化工学报 ›› 2023, Vol. 74 ›› Issue (3): 1294-1302.DOI: 10.11949/0438-1157.20221396
刘定平1,2(), 陈爱桦1,2, 张向阳1,2, 何文浩1,2, 王海1,2
收稿日期:
2022-10-21
修回日期:
2022-12-28
出版日期:
2023-03-05
发布日期:
2023-04-19
通讯作者:
刘定平
作者简介:
刘定平(1965—),男,博士,教授,dpliu@scut.edu.cn
基金资助:
Dingping LIU1,2(), Aihua CHEN1,2, Xiangyang ZHANG1,2, Wenhao HE1,2, Hai WANG1,2
Received:
2022-10-21
Revised:
2022-12-28
Online:
2023-03-05
Published:
2023-04-19
Contact:
Dingping LIU
摘要:
铝灰属于危险废弃物,若不经过脱氮处理会严重污染环境。为此提出了新型铝灰半干法水解脱氮技术,使铝灰在反应时处于半干的高温碱性状态,并系统考察了各种因素对脱氮率和反应时间的影响。结果表明,固液比为1∶0.45时脱氮效果最好;增加样品反应质量可以提高脱氮率;碱性反应溶液体系可以有效缩短诱导期;研磨预处理对促进水解反应的效果一般。因此铝灰半干法水解脱氮技术的最佳反应条件是反应溶液体系为5%(质量)NaOH,固液比1∶0.45,样品质量大于250 g。此时水解反应时间可缩短至50 min内,脱氮效果最佳,明显优于传统湿法脱氮技术,可以有效解决铝灰废物污染难题。
中图分类号:
刘定平, 陈爱桦, 张向阳, 何文浩, 王海. 铝灰半干法水解脱氮研究[J]. 化工学报, 2023, 74(3): 1294-1302.
Dingping LIU, Aihua CHEN, Xiangyang ZHANG, Wenhao HE, Hai WANG. Study on semi dry hydrolytic denitrification of aluminum ash[J]. CIESC Journal, 2023, 74(3): 1294-1302.
厂家 | 质量分数/% | ||||||
---|---|---|---|---|---|---|---|
N | O | Na | Mg | Al | Si | Cl | |
A | 2.24 | 30.99 | 8.87 | 5.80 | 27.28 | 0.36 | 15.46 |
B | 1.13 | 43.15 | 4.13 | 2.10 | 17.57 | 12.55 | 5.00 |
表1 铝灰主要元素分析结果
Table 1 Analysis results of main elements of aluminum ash
厂家 | 质量分数/% | ||||||
---|---|---|---|---|---|---|---|
N | O | Na | Mg | Al | Si | Cl | |
A | 2.24 | 30.99 | 8.87 | 5.80 | 27.28 | 0.36 | 15.46 |
B | 1.13 | 43.15 | 4.13 | 2.10 | 17.57 | 12.55 | 5.00 |
项目 | 质量分数/% | |||||
---|---|---|---|---|---|---|
N | O | Na | Mg | Al | Cl | |
研磨 | 0 | 35.94 | 9.48 | 4.73 | 21.49 | 18.03 |
无处理 | 0 | 34.89 | 12.56 | 4.37 | 20.6 | 19.27 |
表2 不同预处理水解后铝灰主要元素含量
Table 2 Main element content of aluminum ash after hydrolysis by different pre-treatment methods
项目 | 质量分数/% | |||||
---|---|---|---|---|---|---|
N | O | Na | Mg | Al | Cl | |
研磨 | 0 | 35.94 | 9.48 | 4.73 | 21.49 | 18.03 |
无处理 | 0 | 34.89 | 12.56 | 4.37 | 20.6 | 19.27 |
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