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Effects of forced wall vibration on the onset of flow instability and critical heat flux in uniformly-heated microchannels.

机译:强制壁振动对均匀加热的微通道中流动不稳定性和临界热通量的影响。

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Numerous experimental and theoretical investigations on two-phase flow instability and burnout in heated microchannels have been reported in the literature. However none of these investigations deals with the possible effects of wall vibrations on such flow boiling processes within microchannels. Fluid-structure interaction in ultra high power density systems cooled by high velocity single phase forced convection in microchannels may result in vibration amplitudes that are a significant fraction of the diameter of the channel. Such vibrations may significantly impact vapor bubble dynamics at the wall and, hence, the limiting heat fluxes corresponding to the onset of flow instability and/or burnout.; The primary purpose of this research was to experimentally quantify the effect of forced wall vibration on the onset of flow instability (OFI) and the critical heat flux (CHF) in uniformly-heated annular microchannels. The secondary interest of this investigation was to compare the experimental data collected in the single-phase regime to commonly used single-phase forced convection correlations. Experimental data acquired in the flow boiling regime were to be utilized to confirm the validity of common flow boiling correlations for microchannel flow. The influence of forced wall vibration on subcooled single-phase forced convection and flow boiling was examined. The Georgia Tech Microchannel Test Facility (GTMTF) was modified to allow such experiments to be conducted at controlled values of transverse wall vibration amplitudes and accelerations for a range of frequencies. The channel demand curves were obtained for various inner and outer surface heat fluxes. Experiments were conducted for broad ranges of transverse wall vibration amplitudes over a range of frequencies.; The experiments conducted in this investigation provide designers of high power density systems cooled by forced convection in microchannels with the appropriate data and correlations to confidently design systems under realistic operational conditions, including the potentially significant effects of fluid-structure interactions. The data also provides the basis for development and validation of future models on the effect of wall vibrations on bubble dynamics in flow boiling systems. The observed enhancements in OFI and CHF resulting from wall vibration suggest that correlations for undisturbed channels can be conservatively used for system design calculations.
机译:文献中已经报道了有关加热的微通道中两相流动不稳定性和燃尽的大量实验和理论研究。但是,这些研究都没有涉及壁振动对微通道内此类沸腾过程的可能影响。在微通道中通过高速单相强制对流冷却的超高功率密度系统中的流体-结构相互作用可能会导致振动振幅,该振幅是通道直径的很大一部分。这种振动可能会显着影响壁上的蒸汽泡动力学,并因此影响与流动不稳定性和/或燃尽的开始相对应的有限热通量。这项研究的主要目的是通过实验量化强迫壁振动对均匀加热的环形微通道中流动不稳定性(OFI)和临界热通量(CHF)发作的影响。这项研究的次要目的是将在单相状态下收集的实验数据与常用的单相强制对流相关性进行比较。在流动沸腾状态下获得的实验数据将用于确认微通道流动的通用流动沸腾相关性的有效性。研究了强迫壁振动对过冷单相强迫对流和流动沸腾的影响。修改了佐治亚技术微通道测试设施(GTMTF),以允许在一定频率范围内以横向壁振动幅度和加速度的受控值进行此类实验。获得了各种内表面和外表面热通量的通道需求曲线。在一定频率范围内对宽范围的横向壁振动幅度进行了实验。在这项研究中进行的实验为通过微通道中的强制对流冷却的高功率密度系统的设计人员提供了适当的数据和相关性,以在实际操作条件下(包括流体-结构相互作用的潜在显着影响)自信地设计系统。该数据还为开发和验证未来模型提供了基础,该模型关于壁振动对流动沸腾系统中气泡动力学的影响。观察到的壁振动导致OFI和CHF的增强表明,可以将未受干扰通道的相关性保守地用于系统设计计算。

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