Please wait a minute...
水泥技术, 2021, 1(5): 62-64    doi: 10.19698/j.cnki.1001-6171.20215062
  技术改造 本期目录 | 过刊浏览 | 高级检索 |
提高辊压机运行性能的改造实践
祁连山水泥有限公司
Transformation Practice to Improve the Operation Performance of Roller Press
Qilianshan Cement Co., Ltd.
下载:  PDF (2386KB) 
输出:  BibTeX | EndNote (RIS)      
摘要 公司辊压机运行存在辊子轴承温度高、侧挡板顶紧装置故障率高、侧挡板挤压区破损频繁、入辊压机滑阀开关卡滞等问题。通过采用在辊子轴承座上增加水冷却装置,优化侧挡板顶紧装置及挤压区结构,将滑阀开关单液压推杆改造为双推杆等技术措施后,大大提高了辊压机运行的可靠性和做功能力。
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
陈治坤
关键词:  侧挡板  顶紧装置  挤压区  进料滑阀    
Abstract: Several problems appeared in the company's roller press including the roller bearing temperature is high, side baffle jacking device is highly failed, the extrusion area of side baffle is frequently damaged, the slide valve switch of the roll in press is stuck. Through adding water cooling device on the roller bearing seat, optimizing the side baffle jacking device and extrusion zone structure, transforming the single hydraulic push rod of slide valve switch into double push rod and other technical measures, the operation reliability and work capacity of the roller press are greatly improved.
Key words:  side baffle    jacking device    extrusion zone    feed slide valve
收稿日期:  2021-04-07                出版日期:  2021-09-25      发布日期:  2021-09-22      整期出版日期:  2021-09-25
ZTFLH:  TQ172.639  
引用本文:    
陈治坤. 提高辊压机运行性能的改造实践[J]. 水泥技术, 2021, 1(5): 62-64.
CHEN Zhikun. Transformation Practice to Improve the Operation Performance of Roller Press. Cement Technology, 2021, 1(5): 62-64.
链接本文:  
http://www.cemteck.com/CN/10.19698/j.cnki.1001-6171.20215062  或          http://www.cemteck.com/CN/Y2021/V1/I5/62
[1] 石国平, 秦中华, 王明治, 柴星腾, 李铭哲. 大规格生料辊压机终粉磨系统的工业应用[J]. 水泥技术, 2021, 1(5): 15-20.
[2] 段文虎, 刘章名. 生料辊压机终粉磨系统智能控制方案的优化[J]. 水泥技术, 2021, 1(5): 51-54.
[3] 李小军, 宋良山, 陈亚强, 白雪瑞, 穆飞. 辊压机联合粉磨系统提产节能的改造[J]. 水泥技术, 2021, 1(5): 70-72.
[4] 潘沛. 辊压机联合粉磨系统的节电改造[J]. 水泥技术, 2021, 1(4): 47-49.
[5] 张松立. 生料粉磨系统的节能改造[J]. 水泥技术, 2021, 1(4): 50-53.
[6] 秦学恒. RP1712辊压机断螺栓故障分析及处置[J]. 水泥技术, 2021, 1(4): 73-79.
[7] 朱江春, 项世宗. DSJ5000打散分级机的技术改进[J]. 水泥技术, 2021, 1(3): 91-93.
[8] 邢愚, 戴建盛, 楼美善.
降低水泥粉磨电耗的改造实践
[J]. 水泥技术, 2021, 1(2): 97-99.
[9] 黄贺.
三维图像识别成形技术在辊压机辊面监测上的应用
[J]. 水泥技术, 2020, 1(5): 71-73.
[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] 何毛, 李洪生, 马健, 王小峰, 杜鑫. 水泥辊压机终粉磨系统的工业化应用[J]. 水泥技术, 2020, 1(2): 17-20.
[12] 石国平, 罗占仁, 王明治, 李洪, 柴星腾. 生料辊压机终粉磨系统技术研究及应用[J]. 水泥技术, 2020, 1(1): 17-22.
[13] 岳庆辉, 潘广庆, 苗庆峰.
水泥粉磨系统节能优化技术改造
[J]. 水泥技术, 2020, 1(1): 40-43.
[14] 侯国锋, 王学民, 张黎, 吴卫国, 许芬. 辊压机终粉磨系统在生产钢铁渣微粉上的应用[J]. 水泥技术, 2019, 1(6): 31-34.
[15] 满高鹏, 王军梅, 于远友, 范刚, 肖胜星. 水泥辊压机联合粉磨系统的优化改造[J]. 水泥技术, 2019, 1(6): 35-37.
[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