化工进展 ›› 2023, Vol. 42 ›› Issue (4): 2081-2090.DOI: 10.16085/j.issn.1000-6613.2022-1174
杨自强1(), 李风海1,2(), 郭卫杰1, 马名杰1, 赵薇1
收稿日期:
2022-06-23
修回日期:
2022-09-26
出版日期:
2023-04-25
发布日期:
2023-05-08
通讯作者:
李风海
作者简介:
杨自强(1998—),男,硕士研究生,研究方向为能源化工。E-mail:yangziqiang56@163.com。
基金资助:
YANG Ziqiang1(), LI Fenghai1,2(), GUO Weijie1, MA Mingjie1, ZHAO Wei1
Received:
2022-06-23
Revised:
2022-09-26
Online:
2023-04-25
Published:
2023-05-08
Contact:
LI Fenghai
摘要:
磷(P)是生物生长必不可少的营养物质,在自然界中主要以磷酸盐矿物质形式存在。污泥作为一种富磷的固体废物,可作为二次磷资源开发利用。本文对不同热处理方式(焚烧、热解、水热炭化)中污泥的磷迁移转化规律和影响进行了综述,热处理方式不仅可以缓解磷资源危机,促进磷资源的循环利用,而且可以减少污泥带来的环境问题,并生成有价值的副产品。在此基础上,归纳了不同添加剂(配煤、生物质和碱土化合物)对污泥中磷迁移转化的行为影响规律及机制,发现添加剂的加入可以促进热处理过程中磷的富集,并改变磷的赋存形态,从而提高灰中磷的生物可利用性。
中图分类号:
杨自强, 李风海, 郭卫杰, 马名杰, 赵薇. 市政污泥热处理过程中磷迁移转化的研究进展[J]. 化工进展, 2023, 42(4): 2081-2090.
YANG Ziqiang, LI Fenghai, GUO Weijie, MA Mingjie, ZHAO Wei. Review on phosphorus migration and transformation during municipal sewage sludge heat treatment[J]. Chemical Industry and Engineering Progress, 2023, 42(4): 2081-2090.
1 | LIU Yi, QU Haiyan. Design and optimization of a reactive crystallization process for high purity phosphorus recovery from sewage sludge ash[J]. Journal of Environmental Chemical Engineering, 2016, 4(2): 2155-2162. |
2 | MENG Xiangdong, HUANG Qunxing, XU Jie, et al. A review of phosphorus recovery from different thermal treatment products of sewage sludge[J]. Waste Disposal & Sustainable Energy, 2019, 1(2): 99-115. |
3 | 徐杰, 黄群星, 孟详东, 等. 钙基添加剂对污水污泥在水热炭化过程中磷形态及生物有效性的影响[J].化工进展, 2021, 40(6): 3507-3514. |
XU Jie, HUANG Qunxing, MENG Xiangdong, et al. Effect of calcium-based additive on phosphorus form and bioavailability during hydrothermal carbonization of sewage sludge[J]. Chemical Industry and Engineering Progress, 2021, 40(6): 3507-3514. | |
4 | COOPER J, LOMBARDI R, BOARDMAN D, et al. The future distribution and production of global phosphate rock reserves[J]. Resources, Conservation and Recycling, 2011, 57: 78-86. |
5 | 孟详东. 基于低温热转化的污泥中磷的迁移转化及回用研究[D]. 杭州: 浙江大学, 2021. |
MENG Xiangdong. Research on the transformation and recovery of phosphorus based on low-temperature thermal treatment of sewage sludge[D]. Hangzhou: Zhejiang University, 2021. | |
6 | HELIN J, WEIKARD H P. A model for estimating phosphorus requirements of world food production[J]. Agricultural Systems, 2019, 176: 102666. |
7 | LI Haigang, LIU Jian, LI Guohua, et al. Past, present, and future use of phosphorus in Chinese agriculture and its influence on phosphorus losses[J]. Ambio, 2015, 44(S 2): S274-S285. |
8 | LI Rundong, YIN Jing, WANG Weiyun, et al. Transformation of phosphorus during drying and roasting of sewage sludge[J]. Waste Management, 2014, 34(7): 1211-1216. |
9 | KLEEMANN R, CHENOWETH J, CLIFT R, et al. Evaluation of local and national effects of recovering phosphorus at wastewater treatment plants: Lessons learned from the UK[J]. Resources, Conservation and Recycling, 2015, 105: 347-359. |
