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首页> 外文期刊>International Journal of Heat and Mass Transfer >Vaporization of two liquid oxygen(LOX)droplets in tandem in convective hydrogen streams at supercritical pressures
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Vaporization of two liquid oxygen(LOX)droplets in tandem in convective hydrogen streams at supercritical pressures

机译:在超临界压力下对流氢气流中的两个液态氧(LOX)液滴串联蒸发

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摘要

Vaporization of two liquid oxygen(LOX)droplets in tandem in supercritical convective hydrogen environments has been numerically investigated. The theoretical formulation consists of a complete set of conservation equations of mass, momentum, energy, and species concentrations. The solution technique is based on a unified treatment of general fluid thermodynamics incorporated into a dual time-stepping preconditioning approach. In addition, a self-consistent property evaluation method is implemented to calculate strong property variations in the transcritical and supercritical fluid regimes. The flow conditions cover a range of pressures between 100 and 400 atm and freestream velocities from 2.5 to 20 m/ s. Special attention is given to the effect of droplet interaction on the droplet dynamics and vaporization characteristics. Results indicate that the vaporization behaviors of the two interacting droplets are different from those of an isolated droplet. The presence of the trailing droplet has a minor effect on the lifetime and trajectory of the leading droplet. In contrast, the lifetime of the trailing droplet is substantially prolonged and its moving trajectory is strongly altered. At an ambient pressure of 100 atm, a forward bag-type break-up of the leading droplet is observed when the two droplets are placed closely, with the H/R(the initial droplet spacing to the droplet radius)ratio less than 4. Under the same operating conditions, forward movement takes place for the trailing droplet. Increasing ambient pressure weakens droplet interaction.
机译:在超临界对流氢环境中,串联研究了两个液氧(LOX)液滴的汽化过程。理论公式由质量,动量,能量和物种浓度的完整守恒方程组组成。该解决方案技术基于对双重时间步长预处理方法中通用流体热力学的统一处理。此外,实现了一种自洽属性评估方法,以计算跨临界和超临界流体状态下的强烈属性变化。流动条件包括100至400 atm的压力范围和2.5至20 m / s的自由流速度。特别注意液滴相互作用对液滴动力学和汽化特性的影响。结果表明,两个相互作用的液滴的汽化行为与孤立的液滴的汽化行为不同。尾部液滴的存在对前部液滴的寿命和轨迹影响较小。相反,尾随的液滴的寿命被大大延长并且其运动轨迹被强烈地改变。在100个大气压的环境压力下,当两个液滴紧密放置时,观察到前导液滴的前袋型破裂,其H / R(初始液滴与液滴半径的距离)比小于4。在相同的运行条件下,尾随的液滴会向前移动。环境压力的增加会削弱液滴的相互作用。

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