首页> 外文期刊>Journal of intelligent material systems and structures >Performance of an Active Composite Strut for an Intelligent Composite Modified Stewart Platform for Thrust Vector Control
【24h】

Performance of an Active Composite Strut for an Intelligent Composite Modified Stewart Platform for Thrust Vector Control

机译:主动复合支柱在用于推力矢量控制的智能复合Stewart平台上的性能

获取原文
获取原文并翻译 | 示例
           

摘要

Adaptive or intelligent structures which have the capability for sensing and responding to their environment promise a novel approach to satisfying the stringent performance requirements of future space missions. This research effort focuses on the development and performance evaluation of an active composite strut (ACS) with precision positioning and active vibration suppression capabilities for use in space structures. Such ACS has potentials to be used as active strut members in Stewart platforms, modified Stewart platforms (MSPs), space truss structures, etc. The developed ACS utilizes piezoelectric actuators/sensors providing precision positioning and vibration suppression capabilities that would enhance mission performance of space structures by fine position-tuning, and potentially eliminating the nonoperational period of a satellite while minimizing the fuel consumption utilized for its position correction in a thrust vector control (TVC) application. Precision positioning of the ACS is achieved by extending or contracting its internal piezoelectric actuator. To magnify the positioning capabilities of a stack piezoelectric actuator, a miniature inchworm mechanism is designed and incorporated within the ACS. A precision positioning experimental setup is developed and employed to demonstrate the precision positioning capabilities of the developed ACS. The axial vibration suppression capability of the ACS can also be provided by its internal piezoelectric stack actuator, and is demonstrated employing a developed vibration suppression experimental setup. Analytical and finite element analysis numerical verification, simulation, and modeling of the vibration suppression capabilities of the ACS are presented. Active vibration suppression schemes, using finite element analyses, are employed to numerically demonstrate the vibration suppression capabilities of the developed ACS. The ACS housing is a composite tubing. The numerical and experimental results show that the proposed ACS offers a promising method for achieving fine tuning of positioning tolerances as well as minimizing the effects of disturbances generated during a thruster firing of a satellite for the TVC application using a MSP.
机译:具有感知和响应周围环境能力的自适应或智能结构有望满足未来太空飞行任务对性能的严格要求。这项研究工作的重点是用于空间结构的具有精确定位和主动减振功能的主动复合支柱(ACS)的开发和性能评估。这种ACS有潜力在Stewart平台,改进的Stewart平台(MSP),空间桁架结构等中用作主动支撑杆构件。开发的ACS利用压电致动器/传感器提供精确的定位和振动抑制功能,从而增强太空任务性能通过微调位置结构,并有可能消除卫星的非运行周期,同时将推力矢量控制(TVC)应用中用于其位置校正的燃油消耗降至最低。 ACS的精确定位是通过扩展或收缩其内部压电致动器来实现的。为了扩大叠层压电致动器的定位能力,在ACS中设计了一种微型尺worm机构并将其合并。精确定位实验装置已开发并用于证明已开发的ACS的精确定位能力。 ACS的轴向振动抑制能力也可以由其内部的压电叠层执行器提供,并通过开发的振动抑制实验装置进行了演示。介绍了ACS的振动抑制能力的分析和有限元分析数值验证,仿真和建模。主动减振方案,使用有限元分析,被用来数值证明开发的ACS的减振能力。 ACS外壳是复合管。数值和实验结果表明,拟议的ACS提供了一种有前途的方法,可实现对定位公差的微调,并最大程度地减小了在使用MSP进行TVC应用的卫星推进器发射过程中产生的干扰影响。

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