10 | SHIBA N C, NTULI F. Extraction and precipitation of phosphorus from sewage sludge[J]. Waste Management, 2017, 60: 191-200. |
11 | 国家发展与改革委会员, 住房城乡建设部. 《“十四五”城镇污水处理及资源化利用发展规划》[EB/OL]. (2021-06-06) [2022-06-11]. . |
National Develop and Reform Commission,Ministry of Housing and Urban-Rural Development of People’s Republic of China. The use of facilities planning in “14th Five-Year” national urban sewage treatment and recycling[EB/OL]. (2021-06-06) [2022-06-11]. . | |
12 | LI Meng, LI Fenghai, LIU Quanrun, et al. Regulation of ash fusibility for high ash-fusion-temperature (AFT) coal by industrial sludge addition[J]. Fuel, 2019, 244: 91-103. |
13 | LI Fenghai, ZHAO Wei, FAN Hongli, et al. Effects of sludge on the ash fusion behaviors of corn stalk and its modification mechanisms[J]. Fuel, 2021, 293: 120378. |
14 | Danish Ministry of the Environment. Innovationspartner-skab for anvendelse af fosfor fra spildevand og spildevandsslam fra spildevandsforsyninger[EB/OL]. 2013. |
15 | STECKENMESSER D, VOGEL C, ADAM C, et al. Effect of various types of thermochemical processing of sewage sludges on phosphorus speciation, solubility, and fertilization performance[J]. Waste Management, 2017, 62: 194-203. |
16 | 严迎燕. 浅谈我国城镇污水处理厂污泥处理处置现状[J]. 广东化工, 2016, 43(11): 204-205. |
YAN Yingyan. Analysis the status quo of domestic sludge treatment and disposal in China[J]. Guangdong Chemical Industry, 2016, 43(11): 204-205. | |
17 | FONTS I, GEA G, AZUARA M, et al. Sewage sludge pyrolysis for liquid production: a review[J]. Renewable and Sustainable Energy Reviews, 2012, 16(5): 2781-2805. |
18 | SONG U, LEE E J. Environmental and economical assessment of sewage sludge compost application on soil and plants in a landfill[J]. Resources, Conservation and Recycling, 2010, 54(12): 1109-1116. |
19 | LIU Li, YE Qunying, WU Qing, et al. Effect of biochar addition on sludge aerobic composting and greenbelt utilization[J]. Environmental Technology & Innovation, 2021, 21: 101279. |
20 | ZHEN G Y, LYU X Q, KATO H, et al. Overview of pretreatment strategies for enhancing sewage sludge disintegration and subsequent anaerobic digestion: current advances, full-scale application and future perspectives[J]. Renewable and Sustainable Energy Reviews, 2017, 69: 559-577. |
21 | CAPUA F D, SPASIANO D, GIORDANO A, et al. High-solid anaerobic digestion of sewage sludge: challenges and opportunities[J]. Applied Energy, 2020, 278: 115608. |
22 | HERZEL H, KRÜGER O, HERMANN L, et al. Sewage sludge ash — A promising secondary phosphorus source for fertilizer production[J]. Science of the Total Environment, 2016, 542: 1136-1143. |
23 | PÉREZ C, BOILY J F, JANSSON S . et al. Acid-induced phosphorus release from hydrothermally carbonized sewage sludge[J]. Waste and Biomass Valorization, 2021, 12(12): 6555-6568. |
