球状磷石膏,缓凝机理,凝结时间,抗压强度,流动性能 ," /> 球状磷石膏,缓凝机理,凝结时间,抗压强度,流动性能 ,"/> spherical phosphogypsum,retarding mechanism,condensation time,compressive strength,fluidity ,"/> <p class="MsoNormal"> 改性球状磷石膏在水泥生产中的应用
Please wait a minute...
水泥技术, 2025, 1(2): 76-80    doi: 10.19698/j.cnki.1001-6171.20252076
  材料研究 本期目录 | 过刊浏览 | 高级检索 |

改性球状磷石膏在水泥生产中的应用

芜湖海螺水泥有限公司,安徽  芜湖  241213

Application of Modified Spherical Phosphogypsum in Cement Production

Wuhu Conch Cement Co., Ltd. , Wuhu Anhui 241213, China

下载:  PDF (1590KB) 
输出:  BibTeX | EndNote (RIS)      
摘要 

研究了改性球状磷石膏在印度尼西亚南加里曼丹岛地区水泥生产中的应用情况。改性球状磷石膏是通过在磷石膏中加入碱性物质后,经成球盘或造粒机制备的工业副产品。研究以该地区生产的水泥为对象,根据石膏缓凝机理,逐步调整天然石膏与改性球状磷石膏的配比,并结合相关标准开展了水泥凝结时间、抗压强度等试验。试验结果显示,水泥中SO3含量与凝结时间呈正相关趋势,但仅在特定区间内存在。通过调整石膏配比,可降低水泥中SO3含量至约1.6%,同时保持凝结时间和抗压强度满足当地需求。此外,研究还发现,在天然石膏缺乏的情况下,使用改性磷石膏替代天然石膏生产水泥是可行的,且球状改性磷石膏的使用效果更佳,流动性好,SO3含量波动小。

服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
钱海运
曹凌杨
张莎莎
王亚
关键词:  球状磷石膏')" href="#">

球状磷石膏  缓凝机理  凝结时间  抗压强度  流动性能     

Abstract: 

The application of modified spherical phosphogypsum in cement production in South Kalimantan Island, Indonesia was studied. Modified spherical phosphogypsum is an industrial by-product prepared by adding alkaline substances to phosphogypsum and using a ball forming or granulation mechanism. The study focuses on the cement produced in the region, and gradually adjusts the ratio of natural gypsum to modified spherical phosphogypsum based on the gypsum retarding mechanism. Combined with relevant standards, tests were conducted on cement setting time, compressive strength, and other parameters. The experimental results show that the SO3 content in cement is positively correlated with setting time, but only exists within a specific range. By adjusting the gypsum ratio, the SO3 content in cement can be reduced to about 1.6%, while maintaining the setting time and compressive strength to meet local demand. In addition, the study also found that it is feasible to use modified phosphogypsum instead of natural gypsum to produce cement in the absence of natural gypsum, and the use of spherical modified phosphogypsum is more effective, with good fluidity and less fluctuation in SO3 content.

Key words:  spherical phosphogypsum')" href="#">

spherical phosphogypsum    retarding mechanism    condensation time    compressive strength    fluidity

收稿日期:  2024-07-20      修回日期:  2025-03-25           出版日期:  2025-03-25      发布日期:  2025-03-25      整期出版日期:  2025-03-25
ZTFLH:  TQ177.3  
引用本文:    
钱海运, 曹凌杨, 张莎莎, 王亚.

改性球状磷石膏在水泥生产中的应用 [J]. 水泥技术, 2025, 1(2): 76-80.
QIAN Haiyun, CAO Lingyang, ZHANG Shasha, WANG Ya.

Application of Modified Spherical Phosphogypsum in Cement Production . Cement Technology, 2025, 1(2): 76-80.

