Liang ;
Wang, Lei ;
Zhang, Yuying ;
Ruan, Shaoqin ;
Mechtcherine, Viktor ;
Tsang, Daniel C. W. .
CHEMICAL ENGINEERING JOURNAL, 2022, 430
[4]   Copper Speciation Evolution in Swine Manure Induced by Pyrolysis [J].
Cheng, Yuan ;
Luo, Lei ;
Lv, Jitao ;
Li, Gang ;
Wen, Bei ;
Ma, Yibing ;
Huang, Rixiang .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2020, 54 (14) :9008-9014
[5]  
China Dredging Association, US
[6]   An overview of operations and processes for circular management of dredged sediments [J].
Crocetti, P. ;
Gonzalez-Camejo, J. ;
Li, K. ;
Foglia, A. ;
Eusebi, A. L. ;
Fatone, F. .
WASTE MANAGEMENT, 2022, 146 :20-35
[7]   Transformation and stabilization of heavy metals during pyrolysis of organic and inorganic-dominated sewage sludges and their mechanisms [J].
Cui, Zhiliang ;
Xu, Guoren ;
Ormeci, Banu ;
Liu, Hongwei ;
Zhang, Zhao .
WASTE MANAGEMENT, 2022, 150 :57-65
[8]   Enriched isotope tracing to reveal the fractionation and lability of legacy and newly introduced cadmium under different amendments [J].
Dong, Qiang ;
Liu, Yanwei ;
Liu, Guangliang ;
Guo, Yingying ;
Yang, Qingqing ;
Shi, Jianbo ;
Hu, Ligang ;
Liang, Yong ;
Yin, Yongguang ;
Cai, Yong ;
Jiang, Guibin .
JOURNAL OF HAZARDOUS MATERIALS, 2021, 403
[9]   Co-pyrolysis of sewage sludge and Ca(H2PO4)2: heavy metal stabilization, mechanism, and toxic leaching [J].
Gu, Weihua ;
Guo, Jiangshan ;
Bai, Jianfeng ;
Dong, Bin ;
Hu, Jun ;
Zhuang, Xuning ;
Zhang, Chenglong ;
Shih, Kaimin .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2022, 305
[10]   Effect of hydraulic binders? addition on trace metals stabilization in the S/S process of dredged sediments [J].
Gutsalenko, Tetiana ;
Bourdot, Alexandra ;
Billon, Gabriel ;
Alaimo, Veronique ;
Wattez, Thomas ;
Frouin, Laurent ;
Chaouche, Mohend .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2022, 324