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垃圾分类前后焚烧飞灰的理化性质及重金属污染特性

郭梦茹 张冰如 席佳锐 张博暄

郭梦茹,张冰如,席佳锐,等.垃圾分类前后焚烧飞灰的理化性质及重金属污染特性[J].环境工程技术学报,2022,12(3):843-850 doi: 10.12153/j.issn.1674-991X.20210560
引用本文: 郭梦茹,张冰如,席佳锐,等.垃圾分类前后焚烧飞灰的理化性质及重金属污染特性[J].环境工程技术学报,2022,12(3):843-850 doi: 10.12153/j.issn.1674-991X.20210560
GUO M R,ZHANG B R,XI J R,et al.Physicochemical properties and heavy metal pollution characteristics of incineration fly ash before and after refuse classification[J].Journal of Environmental Engineering Technology,2022,12(3):843-850 doi: 10.12153/j.issn.1674-991X.20210560
Citation: GUO M R,ZHANG B R,XI J R,et al.Physicochemical properties and heavy metal pollution characteristics of incineration fly ash before and after refuse classification[J].Journal of Environmental Engineering Technology,2022,12(3):843-850 doi: 10.12153/j.issn.1674-991X.20210560

垃圾分类前后焚烧飞灰的理化性质及重金属污染特性

doi: 10.12153/j.issn.1674-991X.20210560
基金项目: 国家自然科学基金项目(21876132);北京绿色未来环境基金会项目
详细信息
    作者简介:

    郭梦茹(1997—),女,硕士,主要从事垃圾焚烧飞灰重金属稳定化研究,1932857@tongji.edu.cn

    通讯作者:

    张冰如(1965—),女,教授,主要从事环境保护领域新型药剂开发与应用,bingru@tongji.edu.cn

  • 中图分类号: X705

Physicochemical properties and heavy metal pollution characteristics of incineration fly ash before and after refuse classification

  • 摘要:

    以上海市某垃圾焚烧厂焚烧飞灰为调查对象,分析垃圾分类前后飞灰的理化性质及重金属污染特性。结果表明:垃圾分类后飞灰表面积和孔容明显降低,氯化物含量也大幅降低;除Zn、Cu外,飞灰中其他重金属含量在垃圾分类后均增加,其中Pb浸出浓度远高于GB 16889—2008《生活垃圾填埋场污染控制标准》的浓度限值,环境风险较大,必须对该飞灰进行无害化处置;由于飞灰中Pb、Cd、Zn含量和不稳定形态的变化,其在酸性条件下的浸出浓度显著增高,对环境的潜在威胁较大。

     

  • 图  1  垃圾分类前后飞灰SEM图

    Figure  1.  Scanning electron microscope of fly ash before and after refuse classification

    图  2  飞灰的吸/脱附曲线

    Figure  2.  Adsorption and desorption isotherm of fly ash

    图  3  垃圾分类前后飞灰XPS图谱

    Figure  3.  XPS spectrum of fly ash before and after refuse classification

    图  4  飞灰XRD图谱

    Figure  4.  XRD spectrum of fly ash before and after refuse classification

    图  5  垃圾分类前后飞灰中重金属在不同pH条件下的浸出浓度

    Figure  5.  Leaching concentrations of heavy metals in fly ash before and after refuse classification under different pH conditions

    图  6  垃圾分类前后重金属形态分布

    Figure  6.  Speciation distribution of heavy metals before and after refuse classification

    表  1  连续浸提方法

    Table  1.   Sequential extraction procedure

    重金属形态浸提试剂分析条件
    可交换态8 mL 1 mol/L MgCl2(pH=7.0)常温下连续振荡2 h
    碳酸盐结合态8 mL 1 mol/L NaAc(pH=5.0)常温下连续振荡5 h
    铁锰氧化态20 mL 0.04 mol/L NH2OH·HCl95 ℃下浸提6 h
    有机结合态3 mL 0.02 mol/L HNO3, 8 mL 30%H2O2, 5 mL NH4Ac(20%HNO385 ℃下浸提5 h,
    常温30 min
    残渣态HCl+HNO3+HF+HClO4石墨炉/微波消解
    下载: 导出CSV

