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>Ultrasound Imaging System Implementation and Ignition Protocol for the Microgravity Smoldering Combustion (MSC) Experiments
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Ultrasound Imaging System Implementation and Ignition Protocol for the Microgravity Smoldering Combustion (MSC) Experiments
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机译:超声成像系统实现和点火协议的微重力闷烧燃烧(MSC)实验
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摘要
The Microgravity Smoldering Combustion (MSC) experiment is a study of the smolder characteristics of porous combustible materials in a microgravity environment. The objective of the study is to provide a better understanding of the controlling mechanisms of smolder, both in microgravity and normal earth gravity. Experiments have been conducted aboard the NASA Space Shuttle in the Get Away Special Canister (GAS-CAN), an apparatus requiring completely remote operation. Future GAS-CAN experiments will utilize an ultrasound imaging system (UIS) which has been incorporated into the MSC experimental apparatus. Thermocouples are currently used to measure temperature and reaction front velocities. A less intrusive method is desirable, however, as smolder is a very weak reaction and it has been found that heat transfer along the thermocouple is sufficient to affect the smolder reaction. It is expected that the UIS system will eventually replace the existing array of thermocouples as a non-intrusive technique without compromising data acquisition. The UIS measures line of sight permeability, providing information about the reaction front position and extent. Additionally, the ignition sequence of the MSC experiments has been optimized from previous experiments to provide longer periods of self-supported smolder. An ignition protocol of a fixed power to the igniter for a fixed time is now implemented. This, rather than a controlled temperature profile ignition protocol at the igniter surface, along with the UIS system, will allow for better study of the effect of gravity on a smolder reaction.
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机译:微重力闷烧燃烧(MSC)实验是对微重力环境下多孔可燃材料的闷烧特性的研究。这项研究的目的是为了更好地理解微重力和正常地球重力下的阴燃控制机制。已经在GetAway Special Canister(GAS-CAN)上的NASA航天飞机上进行了实验,该设备需要完全远程操作。未来的GAS-CAN实验将利用已整合到MSC实验设备中的超声成像系统(UIS)。热电偶目前用于测量温度和反应前沿速度。然而,需要一种侵入性较小的方法,因为闷烧是非常微弱的反应,并且已经发现沿着热电偶的热传递足以影响闷烧反应。可以预期,UIS系统最终将取代现有的热电偶阵列,成为一种非侵入式技术,而不会影响数据采集。 UIS测量视线通透性,提供有关反应前沿位置和程度的信息。此外,MSC实验的点火顺序已从先前的实验中进行了优化,以提供更长的自燃闷烧时间。现在实施在固定时间内向点火器提供固定功率的点火协议。这,而不是点火器表面的可控温度曲线点火协议,以及UIS系统,将可以更好地研究重力对阴燃反应的影响。
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