人工外部调制能增强预膜浆的自然脉动雾化吗?

W. Strasser
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摘要

在一定条件下,在优选的三流几何形状中,非牛顿气流雾化流场通过自生和自维持的界面不稳定机制产生强烈的(轴向和径向)脉冲。脉冲的强度足以在整个给水管网中发送声波。最近对该系统的研究表明,放热化学反应增强了这种中等马赫数雾化。本文探讨了通过独立叠加正弦波和随机质量流波动(平均值的+/ - 50%)到其他恒定的气体供给流上,进一步增强反应辅助分解的潜力。对于每种气流,考虑了两种喷嘴几何形状(低预膜距离和高预膜距离)和多个叠加进气频率(从低到高的自然主音范围),总共建立了21个长期运行的非定常PLIC-VOF CFD模型。在我们的能源生产过程中,考虑了液滴大小加上其他九个时间测量来评估雾化器的性能。结果表明,叠加频率有可能以统计显著的方式增强混沌原子化。根据不同的几何形状,最大的影响是液滴尺寸减小了约10%;然而,一些组合经历了液滴尺寸的增加。在其他九项测量中,例如注入器表面的热暴露,只有微小的差异。除了调制的直接工业效益外,在低于自然音调的频率上施加馈电扰动会产生戏剧性的声学变化。对启动流程的详细研究揭示了解释性能差异的新机制。
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Can Naturally Pulsating Prefilming Slurry Atomization Be Enhanced by Artificial External Modulation?
Under certain conditions in preferred three-stream geometries, a non-Newtonian airblast atomization flowfield violently pulses (axially and radially) by self-generating and self-sustaining interfacial instability mechanisms. The pulsing is severe enough to send acoustic waves throughout feed piping networks. The most recent work on this system instructed that exothermic chemical reactions enhance this moderate Mach number atomization. Explored herein is the potential to further enhance reaction-assisted disintegration by independently superimposing both sinusoidal and randomized mass flow fluctuations of +/− 50% of the mean onto otherwise constant gas feed streams. Two nozzle geometries (low versus high prefilming distance) and multiple superimposed feed frequencies (ranging from below to above the naturally dominant tone) are considered for each gas stream, making twenty-one total long-running unsteady PLIC-VOF CFD models. Droplet size, plus nine other temporal measures, were considered for assessing atomizer performance in our energy production process. Results indicate that superimposed frequencies have potential to enhance chaotic atomization in a statistically significant manner. Depending on the geometry, the largest effect was about a 10% reduction in droplet size; however, some combinations experienced a droplet size increase. Only marginal differences were seen in the nine other measures, such as injector face heat exposure. In addition to the immediate industrial benefit from modulation, dramatic changes in acoustics were produced by imposed feed perturbations at frequencies lower than the natural tone. A detailed study of start-up flow reveals new mechanisms which explain performance differences.
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