改性钙基吸附剂在热解原位捕集CO2中的性能

顾春晗, 苏明雪, 李宁, 朱兵

中国环境科学 ›› 2024, Vol. 44 ›› Issue (8) : 4455-4461.

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PDF(1281 KB)
中国环境科学 ›› 2024, Vol. 44 ›› Issue (8) : 4455-4461.
固体废物

改性钙基吸附剂在热解原位捕集CO2中的性能

  • 顾春晗, 苏明雪, 李宁, 朱兵
作者信息 +

Research on modified calcium based adsorbents for in-situ CO2 capture through pyrolysis

  • GU Chun-han, SU Ming-xue, LI Ning, ZHU Bing
Author information +
文章历史 +

摘要

鉴于固废热解原位吸附CO2存在温度较高和吸附剂易烧结的挑战,采用了不同矿物掺杂的天然石灰石制备了一系列钙基固体吸附剂.热解原位单次吸附和循环吸附实验表明,10%蒙脱土掺杂的钙基吸附剂表现出较为稳定的循环吸附特性和更大的吸附负荷,其CO2吸附比最高可达71.52%.在经过10次循环后,仍能保持43.77%的吸附量,同时使热解气热值达到14kJ/g.因此,10%蒙脱土掺杂的钙基吸附剂在固废共热解中能够有效捕集CO2,提高热解气热值,具有良好的应用前景.

Abstract

Addressing the challenge of high in-situ adsorption temperature in solid waste pyrolysis, we developed a series of calcium-based solid adsorbents by incorporating various minerals into natural limestone. Experimental investigations on the single adsorption and cyclic adsorption of CO2 by these calcium-based solid adsorbents revealed that the adsorbent doped with 10% montmorillonite exhibited stable cyclic adsorption characteristics and a substantial adsorbent capacity, achieved a maximum CO2 adsorption ratio of 71.52%. Even after 10cycles, the adsorption capacity remained at 43.77%, concurrently elevated the heat value of pyrolysis gas to 14kJ/g. Consequently, the calcium-based adsorbents doped with 10% montmorillonite demonstrated effective CO2 capture and contribute to the enhanced calorific value of pyrolysis gas in solid waste co-pyrolysis.

关键词

CO2 / 钙基吸附剂 / 蒙脱土 / 热解气 / 原位捕集

Key words

calcium based adsorbents / carbon dioxide / in-situ capture / montmorillonite / pyrolysis gas

引用本文

导出引用
顾春晗, 苏明雪, 李宁, 朱兵. 改性钙基吸附剂在热解原位捕集CO2中的性能[J]. 中国环境科学. 2024, 44(8): 4455-4461
GU Chun-han, SU Ming-xue, LI Ning, ZHU Bing. Research on modified calcium based adsorbents for in-situ CO2 capture through pyrolysis[J]. China Environmental Science. 2024, 44(8): 4455-4461
中图分类号: X703.5   

