Ecology and Environment ›› 2023, Vol. 32 ›› Issue (2): 407-420.DOI: 10.16258/j.cnki.1674-5906.2023.02.021
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LI Haiyan1,2(), YANG Xiaoqin2, JAN Meipeng1,2, ZHANG Xiaoran2,*(
)
Received:
2022-09-27
Online:
2023-02-18
Published:
2023-05-11
Contact:
ZHANG Xiaoran
李海燕1,2(), 杨小琴2, 简美鹏1,2, 张晓然2,*(
)
通讯作者:
张晓然
作者简介:
李海燕(1975年生),女,教授,博士,主要从事水污染控制技术、城市雨水利用与径流污染控制等研究。E-mail: lihaiyan@bucea.edu.cn
基金资助:
CLC Number:
LI Haiyan, YANG Xiaoqin, JAN Meipeng, ZHANG Xiaoran. [J]. Ecology and Environment, 2023, 32(2): 407-420.
李海燕, 杨小琴, 简美鹏, 张晓然. 城市水体中微塑料的来源、赋存及其生态风险研究进展[J]. 生态环境学报, 2023, 32(2): 407-420.
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URL: https://www.jeesci.com/EN/10.16258/j.cnki.1674-5906.2023.02.021
污水处理厂 (WWTPs) | 处理量/ (104 m3·d-1) | 处理 方式 | 进水丰度/ (particles·L-1) | 出水丰度/ (particles·L-1) | 去除率/ % | 排放量/ (particles·d-1) | 形状 | 尺寸/ μm | 类型 | 颜色 | 参考文献 |
---|---|---|---|---|---|---|---|---|---|---|---|
意大利佛 罗伦萨 | 20 | 二级 处理 | — | 5 | — | 10×108 | 碎片、纤维、薄膜 | 38-1000 | PP、PE、PET、尼龙 | 白色、蓝色、红色、棕色或黑色 | Becucci et al., |
西班牙 | 4.5 | 二级 处理 | 171±42 | 10.7 | 94 | 4.8×108 | 碎片、纤维 | 25-104 | PE、PP | 透明、彩色 | Edo et al., |
意大利北部 | 40 | 三级处理 | 2.5±0.3 | 0.4±0.1 | 84 | 1.6×108 | 纤维、薄膜、碎片 | 100-500 | PET、PA | — | Magni et al., |
韩国天安 | 3.6 | A2O, DeNiPho法 | 3.52 | 1.65 | 49.4 | 5.9×107 | — | — | PET、PE、PP | — | Yano et al., |
北京 | 100 | A2O | 12.03±1.29 | 0.59±0.22 | 95.2 | 5.9±2.2×108 | 纤维、球形、颗粒、碎片、薄膜 | 50-5000 | PET、PES、PP | — | Yang et al., |
桂林 | 10、4、4.5 | 一级处理, A/O | 0.70-8.72 | 0.39-4.77 | 89.2-93.6 | 1.6×107-4.8×108 | 碎片、纤维 | 500-5000 | PP、PE | — | Zhang et al., |
哈尔滨 | 60 | 二级 处理 | 126.0±14.0 | 30.6±7.8 | 75.7 | 1.8×108 | 纤维、碎片 | 20-5000 | PES、PA、PET、PE、PP、PS | 透明、灰色、彩色 | Jiang et al., |
宁波 | 3 | 序批式活性污泥法 | 100.0±3.9 | 4.3±3.4 | 95.7 | 1.3×108 | 纤维、碎片、薄膜、泡沫、颗粒 | 500-2000 | PET、PE、PU、PP、PS、CSM | 黑色、红色、透明、白色、蓝色、绿色 | Jiang et al., |
宁波 | 10 | 循环活性污泥技术 | 105.0±5.3 | 3.5±2.6 | 96.7 | 3.5×108 | 纤维、碎片、薄膜、泡沫、颗粒 | 500-2000 | PET、PE、PU、PP、PS、CSM | 黑色、红色、透明、白色、蓝色、绿色 | Jiang et al., |
