Using Tapered Channels to Improve LAD Performance for Cryogenic Fluids: Suborbital Testing Results

K. Supak, S. Green, A. McCleney
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Abstract

Abstract Improvement of cryogenic fluid storage and transfer technology for in-space propulsion and storage systems is required for long-term space missions. Screened channel liquid acquisition devices (LADs) have long been used with storable propellants to deliver vapor-free liquid during engine restart and liquid transfer processes. The use of LADs with cryogenic fluids is problematic due to low temperatures associated with cryogenic fluids. External heat leaks will cause vapor bubbles to form within the LADs that are difficult to remove in the existing designs. A tapered LAD channel has been proposed to reliably remove vapor bubbles within the device without costly thrusting maneuvers or active separation systems. A model has been developed to predict bubble movement within tapered LAD channels, and subsequent ground testing was completed with a simulant fluid to provide model validation data. Suborbital microgravity testing of tapered LAD technology was recently completed with two different simulant fluids and demonstrated that the concept can passively expel vapor bubbles within the channel. Two additional suborbital flights have been funded to further develop this technology by investigating the performance of larger scale versions of the design.
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使用锥形通道改善低温流体的LAD性能:亚轨道测试结果
长期空间任务需要改进用于空间推进和存储系统的低温流体存储和传输技术。长期以来,筛选通道液体采集装置(LADs)一直与可储存推进剂一起使用,在发动机重启和液体传递过程中提供无蒸汽液体。由于低温流体的温度较低,在低温流体中使用lad是有问题的。外部热泄漏会导致在lad内形成蒸汽泡,在现有设计中难以去除。已经提出了一个锥形的LAD通道,可以可靠地去除设备内的蒸汽气泡,而无需昂贵的推力操作或主动分离系统。开发了一个模型来预测锥形LAD通道内的气泡运动,随后使用模拟流体完成了地面测试,以提供模型验证数据。锥形LAD技术的亚轨道微重力测试最近在两种不同的模拟流体中完成,并证明该概念可以被动地排出通道内的蒸汽泡。另外两次亚轨道飞行已经获得资助,通过研究该设计的更大规模版本的性能来进一步发展这项技术。
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