首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems >CRASHWORTHINESS STUDY OF HELICOPTER SKID LANDING GEAR SYSTEM EQUIPPED WITH A MAGNETORHEOLOGICAL ENERGY ABSORBER
【24h】

CRASHWORTHINESS STUDY OF HELICOPTER SKID LANDING GEAR SYSTEM EQUIPPED WITH A MAGNETORHEOLOGICAL ENERGY ABSORBER

机译:配备磁流变能量吸收器的直升机滑行起落架系统的碰撞论研究

获取原文

摘要

The present study concerns with the performance of a skid landing gear (SLG) system of a rotorcraft impacting the ground at a vertical sink rate of 5.0 m/s. The impact attitude is per chapter 527 of the Airworthiness Manual (AWM) of Transport Canada Civil Aviation and FAR Part 27 of the U.S. Federal Aviation Regulation. A single degree of freedom helicopter model is investigated under two rotor lift factors 0.67 and 1.0. Three Configurations are evaluated: a) A conventional SLG; b) SLG equipped with a passive viscous damper and c) SLG incorporated with a magnetorheological energy absorber. The non-dimensional solutions of the helicopter model show that the passive damper system could reduce the maximum acceleration experienced by the helicopter occupants by 21% and 19.8% in comparison to the undamped system for the above rotor lift factors, respectively. However, the passive damper fails to constrain the non-dimensional energy absorption stroke of the damper within the given 18 cm maximum stroke and a bottoming out of the damper piston was noticed. Therefore, the alternative and successful choice was to employ a magnetorheological energy absorber (MREA). To improve the MREA controllability and to resettle the payload with no oscillations, i.e. in one cycle, two different Bingham numbers for compression stroke and rebound stroke were defined in the non-dimensional solution. Several simulations were conducted for different values of Bingham numbers. Among these numerical simulation results, the solution that implemented the optimum Bingham numbers was found to be the only one feasible solution. In this case the MREA with optimum Bingham number for compression could utilize the full energy absorption stroke to attain soft landing. In the rebound stroke, the generated optimal on-state damping force successfully controls the bounce of the payload until the payload settles down to its original equilibrium position with no oscillations.
机译:本研究涉及旋翼飞机的滑落起落架(SLG)系统的性能,该系统以5.0 m / s的垂直下沉速率撞击地面。根据加拿大民航运输的适航手册(AWM)第527章和美国联邦航空法规的FAR第27部分,确定了撞击态度。在两个转子升力因子0.67和1.0下研究了单自由度直升机模型。评估了三种配置:a)常规SLG; b)SLG装有无源粘性阻尼器,c)SLG装有磁流变能量吸收器。直升机模型的无量纲解决方案表明,对于上述转子升力系数,被动阻尼系统与未阻尼系统相比,可以将直升机乘员所经历的最大加速度分别降低21%和19.8%。但是,被动阻尼器无法将阻尼器的无量纲能量吸收冲程限制在给定的18 cm最大冲程内,并且注意到阻尼器活塞触底。因此,另一种成功的选择是采用磁流变能量吸收器(MREA)。为了提高MREA的可控性并重新设置有效载荷而不会产生振荡,即在一个周期内,在无量纲解中定义了两个不同的Bingham数用于压缩冲程和回弹冲程。针对Bingham数的不同值进行了几种模拟。在这些数值模拟结果中,发现实现最佳宾厄姆数的解决方案是唯一可行的解​​决方案。在这种情况下,具有最佳宾厄姆数用于压缩的MREA可以利用整个能量吸收冲程来实现软着陆。在回弹冲程中,所产生的最佳通态阻尼力成功地控制了有效载荷的弹跳,直到有效载荷沉降到其原始平衡位置而没有振荡为止。

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