24 | GUEDES P, COUTO N, OTTOSEN L M, et al. Phosphorus recovery from sewage sludge ash through an electrodialytic process[J]. Waste Management, 2014, 34(5): 886-892. |
25 | 方平, 唐子君, 钟佩怡, 等. 城市污泥焚烧渣中重金属的浸出特性[J]. 化工进展, 2017, 36(6):2304-2310. |
FANG Ping, TANG Zijun, ZHONG Peiyi, et al. A study on leaching characteristics of heavy metals in sludge incineration slag[J]. Chemical Industry and Engineering Progress, 2017, 36(6): 2304-2310. | |
26 | SYED-HASSAN S S A, WANG Y, HU S, et al. Thermochemical processing of sewage sludge to energy and fuel: Fundamentals, challenges and considerations[J]. Renewable and Sustainable Energy Reviews, 2017, 80: 888-913. |
27 | XIAO Yi, ZHAO Ruihua, XIONG Zhongpu, et al.Transformation of phosphorous during incineration of sewage sludge: Influence of steam and mineral[J]. Fuel, 2021, 303: 121307. |
28 | HUANG Wenli, CAI Wei, HUANG He, et al. Identification of inorganic and organic species of phosphorus and its bio-availability in nitrifying aerobic granular sludge[J]. Water Research, 2015, 68: 423-431. |
29 | PARDO P, LÓPEZ-SÁNCHEZ J F, RAURET G. Relationships between phosphorus fractionation and major components in sediments using the SMT harmonised extraction procedure[J]. Analytical and Bioanalytical Chemistry, 2003, 376(2): 248-254. |
30 | FANG Zhenquan, LIU Feifei, LI Yanlong, et al.Influence of microwave-assisted pyrolysis parameters and additives on phosphorus speciation and transformation in phosphorus-enriched biochar derived from municipal sewage sludge[J]. Journal of Cleaner Production, 2021, 287: 125550. |
31 | 徐杰. 钙基添加剂对城市污泥在热处理过程中磷转化的影响[D]. 杭州: 浙江大学, 2021. |
XU Jie. Effect of calcium-based additives on phosphorus transformation of municipal sludge during thermal treatment[D]. Hangzhou: Zhejiang University, 2021. | |
32 | QIAN Tingting, JIANG Hong. Migration of phosphorus in sewage sludge during different thermal treatment processes[J]. ACS Sustainable Chemistry & Engineering, 2014, 2(6): 1411-1419. |
33 | OTTOSEN L M, KIRKELUND G M, JENSEN P E. Extracting phosphorous from incinerated sewage sludge ash rich in iron or aluminum[J]. Chemosphere, 2013, 91(7): 963-969. |
34 | BISWAS B K, INOUE K, HARADA H, et al. Leaching of phosphorus from incinerated sewage sludge ash by means of acid extraction followed by adsorption on orange waste gel[J]. Journal of Environmental Sciences, 2009, 21(12):1753-1760. |
35 | ZHAI Yunbo, XIANG Bobin, CHEN Hongmei, et al. Recovery of phosphorus from sewage sludge in combination with the supercritical water process[J]. Water Science and Technology, 2014, 70(6): 1108-1114. |
36 | ADAM C, PEPLINSKI B, MICHAELIS M, et al. Thermochemical treatment of sewage sludge ashes for phosphorus recovery[J]. Waste Management, 2009, 29(3): 1122-1128. |
37 | LI Rundong, TENG Wenchao, LI Yanlong, et al. Potential recovery of phosphorus during the fluidized bed incineration of sewage sludge[J]. Journal of Cleaner Production, 2017, 140: 964-970. |