链接本文:  
http://www.cemteck.com/CN/10.19698/j.cnki.1001-6171.20252076  或          http://www.cemteck.com/CN/Y2025/V1/I2/76
[1] 刘睿楠, 王立艳. 不同掺量硼酸对磷酸镁水泥性能的影响[J]. 水泥技术, 2024, 1(1): 83-88.
[2] 钟煜, 曾荣, 劳里林. 脱硫石膏引起水泥凝结时间异常的原因分析[J]. 水泥技术, 2023, 1(3): 73-78.
[3] 刘睿楠, 王立艳. 磷酸镁水泥的研究进展[J]. 水泥技术, 2023, 1(3): 87-90.
[4] 冯云, 李榛, 张文涛, 李佳, 赵峰. 含氟污泥对熟料凝结时间影响的研究进展[J]. 水泥技术, 2023, 1(3): 91-96.
[5] 谢恩鑫, 苏宏东, 邓辉. 改性磷石膏在普通硅酸盐水泥中的应用[J]. 水泥技术, 2023, 1(2): 93-.
[6] 宋洋, 曾荣, 陶从喜, 韦怀珺, 劳里林. 钛矿渣作水泥混合材的应用研究[J]. 水泥技术, 2022, 1(2): 68-73.
[7] 董志, 时耀辉, 崔文刚, 杜会平, 贾坤鹏. 混凝土凝结时间偏长问题的分析及解决措施[J]. 水泥技术, 2021, 1(4): 102-104.
[8] 贾坤鹏, 时耀辉, 崔文刚, 杜会平, 董志. 水泥凝结时间自动测量仪的应用[J]. 水泥技术, 2021, 1(3): 69-71.
[9] 张大鹏, 王军龙, 陶涛, 王坤. 多变量回归方程在水泥28d抗压强度预测的应用[J]. 水泥技术, 2021, 1(3): 63-68.
[10] 贾月彩, 刘振华, 夏珍珍, 冯富宁.
降低开路磨出磨水泥温度的技术措施
[J]. 水泥技术, 2020, 1(3): 77-81.
[11] 郑旭, 刘晨, 颜碧兰, 王昕, 魏丽颖. 对比水泥对粒化高炉矿渣粉性能检测结果的影响研究[J]. 水泥技术, 2017, 1(6): 30-39.
[12] 崔世文, 司徒漫生, 谢丽丽. 浅析水泥凝结时间检验中的影响因素[J]. 水泥技术, 2015, 1(1): 40-42.
[13] 郭晓潞, 施惠生, .
MSWI飞灰制阿利尼特复合水泥基材料的耐久性
[J]. 水泥技术, 2013, 1(3): 29-32.
[14] 谢兆军, 朱泽华, 叶中郎, 闫薇, 程小伟. 微硅对水泥石抗腐蚀性能影响的研究[J]. 水泥技术, 2011, 1(6): 36-39.
[15] 朱明胜.
苯丙乳液改性水泥修补砂浆的制备与性能研究
[J]. 水泥技术, 2011, 1(3): 31-33.
[1] . Review and Prospect of Engineering Practice of Waste Disposal in Cement Kiln in China[J]. Cement Technology, 2018, 1(1): 17 -21 .
[2] DI Dongren, TAO Congxi, CHAI Xingteng. Revision of Cement Energy Consumption Standards and Energy Saving Technology(Ⅰ)[J]. Cement Technology, 2018, 1(1): 22 -26 .
[3] LIU Yonggang, GAO Hongwei, XIAO Guiqing. Design Method of Road Structure Using Lean Concrete Base[J]. Cement Technology, 2018, 1(1): 27 -31 .
[4] MA Debao. Finite Element Analysis of Inverted Cone in Raw Meal Silo[J]. Cement Technology, 2018, 1(1): 35 -38 .
[5] HAN Zhongqi. [J]. Cement Technology, 2018, 1(1): 38 -48 .
[6] GUAN Laiqing, HE Yongxian. [J]. Cement Technology, 2018, 1(1): 54 -59 .
[7] WEI Can, ZHANG Yuanyuan, AI Jun. Application of Cement Intelligent Control System in Overseas Projects[J]. Cement Technology, 2018, 1(1): 60 -64 .
[8] WANG Qingjiang. Analysis on Mechanical Performance of Typical Joints in Tubular Frame Structure[J]. Cement Technology, 2018, 1(1): 83 -88 .
[9] LIU Xudong. How to Execute 60 kV Transmission Line EPC Project[J]. Cement Technology, 2018, 1(1): 89 -91 .
[10] YAO Piqiang, HAN Hui, YU Weimin. Study on Calcining and Preliminary Application of New Low Calcium Cement[J]. Cement Technology, 2018, 1(2): 17 -25 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
    PDF Preview