化工学报 ›› 2019, Vol. 70 ›› Issue (8): 3113-3120.DOI: 10.11949/0438-1157.20190336
赵京1,2(),张玉锋1,2,魏小林1,2(),李腾1,宾峰1
收稿日期:
2019-04-02
修回日期:
2019-06-19
出版日期:
2019-08-05
发布日期:
2019-08-05
通讯作者:
魏小林
作者简介:
赵京(1992—),男,博士研究生,<email>zhaojing@imech.ac.cn</email>
基金资助:
Jing ZHAO1,2(),Yufeng ZHANG1,2,Xiaolin WEI1,2(),Teng LI1,Feng BIN1
Received:
2019-04-02
Revised:
2019-06-19
Online:
2019-08-05
Published:
2019-08-05
Contact:
Xiaolin WEI
摘要:
高碱煤中通常具有较高的碱金属含量,其是煤燃烧过程中形成亚微米颗粒物PM1的主要前体。在一维高温沉降炉上,研究了不同反应温度和取样位置对高碱煤燃烧过程中PM1生成特性的影响,并分析了其质量粒径分布、产量以及矿物元素组成。同时研究了不同反应温度下高岭土对PM1高效吸附特性。结果表明:随着反应温度的增加,亚微米颗粒物PM1生成量逐渐降低,颗粒粒径向小粒径偏移。PM1生成主要受到Na、S等矿物元素的影响,随着温度升高,PM1中Na、S相对含量降低,Ca、Fe、Si等相对含量增加。硅铝氧化物在高温条件下形成的氧活性位能够高效捕获Na蒸气,进而抑制PM1生成。PM1生成特性主要受到高浓度的矿物元素均相成核、异相凝结沉积以及矿物元素蒸气与一些中间产物的相互作用的影响。
中图分类号:
赵京, 张玉锋, 魏小林, 李腾, 宾峰. 高碱煤燃烧过程中亚微米颗粒物PM1的生成特性[J]. 化工学报, 2019, 70(8): 3113-3120.
Jing ZHAO, Yufeng ZHANG, Xiaolin WEI, Teng LI, Feng BIN. PM1 formation characteristics during high-alkali coal combustion[J]. CIESC Journal, 2019, 70(8): 3113-3120.
样品 | 工业分析/% (mass,ad) | 元素分析/% (mass,ad) | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
M | A | V | FC | C | H | O | N | S | Cl | |
ZD-1 | 14.1 | 10.08 | 26.22 | 49.6 | 58.36 | 2.12 | 13.26 | 0.41 | 1.34 | 0.11 |
ZD-2 | 7.98 | 8.12 | 23.44 | 60.4 | 65.5 | 2.79 | 14.03 | 0.13 | 0.96 | 0.33 |
表1 煤样的工业分析及元素分析
Table 1 Proximate and ultimate analyses of coal samples
样品 | 工业分析/% (mass,ad) | 元素分析/% (mass,ad) | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
M | A | V | FC | C | H | O | N | S | Cl | |
ZD-1 | 14.1 | 10.08 | 26.22 | 49.6 | 58.36 | 2.12 | 13.26 | 0.41 | 1.34 | 0.11 |
ZD-2 | 7.98 | 8.12 | 23.44 | 60.4 | 65.5 | 2.79 | 14.03 | 0.13 | 0.96 | 0.33 |
样品 | SiO2 | Al2O3 | Fe2O3 | CaO | MgO | TiO2 | SO3 | P2O5 | K2O | Na2O |
---|---|---|---|---|---|---|---|---|---|---|
ZD-1 | 13.61 | 5.86 | 14.33 | 25.66 | 3.94 | 0.44 | 29.18 | 0.24 | 0.58 | 5.78 |
ZD-2 | 25.03 | 15.63 | 4.32 | 21.28 | 4.27 | 0.33 | 22.64 | 0.36 | 0.56 | 4.72 |
表2 煤样的灰分析
Table 2 Ash analyses of coal samples/%
样品 | SiO2 | Al2O3 | Fe2O3 | CaO | MgO | TiO2 | SO3 | P2O5 | K2O | Na2O |
---|---|---|---|---|---|---|---|---|---|---|
ZD-1 | 13.61 | 5.86 | 14.33 | 25.66 | 3.94 | 0.44 | 29.18 | 0.24 | 0.58 | 5.78 |
ZD-2 | 25.03 | 15.63 | 4.32 | 21.28 | 4.27 | 0.33 | 22.64 | 0.36 | 0.56 | 4.72 |
SiO2 | Al2O3 | Fe2O3 | CaO | MgO | TiO2 | SO3 | P2O5 | K2O | Na2O |
---|---|---|---|---|---|---|---|---|---|
51.84 | 45.73 | <0.01 | 0.22 | 0.69 | <0.01 | 1.8 | <0.01 | 0.67 | 0.69 |
表3 高岭土成分分析
Table 3 Ash analyses of kaolin/%
SiO2 | Al2O3 | Fe2O3 | CaO | MgO | TiO2 | SO3 | P2O5 | K2O | Na2O |
---|---|---|---|---|---|---|---|---|---|
51.84 | 45.73 | <0.01 | 0.22 | 0.69 | <0.01 | 1.8 | <0.01 | 0.67 | 0.69 |