38 | LI Rundong, ZHANG Ziheng, LI Yanlong, et al. Transformation of apatite phosphorus and non-apatite inorganic phosphorus during incineration of sewage sludge[J]. Chemosphere, 2015, 141: 57-61. |
39 | SALEH BAIRQ Z A, LI Rundong, LI Yanlong, et al. New advancement perspectives of chloride additives on enhanced heavy metals removal and phosphorus fixation during thermal processing of sewage sludge[J]. Journal of Cleaner Production, 2018, 188: 185-194. |
40 | 陈雅洁. 城市污水污泥加压热解及产物特性研究[D]. 大连:大连理工大学, 2018. |
CHEN Yajie. Study on pressurized pyrolysis of municipal sewage sludge and characteristics of products[D]. Dalian: Dalian University of Technology, 2018. | |
41 | 李金灵, 屈撑囤, 朱世东, 等. 含油污泥热解残渣特性及其资源化利用研究概述[J]. 材料导报, 2018, 32(17): 3023-3032. |
LI Jinling, QU Chengtun, ZHU Shidong, et al. Characteristics and reutilization of pyrolytic residues of oily sludge: An overview[J]. Materials Review, 2018, 32(17): 3023-3032. | |
42 | 全翠, 张广涛, 许毓, 等.污泥热解残渣中重金属形态分布的研究进展[J].化工学报, 2022, 73(1):134-143. |
QUAN Cui, ZHANG Guangtao, XU Yu, et al. Recent advances on the speciation distribution of heavy metals in sludge pyrolysis residue[J]. CIESC Journal, 2022, 73(1): 134-143. | |
43 | GAO Ningbo, KAMRAN K, QUAN Cui, et al. Thermochemical conversion of sewage sludge: A critical review[J]. Progress in Energy and Combustion Science, 2020, 79: 100843. |
44 | GAO Ningbo, LI Jiaqi, QUAN Cui, et al. Product property and environmental risk assessment of heavy metals during pyrolysis of oily sludge with fly ash additive[J]. Fuel, 2020, 266: 117090. |
45 | 张雅妮. 钙基添加剂对污泥热解过程磷迁移转化的影响机理研究[D]. 武汉:华中科技大学, 2020. |
ZHANG Yani. The mechanisms of the effects of calcium-based additives on migration and transformation of phosphorus during sludge pyrolysis[D]. Wuhan: Huazhong University of Science and Technology, 2020. | |
46 | KLEEMANN R, CHENOWETH J, CLIFT R, et al. Comparison of phosphorus recovery from incinerated sewage sludge ash (ISSA) and pyrolysed sewage sludge char (PSSC)[J]. Waste Management, 2017, 60: 201-210. |
47 | TITIRICI M M, ANTONIETTI M. Chemistry and materials options of sustainable carbon materials made by hydrothermal carbonization[J]. Chemical Society Reviews, 2010, 39(1): 103-116. |
48 | UCHIMIYA M, HIRADATE S, ANTAL M J JR. Dissolved phosphorus speciation of flash carbonization, slow pyrolysis, and fast pyrolysis biochars[J]. ACS Sustainable Chemistry & Engineering, 2015, 3(7): 1642-1649. |
49 | FENG Yuheng, MA Kunyu, YU Tianchi, et al. Phosphorus transformation in hydrothermal pretreatment and steam gasification of sewage sludge[J]. Energy & Fuels, 2018, 32(8): 8545-8551. |
50 | HUANG Rixiang, TANG Yuanzhi. Transformation of phosphorus during (Hydro) Thermal treatments of sewage sludge[J]. Environmental Science and Technology, 2015, 49(24): 14466-14474. |
