Chemical Industry and Engineering Progress ›› 2024, Vol. 43 ›› Issue (1): 490-500.DOI: 10.16085/j.issn.1000-6613.2023-0253
• Resources and environmental engineering • Previous Articles
YANG Mengru1(), PENG Qin1, CHANG Yulong1,2, QIU Shuxing3, ZHANG Jianbo3, JIANG Xia1,2()
Received:
2023-02-24
Revised:
2023-06-12
Online:
2024-02-05
Published:
2024-01-20
Contact:
JIANG Xia
杨梦茹1(), 彭琴1, 常玉龙1,2, 邱淑兴3, 张溅波3, 江霞1,2()
通讯作者:
江霞
作者简介:
杨梦茹(1998—),女,硕士研究生,研究方向为生物炭功能材料。E-mail:987099724@qq.com。
基金资助:
CLC Number:
YANG Mengru, PENG Qin, CHANG Yulong, QIU Shuxing, ZHANG Jianbo, JIANG Xia. Research progress of carbon emission reduction technology with biochar replacing pulverized coal/coke for blast furnace ironmaking[J]. Chemical Industry and Engineering Progress, 2024, 43(1): 490-500.
杨梦茹, 彭琴, 常玉龙, 邱淑兴, 张溅波, 江霞. 生物炭替代煤粉/焦炭高炉炼铁碳减排技术研究进展[J]. 化工进展, 2024, 43(1): 490-500.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2023-0253
生物炭应用途径 | 常规原料添加量/kg·t-1 | 生物炭替代率/% | 生物炭添加量/kg·t-1 | 净减排量/t·t-1 | 净减排量CO2排放/% |
---|---|---|---|---|---|
炼焦 | 480~560 | 2~10 | 9.6~56 | 0.02~0.11 | 1~5 |
烧结固体原料 | 76.5~102 | 50~100 | 38.3~102 | 0.12~0.32 | 5~15 |
高炉喷吹原料 | 150~200 | 0~100 | 0~200 | 0.41~0.55 | 19~25 |
高炉块焦 | 45 | 50~100 | 22.5~45 | 0.08~0.16 | 3~7 |
总计 | 751.5~907 | 0~100 | 70.4~403 | 0.63~1.14 | 28~52 |
生物炭应用途径 | 常规原料添加量/kg·t-1 | 生物炭替代率/% | 生物炭添加量/kg·t-1 | 净减排量/t·t-1 | 净减排量CO2排放/% |
---|---|---|---|---|---|
炼焦 | 480~560 | 2~10 | 9.6~56 | 0.02~0.11 | 1~5 |
烧结固体原料 | 76.5~102 | 50~100 | 38.3~102 | 0.12~0.32 | 5~15 |
高炉喷吹原料 | 150~200 | 0~100 | 0~200 | 0.41~0.55 | 19~25 |
高炉块焦 | 45 | 50~100 | 22.5~45 | 0.08~0.16 | 3~7 |
总计 | 751.5~907 | 0~100 | 70.4~403 | 0.63~1.14 | 28~52 |
生物炭类型 | 处理条件 | 工业分析/% | 元素分析/% | 原子比 | 热值/MJ·kg-1 | 参考文献 | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
水分 | 固定碳 | 挥发分 | 灰分 | C | H | O | N | S | H/C | O/C | ||||
小麦秸秆炭 | 热解炭化 | — | 54.29 | 18.43 | 27.28 | 55.60 | 1.75 | 14.04 | 0.60 | 0.74 | 0.38 | 0.19 | 20.71 | [ |
小麦秸秆炭 | 水热炭化 | — | 48.12 | 49.13 | 2.76 | 69.52 | 5.34 | 23.98 | 0.98 | 0.18 | 0.92 | 0.26 | 28.32 | [ |
玉米秸秆炭 | 热解炭化 | — | 60.30 | 16.95 | 22.75 | 61.47 | 1.87 | 13.00 | 0.70 | 0.21 | 0.37 | 0.16 | 21.64 | [ |