    表  2  飞灰的比表面积和孔容

    Table  2.   Specific surface area and pore volume of fly ash

    飞灰样品比表面积/(m2/g)孔容/(cm3/g)
    垃圾分类前23.350.05
    垃圾分类后13.810.03
    下载: 导出CSV

    表  3  飞灰溶解度及电导率

    Table  3.   Water solubility and ET of fly ash

    项目总量/
    g
    残渣/
    g
    总溶解固体/
    g
    溶解度/
    %
    电导率/
    (mS/cm)
    垃圾分类前10.014.525.4954.85110.63
    垃圾分类后10.006.393.6136.1075.93
    下载: 导出CSV

    表  4  飞灰重金属含量

    Table  4.   Contents of heavy metals in fly ash

    重金属垃圾分类前重金属
    含量/(mg/kg)
    垃圾分类后重金属
    含量/(mg/kg)
    Cr143.57528.59
    Fe2 596.2426 171.08
    Ni41.16195.40
    Cu3 714.52928.64
    Zn14 611.468 284.44
    Cd9.72137.86
    As38.09689.96
    Pb990.963 003.75
    下载: 导出CSV

    表  5  醋酸浸提飞灰重金属的浸出情况

    Table  5.   Leaching of heavy metals in fly ash extracted by acetic acid

    项目CrNiCuZnCdPb浸出液pH
    垃圾分类前浸出浓度/(mg/L)0.0400.0241.4933.1620.038 954.67512.27
    浸出量/(mg/kg)0.8050.47329.86363.2430.77993.492
    浸出率/%0.5611.1480.8040.4338.0139.434
    垃圾分类后浸出浓度/(mg/L)0.2070.0160.1941.7210.02219.43112.28
    浸出量/(mg/kg)4.1300.3213.88834.4120.449388.613
    浸出率/%0.7810.1640.4190.4150.32612.938
    GB 16889—2008浓度限值/(mg/L)4.50.5401000.150.25
    下载: 导出CSV

    表  6  硫酸硝酸浸提飞灰重金属的浸出情况

    Table  6.   Leaching of heavy metals in fly ash extracted with sulfuric acid and nitric acid

    项目CrNiCuZnCdPb浸出液pH
    垃圾分类前浸出浓度/(mg/L)0.0810.0261.2394.1390.0387.16812.20
    浸出量/(mg/kg)0.8130.26112.38841.3920.38471.679
    浸出率/%0.5660.6340.3340.2833.9467.233
    垃圾分类后浸出浓度/(mg/L)0.2010.0240.2321.5890.02726.63412.33
    浸出量/(mg/kg)2.0120.2382.32215.8860.269266.343
    浸出率/%0.3810.1220.2500.1920.1958.867
    GB 16889—2008浓度限值/(mg/L)4.50.5401000.150.25
    下载: 导出CSV

    表  7  水平振荡浸提飞灰重金属的浸出情况

    Table  7.   Leaching of heavy metals in fly ash by horizontal oscillation leaching

    项目CrNiCuZnCdPb浸出液pH
    垃圾分类前浸出浓度/(mg/L)0.0800.0201.2763.5310.0396.99412.10
    浸出量/(mg/kg)0.7980.19812.75935.3060.38769.935
    浸出率/%0.5560.4810.3430.2423.9827.057
    垃圾分类后浸出浓度/(mg/L)0.2190.0230.2271.5930.01325.82612.16
    浸出量/(mg/kg)2.1930.2262.26615.9260.129258.260
    浸出率/%0.4150.1160.2440.1920.0948.598
    GB 16889—2008浓度限值/(mg/L)4.50.5401000.150.25
    下载: 导出CSV
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  • 收稿日期:  2021-10-02
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