首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >EXPERIMENTAL VERIFICATION OF FRICTION BEHAVIORS UNDER PERIODICALLY-VARIED NORMAL FORCE BY DEVELOPING A TWO-DIRECTIONAL FRICTION TEST SYSTEM
【24h】

EXPERIMENTAL VERIFICATION OF FRICTION BEHAVIORS UNDER PERIODICALLY-VARIED NORMAL FORCE BY DEVELOPING A TWO-DIRECTIONAL FRICTION TEST SYSTEM

机译:通过建立二维方向的摩擦测试系统对周期变化的正力下的摩擦行为进行实验验证

获取原文
获取外文期刊封面目录资料

摘要

In order to achieve more accurate friction damping of turbine blades equipped with shroud covers and under-platform dampers, it is necessary to clarify such friction behaviors as tangential contact stiffness, micro-slips, and dissipated energy, under periodically varied normal force instead of constant normal force. Although some analytical studies were reported on the contact mechanics under alternating normal force, only minimal research has been conducted on the experimental verification of such behaviors, as friction tests were commonly done under constant normal force. In this study, we developed an original two-directional friction test system that can apply any combination of alternating normal and tangential forces by changing the displacement-controlled loading direction. In this system, relative displacement and contact force were measured simultaneously by using a laser Doppler displacement sensor and force transducers of the strain gage type. By using our original test system, we examined the dissipated energy under constant normal force and periodically-varied normal force whose amplitude is the same as that of tangential force with no phase difference. We then obtained a new finding that dissipated energy depends on alternating normal force under the same mean normal force and alternating tangential force. More specifically, when the tangential force coefficient, defined as the ratio of the amplitude of alternating tangential force to mean normal force, is large enough to cause a macro-slip, dissipated energy under variable normal force is smaller than that under constant normal force. Conversely, when tangential force coefficient is small in the micro-slip region, dissipated energy under variable normal force is larger than that under constant normal force. This behavior was successfully reproduced by FE analysis based on a macro-slip model, where an array of macro-slip elements was used to describe micro-slip behavior. It was found that alternating normal force makes it easier to cause a micro-slip in a certain area of the contact surface under variable normal force, resulting in higher dissipated energy than at constant normal force when tangential force coefficient is small. In this study, basic friction data were also obtained regarding the tangential contact stiffness with variations in contact pressure, as well as the relation between a micro-slip and the tangential force coefficient. Tangential contact stiffness increases as contact pressure increases. In addition, tangential contact stiffness increases with the nominal contact area, but is not proportional to the area. The non-dimensional slip range (corresponding to the ratio of slip range to stick displacement) was confirmed as being described in a unified form against different contact area (6 and 18 mm~2) and contact pressure ranging from 3 to 40 MPa.
机译:为了获得配有护罩和平台下阻尼器的涡轮机叶片的更精确的摩擦阻尼,有必要弄清在周期性变化的法向力而不是恒定的情况下,切向接触刚度,微滑移和耗能等摩擦行为。法向力。尽管已经报道了在交替法向力下接触力学的一些分析研究,但是由于这种摩擦试验通常是在恒定法向力下进行的,因此对这种行为的实验验证仅进行了很少的研究。在这项研究中,我们开发了一种原始的双向摩擦力测试系统,该系统可以通过更改位移控制的载荷方向来应用法向力和切向力交变的任意组合。在该系统中,通过使用激光多普勒位移传感器和应变计类型的力传感器同时测量相对位移和接触力。通过使用我们的原始测试系统,我们检查了在恒定法向力和周期性变化的法向力下耗散的能量,该法向振幅的大小与切向力相同,并且没有相位差。然后,我们获得了一个新发现,即耗散的能量取决于在相同的平均法向力和切向力交替的情况下交变法向力。更具体地,当切向力系数被定义为交变切向力的振幅与平均法向力的比值大到足以引起宏观滑动时,在可变法向力下的耗散能量小于在恒定法向力下的耗散能量。相反,当微滑动区域的切向力系数较小时,法向力可变时的耗散能量大于法向力恒定时的耗散能量。通过基于宏观滑动模型的有限元分析,成功地重现了此行为,其中使用了一系列宏观滑动元素来描述微观滑动行为。发现当法向力可变时,交变法向力使其在可变法向力下更容易在接触表面的特定区域中引起微滑动,从而导致耗散的能量大于在恒定法向力下的切向力系数。在这项研究中,还获得了有关切向接触刚度随接触压力变化以及微滑移和切向力系数之间关系的基本摩擦数据。切向接触刚度随着接触压力的增加而增加。此外,切向接触刚度随标称接触面积而增加,但与该面积不成比例。证实了无量纲滑动范围(对应于滑动范围与杆位移的比率)以统一的形式针对不同的接触面积(6和18 mm〜2)和3至40 MPa的接触压力进行了描述。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号