Please wait a minute...
水泥技术, 2023, 1(5): 13-17    doi: 10.19698/j.cnki.1001-6171.20235013
  粉磨技术 本期目录 | 过刊浏览 | 高级检索 |
水泥粉磨系统智能化发展现状及优化途径
1 天津水泥工业设计研究院有限公司,天津  300400; 2 大连水泥集团有限公司大连公司,辽宁  大连  116000
Development Status and Optimization Approach of Intelligent Cement Grinding System
1. Tianjin Cement Industry Design & Research Institute Co., Ltd. , Tianjin 300400, China; 2. Dalian Cement Group Co., Ltd. , Dalian Liaoning 116109, China.
下载:  PDF (4187KB) 
输出:  BibTeX | EndNote (RIS)      
摘要 我国水泥粉磨系统目前正处于自动化向智能化转型的阶段,尽管在系统智能操作、产品质量监测、设备检修维护、现场监控管理等方面应用了许多智能技术,但距水泥粉磨系统全流程智能化尚有一段距离。针对水泥粉磨系统智能化实现路径,提出了由人智操作模式向机智操作模式转变的思路,通过实现从设计到运维全生命周期数字化管理,智能调控粉磨生产运行过程,建立基于神经网络多变量模型的复合智能操作控制系统和设备动态管理系统,结合调控粒度分布、分级分别粉磨等智能化生产模式,从软、硬件两方面共同发力,多途径实现全流程机智操作模式下的水泥粉磨系统智能化。
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
石国平
刘栋强
关键词:  水泥粉磨  机智操作  智能调控  故障诊断  多转子动态选粉机    
Abstract: Cement grinding system is currently in the stage of transformation from automation to intelligence in China. Many intelligent technologies have been applied in the aspects of system intelligent operation, product quality monitoring, equipment maintenance, on-site monitoring and management, etc., however, there is still a distance from the full process intelligence of the cement grinding system. Aiming at the intelligent realization path of cement grinding system, the idea of transforming from intelligent operation mode to smart operation mode is proposed, and through the realization of digital management of the whole life cycle from design to operation and maintenance, intelligent regulation of grinding production and operation process, a composite intelligent operation control system and equipment dynamic management system based on neural network multi-variable model are established. In combination with intelligent production modes such as adjusting particle size distribution and classification respectively grinding system etc., it will work together from both software and hardware to achieve the intelligence of the cement grinding system in the smart operation mode of the whole process in multiple ways.
Key words:  cement grinding    intelligent operation    intelligent control    fault diagnosis    multi-rotor dynamic separator
收稿日期:  2023-01-15                出版日期:  2023-09-25      发布日期:  2023-09-25      整期出版日期:  2023-09-25
ZTFLH:  TQ172.632.5  
引用本文:    
石国平, 刘栋强. 水泥粉磨系统智能化发展现状及优化途径[J]. 水泥技术, 2023, 1(5): 13-17.
SHI Guoping, LIU Dongqiang. Development Status and Optimization Approach of Intelligent Cement Grinding System. Cement Technology, 2023, 1(5): 13-17.
链接本文:  
http://www.cemteck.com/CN/10.19698/j.cnki.1001-6171.20235013  或          http://www.cemteck.com/CN/Y2023/V1/I5/13
[1] 石洋, 张丽美, 戴丽丽.

水泥装备智能运维探讨 [J]. 水泥技术, 2023, 1(6): 29-35.

[2] 魏雪梅. 水泥生产设备液压系统常见故障排除方法及实例[J]. 水泥技术, 2022, 1(3): 79-83.
[3] 吴亮, 韩博文, 刘小龙. ϕ4.2m×13.5m水泥磨系统的节能改造[J]. 水泥技术, 2021, 1(6): 37-42.
[4] 王振生, 石国平, 王明治, 王娜, 柴星腾.
辊压机在水泥生产中应用的最新进展
[J]. 水泥技术, 2018, 1(6): 61-64.
[5] 柴星腾, 聂文海, 秦中华, 杜鑫. 水泥辊磨技术的新进展[J]. 水泥技术, 2018, 1(4): 21-25.
[6] 牛海龙, 石国平, 谢小云, 马秀宽, 徐向升. ϕ3.8m×13m水泥粉磨系统的改造[J]. 水泥技术, 2014, 1(3): 78-80.
[7] 王仲春. 辊磨有关机理及工艺计算的探讨(Ⅰ)[J]. 水泥技术, 2010, 1(2): 24-27.
[8] 何宏涛. 水泥粉磨系统的改造[J]. 水泥技术, 2007, 1(4): 45-48.
[9] 舒服华.
基于倒频谱分析的球磨机减速机故障诊断
[J]. 水泥技术, 2007, 1(3): 36-39.
[10] 赵旭, 付绍德, 敬清海. VCC立筒式水泥冷却器[J]. 水泥技术, 2006, 1(1): 60-62.
[11] 苏宜清, 黄民, 李志明.
水泥磨传动系统的故障诊断与分析
[J]. 水泥技术, 2005, 1(4): 31-33.
[12] 孔凡营.
关于水泥粉磨-混凝土生产-混凝土施工一体化的设想
[J]. 水泥技术, 2003, 1(4): 17-19.
[13] 赵东镐, 宋 扬, 刘连成, 王雪晶, 金春实, 林 岩.
CD-88水泥分散剂使用效果及应注意的问题
[J]. 水泥技术, 2002, 1(3): 94-96.
[14] 王复生, 张 捷, 王光明. 高细粉磨技术进展[J]. 水泥技术, 2001, 1(4): 42-44.
[15] 姚丕强, 张成祥, 沈邦文, 徐培涛, 李印奎, 段永强, 韩晓光. BD9911系列水泥高效助磨剂的研制及应用[J]. 水泥技术, 2001, 1(1): 52-54.
[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