玉米秸秆炭 | 水热炭化 | — | 46.86 | 48.39 | 4.75 | 71.84 | 5.46 | 20.72 | 1.60 | 0.38 | 0.91 | 0.22 | 29.78 | [ |
棉花秸秆炭 | 热解炭化 | — | 68.66 | 16.56 | 14.78 | 72.27 | 2.07 | 9.09 | 1.42 | 0.38 | 0.34 | 0.09 | 33.94 | [ |
水稻秸秆炭 | 热解炭化 | — | 43.23 | 22.06 | 34.71 | 46.40 | 2.19 | 15.31 | 0.72 | 0.67 | 0.57 | 0.25 | 21.17 | [ |
无花果炭 | 热解炭化 | — | 76.59 | 21.04 | 2.37 | 88.81 | 5.34 | 5.12 | 0.62 | 0.10 | 0.72 | 0.04 | 36.00 | [ |
杨木炭 | 热解炭化 | 1.44 | 83.79 | 12.22 | 2.55 | 87.89 | 2.23 | 5.08 | 0.71 | 0.10 | 0.30 | 0.04 | 32.73 | [ |
桦木炭 | 热解炭化 | — | 87.80 | 11.00 | 1.20 | 89.90 | 3.07 | 5.30 | 0.54 | 0.01 | 0.41 | 0.04 | 34.50 | [ |
核桃壳炭 | 热解炭化 | 3.82 | 74.52 | 18.71 | 2.59 | 77.97 | 3.22 | 17.69 | 1.12 | — | 0.50 | 0.17 | 29.30 | [ |
竹炭 | 热解炭化 | — | 67.62 | 29.22 | 3.16 | 73.12 | 3.63 | 22.78 | 0.47 | — | 0.60 | 0.23 | 26.60 | [ |
花生壳炭 | 热解炭化 | 2.26 | 81.51 | 13.89 | 2.34 | 83.48 | 3.69 | 7.01 | 1.04 | 0.18 | 0.53 | 0.06 | 29.08 | [ |
甜菜浆炭 | 水热炭化 | 3.95 | 28.34 | 66.71 | 1.00 | 60.08 | 5.86 | 26.30 | 2.09 | 0.00 | 1.17 | 0.33 | 25.36 | [ |
无烟煤 | — | — | 74.20 | 9.49 | 11.58 | 82.70 | 3.26 | 1.04 | 1.13 | 0.29 | 0.47 | 0.01 | 32.37 | [ |
烟煤 | — | — | 52.28 | 40.41 | 7.31 | 63.10 | 3.14 | 9.86 | 0.88 | 1.03 | 0.59 | 0.12 | 21.68 | [ |
生物炭类型 | 处理条件 | 工业分析/% | 元素分析/% | 原子比 | 热值/MJ·kg-1 | 参考文献 | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
水分 | 固定碳 | 挥发分 | 灰分 | C | H | O | N | S | H/C | O/C | ||||
小麦秸秆炭 | 热解炭化 | — | 54.29 | 18.43 | 27.28 | 55.60 | 1.75 | 14.04 | 0.60 | 0.74 | 0.38 | 0.19 | 20.71 | [ |
小麦秸秆炭 | 水热炭化 | — | 48.12 | 49.13 | 2.76 | 69.52 | 5.34 | 23.98 | 0.98 | 0.18 | 0.92 | 0.26 | 28.32 | [ |
玉米秸秆炭 | 热解炭化 | — | 60.30 | 16.95 | 22.75 | 61.47 | 1.87 | 13.00 | 0.70 | 0.21 | 0.37 | 0.16 | 21.64 | [ |
玉米秸秆炭 | 水热炭化 | — | 46.86 | 48.39 | 4.75 | 71.84 | 5.46 | 20.72 | 1.60 | 0.38 | 0.91 | 0.22 | 29.78 | [ |
棉花秸秆炭 | 热解炭化 | — | 68.66 | 16.56 | 14.78 | 72.27 | 2.07 | 9.09 | 1.42 | 0.38 | 0.34 | 0.09 | 33.94 | [ |
水稻秸秆炭 | 热解炭化 | — | 43.23 | 22.06 | 34.71 | 46.40 | 2.19 | 15.31 | 0.72 | 0.67 | 0.57 | 0.25 | 21.17 | [ |
无花果炭 | 热解炭化 | — | 76.59 | 21.04 | 2.37 | 88.81 | 5.34 | 5.12 | 0.62 | 0.10 | 0.72 | 0.04 | 36.00 | [ |
杨木炭 | 热解炭化 | 1.44 | 83.79 | 12.22 | 2.55 | 87.89 | 2.23 | 5.08 | 0.71 | 0.10 | 0.30 | 0.04 | 32.73 | [ |
