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Modeling of Two-Phase Flow and Heat Transfer in Low-Temperature Oxygen-Fuel Spray Process

机译:低温氧气-燃料喷雾过程中的两相流动和传热建模

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摘要

The low-temperature oxygen-fuel (LTOF) spray is a modification of high velocity oxygen fuel spray. In this process, the high-temperature gas is accelerated to supersonic speed through a Laval nozzle followed by a straight barrel. By injecting room temperature gas into the mixing chamber, the temperature of the gas can be controlled in a range of about 1000-2500 K, so that some oxygen and temperature-sensitive materials, such as titanium and copper, can avoid oxidation or decomposition during the spraying process. The purpose of this paper is to establish a 2-D mathematical model to simulate the supersonic gas dynamics and particles behavior in LTOF process. The temperature and velocity of the flow fields, and the trajectory and heating of in-flight particles are predicted for different operating parameters. The model is validated by experimental data in the literature. Effects of the mixing gas flow rates, particle sizes, and injection conditions on this process were investigated as well.
机译:低温氧气燃料(LTOF)喷雾是高速氧气燃料喷雾的改进。在此过程中,高温气体通过拉伐尔喷嘴和直筒被加速至超音速。通过将室温气体注入混合室,可以将气体的温度控制在约1000-2500 K的范围内,这样一些氧气和温度敏感材料(例如钛和铜)可以避免氧化或分解。喷涂过程。本文的目的是建立一个二维数学模型来模拟LTOF过程中的超音速气体动力学和粒子行为。对于不同的操作参数,可以预测流场的温度和速度,以及飞行中粒子的轨迹和加热。该模型已通过文献中的实验数据验证。还研究了混合气体流速,颗粒大小和注入条件对该过程的影响。

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