51 | ZHANG Qiang, LIU Haifeng, LI Weifeng, et al. Behavior of phosphorus during co-gasification of sewage sludge and coal[J]. Energy & Fuels, 2012, 26(5): 2830-2836. |
52 | 孟详东, 黄群星, 严建华,等. 磷在污泥热解过程中的迁移转化[J]. 化工学报, 2018, 69(7): 3208-3215. |
MENG Xiangdong, HUANG Qunxing, YAN Jianhua, et al. Migration and transformation of phosphorus during pyrolysis process of sewage sludge[J]. CIESC Journal, 2018, 69(7): 3208-3215. | |
53 | DENG Hongping, LIU Huan, JIN Minghao, et al. Phosphorus transformation during the carbonaceous skeleton assisted thermal hydrolysis of sludge[J]. The Science of the Total Environment, 2022, 827:154252. |
54 | WANG Liping, CHANG Yuzhi, LI Aimin. Hydrothermal carbonization for energy-efficient processing of sewage sludge: A review[J]. Renewable and Sustainable Energy Reviews, 2019, 108: 423-440. |
55 | 郑晓园, 蒋正伟, 陈伟, 等. 污水污泥水热炭化过程中磷的迁移转化特性[J]. 化工进展, 2020, 39(5): 2017-2025. |
ZHENG Xiaoyuan, JIANG Zhengwei, CHEN Wei, et al. Migration and transformation of phosphorus in sewage sludge during hydrothermal carbonization process[J]. Chemical Industry and Engineering Progress, 2020, 39(5): 2017-2025. | |
56 | 陈伟, 郑晓园, 纪莎莎, 等. 污水污泥水热炭化处理研究进展[J]. 热能动力工程, 2020, 35(2): 1-8. |
CHEN Wei, ZHENG Xiaoyuan, JI Shasha, et al. Research progress on hydrothermal carbonization of sewage sludge[J]. Journal of Engineering for Thermal Energy and Power, 2020, 35(2): 1-8. | |
57 | HUANG Rixiang, FANG Ci, LU Xiaowei, et al. Transformation of phosphorus during (hydro) thermal treatments of solid biowastes: Reaction mechanisms and implications for P reclamation and recycling[J]. Environmental Science and Technology, 2017, 51(18): 10284-10298. |
58 | WANG Ruikun, WANG Chunbo, ZHAO Zhenghui, et al. Energy recovery from high-ash municipal sewage sludge by hydrothermal carbonization: Fuel characteristics of biosolid products[J]. Energy, 2019, 186: 115848. |
59 | ZHENG Xiaoyuan, YE Yutong, JIANG Zhengwei, et al. Enhanced transformation of phosphorus (P) in sewage sludge to hydroxyapatite via hydrothermal carbonization and calcium-based additive[J]. The Science of the Total Environment, 2020, 738: 139786. |
60 | OVSYANNIKOVA E, ARAUZO P J, С BECKER G, et al. Experimental and thermodynamic studies of phosphate behavior during the hydrothermal carbonization of sewage sludge[J]. The Science of the Total Environment, 2019, 692: 147-156. |
61 | ZHAI Yunbo, LIU Xiangmin, ZHU Yun, et al. Hydrothermal carbonization of sewage sludge: The effect of feed-water pH on fate and risk of heavy metals in hydrochars[J]. Bioresource Technology, 2016, 218: 183-188. |
62 | XU Zhixiang, SONG Hao, LI Peijun, et al. Hydrothermal carbonization of sewage sludge: Effect of aqueous phase recycling[J]. Chemical Engineering Journal, 2020, 387: 123410. |
