首页> 外文会议>IEEE International Workshop on Metrology for Aerospace >Study and ground simulations of outgassing and hypervelocity impacts on carbon-based materials for space applications
【24h】

Study and ground simulations of outgassing and hypervelocity impacts on carbon-based materials for space applications

机译:研究和地面模拟对空间应用中碳基材料的除气和超高速影响

获取原文

摘要

Recently, the focus of Space Research has been set both on scientific and commercial fields. When planning a mission in space, it is necessary take into account the environment in which the instrumentations and the satellite that carries them will go to work. About 25% of operating anomalies are in fact due to the space environment that affects the control and management systems of the spacecraft and of the instrument. So it is mandatory to guarantee the compliance with the low earth orbit (LEO) space environment that degrades the performances and functionality of materials with phenomena such as atomic oxygen (AO), ultraviolet (UV) radiation, plasma, micrometeoroids and orbital debris (MMOD), as well as extreme thermal states given by orbital temperature cycles. In this frame the study of Outgassing properties and the hypervelocity impact resistance of space materials and in particular of Carbon based materials is of primary importance. A material with poor outgassing properties will degas volatile particles of itself and humidity with critical effects on electronic and optical devices. The resistance to high vacuum will assure the durability and the reliability of materials and structures. Very important is also the ability of a material or a structure to withstand impacts of MMOD. In this paper Outgassing and impact tests have been carried out on samples obtained from C/C prototypes for employment in re-entry systems and on samples of Carbon Fiber Reinforced Polymer (CFRP). The outgassing tests have been performed both on “naked” and coated samples per C/C kind and on CFRP. An Advanced Linear Electromagnetic Accelerator (ALEA), named railgun, has been developed in order to perform high energy impact test. The experimental results of impact test showed a damage limited to the Carbon based materials shell and could be adopted as solution to guarantee a safe mission and furthermore also that the railgun is suitable to perform impact testing of materials in the space debris energy range; at last, outgassing tests results show a complete compatibility of the materials under investigation with the standard.
机译:最近,空间研究的重点已经放在科学和商业领域。在计划太空任务时,有必要考虑仪器和携带仪器的卫星将在其中工作的环境。实际上,大约25%的操作异常是由于太空环境影响了航天器和仪器的控制和管理系统。因此,必须保证符合低地球轨道(LEO)空间环境,该环境会降低具有原子氧(AO),紫外线(UV)辐射,等离子体,微流星体和轨道碎片(MMOD)等现象的材料的性能和功能),以及轨道温度循环给出的极端热状态。在此框架中,空间材料尤其是碳基材料的除气性能和超高速冲击阻力的研究至关重要。具有不良脱气性能的材料将对自身和湿度的挥发性颗粒进行脱气,从而对电子和光学设备产生严重影响。耐高真空性将确保材料和结构的耐用性和可靠性。材料或结构承受MMOD冲击的能力也非常重要。在本文中,已经对从C / C原型获得的用于再入系统的样品以及碳纤维增强聚合物(CFRP)的样品进行了脱气和冲击测试。每种C / C种类的“裸露”和涂层样品以及CFRP均进行了脱气测试。为了执行高能冲击试验,已经开发了一种先进的线性电磁加速器(ALEA),称为Railgun。冲击试验的实验结果表明,损害仅限于碳基材料外壳,可以用作解决方案以确保安全执行任务,此外,轨道炮也适合在空间碎片能量范围内对材料进行冲击试验;最后,脱气测试结果表明所研究的材料与标准完全兼容。

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