参考文献

[1] 顾春晗,苏明雪,李宁,等.污泥有机/无机组分对污泥-PVC共热解氯元素迁移转化影响机制[J]. 中国环境科学, 2023,43(12):6386- 6392. Gu Chunhan, Su Mingxue, Li Ning, et al. Mechanism of the influence of organic/inorganic components of sludge on the migration and transformation of chlorine elements during the co pyrolysis of sludge PVC [J]. China Environmental Science, 2023,43(12):6386-6392.
[2] 姚丽铭,王亚琢,范洪刚,等.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. Yao Liming, Wang Yazhuo, Fan Honggang, et al. Current status of kitchen waste treatment and research progress in pyrolysis technology [J]. Chemical Progress, 2023, 42(07): 3791-3801
[3] Tan K Q, Ahmad M A, Oh W D, et al. Valorization of hazardous plastic wastes into value-added resources by catalytic pyrolysis-gasification: A review of techno-economic analysis [J]. Renewable and Sustainable Energy Reviews, 2023,182:113346.
[4] Chen X, Tang Y, Ke C, et al. CO2capture by double metal modified CaO-based sorbents from pyrolysis gases [J]. Chinese Journal of Chemical Engineering, 2022,43:40-49.
[5] Tiwary S, Bhaumik S K. Theoretical approaches in hot CO2 capture using modified CaO-based sorbents: Review [J]. Journal of CO2 Utilization, 2022,57:101875.
[6] Geng Y Q, Guo Y X, Fan B, et al. Research progress of calcium-based adsorbents for CO2 capture and anti-sintering modification [J]. Journal of Fuel Chemistry and Technology, 2021,49(7):998-1013.
[7] César De Carvalho Pinto P, Voga Pereira G, Schiavo De Rezende L, et al. CO2 capture performance and mechanical properties of Ca(OH)2-based sorbent modified with MgO and (NH4)2HPO4 for Calcium Looping cycle [J]. Fuel, 2019,256:115924.
[8] 梁文俊,杨岚,张艳,等.改性赤泥吸附剂吸附低浓度CO2研究[J]. 中国环境科学, 2023,43(6):2798-2805. Liang Wenjun, Yang Lan, Zhang Yan, et al. Research on the adsorption of low concentration CO2 by modified red mud adsorbent [J]. China Environmental Science, 2023,43(6):2798-2805.
[9] Duan L, Yu Z, Erans M, et al. Attrition study of cement-supported biomass-activated calcium sorbents for CO2 capture [J]. Industrial & Engineering Chemistry Research, 2016,55(35):9476-9484.
[10] Florin N H, Blamey J, Fennell P S. Synthetic CaO-based sorbent for CO2 capture from large-point sources [J]. Energy & Fuels, 2010,24(8): 4598-4604.
[11] 李志新,王勤辉,方梦祥,等.掺杂高铝水泥钙基吸附剂碳酸化反应动力学特性研究[J]. 中国电机工程学报, 2022,42(6):2208-2216. Li Zhixin, Wang Qinhui, Fang Mengxiang, et al. Study on the kinetics of carbonation reaction of calcium based adsorbents doped with high alumina cement [J]. Chinese Journal of Electrical Engineering, 2022, 42(6):2208-2216.
[12] 何涛,曹彬,胡军印,等.高温下钙基吸附剂吸附CO2的研究[J]. 化学工程, 2007,(12):8-11. He Tao, Cao Bin, Hu Junyin, et al. Research on Calcium based adsorbents adsorb CO2 at high temperatures [J]. Chemical Engineering, 2007,(12):8-11.
[13] Hejazi B, Grace J R, Bi X, et al. Steam gasification of biomass coupled with lime-based CO2 capture in a dual fluidized bed reactor: A modeling study [J]. Fuel, 2014,117:1256-1266.
[14] GB/T 28731-2012固体生物质燃料工业分析方法[S]. GB/T 28731-2012 Industrial analysis methods for solid biomass fuels [S].
[15] Zhang C, Li Y, He Z, et al. Microtubular Fe/Mn-promoted CaO- Ca12Al14O33 bi-functional material for H2 production from sorption enhanced water gas shift [J]. Applied Catalysis B: Environmental, 2022,314:121474.
[16] 冯效迁,赵艺霖,赵永华,等.改性蒙脱土基催化剂研究进展[J]. 无机盐工业, 2023,55(5):24-30. Feng Xiaoqian, Zhao Yilin, Zhao Yonghua, et al. Research progress on modified montmorillonite based catalysts [J] Inorganic Salt Industry, 2023,55(5):24-30.
[17] Wu K, Ye Q, Wu R, et al. Alkali metal-promoted aluminum-pillared montmorillonites: High-performance CO2 adsorbents [J]. Journal of Solid State Chemistry, 2020,291:121585.
[18] 张照曦,钟梅,李建,等.改性蒙脱土对新疆和丰煤热解行为的影响[J]. 化工学报, 2022,73(1):402-410. Zhang Zhaoxi, Zhong Mei, Li Jian, et al. The effect of modified montmorillonite on the pyrolysis behavior of Xinjiang Hefeng coal [J]. Journal of Chemical Engineering, 2022,73(1):402-410.

基金

国家重点研发计划项目(2020YFC1908703);安徽省自然科学基金项目(2008085ME161)

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