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High regression rate hybrid rocket fuel grains with helical port structures.

机译:具有螺旋孔结构的高回归速率混合火箭燃料颗粒。

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摘要

Hybrid rockets are popular in the aerospace industry due to their storage safety, simplicity, and controllability during rocket motor burn. However, they produce fuel regression rates typically 25% lower than solid fuel motors of the same thrust level. These lowered regression rates produce unacceptably high oxidizer-to-fuel (O/F) ratios that produce a potential for motor instability, nozzle erosion, and reduced motor duty cycles. To achieve O/F ratios that produce acceptable combustion characteristics, traditional cylindrical fuel ports are fabricated with very long length-to-diameter ratios to increase the total burning area. These high aspect ratios produce further reduced fuel regression rate and thrust levels, poor volumetric efficiency, and a potential for lateral structural loading issues during high thrust burns. In place of traditional cylindrical fuel ports, it is proposed that by researching the effects of centrifugal flow patterns introduced by embedded helical fuel port structures, a significant increase in fuel regression rates can be observed. The benefits of increasing volumetric efficiencies by lengthening the internal flow path will also be observed. The mechanisms of this increased fuel regression rate are driven by enhancing surface skin friction and reducing the effect of boundary layer "blowing" to enhance convective heat transfer to the fuel surface. Preliminary results using additive manufacturing to fabricate hybrid rocket fuel grains from acrylonitrile-butadiene-styrene (ABS) with embedded helical fuel port structures have been obtained, with burn-rate amplifications up to 3.0x than that of cylindrical fuel ports.
机译:混合火箭由于在火箭发动机燃烧过程中的存储安全性,简单性和可控制性而在航空航天工业中很受欢迎。但是,它们产生的燃料退化率通常比相同推力水平的固体燃料电动机低25%。这些降低的回归率会产生不可接受的高的氧化剂/燃料(O / F)比,从而可能导致电机不稳定,喷嘴腐蚀和电机占空比降低。为了实现产生可接受的燃烧特性的O / F比,传统的圆柱形燃料端口被制造成具有非常长的长径比,以增加总燃烧面积。这些高的长宽比会进一步降低燃料的退化率和推力水平,降低容积效率,并在高推力燃烧期间产生横向结构载荷问题。代替传统的圆柱形燃料端口,建议通过研究由嵌入式螺旋形燃料端口结构引入的离心流动模式的影响,可以观察到燃料回归率的显着提高。还可以观察到通过延长内部流路来提高容积效率的好处。通过增加表面皮肤摩擦并减小边界层“起泡”的作用来驱动这种增加的燃料回归率的机制,以增强对流向燃料表面的热传递。已获得使用增材制造从具有嵌入式螺旋形燃料孔结构的丙烯腈-丁二烯-苯乙烯(ABS)制备混合火箭燃料颗粒的初步结果,其燃烧速率放大率高达圆柱形燃料端口的3.0倍。

著录项

  • 作者

    Walker, Sean D.;

  • 作者单位

    Utah State University.;

  • 授予单位 Utah State University.;
  • 学科 Aerospace engineering.
  • 学位 M.S.
  • 年度 2016
  • 页码 60 p.
  • 总页数 60
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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