63 | SHI Shuai, XU Guoren. Identification of phosphorus fractions of biofilm sludge and phosphorus release, transformation and modeling in biofilm sludge treatment related to pH[J]. Chemical Engineering Journal, 2019, 369: 694-704. |
64 | WANG Tao, ZHAI Yunbo, ZHU Yun, et al. Feedwater pH affects phosphorus transformation during hydrothermal carbonization of sewage sludge[J]. Bioresource Technology, 2017, 245: 182-187. |
65 | XU Yunfeng, YANG Fei, ZHANG Liang, et al. Migration and transformation of phosphorus in municipal sludge by the hydrothermal treatment and its directional adjustment[J]. Waste Management, 2018, 81: 196-201. |
66 | HE Zhangwei, LIU Wenzong, WANG Ling, et al. Clarification of phosphorus fractions and phosphorus release enhancement mechanism related to pH during waste activated sludge treatment[J]. Bioresource Technology, 2016, 222: 217-225. |
67 | XIE Chunsheng, ZHAO Jie, TANG Jie, et al. The phosphorus fractions and alkaline phosphatase activities in sludge[J]. Bioresource Technology, 2011, 102(3): 2455-2461. |
68 | ZHENG Xiaoyuan, JIANG Zhengwei, YING Zhi, et al. Migration and transformation of phosphorus during hydrothermal carbonization of sewage sludge: focusing on the role of pH and calcium additive and the transformation mechanism[J]. ACS Sustainable Chemistry and Engineering, 2020, 8(21): 7806-7814. |
69 | SHI Yan, CHEN Zheng, CAO Yang, et al. Migration and transformation mechanism of phosphorus in waste activated sludge during anaerobic fermentation and hydrothermal conversion[J]. Journal of Hazardous Materials, 2021, 403: 123649. |
70 | 国家质量监督检验检疫总局, 中国国家标准化管理委员会. 肥料中砷、镉、铅、铬、汞生态指标: [S]. 北京: 中国标准出版社, 2009. |
General Administration of Quality Supervision, Inspection and Quarantine of the People’s Republic of China, Standardization Administration of the People’s Republic of China. Ecological index of arsenic cadmium lead chromium and mercury for fertilizers: [S]. Beijing: Standards Press of China, 2009. | |
71 | XIA Yunxue, TANG Yuanyuan, SHIH Kaimin, et al. Enhanced phosphorus availability and heavy metal removal by chlorination during sewage sludge pyrolysis[J]. Journal of Hazardous Materials, 2020, 382: 121110. |
72 | WANG Hang, YANG Zijian, LI Xin, et al. Distribution and transformation behaviors of heavy metals and phosphorus during hydrothermal carbonization of sewage sludge[J]. Environmental Science and Pollution Research, 2020, 27(14): 17109-17122. |
73 | ZHANG Xueying, ZHOU Jun, XU Zhenjia, et al. Characterization of heavy metals in textile sludge with hydrothermal carbonization treatment[J]. Journal of Hazardous Materials, 2021, 402: 123635. |
74 | ALIPOUR M, ASADI H, CHEN Chengrong, et al. Bioavailability and eco-toxicity of heavy metals in chars produced from municipal sewage sludge decreased during pyrolysis and hydrothermal carbonization[J]. Ecological Engineering, 2021, 162: 106173. |
75 | SONG Huijuan, LIU Guangrui, ZHANG Jinzhi, et al. Pyrolysis characteristics and kinetics of low rank coals by TG-FTIR method[J]. Fuel Processing Technology, 2017, 156: 454-460. |
