...
首页> 外文期刊>Microgravity science and technology >A Fast and Self-Acting Release-Caging-Mechanism for Actively Driven Drop Tower Systems
【24h】

A Fast and Self-Acting Release-Caging-Mechanism for Actively Driven Drop Tower Systems

机译:主动驱动的滴塔系统的快速自作用释放笼式机构

获取原文
获取原文并翻译 | 示例

摘要

Today's and future scientific research programs ask for high quality microgravity conditions of 10(-6) g on ground combined with high repetition rates of 100 flights per day or more. Accordingly, a new type of drop tower, the GraviTower Bremen, (GTB), has been suggested and is currently under development. As a first stage of development, a GTB-Prototype (GTB-Pro) has been designed which uses an active rope drive to accelerate a slider/drag shield and an experiment therein on a vertical parabola. During the free fall phase, the experiment is decoupled from the slider by a self-acting Release-Caging-Mechanism (RCM). Our prototype will provide 2.5 s of microgravity for experiments of up to 500 kg for at least 100 times per day. In this article, the final concept of the engineering of the active rope drive and the RCM are presented in detail. Based on extensive simulations aiming at an optimization of the whole system we developed a hydraulic rope drive system with minimized vibrational amplitude and low number of eigenfrequencies. The RCM achieves a very fast (ae 0.1 s) self-acting release of the experiment from the slider by making use of the dynamics of the hydraulic rope drive. Furthermore, passive hydraulic stop dampers in the RCM build a passive and self-acting recoupling mechanism. This system is optimized for a fast decoupling to compensate for the time limitation posed by the chosen drive technology. The simulations included a comparison of different drive technologies, physical effects like the Coriolis force, and the dynamics of the RCM system itself.
机译:当今和未来的科学研究计划要求在地面上具有10(-6)g的高质量微重力条件,并要求每天重复飞行100或更多次。因此,已经提出了一种新型的吊塔,即不莱梅GraviTower(GTB),目前正在开发中。作为开发的第一阶段,已经设计了GTB原型(GTB-Pro),该模型使用主动式绳索驱动器来加速滑块/阻力板并在垂直抛物线上进行实验。在自由落体阶段,通过自作用释放-释放机制(RCM)将实验与滑块分离。我们的原型将提供2.5 s的微重力,用于每天至少进行100次的500公斤以下的实验。在本文中,将详细介绍主动式绳索驱动器和RCM的工程设计的最终概念。基于旨在优化整个系统的广泛模拟,我们开发了一种液压绳驱动系统,该系统具有最小的振动幅度和较低的本征频率。 RCM通过利用液压绳索驱动器的动力学,实现了非常快速(ae 0.1 s)的自作用实验从滑块的释放。此外,RCM中的无源液压限位阻尼器建立了无源且自作用的耦合机构。该系统针对快速去耦进行了优化,以补偿所选驱动技术带来的时间限制。仿真包括对不同驱动技术,科里奥利力等物理效应以及RCM系统自身动力学的比较。

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