首页> 外文OA文献 >Development and Testing of Molecular Adsorber Coatings
【2h】

Development and Testing of Molecular Adsorber Coatings

机译:分子吸附剂涂层的开发和测试

摘要

The effect of on-orbit molecular contamination has the potential to degrade the performance of spaceflight hardware and diminish the lifetime of the spacecraft. For example, sensitive surfaces, such as optical surfaces, electronics, detectors, and thermal control surfaces, are vulnerable to the damaging effects of contamination from outgassed materials. The current solution to protect these surfaces is through the use of zeolite coated ceramic adsorber pucks. However, these pucks and its additional complex mounting hardware requirements result in several disadvantages, such as size, weight, and cost related concerns, that impact the spacecraft design and the integration and test schedule. As a result, a new innovative molecular adsorber coating was developed as a sprayable alternative to mitigate the risk of on-orbit molecular contamination. In this study, the formulation for molecular adsorber coatings was optimized using various binders, pigment treatment methods, binder to pigment ratios, thicknesses, and spray application techniques. The formulations that passed coating adhesion and vacuum thermal cycling tests were further tested for its adsorptive capacity. Accelerated molecular capacitance tests were performed in an innovatively designed multi-unit system containing idealized contaminant sources. This novel system significantly increased the productivity of the testing phase for the various formulations that were developed. Work performed during the development and testing phases has demonstrated successful application of molecular adsorber coatings onto metallic substrates, as well as, very promising results for the adhesion performance and the molecular capacitance of the coating. Continued testing will assist in the qualification of molecular adsorber coatings for use on future contamination sensitive spaceflight missions.
机译:在轨分子污染的影响有可能使航天飞行硬件的性能下降,并缩短航天器的寿命。例如,敏感表面,例如光学表面,电子设备,检测器和热控制表面,容易受到脱气材料污染的破坏作用。当前保护这些表面的解决方案是通过使用沸石涂覆的陶瓷吸附器圆盘。但是,这些圆盘及其附加的复杂安装硬件要求导致了几个缺点,例如尺寸,重量和与成本有关的问题,这些缺点会影响航天器的设计以及集成和测试时间表。结果,开发了一种新型的创新分子吸附涂层,作为可喷涂的替代品,以减轻在轨分子污染的风险。在这项研究中,使用各种粘合剂,颜料处理方法,粘合剂与颜料的比例,厚度和喷涂技术优化了分子吸附剂涂层的配方。通过了涂层附着力和真空热循环测试的配方进一步测试了其吸附能力。在包含理想污染物源的创新设计的多单元系统中进行了加速的分子电容测试。对于开发的各种配方,这种新颖的系统大大提高了测试阶段的生产率。在开发和测试阶段进行的工作已经证明了分子吸附剂涂层在金属基材上的成功应用,以及涂层的粘附性能和分子电容非常有希望的结果。继续进行的测试将有助于对用于未来对污染敏感的航天飞行任务的分子吸附剂涂层进行鉴定。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利

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