76 | MORGAN T J, KANDIYOTI R. Pyrolysis of coals and biomass: Analysis of thermal breakdown and its products[J]. Chemical Reviews, 2014, 114(3): 1547-1607. |
77 | FU Biao, LIU Guijian, MIAN M M, et al. Co-combustion of industrial coal slurry and sewage sludge: Thermochemical and emission behavior of heavy metals[J]. Chemosphere, 2019, 233: 440-451. |
78 | XIAO Yi, ZHAO Ruihua, CHEN Juan. Fixation of phosphorus in ash during cocombustion of sewage sludge and coals: Influence of coal and steam[J]. Energy & Fuels, 2022, 36(8): 4396-4403. |
79 | YAO Xiwen, HU Yonglu, GE Ji, et al. A comprehensive study on influence of operating parameters on agglomeration of ashes during biomass gasification in a laboratory-scale gasification system[J]. Fuel, 2020, 276: 118083. |
80 | STEMANN J, PEPLINSKI B, ADAM C. Thermochemical treatment of sewage sludge ash with sodium salt additives for phosphorus fertilizer production-analysis of underlying chemical reactions[J]. Waste Management, 2015, 45:385-390. |
81 | ZHAO Yazhou, REN Qiangqiang, NA Yongjie. Phosphorus transformation from municipal sewage sludge incineration with biomass: Formation of apatite phosphorus with high bioavailability[J]. Energy & Fuels, 2018, 32(10): 10951-10955. |
82 | ZHAO Yazhou, REN Qiangqiang, NA Yongjie. Promotion of cotton stalk on bioavailability of phosphorus in municipal sewage sludge incineration ash[J]. Fuel, 2018, 214: 351-355. |
83 | LI Linna, REN Qiangqiang, LI Shiyuan, et al. Effect of phosphorus on the behavior of potassium during the co-combustion of wheat straw with municipal sewage sludge[J]. Energy & Fuels, 2013, 27(10): 5923-5930. |
84 | REN Qiangqiang, LI Linna. Co-combustion of agricultural straw with municipal sewage sludge in a fluidized bed: Role of phosphorus in potassium behavior[J]. Energy & Fuels, 2015, 29(7): 4321-4327. |
85 | MENG Xiangdong, WANG Qian, WAN Biao, et al. Transformation of phosphorus during low-temperature co-combustion of sewage sludge with biowastes[J]. ACS Sustainable Chemistry and Engineering, 2021, 9(10): 3668-3676. |
86 | JOHANSEN J M, JAKOBSEN J G, FRANDSEN F J, et al. Release of K, Cl, and S during pyrolysis and combustion of high-chlorine biomass[J]. Energy & Fuels, 2011, 25(11): 4961-4971. |
87 | LIU Qiang, FANG Zheng, LIU Yuan, et al. Phosphorus speciation and bioavailability of sewage sludge derived biochar amended with CaO[J]. Waste Management, 2019, 87: 71-77. |
88 | LI Rundong, TENG Wenchao, LI Yanlong, et al. Transformation of phosphorus and stabilization of heavy metals during sewage sludge incineration: The effect of suitable additives and temperatures[J]. Environmental Science and Pollution Research, 2019, 26(29): 29917-29929. |
