Please wait a minute...
水泥技术, 2021, 1(4): 40-42    doi: 10.19698/j.cnki.1001-6171.20214040
  实验研究 本期目录 | 过刊浏览 | 高级检索 |
超细粉磨粉煤灰用于配制C60混凝土的试验研究
中材建设有限公司
Experimental Research on the Performance of C60 Concrete Mixed with Ultrafine Grinding Fly Ash#br#
CBMI Construction Co., Ltd.
下载:  PDF (1762KB) 
输出:  BibTeX | EndNote (RIS)      
摘要 根据C60混凝土性能要求,采用超细粉磨粉煤灰(>600m2/kg)单掺或与S95粒化高炉矿渣双掺的方法配制C60混凝土,经试验找到了比较合适的生产C60混凝土配合比方案,生产的C60混凝土既经济,又能满足混凝土的使用要求。
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
王宝占
贺芳
关键词:  超细粉磨粉煤灰  配合比  C60混凝土    
Abstract: According to the performance requirements of C60 concrete, C60 concrete is prepared by using the method of single mixing of ultrafine grinding fly ash (>600m2/kg) or double mixing with S95 granulated blast furnace slag. Through experiments, a suitable mix ratio scheme for C60 concrete production is found. The C60 concrete produced is economical and can meet the requirements of concrete application.
Key words:  ultrafine grinding fly ash    mixture ratio    C60 concrete
收稿日期:  2021-03-11                出版日期:  2021-07-25      发布日期:  2021-07-21      整期出版日期:  2021-07-25
ZTFLH:  TQ172.44   
引用本文:    
王宝占, 贺芳. 超细粉磨粉煤灰用于配制C60混凝土的试验研究[J]. 水泥技术, 2021, 1(4): 40-42.
WANG Baozhan, HE Fang. Experimental Research on the Performance of C60 Concrete Mixed with Ultrafine Grinding Fly Ash#br#. Cement Technology, 2021, 1(4): 40-42.
链接本文:  
http://www.cemteck.com/CN/10.19698/j.cnki.1001-6171.20214040  或          http://www.cemteck.com/CN/Y2021/V1/I4/40
[1] 孙诗华, 楼美善, 邢愚, 楼凯翔. 缓凝熟料的生产实验[J]. 水泥技术, 2021, 1(1): 78-80.
[2] 轩新军.
电石渣生产水泥工艺危爆环境的电气设计
[J]. 水泥技术, 2012, 1(2): 89-91.
[3] 陈刚.
100%电石渣替代石灰石生产水泥的开发与设计
[J]. 水泥技术, 2010, 1(4): 108-110.
[4] 苏达根, 王功勋, 钟小敏.
陶瓷抛光砖粉的组成及火山灰性研究
[J]. 水泥技术, 2008, 1(4): 22-24.
[5] 李德栋, 夏增建, 王旭东, 类家伟, 丁文军.
除尘器窑灰在硫铝酸盐水泥生产中的应用
[J]. 水泥技术, 2004, 1(1): 73-76.
[6] 李德栋, 毕利坤, 王晓华. 磷渣在硫铝酸盐水泥生产中的应用[J]. 水泥技术, 2003, 1(2): 52-54.
[7] 刘淑娟. 砌筑水泥生产中大掺量粉煤灰试验[J]. 水泥技术, 2001, 1(3): 49-49.
[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] LIU Xu, LI Liang. Investigation of New Medium Temperature Wear-resistant Alloy Steel[J]. Cement Technology, 2018, 1(1): 32 -34 .
[5] MA Debao. Finite Element Analysis of Inverted Cone in Raw Meal Silo[J]. Cement Technology, 2018, 1(1): 35 -38 .
[6] HAN Zhongqi. [J]. Cement Technology, 2018, 1(1): 38 -48 .
[7] XIE Jianzhong, LIAN Xuewen. Analysis and Solution of Segregation of the Kiln Ash in Continuous Raw Meal Homogenization Silo#br#[J]. Cement Technology, 2018, 1(1): 49 -53 .
[8] GUAN Laiqing, HE Yongxian. [J]. Cement Technology, 2018, 1(1): 54 -59 .
[9] WEI Can, ZHANG Yuanyuan, AI Jun. Application of Cement Intelligent Control System in Overseas Projects[J]. Cement Technology, 2018, 1(1): 60 -64 .
[10] JIN Shuang. [J]. Cement Technology, 2018, 1(1): 72 -73 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
    PDF Preview