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水泥技术, 2026, 1(2): 1-6    doi: 10.19698/j.cnki.1001-6171.20262001
  实验研究 本期目录 | 过刊浏览 | 高级检索 |
全氧燃烧条件下高浓度二氧化碳对水泥生料分解的影响研究
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1 河北工业大学生态环境与信息特种功能材料教育部重点实验室,天津  300130;

2 中国建材装备集团有限公司天津水泥工业设计研究院有限公司,天津  300133

Study on the Effect of High-concentration CO2 on Cement Raw Meal Decomposition under Oxy-fuel Combustion Conditions
1 Key Laboratory of Special Functional Materials for Ecological Environment and Information (Hebei University of Technology), Ministry of Education, Tianjin 300130, China;  2 CNBM Equipment Group, Tianjin Cement Industry Design & Research Institute Co., Ltd. , Tianjin 300133, China 
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摘要 
针对水泥工业碳减排技术开发与全氧燃烧分解炉设计需求,本文采用热重分析技术,研究了全氧燃烧条件下高浓度CO2对水泥生料分解的影响。以国内某水泥厂现有生产线的两份生料样品为研究对象,在10℃/min的升温速率下测定了生料的失重曲线、失重速率、分解温度及分解时间等关键参数,并将该生料在全氧条件下的分解特性与另一水泥厂家生料样品的实验结果进行了对比。结果表明,随着CO2浓度从30%升高至90%,生料起始分解温度和完全分解温度持续升高,这主要由于高CO2分压对CaCO3分解产生热力学抑制作用,需升温以抵消该效应;采用O2-CO2混合气代替空气后,生料完全分解温度提高约60℃~100℃,高浓度CO2气氛下生料完全分解时间缩短至4~6min,高温提升反应动力学速率,部分抵消了CO2的热力学抑制作用;两家水泥生产厂家的生料在80% CO2浓度下的分解温度约为940℃。
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梁金生
杨婷焯
彭学平
代中元
关键词:  全氧燃烧  热重分析  水泥生料  分解特性  2浓度')" href="#">CO2浓度    
Abstract: 
To address the development demands for carbon emission reduction technologies in the cement industry and the design of oxy-fuel combustion calciners, this study investigated the effect of high-concentration CO2 on cement raw meal decomposition under oxy-fuel combustion conditions by using thermogravimetric analysis (TGA). Two raw meal samples from an existing production line of a domestic cement plant were investigated, the key parameters including weight loss curve, weight loss rate, decomposition temperature and decomposition time of the raw meal were measured at a heating rate of 10°C/min. In addition, the decomposition characteristics of the above-mentioned raw meal under oxy-fuel combustion conditions were compared with the experimental results of the raw meal samples from another cement plant. The results show that with the CO2 concentration increasing from 30% to 90%, the initial decomposition temperature and complete decomposition temperature of the raw meal increase continuously. This is mainly due to the thermodynamic inhibition effect of high CO2 partial pressure on CaCO3 decomposition, which requires increasing the temperature to offset this effect. After replacing air with O2-CO2 mixed gas, the complete decomposition temperature of the raw meal increases by about 60℃~100℃. Meanwhile, the complete decomposition time of the raw meal is shortened to 4~6min under the high-concentration CO2 atmosphere, because the elevated temperature improves the reaction kinetic rate, which partially offsets the thermodynamic inhibition effect of CO2. Moreover, the decomposition temperature of raw meal samples from the two plants is about 940℃ under the CO2 concentration of 80%.
Key words:   oxy-fuel combustion    thermogravimetric analysis    cement raw meal    decomposition characteristics    CO2 concentration

收稿日期:  2026-01-16      修回日期:  2026-03-25           出版日期:  2026-03-25      发布日期:  2026-03-25      整期出版日期:  2026-03-25
ZTFLH:  TQ172.61  
基金资助: 河北省高端人才支持计划(2019年);天津市科技计划项目(24ZXQYSN00010)
通讯作者:  梁金生(1964—),男,博士,研究员,主要从事生态环境功能材料研究。    E-mail:  liangjinsheng@hebut.edu.cn
引用本文:    
梁金生, 杨婷焯, 彭学平, 代中元. 全氧燃烧条件下高浓度二氧化碳对水泥生料分解的影响研究[J]. 水泥技术, 2026, 1(2): 1-6.
LIANG Jinsheng, YANG Tingzhuo, PENG Xueping, DAI Zhongyuan.
Study on the Effect of High-concentration CO2 on Cement Raw Meal Decomposition under Oxy-fuel Combustion Conditions
. Cement Technology, 2026, 1(2): 1-6.
链接本文:  
http://www.cemteck.com/CN/10.19698/j.cnki.1001-6171.20262001  或          http://www.cemteck.com/CN/Y2026/V1/I2/1
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