89 | HAN Hengda, HU Song, ZHANG Yani, et al. Roles of dehydration conditioners on the formation of apatite phosphorus during the pyrolysis of various sludge[J]. Journal of Environmental Chemical Engineering, 2021, 9(3): 105248. |
90 | TANG Siqi, YAN Feng, ZHENG Chunmiao, et al. Novel calcium oxide-enhancement phosphorus recycling technique through sewage sludge pyrolysis[J]. ACS Sustainable Chemistry and Engineering, 2018,6(7): 9167-9177. |
91 | XU Yunfeng, CHEN Jingyan, YANG Fei, et al. Transformation of phosphorus by MgCl2 and CaCl2 during sewage sludge incineration[J]. Environmental Science and Pollution Research, 2021, 28(42): 60268-60275. |
92 | LI Shuaishuai, ZENG Wei, JIA Ziyue, et al. Phosphorus species transformation and recovery without apatite in FeCl3-assisted sewage sludge hydrothermal treatment[J]. Chemical Engineering Journal, 2020, 399: 125735. |
93 | JEON S, KIM Dong Jin. Enhanced phosphorus bioavailability and heavy metal removal from sewage sludge ash through thermochemical treatment with chlorine donors[J]. Journal of Industrial and Engineering Chemistry, 2018, 58: 216-221. |
94 | WANG Hui, GUO Shuai, LIU Dunyu, et al. Understanding the impacts of water vapor on CaO sulfurization in a laboratory-scale fluidized bed[J]. Energy & Fuels, 2016, 30(9): 7108-7117. |
[1] | 邵博识, 谭宏博. 锯齿波纹板对挥发性有机物低温脱除过程强化模拟分析[J]. 化工进展, 2023, 42(S1): 84-93. |
[2] | 邵志国, 任雯, 许世佩, 聂凡, 许毓, 刘龙杰, 谢水祥, 李兴春, 王庆吉, 谢加才. 终温对油基钻屑热解产物分布和特性影响[J]. 化工进展, 2023, 42(9): 4929-4938. |
[3] | 李志远, 黄亚继, 赵佳琪, 于梦竹, 朱志成, 程好强, 时浩, 王圣. 污泥与聚氯乙烯共热解重金属特性[J]. 化工进展, 2023, 42(9): 4947-4956. |
[4] | 史天茜, 石永辉, 武新颖, 张益豪, 秦哲, 赵春霞, 路达. Fe2+对厌氧氨氧化EGSB反应器运行性能的影响[J]. 化工进展, 2023, 42(9): 5003-5010. |
[5] | 王兰江, 梁瑜, 汤琼, 唐明兴, 李学宽, 刘雷, 董晋湘. 快速热解铂前体合成高分散的Pt/HY催化剂及其萘深度加氢性能[J]. 化工进展, 2023, 42(8): 4159-4166. |
[6] | 王帅晴, 杨思文, 李娜, 孙占英, 安浩然. 元素掺杂生物质炭材料在电化学储能中的研究进展[J]. 化工进展, 2023, 42(8): 4296-4306. |
[7] | 吴亚, 赵丹, 方荣苗, 李婧瑶, 常娜娜, 杜春保, 王文珍, 史俊. 用于复杂原油乳液的高效破乳剂开发及应用研究进展[J]. 化工进展, 2023, 42(8): 4398-4413. |
[8] | 郑梦启, 王成业, 汪炎, 王伟, 袁守军, 胡真虎, 何春华, 王杰, 梅红. 菌藻共生技术在工业废水零排放中的应用与展望[J]. 化工进展, 2023, 42(8): 4424-4431. |
[9] | 李海东, 杨远坤, 郭姝姝, 汪本金, 岳婷婷, 傅开彬, 王哲, 何守琴, 姚俊, 谌书. 炭化与焙烧温度对植物基铁碳微电解材料去除As(Ⅲ)性能的影响[J]. 化工进展, 2023, 42(7): 3652-3663. |
[10] | 关红玲, 杨辉, 井红权, 刘玉琼, 谷守玉, 王好斌, 侯翠红. 木质素基控释材料及其在药物输送和肥料控释中的应用[J]. 化工进展, 2023, 42(7): 3695-3707. |
[11] | 杨子育, 朱玲, 王文龙, 于超凡, 桑义敏. 阴燃法处理含油污泥的研究及应用进展[J]. 化工进展, 2023, 42(7): 3760-3769. |
[12] | 姚丽铭, 王亚琢, 范洪刚, 顾菁, 袁浩然, 陈勇. 餐厨垃圾处理现状及其热解技术研究进展[J]. 化工进展, 2023, 42(7): 3791-3801. |
[13] | 张杉, 仲兆平, 杨宇轩, 杜浩然, 李骞. 磷酸盐改性高岭土对生活垃圾热解过程中重金属的富集[J]. 化工进展, 2023, 42(7): 3893-3903. |
[14] | 于丁一, 李圆圆, 王晨钰, 纪永升. pH响应性木质素水凝胶的制备及药物控释[J]. 化工进展, 2023, 42(6): 3138-3146. |
[15] | 郑昕, 贾里, 王彦霖, 张靖超, 陈世虎, 乔晓磊, 樊保国. 污泥与煤泥混烧对重金属固留特性的影响[J]. 化工进展, 2023, 42(6): 3233-3241. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||
京ICP备12046843号-2;京公网安备 11010102001994号 版权所有 © 《化工进展》编辑部 地址:北京市东城区青年湖南街13号 邮编:100011 电子信箱:hgjz@cip.com.cn 本系统由北京玛格泰克科技发展有限公司设计开发 技术支持:support@magtech.com.cn |