桦木炭 | 热解炭化 | — | 87.80 | 11.00 | 1.20 | 89.90 | 3.07 | 5.30 | 0.54 | 0.01 | 0.41 | 0.04 | 34.50 | [ |
核桃壳炭 | 热解炭化 | 3.82 | 74.52 | 18.71 | 2.59 | 77.97 | 3.22 | 17.69 | 1.12 | — | 0.50 | 0.17 | 29.30 | [ |
竹炭 | 热解炭化 | — | 67.62 | 29.22 | 3.16 | 73.12 | 3.63 | 22.78 | 0.47 | — | 0.60 | 0.23 | 26.60 | [ |
花生壳炭 | 热解炭化 | 2.26 | 81.51 | 13.89 | 2.34 | 83.48 | 3.69 | 7.01 | 1.04 | 0.18 | 0.53 | 0.06 | 29.08 | [ |
甜菜浆炭 | 水热炭化 | 3.95 | 28.34 | 66.71 | 1.00 | 60.08 | 5.86 | 26.30 | 2.09 | 0.00 | 1.17 | 0.33 | 25.36 | [ |
无烟煤 | — | — | 74.20 | 9.49 | 11.58 | 82.70 | 3.26 | 1.04 | 1.13 | 0.29 | 0.47 | 0.01 | 32.37 | [ |
烟煤 | — | — | 52.28 | 40.41 | 7.31 | 63.10 | 3.14 | 9.86 | 0.88 | 1.03 | 0.59 | 0.12 | 21.68 | [ |
原料 | 热解 温度/℃ | 脱矿溶液 | Na质量分数/% | Na去除率/% | K质量分数/% | K去除率/% |
---|---|---|---|---|---|---|
FWF | 300 | — | 1.65 | — | 1.55 | — |
水 | 1.06 | 35.76 | 1.14 | 26.45 | ||
CO2饱和水溶液 | 0.70 | 57.58 | 0.78 | 49.68 | ||
400 | — | 2.04 | — | 1.94 | — | |
水 | 1.47 | 27.94 | 1.48 | 23.71 | ||
CO2饱和水溶液 | 0.89 | 56.37 | 0.93 | 37.16 | ||
500 | — | 2.81 | — | 2.97 | — | |
水 | 1.41 | 49.82 | 1.30 | 56.23 | ||
CO2饱和水溶液 | 0.86 | 69.40 | 0.94 | 68.35 | ||
FWC | 300 | — | 1.11 | — | 0.99 | — |
水 | 0.08 | 92.79 | 0.09 | 90.90 | ||
CO2饱和水溶液 | 0.09 | 91.89 | 0.11 | 88.89 | ||
400 | — | 1.35 | — | 1.51 | — | |
水 | 0.52 | 61.48 | 0.61 | 59.60 | ||
CO2饱和水溶液 | 0.35 | 74.07 | 0.45 | 70.20 | ||
500 | — | 2.08 | — | 2.04 | — | |
水 | 0.97 | 53.37 | 1.06 | 48.04 | ||
CO2饱和水溶液 | 0.50 | 75.96 | 0.60 | 70.59 |
原料 | 热解 温度/℃ | 脱矿溶液 | Na质量分数/% | Na去除率/% | K质量分数/% | K去除率/% |
---|---|---|---|---|---|---|
FWF | 300 | — | 1.65 | — | 1.55 | — |
水 | 1.06 | 35.76 | 1.14 | 26.45 | ||
CO2饱和水溶液 | 0.70 | 57.58 | 0.78 | 49.68 | ||
400 | — | 2.04 | — | 1.94 | — | |
水 | 1.47 | 27.94 | 1.48 | 23.71 | ||
CO2饱和水溶液 | 0.89 | 56.37 | 0.93 | 37.16 | ||
500 | — | 2.81 | — | 2.97 | — | |
水 | 1.41 | 49.82 | 1.30 | 56.23 | ||
CO2饱和水溶液 | 0.86 | 69.40 | 0.94 | 68.35 | ||
FWC | 300 | — | 1.11 | — | 0.99 | — |
水 | 0.08 | 92.79 | 0.09 | 90.90 | ||
CO2饱和水溶液 | 0.09 | 91.89 | 0.11 | 88.89 | ||
400 | — | 1.35 | — | 1.51 | — | |
水 | 0.52 | 61.48 | 0.61 | 59.60 | ||
