首页> 外文会议>ASME(American Society of Mechanical Engineers) Turbo Expo vol.5; 20070514-17; Montreal(CA) >IDENTIFICATION OF FORCE COEFFICIENTS IN A SQUEEZE FILM DAMPER WITH A MECHANICAL END SEAL- CENTERED CIRCULAR ORBIT TESTS
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IDENTIFICATION OF FORCE COEFFICIENTS IN A SQUEEZE FILM DAMPER WITH A MECHANICAL END SEAL- CENTERED CIRCULAR ORBIT TESTS

机译:带有机械端密封中心的圆形轨道测试的挤压膜阻尼器中力系数的识别

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The paper presents parameter identification measurements conducted on a squeeze film damper (SFD) featuring a non-rotating mechanical seal that effectively eliminates lubricant side leakage. The SFD-seal arrangement generates dissipative forces due to viscous and dry-friction effects from the lubricant film and surfaces in contact, respectively. The test damper reproduces an aircraft application that must contain the lubricant for extended periods of time. The test damper journal is 2.54 cm in length and 12.7 cm in diameter, with a nominal clearance of 0.127 mm. The damper feed end opens to a plenum filled with lubricant, and at its discharge grooved section, four orifice ports evacuate the lubricant. In prior publications (ASME Paper GT2006-90782, IJTC2006-12041), single frequency force excitation tests were conducted, without and with lubricant in the squeeze film land, to determine the seal dry-friction force and viscous damping force coefficients. Presently, further measurements are conducted to identify the test system and SFD force coefficients using two sets of flow restrictor orifice sizes (2.8 mm and 1.1 mm in diameter). The flow restrictors regulate the discharge flow area, and thus control the oil flow through the squeeze film. The experiments also include measurements of dynamic pressures at the squeeze film land and at the discharge groove. The magnitude of dynamic pressure in the squeeze film land is nearly identical for both sets of flow restrictors, and for small orbit radii, dynamic pressures in the discharge groove have peak values similar to those in the squeeze film land. The identified parameters include the test system damping and the individual contributions from the squeeze film, dry friction in the mechanical seal and structure remnant damping. The identified system damping coefficients are frequency and motion amplitude dependent due to the dry friction interaction at the mechanical seal interface. Squeeze film force coefficients, damping and added mass, are in agreement with simple predictive formulas for an uncavitatedlubricant condition and are similar for both flow restrictor sizes. The SFD-mechanical seal arrangement effectively prevents air ingestion and entrapment and generates predicable force coefficients for the range of frequencies tested.
机译:本文介绍了在挤压膜阻尼器(SFD)上进行的参数识别测量,该阻尼器具有非旋转机械密封,可有效消除润滑剂侧泄漏。由于润滑膜和接触表面分别产生粘性和干摩擦效应,SFD密封装置会产生耗散力。该测试阻尼器再现了必须长期包含润滑剂的飞机应用。测试阻尼器轴颈的长度为2.54厘米,直径为12.7厘米,标称间隙为0.127毫米。减震器的供油端通向充满润滑油的增压室,在其出油槽部分,四个孔口排空了润滑油。在以前的出版物中(ASME文件GT2006-90782,IJTC2006-12041),在挤压膜片中有润滑剂或无润滑剂的情况下,进行了单频力励磁测试,以确定密封件的干摩擦力和粘性阻尼力系数。目前,使用两组限流孔尺寸(直径为2.8 mm和1.1 mm)进行进一步的测量,以识别测试系统和SFD力系数。限流器调节排放流量区域,从而控制油流过挤压膜。实验还包括在挤压膜平台和排放槽处测量动压。对于两组限流器,挤压膜平台中的动压力的大小几乎相同,并且对于较小的轨道半径,排放槽中的动压力具有与挤压膜平台中的动压力类似的峰值。识别出的参数包括测试系统的阻尼和挤压膜的单个贡献,机械密封中的干摩擦以及结构残余阻尼。由于机械密封界面处的干摩擦相互作用,所识别的系统阻尼系数取决于频率和运动幅度。挤压膜力系数,阻尼和附加质量与非空化润滑条件下的简单预测公式一致,并且两种限流器尺寸均相似。 SFD机械密封装置有效地防止了空气的吸入和滞留,并针对测试的频率范围生成了可预测的力系数。

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