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Critical heat flux experiments in a heated rod bundle with upward crossflow of frenon 114

机译:加热棒束中的临界热通量实验,并带有氟利昂114的向上错流

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Critical heat flux (CHF) data were obtained for upward crossflow of R-114 in a heated staggered rod bundle. Data were obtained over a broad range of mass fluxes (135 to 1,221 kg/m~2 sec), inlet subcooling (0 to 55 deg C), and qualities (-0.42 to 0.92). The present work extends the available database to higher quality, inlet subcooling, and mass flux. The test section is 3.43 cm x 15.24 cm (1.35in. x 6in.) in cross section with a total length of 55.88 cm (22") from the top of the inlet flow straightener to the perforated plate at the test section exit. The rod bundle has a triangular pitch with a diameter (D) of 0.635 cm (0.25 in), and a pitch to diameter (P/D) ratio of 1.5. The rod bundle has 165 rods with a 15.24 cm (6 in.) heated length arranged in 55 rows of three rods each. Unheated half rods were positioned on the walls of the test section to maintain the regular rod arrangement and prevent flow bypass along the gaps between the window and the first column of heated rods. A single instrumented heater was positioned five rows upstream from the boundle exit to determine CHF. The last three rows of rods in the bundle were unpeated to prevent undetected dryout downstream of the CHF position. Temperature excursions due to CHF were sensed using four imbedded thermocouples (TC) in the heater rod. The four TC temperatures were continuously monitored on a strip chart recorder. The rod heat was gradually increased until CHF was detected. Overall, the data are in good agreement with the Jensen and Tang correlation in the range of application of this correlation. The local minima in CHF which occurs near zero quality is slightly lower in the present experiment than for the Jensen and Tang correlation. At high quality, CHF drops off more rapidly than the Jensen-Tang prediction. Data are now available to extend the existing correlations to higher quality, and higher inlet subcooling.
机译:在加热的交错棒束中,R-114的向上横流获得了临界热通量(CHF)数据。在宽范围的质量通量(135至1,221 kg / m〜2 sec),入口过冷(0至55摄氏度)和质量(-0.42至0.92)范围内获得数据。本工作将可用的数据库扩展到更高的质量,入口过冷度和质量通量。测试部分的横截面为3.43厘米x 15.24厘米(1.35英寸x 6英寸),从入口整流器顶部到测试部分出口处的多孔板的总长度为55.88厘米(22英寸)。棒束的直径(D)为0.635厘米(0.25英寸)的三角形节距,节距与直径(P / D)之比为1.5;棒束具有165根棒,加热15.24厘米(6英寸)。长度排列成55行,每行三根棒;未加热的半根棒放置在测试部分的壁上,以保持规则的棒排列,并防止沿着窗口和第一根被加热的棒之间的缝隙旁流。将其定位在边界出口的上游五排以确定CHF。束中的最后三排棒未pe紧以防止CHF位置下游出现未检测到的变干。在CHF中使用四个嵌入式热电偶(TC)感测到由于CHF引起的温度偏移。加热棒四个TC温度是连续的在带状图记录仪上进行了监控。逐渐增加棒的热量,直到检测到CHF。总体而言,在该相关性的应用范围内,数据与Jensen和Tang相关性很好。与Jensen和Tang相关性相比,在本实验中,CHF中接近零质量的局部最小值略低。在高质量下,CHF的下降速度比Jensen-Tang预测的下降速度更快。现在可以利用数据将现有的相关性扩展到更高的质量和更高的进口过冷度。

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