1 | 张守玉, 陈川, 施大钟, 等 . 高钠煤燃烧利用现状[J]. 中国电机工程学报, 2013, 33(5): 1-12. |
Zhang S Y , Chen C , Shi D Z , et al . Situation of combustion utilization of high sodium coal[J]. Proceedings of the CSEE, 2013, 33(5): 1-12. | |
2 | 樊斌, 于敦喜, 曾宪鹏, 等 . 准东煤燃烧中矿物质转化行为的CCSEM研究[J]. 化工学报, 2016, 67(5): 2117-2123. |
Fan B , Yu D X , Zeng X P , et al . Mineral transformation during Zhundong coal combustion by CCSEM[J]. CIESC Journal, 2016, 67(5): 2117-2123. | |
3 | Song G L , Song W J , Qi X B , et al . Transformation characteristics of sodium of Zhundong coal combustion/gasification in circulating fluidized bed[J]. Energy Fuels, 2016, 30(4): 3473-3478. |
4 | 王礼鹏, 赵永椿, 张军营, 等 . 准东煤沾污结渣特性研究[J]. 工程热物理学报, 2015, 36(6): 1381-1385. |
Wang L P , Zhao Y C , Zhang J Y , et al . Research on the slagging and fouling characteristics of Zhundong coal[J]. Journal of Engineering Thermophysics, 2015, 36(6): 1381-1385. | |
5 | 陶玉洁, 张彦威, 周俊虎, 等 . 准东煤在燃烧过程中的矿物演变过程及Na、Ca 释放规律[J]. 中国电机工程学报, 2015, 35(5): 1169-1175. |
Tao Y J , Zhang Y W , Zhou J H , et al . Mineral conversion regularity and release behavior of Na, Ca during Zhundong coal s combustion[J]. Proceedings of the CSEE, 2015, 35(5): 1169-1175. | |
6 | 张翔, 乌晓江, 陈楠 . 新疆高碱煤沾污结渣特性中试试验研究[J]. 锅炉技术, 2016, 47(4): 44-47. |
Zhang X , Wu X J , Chen N . Experimental study on Xinjiang high-alkali ash deposition and slagging behavior in a 3 MWth pilot-scale test facility[J]. Boiler Technology, 2016, 47(4): 44-47. | |
7 | Xu M H , Yu D X , Yao H , et al . Coal combustion-generated aerosols: formation and properties[J]. Proc. Combust. Inst., 2011, 33(1): 1681-1697. |
8 | 张凯, 龚本根, 田冲, 等 . 燃煤细颗粒物排放实验及形成机理[J]. 煤炭学报, 2015, 40(11): 2696-2701. |
Zhang K , Gong B G , Tian C , et al . Formation mechanisms of fine particles generated from coal combustion[J]. Journal of China Coal Society, 2015, 40(11): 2696-2701. | |
9 | Liu X W , Xu Y S , Zeng X P , et al . Field measurements on the emission and removal of PM2.5 from coal-fired power stations (1): A case study for a 1000 MW ultra-supercritical utility boiler[J]. Energy Fuels, 2016, 30(8): 6547-6554. |
10 | 王超, 刘小伟, 徐义书, 等 . 660 MW燃煤锅炉细微颗粒物中次量与痕量元素的分布特性[J]. 化工学报, 2013, 64(8): 2975-2981. |
Wang C , Liu X W , Xu Y S , et al . Distribution characteristics of minor and trace elements in fine particulate matters from a 660 MW coal-fired boiler[J]. CIESC Journal, 2013, 64(8): 2975-2981. | |
11 | Li G D , Li S Q , Huang Q , et al . Fine particulate formation and ash deposition during pulverized coal combustion of high-sodium lignite in a down-fired furnace[J]. Fuel, 2015, 143: 430-437. |
12 | 徐义书, 刘小伟, 张鹏辉, 等 . 高氯准东煤种典型矿物元素对颗粒物生成的影响[J]. 化工学报, 2017, 68(4): 1558-1565. |