宁波 | 8 | 氧化沟工艺 | 65.0±4.3 | 3.0±1.6 | 95.4 | 2.4×108 | 纤维、碎片、薄膜、泡沫、颗粒 | 500-2000 | PET、PE、PU、PP、PS、CSM | 黑色、红色、透明、白色、蓝色、绿色 | Jiang et al., |
西班牙 加的斯市 | 5.2 | 二级 处理 | 645.03±182.24 | 16.40±7.85 | 97.46 | 1.49-1.94×109 | 纤维、碎片、薄膜 | 100-335 | PVC、PE、PA、PS | — | Franco et al., |
土耳其 伊斯坦布尔 | 40 | 二级 处理 | 137.0 | 9.6-21.0 | 84.7-93.0 | 2.9×108 | 纤维、碎片、颗粒 | 500-1000 | PC、PUR、PET | 黑色、蓝色、红色、棕色、绿色、透明 | Vardar et al., |
Table 1 Distribution and removal characteristics of microplastics in wastewater treatment plants at home and abroad
污水处理厂 (WWTPs) | 处理量/ (104 m3·d-1) | 处理 方式 | 进水丰度/ (particles·L-1) | 出水丰度/ (particles·L-1) | 去除率/ % | 排放量/ (particles·d-1) | 形状 | 尺寸/ μm | 类型 | 颜色 | 参考文献 |
---|---|---|---|---|---|---|---|---|---|---|---|
意大利佛 罗伦萨 | 20 | 二级 处理 | — | 5 | — | 10×108 | 碎片、纤维、薄膜 | 38-1000 | PP、PE、PET、尼龙 | 白色、蓝色、红色、棕色或黑色 | Becucci et al., |
西班牙 | 4.5 | 二级 处理 | 171±42 | 10.7 | 94 | 4.8×108 | 碎片、纤维 | 25-104 | PE、PP | 透明、彩色 | Edo et al., |
意大利北部 | 40 | 三级处理 | 2.5±0.3 | 0.4±0.1 | 84 | 1.6×108 | 纤维、薄膜、碎片 | 100-500 | PET、PA | — | Magni et al., |
韩国天安 | 3.6 | A2O, DeNiPho法 | 3.52 | 1.65 | 49.4 | 5.9×107 | — | — | PET、PE、PP | — | Yano et al., |
北京 | 100 | A2O | 12.03±1.29 | 0.59±0.22 | 95.2 | 5.9±2.2×108 | 纤维、球形、颗粒、碎片、薄膜 | 50-5000 | PET、PES、PP | — | Yang et al., |
桂林 | 10、4、4.5 | 一级处理, A/O | 0.70-8.72 | 0.39-4.77 | 89.2-93.6 | 1.6×107-4.8×108 | 碎片、纤维 | 500-5000 | PP、PE | — | Zhang et al., |
哈尔滨 | 60 | 二级 处理 | 126.0±14.0 | 30.6±7.8 | 75.7 | 1.8×108 | 纤维、碎片 | 20-5000 | PES、PA、PET、PE、PP、PS | 透明、灰色、彩色 | Jiang et al., |
宁波 | 3 | 序批式活性污泥法 | 100.0±3.9 | 4.3±3.4 | 95.7 | 1.3×108 | 纤维、碎片、薄膜、泡沫、颗粒 | 500-2000 | PET、PE、PU、PP、PS、CSM | 黑色、红色、透明、白色、蓝色、绿色 | Jiang et al., |
宁波 | 10 | 循环活性污泥技术 | 105.0±5.3 | 3.5±2.6 | 96.7 | 3.5×108 | 纤维、碎片、薄膜、泡沫、颗粒 | 500-2000 | PET、PE、PU、PP、PS、CSM | 黑色、红色、透明、白色、蓝色、绿色 | Jiang et al., |
宁波 | 8 | 氧化沟工艺 | 65.0±4.3 | 3.0±1.6 | 95.4 | 2.4×108 | 纤维、碎片、薄膜、泡沫、颗粒 | 500-2000 | PET、PE、PU、PP、PS、CSM | 黑色、红色、透明、白色、蓝色、绿色 | Jiang et al., |
