Gladson Willian Pereira Rodrigues, Paulo Cezar Büchner, Jorge Luiz de Assis Soares, Alexandre Martins Reis, Charles Luís da Silva, Natália Rie Horikawa
{"title":"Control of vibrations in rotating mechanical elements","authors":"Gladson Willian Pereira Rodrigues, Paulo Cezar Büchner, Jorge Luiz de Assis Soares, Alexandre Martins Reis, Charles Luís da Silva, Natália Rie Horikawa","doi":"10.36560/161220231827","DOIUrl":null,"url":null,"abstract":"We observe commonly disturbances in rotating machinery elements when driven to rotate. These disturbances present themselves as a displacement or trepidation caused by unbalanced masses. The occurrence of balancing depends on eccentricity present, which means that the center of mass and rotating element center are not coincident. The presence of these unbalanced forces - whose magnitude is proportional to the eccentricity, unbalanced mass, and the angular velocity squared - results in severe vibrations and can overload bearings with catastrophic consequences. The main origin of these unbalances is the heterogeneous distribution of the masses around the rotation axis. So, to avoid the overload on bearings and warp the shaft, some control methods such as balancing should be done. In the present work, a dynamic balancing was carried out with a specimen employing a balancer rig. In this experiment, different auxiliary equipment, computer systems, and proprietary software were used. It was possible with this software to automate the measurements, analyze, and obtain a report about balancing results as well. The specimen was made of steel and possessed two mounted nylon disks with oblong holes on them. These oblong holes permitted the fixation of trial masses and correction masses. The degree of balancing quality was determined according to the ISO standard G 6.3; these degrees of balancing guarantee an accuracy level of quality according to the specific application in rotating machines. The balancing on the specimen was correctly applied, and the results have demonstrated that this procedure, balancing, is essential to mitigating excessive vibration and preventing overload in bearings caused by unbalancing in rotating mechanical elements.","PeriodicalId":507778,"journal":{"name":"Scientific Electronic Archives","volume":"1 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2023-11-30","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Scientific Electronic Archives","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.36560/161220231827","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
We observe commonly disturbances in rotating machinery elements when driven to rotate. These disturbances present themselves as a displacement or trepidation caused by unbalanced masses. The occurrence of balancing depends on eccentricity present, which means that the center of mass and rotating element center are not coincident. The presence of these unbalanced forces - whose magnitude is proportional to the eccentricity, unbalanced mass, and the angular velocity squared - results in severe vibrations and can overload bearings with catastrophic consequences. The main origin of these unbalances is the heterogeneous distribution of the masses around the rotation axis. So, to avoid the overload on bearings and warp the shaft, some control methods such as balancing should be done. In the present work, a dynamic balancing was carried out with a specimen employing a balancer rig. In this experiment, different auxiliary equipment, computer systems, and proprietary software were used. It was possible with this software to automate the measurements, analyze, and obtain a report about balancing results as well. The specimen was made of steel and possessed two mounted nylon disks with oblong holes on them. These oblong holes permitted the fixation of trial masses and correction masses. The degree of balancing quality was determined according to the ISO standard G 6.3; these degrees of balancing guarantee an accuracy level of quality according to the specific application in rotating machines. The balancing on the specimen was correctly applied, and the results have demonstrated that this procedure, balancing, is essential to mitigating excessive vibration and preventing overload in bearings caused by unbalancing in rotating mechanical elements.
我们经常观察到旋转机械元件在被驱动旋转时产生的扰动。这些干扰表现为质量不平衡引起的位移或颤动。平衡的发生取决于偏心的存在,这意味着质量中心和旋转元件中心并不重合。这些不平衡力(其大小与偏心率、不平衡质量和角速度平方成正比)的存在会导致剧烈振动,并使轴承过载,造成灾难性后果。这些不平衡的主要原因是旋转轴周围的质量分布不均匀。因此,为避免轴承过载和轴翘曲,应采取一些控制方法,如平衡。在本研究中,使用平衡机对试样进行了动态平衡。实验中使用了不同的辅助设备、计算机系统和专用软件。该软件可以自动进行测量、分析并获得平衡结果报告。试样由钢制成,上面有两个带长圆孔的尼龙盘。这些长圆孔用于固定试块和校正块。平衡质量等级是根据 ISO 标准 G 6.3 确定的;这些平衡等级根据旋转机械的具体应用保证了质量的精确度。试样上的平衡应用正确,结果表明,平衡这一程序对于减轻过度振动和防止旋转机械元件不平衡造成轴承过载至关重要。