Xu Y S , Liu X W , Zhang P H , et al . Impacts of typical mineral matter in Zhundong coal on formation of particulate matter[J]. CIESC Journal, 2017, 68(4): 1558-1565. | |
13 | Wang A , Song Q , Tu G M , et al . Influence of flue gas cleaning system on characteristics of PM2.5 emission from coal-fired power plants[J]. Int. J. Coal Sci.Technol., 2014, 1(1): 4-12. |
14 | Wang J L , Zhang Y L , Shao M , et al . Quantitative relationship between visibility and mass concentration of PM2.5 in Beijing[J]. J. Environ. Sci., 2006, 18(3): 475-481. |
15 | Linak W P , Miller C A , Wendt J O . Comparison of particle size distribution and elemental partitioning from the combustion of pulverized coal and residual fuel oil[J]. J.Air Waste Manag.Assoc., 2000, 50(8): 1532-1544. |
16 | Si J P , Liu X W , Xu M H , et al . Effect of kaolin additive on PM2.5 reduction during pulverized coal combustion: importance of sodium and its occurrence in coal[J]. Appl. Energy, 2014, 114: 434-444. |
17 | Zhang L , Ninomiya Y , Yamashita T . Formation of submicron particulate matter (PM1) during coal combustion and influence of reaction temperature[J]. Fuel, 2006, 85(10/11): 1446-1557. |
18 | Gao X P , Li Y , Garcia-Perez M , et al . Roles of inherent fine included mineral particles in the emission of PM10 during pulverized coal combustion[J]. Energy Fuels, 2012, 26(11):6783-6791. |
19 | Buhre B , Hinkley J , Cupta R , et al . Fine ash formation during combustion of pulverized coal –coal property impacts[J]. Fuel, 2006, 85(2): 185-193. |
20 | Neville M , Sarofim A . The fate of sodium during pulverized coal combustion[J]. Fuel, 1985, 64(3): 384-390. |
21 | Gallagher N B . Alkali metal partitioning in a pulverized coal combustion environment[D]. Arizona: The University of Arizona, 1992. |
22 | 曾宪鹏, 于敦喜, 樊斌, 等 . 不同温度下准东煤燃烧颗粒物生成特性[J]. 煤炭学报, 2015, 40(11): 2690-2695. |
Zeng X P , Yu D X , Fan B , et al . Particulate matter formation characteristics during Zhundong coal combustion at different temperatures[J]. Journal of China Coal Society, 2015, 40(11): 2690-2695. | |
23 | 阮仁晖, 谭厚章, 王学斌, 等 . 高碱煤燃烧过程细颗粒物排放特性[J]. 煤炭学报, 2017, 43(4): 1056-1062. |
Ruan R H , Tan H Z , Wang X B , et al . Characteristics of fine particulate matter released from burning coal with high content of alkali and alkaline earth metal[J]. Journal of China Coal Society, 2017, 43(4): 1056-1062. | |
24 | Sun W , Liu X W , Xu Y S , et al . Effects of the modified kaolin sorbents on the reduction of ultrafine particulate matter (PM0.2) emissions during pulverized coal combustion[J]. Fuel, 2018, 215: 153-160. |
25 | Yu Y , Xu M H , Yao H , et al . Char characteristics and particulate matter formation during Chinese bituminous coal combustion[J]. Proc. Combust. Inst., 2007, 31(2): 1947-1954. |