西班牙 加的斯市 | 5.2 | 二级 处理 | 645.03±182.24 | 16.40±7.85 | 97.46 | 1.49-1.94×109 | 纤维、碎片、薄膜 | 100-335 | PVC、PE、PA、PS | — | Franco et al., |
土耳其 伊斯坦布尔 | 40 | 二级 处理 | 137.0 | 9.6-21.0 | 84.7-93.0 | 2.9×108 | 纤维、碎片、颗粒 | 500-1000 | PC、PUR、PET | 黑色、蓝色、红色、棕色、绿色、透明 | Vardar et al., |
城市水体 | 丰度/(particles·L-1) | 主要尺寸/μm | 形状 | 类型 | 颜色 | 参考文献 |
---|---|---|---|---|---|---|
上海黄浦江 | 26.2±9.60 | 80-500 | 纤维、薄膜、球形 | PET、PE、PP | — | Chen et al., |
上海苏州河 | 14.4±5.10 | 80-500 | 纤维、薄膜、球形 | PET、PE、PP、PA | — | Chen et al., |
天津海河 | 0.69-75 | 100-1000 | 纤维、碎片、薄膜、 泡沫、颗粒 | PE、EPC、PA、PP、PS、PU、PET | 白色、透明、黑色、棕色/灰色、蓝色/绿色、红色 | Liu et al., |
日本Tsurumi河 | 0.30-1.24 | 64-131 | 纤维 | PE、PP、PVC、 PS、PMMA | — | Kameda et al., |
波兰Vistula河 | 1.60-2.55 | — | 纤维、微珠、碎片 | — | 黑色、蓝色、粉红色、 灰色、绿色 | Sekudewicz et al., |
韩国Nakdong河 | 293-4.76×103 | 50-150 | 碎片、纤维、碎片、薄膜 | PP、PES、PE、PA | — | Eo et al., |
北京沙河 | 0.526-4.53 | 10-300 | 纤维、碎片、薄膜、球形 | PET、PP、PS、 PE、PVC | 透明、白色、灰色、 棕色、蓝色 | Zhang et al., |
南京秦淮河 | 1.47-2.06 | 100-500 | 纤维、碎片、泡沫、颗粒、薄膜 | PP、PE | 透明、蓝色、红色、 黑色、白色 | Yan et al., |
桂林辉县湿地 | 16.5-89.0 | 50-500 | 纤维、薄膜、碎片 | PE、PP、PVC、PA、PS | — | Xia et al., |
合肥大方营水库 | 8.80-32.1 | — | 纤维、碎片、薄膜、 微珠、颗粒 | — | 黑色、透明、蓝色、黄色、红色、绿色 | Wu et al., |
西安公园 | 2.90-6.97 | <500 | 纤维、颗粒、碎片、薄膜 | PP、PE、PS、 | — | Xu et al., |
丹麦雨水蓄水池 | 0.12-8.90 | 10-500 | 碎片、薄膜、 纤维、颗粒 | PP、PS、PES、 PE、PU、PVC | — | Liu et al., |
Table 2 Occurrences characteristics of microplastics in urban waters
城市水体 | 丰度/(particles·L-1) | 主要尺寸/μm | 形状 | 类型 | 颜色 | 参考文献 |
---|---|---|---|---|---|---|
上海黄浦江 | 26.2±9.60 | 80-500 | 纤维、薄膜、球形 | PET、PE、PP | — | Chen et al., |
上海苏州河 | 14.4±5.10 | 80-500 | 纤维、薄膜、球形 | PET、PE、PP、PA | — | Chen et al., |
天津海河 | 0.69-75 | 100-1000 | 纤维、碎片、薄膜、 泡沫、颗粒 | PE、EPC、PA、PP、PS、PU、PET | 白色、透明、黑色、棕色/灰色、蓝色/绿色、红色 | Liu et al., |
日本Tsurumi河 | 0.30-1.24 | 64-131 | 纤维 | PE、PP、PVC、 PS、PMMA | — | Kameda et al., |
波兰Vistula河 | 1.60-2.55 | — | 纤维、微珠、碎片 | — | 黑色、蓝色、粉红色、 灰色、绿色 | Sekudewicz et al., |
韩国Nakdong河 | 293-4.76×103 | 50-150 | 碎片、纤维、碎片、薄膜 | PP、PES、PE、PA | — | Eo et al., |