CO2饱和水溶液 | 0.35 | 74.07 | 0.45 | 70.20 | ||
500 | — | 2.08 | — | 2.04 | — | |
水 | 0.97 | 53.37 | 1.06 | 48.04 | ||
CO2饱和水溶液 | 0.50 | 75.96 | 0.60 | 70.59 |
生物炭类型 | 热化学转化技术 | 生物炭喷吹量/kg·t-1 | CO2理论减排量/kg·t-1 | 国家 | 年份 | 参考文献 |
---|---|---|---|---|---|---|
木炭 | — | 200 | 420 | 西班牙 | 2009 | [ |
木炭 | — | 150 | 457 | 芬兰 | 2013 | [ |
木炭 | 热解炭化 | 176~208 | 280~590 | 澳大利亚 | 2014 | [ |
木炭 | — | 180 | 502 | 澳大利亚 | 2014 | [ |
木炭 | — | 200~220 | 600 | 澳大利亚 | 2014 | [ |
木炭 | 热解炭化 | 150~200 | 410~550 | 澳大利亚 | 2015 | [ |
木炭 | 热解炭化 | 100 | 315 | 瑞典 | 2021 | [ |
木炭 | 深度烘焙 | 100 | 221 | 瑞典 | 2021 | [ |
木炭 | 浅度烘焙 | 100 | 132 | 瑞典 | 2021 | [ |
木炭 | 热解炭化 | 140 | 约410 | 瑞典 | 2021 | [ |
锯末炭 | 热解炭化 | 137.5 | 432.3 | 瑞典 | 2022 | [ |
秸秆炭 | 热解炭化 | 14.8 | 47.9 | 中国 | 2013 | [ |
秸秆炭 | 热解炭化 | 11.37 | 65.7 | 中国 | 2017 | [ |
秸秆炭 | 水热炭化 | 90 | 145.7 | 中国 | 2022 | [ |
棕榈壳炭 | 热解炭化 | 30 | 84.65 | 中国 | 2018 | [ |
生物炭类型 | 热化学转化技术 | 生物炭喷吹量/kg·t-1 | CO2理论减排量/kg·t-1 | 国家 | 年份 | 参考文献 |
---|---|---|---|---|---|---|
木炭 | — | 200 | 420 | 西班牙 | 2009 | [ |
木炭 | — | 150 | 457 | 芬兰 | 2013 | [ |
木炭 | 热解炭化 | 176~208 | 280~590 | 澳大利亚 | 2014 | [ |
木炭 | — | 180 | 502 | 澳大利亚 | 2014 | [ |
木炭 | — | 200~220 | 600 | 澳大利亚 | 2014 | [ |
木炭 | 热解炭化 | 150~200 | 410~550 | 澳大利亚 | 2015 | [ |
木炭 | 热解炭化 | 100 | 315 | 瑞典 | 2021 | [ |
木炭 | 深度烘焙 | 100 | 221 | 瑞典 | 2021 | [ |
木炭 | 浅度烘焙 | 100 | 132 | 瑞典 | 2021 | [ |
木炭 | 热解炭化 | 140 | 约410 | 瑞典 | 2021 | [ |
锯末炭 | 热解炭化 | 137.5 | 432.3 | 瑞典 | 2022 | [ |
秸秆炭 | 热解炭化 | 14.8 | 47.9 | 中国 | 2013 | [ |
秸秆炭 | 热解炭化 | 11.37 | 65.7 | 中国 | 2017 | [ |
秸秆炭 | 水热炭化 | 90 | 145.7 | 中国 | 2022 | [ |
棕榈壳炭 | 热解炭化 | 30 | 84.65 | 中国 | 2018 | [ |
生物炭类型 | 生物炭替代 焦炭量/kg·t-1 | CO2理论 减排量/kg·t-1 | 国家 | 年份 | 参考文献 |
---|---|---|---|---|---|
木炭 | 55 | 193 | 加拿大 | 2009 | [ |
木炭 | 86 | 300 | 法国 | 2013 | [ |
木炭 | 20 | 64 | 芬兰 | 2014 | [ |
木炭 | 6~35 | 20~110 | 澳大利亚 | 2015 | [ |
木炭 | 21 | 50 | 瑞典 | 2021 | [ |
生物炭类型 | 生物炭替代 焦炭量/kg·t-1 | CO2理论 减排量/kg·t-1 | 国家 | 年份 | 参考文献 |
---|---|---|---|---|---|
木炭 | 55 | 193 | 加拿大 | 2009 | [ |
木炭 | 86 | 300 | 法国 | 2013 | [ |
木炭 | 20 | 64 | 芬兰 | 2014 | [ |
木炭 | 6~35 | 20~110 | 澳大利亚 | 2015 | [ |
木炭 | 21 | 50 | 瑞典 | 2021 | [ |
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