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水泥技术, 2024, 1(3): 20-26    doi: 10.19698/j.cnki.1001-6171.20243020
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大型管磨机驱动装置的选择及优缺点分析
中材建设有限公司,北京  100176
Selection and Analysis of Advantages and Disadvantages of Driving Devices for Large Tube Mills
CBMI Construction Co., Ltd. , Beijing 100176, China
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摘要 大型管磨机本体及研磨体载荷大,磨机功率高,当其驱动装置采用行星减速机和齿形联轴器配合的中心传动方式时,会产生较大的轴向力,影响磨机的稳定可靠运行。分析对比了大型管磨机驱动装置采用中心传动、单边缘传动、单边缘双传动、双边缘传动、多点边缘传动等传动方式的工艺特点。以某项目?5.2m大型水泥管磨机2×4 000kW双边缘传动系统为例,介绍了主电机、减速机、大齿圈和小齿轮的选型设计计算及双边缘传动系统的实际应用情况。生产实践表明,大型管磨机选择双边缘传动方式安装方便、成本低、传动功率大、运行稳定可靠,是优选方案。
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王国民
关键词:  管磨机  联轴器  轴向力  传动功率  传动方式    
Abstract: The main body and grinding body of a large tube mill have a large load and high grinding power. When its driving device adopts a central transmission method of planetary reducer and toothed coupling, it will generate significant axial force, which affects the stable and reliable operation of the mill. The process characteristics of large tube mill drive devices using central drive, single edge drive, single edge dual drive, dual edge drive, multi-point edge drive, and other driving methods are analyzed and compared. A certain project of the a ?5.2m large tube mill with 2×4 000kW double edge transmission system taken as an example, this paper introduces the selection, design and calculation of the main motor, reducer, girth gear, and pinion, as well as the practical application of the double edge transmission system. Production practice has shown that choosing the double edge drive method for large tube mills is a preferred solution due to its convenient installation, low cost, high transmission power, and stable and reliable operation.
Key words:  tube mill    coupling    axial force    drive power    drive method
收稿日期:  2023-08-30                出版日期:  2024-05-25      发布日期:  2024-05-21      整期出版日期:  2024-05-25
ZTFLH:  TQ172.632.1  
引用本文:    
王国民. 大型管磨机驱动装置的选择及优缺点分析[J]. 水泥技术, 2024, 1(3): 20-26.
WANG Guomin. Selection and Analysis of Advantages and Disadvantages of Driving Devices for Large Tube Mills. Cement Technology, 2024, 1(3): 20-26.
链接本文:  
http://www.cemteck.com/CN/10.19698/j.cnki.1001-6171.20243020  或          http://www.cemteck.com/CN/Y2024/V1/I3/20
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[2] 王建峰.
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[3] 侯跃光. 余热电站机组振动异常的几种原因分析[J]. 水泥技术, 2018, 1(3): 80-83.
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