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Space Flight Requirements for Fiber Optic Components; Qualification Testing and Lessons Learned

机译:光纤组件的空间飞行要求;资格测试和经验教训

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"Qualification" of fiber optic components holds a very different meaning than it did ten years ago. In the past, qualification meant extensive prolonged testing and screening that led to a programmatic method of reliability assurance. For space flight programs today, the combination of using higher performance commercial technology, with shorter development schedules and tighter mission budgets makes long term testing and reliability characterization unfeasible. In many cases space flight missions will be using technology within years of its development and an example of this is fiber laser technology. Although the technology itself is not a new product the components that comprise a fiber laser system change frequently as processes and packaging changes occur. Once a process or the materials for manufacturing a component change, even the data that existed on its predecessor can no longer provide assurance on the newer version. In order to assure reliability during a space flight mission, the component engineer must understand the requirements of the space flight environment as well as the physics of failure of the components themselves. This can be incorporated into an efficient and effective testing plan that "qualifies" a component to specific criteria defined by the program given the mission requirements and the component limitations. This requires interaction at the very initial stages of design between the system design engineer, mechanical engineer, subsystem engineer and the component hardware engineer. Although this is the desired interaction what typically occurs is that the subsystem engineer asks the components or development engineers to meet difficult requirements without knowledge of the current industry situation or the lack of qualification data. This is then passed on to the vendor who can provide little help with such a harsh set of requirements due to high cost of testing for space flight environments. This presentation is designed to guide the engineers of design, development and components, and vendors of commercial components with how to make an efficient and effective qualification test plan with some basic generic information about many space flight requirements. Issues related to the physics of failure, acceptance criteria and lessons learned will also be discussed to assist with understanding how to approach a space flight mission in an ever changing commercial photonics industry.
机译:光纤组件的“资格”持有十年前的含义非常不同。在过去,资格意味着广泛的延长测试和筛选,导致了可靠性保证的程序化方法。对于今天的太空飞行计划,使用更高的性能商业技术的组合,具有较短的开发时间表和更严格的任务预算使得长期测试和可靠性表征不可行。在许多情况下,空间飞行任务将在其开发多年内使用技术,这是光纤激光技术的例子。虽然技术本身不是一种新产品,但包括常用光纤激光系统的组件通常随着过程和包装变化而变化。一旦流程或用于制造组件的材料,即使是其前身上存在的数据也不能再为更新版本提供保证。为了确保空间飞行使命期间的可靠性,组件工程师必须了解空间飞行环境的要求以及组件本身的失败物理。这可以合并到有效且有效的测试计划中,“在规定的任务要求和组件限制的情况下,”符合“计划定义的特定标准的组件。这需要在系统设计工程师,机械工程师,子系统工程师和组件硬件工程师之间的初始设计中的初始阶段进行交互。虽然这是所需的互动,通常发生的是,子系统工程师要求组件或开发工程师满足难以解决的难以解决当前行业情况或缺乏资格数据。然后,这将传递给供应商,该供应商可以提供由于空间飞行环境的高成本而提供如此严厉的要求。本演示文稿旨在指导设计,开发和组件的工程师,以及商业组件的供应商,如何通过有关许多空间飞行要求的一些基本通用信息进行高效且有效的资格测试计划。还将讨论与失败的物理学,验收标准和经验教训有关的问题,以帮助了解如何在不断变化的商业光子学行业中接近空间飞行使命。

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