26 | Yu D X , Xu M H , Yao H , et al . Mechanisms of the central mode particle formation during pulverized coal combustion[J]. Proc. Combust. Inst., 2009, 32(2): 2075-2082. |
27 | Matsuoka K , Yamashita T , Kuramoto K , et al . Transformation of alkali and alkaline earth metals in low rank coal during gasification[J]. Fuel, 2008, 87(6):885-893. |
28 | 陆炳, 孔少飞, 韩斌, 等 . 燃煤锅炉排放颗粒物成分谱特征研究[J]. 煤炭学报, 2011, 36(11): 1928-1933. |
Lu B , Kong S F , Han B , et al . Source profile of TSP and PM10 from coal-fired boilers[J]. Journal of China Coal Society, 2011, 36(11): 1928-1933. | |
29 | Ho C A , Sommerfeld M . Modelling of micro-particle agglomeration in turbulent flows[J]. Chem. Eng. Sci., 2002, 57(15): 3073-3084. |
30 | Chen J , Yao H , Zhang P A , et al . Control of PM1 by kaolin or limestone during O2/CO2 pulverized coal combustion[J]. Proc. Combust. Int., 2011, 33(2): 2837-2843. |
31 | Punjak W , Shadman F . Aluminosilicate sorbents for control of alkali vapors during coal combustion and gasification[J]. Energy Fuels, 1988, 2(5): 702-708. |
32 | Gale T K , Wendt J O L . In-furnace capture of cadmium and other semi-volatile metals by sorbents[J]. Proc. Combust. Inst., 2005, 30(2): 2999-3007. |
[1] | 杨学金, 杨金涛, 宁平, 王访, 宋晓双, 贾丽娟, 冯嘉予. 剧毒气体PH3的干法净化技术研究进展[J]. 化工学报, 2023, 74(9): 3742-3755. |
[2] | 盛冰纯, 于建国, 林森. 铝基锂吸附剂分离高钠型地下卤水锂资源过程研究[J]. 化工学报, 2023, 74(8): 3375-3385. |
[3] | 蔺彩虹, 王丽, 吴瑜, 刘鹏, 杨江峰, 李晋平. 沸石中碱金属阳离子对CO2/N2O吸附分离性能的影响[J]. 化工学报, 2023, 74(5): 2013-2021. |
[4] | 包嘉靖, 别洪飞, 王子威, 肖睿, 刘冬, 吴石亮. 正庚烷对冲扩散火焰中添加长链醚类对碳烟前体生成特性的影响[J]. 化工学报, 2023, 74(4): 1680-1692. |
[5] | 张永泉, 玄伟伟. 碱金属/(FeO+CaO+MgO)对硅酸盐灰熔渣结构和黏度的影响机理[J]. 化工学报, 2023, 74(4): 1764-1771. |
[6] | 肖川宝, 李林洋, 刘武锋, 钟年丙, 解泉华, 钟登杰, 常海星. 光催化与离子交换吸附耦合有效去除2,4,6-三氯苯酚[J]. 化工学报, 2023, 74(4): 1587-1597. |
[7] | 潘煜, 王子航, 王佳韵, 王如竹, 张华. 基于可得然-氯化锂复合吸附剂的除湿换热器热湿性能研究[J]. 化工学报, 2023, 74(3): 1352-1359. |
[8] | 李敏, 阎雪茹, 刘新磊. 苯并咪唑连接聚合物吸附剂和膜研究进展[J]. 化工学报, 2023, 74(2): 599-616. |
[9] | 刘新华, 韩振南, 韩健, 梁斌, 张楠, 胡善伟, 白丁荣, 许光文. 基于热解与燃烧反应重构的低NO x 解耦燃烧原理与技术[J]. 化工学报, 2022, 73(8): 3355-3368. |
[10] | 何聪, 钟文琪, 周冠文, 陈曦. 高海拔地区水泥生料悬浮炉分解特性研究[J]. 化工学报, 2022, 73(5): 2120-2129. |
[11] | 李雪, 东明, 张璜, 谢俊. 潮湿环境下微尺度颗粒撞击平板的动力学研究[J]. 化工学报, 2022, 73(5): 1940-1946. |
[12] | 刘轩, 苏银皎, 滕阳, 张锴, 王鹏程, 李丽锋, 李圳. 超低排放燃煤机组硒的迁移转化及飞灰对其富集特性[J]. 化工学报, 2022, 73(2): 923-932. |
[13] | 白浩隆, 付亮亮, 许光文, 白丁荣. 流化床煤燃烧过程不同气氛下的气态氮释放特征[J]. 化工学报, 2022, 73(2): 876-886. |
[14] | 石秀娟, 梁文俊, 尹国彬, 王金柱. 低温等离子体协同Mn基催化剂降解氯苯研究[J]. 化工学报, 2022, 73(10): 4472-4483. |
[15] | 王玉杰, 李申辉, 赵之平. M-MOF-74吸附分离H2/He混合物的分子模拟研究[J]. 化工学报, 2022, 73(10): 4507-4517. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||