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Energy efficiency of a continuous-detonation combustion chamber

机译:连续爆震燃烧室的能效

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Systematic experimental and computational studies of the energy efficiency of continuous-detonation combustors (CDCs) have been performed. A small-size and a large-size CDCs using hydrogen as fuel and oxygen or air as oxidizer have been developed and tested. It was first experimentally proved that the Zel'dovich thermodynamic cycle with continuous-detonation combustion of a hydrogen-oxygen mixture in an annular combustor is more efficient than the Brayton thermodynamic cycle with continuous combustion of the mixture, other things being equal. The specific impulse of a small-size bench-scale rocket engine with a 50 mm diameter CDC operating in the continuous-detonation mode was 6-7% higher than that in the continuous combustion mode of operation. The measured fuel-based specific impulse for the large-size CDC of 406 mm diameter running on a hydrogen-air mixture was at a level of 3000 s. Three-dimensional calculations to optimize the structure and operation mode of the large-size CDC have shown that when running on a combustible mixture with a nearly stoichiometric overall composition, the specific impulse can be increased to a parts per thousand 4200 s.
机译:进行了连续爆震燃烧器(CDC)能量效率的系统实验和计算研究。已经开发并测试了使用氢气作为燃料,使用氧气或空气作为氧化剂的小型和大型CDC。最初通过实验证明,在环形燃烧室中以氢-氧混合物进行连续爆震燃烧的Zel'dovich热力学循环比具有混合物连续燃烧的Brayton热力学循环更有效。在连续爆震模式下运行的直径50毫米CDC的小型台式火箭发动机的比冲比在连续燃烧模式下的比冲高6-7%。对于在氢气-空气混合物上运行的直径406 mm的大型CDC,测得的基于燃料的比冲为3000 s。为优化大型CDC的结构和操作模式而进行的三维计算表明,当在具有几乎化学计量的总体组成的可燃混合物上运行时,比冲量可以增加到每千个4200 s。

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