首页> 外文会议>International astronautical congress >THERMO-MECHANICAL CONCEPT FOR A MODULAR ON-ORBIT-SERVICEABLE SATELLITE SYSTEM
【24h】

THERMO-MECHANICAL CONCEPT FOR A MODULAR ON-ORBIT-SERVICEABLE SATELLITE SYSTEM

机译:模块化在轨可维护卫星系统的热机械概念

获取原文

摘要

Within the joint project intelligent Building Blocks for On-Orbit Satellite Servicing (iBOSS) a full modular and serviceable satellite architecture is being developed. This architecture combines spacecraft's modularization with On-Orbit-Servicing capability. The modules are able to detach in space, thus a robotic servicer satellite can maintain the modular satellite. Assembly, disassembly, upgrade and repowering of satellite systems in space can be carried out by means of robotic manipulation, thus an enhancement of lifetime can be attained. The building block architecture facilitates the development and integration of new satellite systems and may reduce production costs and time. The modularization is achieved by subdividing a satellite bus on component level and subsequent integration of the components into independent building blocks. By connecting these blocks with a multifunctional interface, also developed within the iBOSS project, a mission specific satellite can be initially assembled and launched into orbit. The preliminary design of the module's primary structure considers different aspects of lightweight design. It focuses on problems like structural stability, load-introduction and thermo-mechanics. With respect to the reconfiguration and rearrangement of building blocks in orbit the blocks' surfaces cannot act distinctly as radiator or isolator. Moreover, the thermal deformations have to be kept in small margins. As a consequence of the required high level of flexibility, the satellite's building blocks do not possess a predominant orientation. This challenges the thermal control and the structure's thermo-mechanical design. In order to realize a multi-functional lightweight structure, the design uses carbon fiber reinforced plastic and takes advantage of its superior properties, like high stiffness, high thermal conductivity and low thermal expansion. The thermo-mechanical concept intends to distribute the heat energy around the module, towards the module's interfaces. This paper investigates the satellite's structural capability to spread the necessary amount of heat energy along specific paths and past structure joints, without the use of additional thermal conductive elements.
机译:在联合项目中,用于在轨卫星服务的智能构建基块(iBOSS)正在开发一种完整的模块化且可维护的卫星体系结构。这种架构将航天器的模块化与在轨服务功能结合在一起。这些模块能够在空间中分离,因此,自动服务卫星可以维护模块化卫星。卫星系统在太空中的组装,拆卸,升级和供电可以通过机械手进行,从而可以延长使用寿命。构建块体系结构促进了新卫星系统的开发和集成,并可以减少生产成本和时间。通过在组件级别细分卫星总线,然后将组件集成到独立的构建块中,可以实现模块化。通过将这些模块与也在iBOSS项目中开发的多功能接口连接,可以将特定任务的卫星初始组装并发射到轨道上。模块主要结构的初步设计考虑了轻量级设计的不同方面。它着重于结构稳定性,载荷引入和热力学等问题。关于在轨道上对积木的重新配置和重新布置,积木的表面不能明显地充当辐射器或隔离器。而且,热变形必须保持在很小的范围内。由于要求的高度灵活性,卫星的构造块没有主要的方向。这对热控制和结构的热机械设计提出了挑战。为了实现多功能的轻质结构,该设计使用碳纤维增强塑料并利用其优越的性能,例如高刚度,高导热性和低热膨胀性。热机械概念旨在将模块周围的热能分配到模块的接口。本文研究了卫星的结构能力,可以沿特定路径和过去的结构缝散布必要的热能,而无需使用其他导热元件。

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