北京沙河 | 0.526-4.53 | 10-300 | 纤维、碎片、薄膜、球形 | PET、PP、PS、 PE、PVC | 透明、白色、灰色、 棕色、蓝色 | Zhang et al., |
南京秦淮河 | 1.47-2.06 | 100-500 | 纤维、碎片、泡沫、颗粒、薄膜 | PP、PE | 透明、蓝色、红色、 黑色、白色 | Yan et al., |
桂林辉县湿地 | 16.5-89.0 | 50-500 | 纤维、薄膜、碎片 | PE、PP、PVC、PA、PS | — | Xia et al., |
合肥大方营水库 | 8.80-32.1 | — | 纤维、碎片、薄膜、 微珠、颗粒 | — | 黑色、透明、蓝色、黄色、红色、绿色 | Wu et al., |
西安公园 | 2.90-6.97 | <500 | 纤维、颗粒、碎片、薄膜 | PP、PE、PS、 | — | Xu et al., |
丹麦雨水蓄水池 | 0.12-8.90 | 10-500 | 碎片、薄膜、 纤维、颗粒 | PP、PS、PES、 PE、PU、PVC | — | Liu et al., |
评价方法 | 评价内容 | 评价公式 | 参考文献 |
---|---|---|---|
聚合物危害指数 | 根据不同微塑料的化学毒性来评价其生态危害 | H=ΣPn×Sn | Lithner et al., |
污染负荷指数 | 根据微塑料的丰度来评价 微塑料的污染程度 | Tomlinson et al., | |
潜在生态风险指数 | 根据微塑料的丰度和化学毒性 来评价微塑料的污染程度 | Cf i=Ci/Cni Eri=Tri×Cf i | Peng et al., |
污染风险指数 | 根据转换的微塑料丰度和 化学毒性来评价其生态危害 | Ri=Hi×Li | Kabir et al., |
Table 3 Ecological risk evaluation methods of microplastic
评价方法 | 评价内容 | 评价公式 | 参考文献 |
---|---|---|---|
聚合物危害指数 | 根据不同微塑料的化学毒性来评价其生态危害 | H=ΣPn×Sn | Lithner et al., |
污染负荷指数 | 根据微塑料的丰度来评价 微塑料的污染程度 | Tomlinson et al., | |
潜在生态风险指数 | 根据微塑料的丰度和化学毒性 来评价微塑料的污染程度 | Cf i=Ci/Cni Eri=Tri×Cf i | Peng et al., |
污染风险指数 | 根据转换的微塑料丰度和 化学毒性来评价其生态危害 | Ri=Hi×Li | Kabir et al., |
微塑料类型 | 单体 | 密度/(g·cm-3) | 主要风险声明 | 危险等级 | 分数 |
---|---|---|---|---|---|
聚乙烯 (PE) | 乙烯 | 0.91-0.97 | 极易燃气体 | 1 | 11 |
可能引起嗜睡或头晕 | 2 | ||||
聚丙烯 (PP) | 丙烯 | 0.89-0.92 | 极易燃气体 | 1 | 1 |
聚苯乙烯 (PS) | 苯乙烯 | 0.28-1.04 | 易燃液体和蒸汽 | 0 | 30 |
吸入有害 | 2 | ||||
聚对苯二甲酸乙二醇酯 (PET) | 乙二醇 | 1.37-1.38 | 吞食有害 | 2 | 4 |
聚酰胺 (PA) | 己二胺 | 1.14-1.15 | 与皮肤接触有害 | 2 | 47 |
吞食有害 | 2 | ||||
可能引起呼吸刺激 | 2 | ||||
造成严重的皮肤烧伤和眼睛损伤 | 3 |
Table 4 Risk scores of microplastics Sn
微塑料类型 | 单体 | 密度/(g·cm-3) | 主要风险声明 | 危险等级 | 分数 |
---|---|---|---|---|---|
聚乙烯 (PE) | 乙烯 | 0.91-0.97 | 极易燃气体 | 1 | 11 |
可能引起嗜睡或头晕 | 2 | ||||
聚丙烯 (PP) | 丙烯 | 0.89-0.92 | 极易燃气体 | 1 | 1 |
聚苯乙烯 (PS) | 苯乙烯 | 0.28-1.04 | 易燃液体和蒸汽 | 0 | 30 |
吸入有害 | 2 | ||||
聚对苯二甲酸乙二醇酯 (PET) | 乙二醇 | 1.37-1.38 | 吞食有害 | 2 | 4 |
聚酰胺 (PA) | 己二胺 | 1.14-1.15 | 与皮肤接触有害 | 2 | 47 |
吞食有害 | 2 | ||||
可能引起呼吸刺激 | 2 | ||||
造成严重的皮肤烧伤和眼睛损伤 | 3 |
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