首页> 外文会议>ICONE18;International conference on nuclear engineering >SUBCOOLED WATER FLOW BOILING HEAT TRANSFER IN A SHORT SUS304- TUBE WITH TWISTED-TAPE INSERT
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SUBCOOLED WATER FLOW BOILING HEAT TRANSFER IN A SHORT SUS304- TUBE WITH TWISTED-TAPE INSERT

机译:带有扭曲胶带的短SUS304管内的过冷水流沸腾传热

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The subcooled boiling heat transfer (HT) and the steady-state critical heat fluxes (CHFs) in a short SUS304-tube with twisted-tape insert are systematically measured for mass velocities (G=4016 to 13850 kg/m~2s), inlet liquid temperatures (T_(in)=285.82 to 363.96 K), outlet pressures (P_(out),=764.76 to 889.02 kPa) and exponentially increasing heat input (Q=Q0 exp(t/τ), z=8.5 s) by the experimental water loop comprised of a multistage canned-type circulation pump controlled by an inverter. The SUS304 test tube of inner diameter (d=6 mm), heated length (1=59.5 mm), effective length (L_(eff)=49.l mm), Lid (=9.92), L_(eff)/d (=8.18) and wall thickness (δ=0.5 mm) with average surface roughness (Ra=3.18 μm) is used in this work. The SUS304 twisted tape with twist ratio, y [=H/d=(pitch of 180° rotation)/d], of 3.39 is used. The relation between inner surface temperature and heat flux for the SUS304-tube with the twisted-tape insert are clarified from non-boiling to CHF. The subcooled boiling heat transfer for SUS304-tube with the twisted-tape insert is compared with our empty SUS304-tube data and the values calculated by our and other workers' correlations for the subcooled boiling heat transfer. The influences of the twisted-tape insert and the swirl velocity on the subcooled boiling heat transfer and the CHFs are investigated into details and the widely and precisely predictable correlations of the subcooled boiling heat transfer and the CHFs for turbulent flow of water in the SUS304-tube with twisted-tape insert are given based on the experimental data. The correlations can describe the subcooled boiling heat transfer coefficients and the CHFs obtained in this work within -25 to+15% difference.
机译:系统地测量了带有扭曲胶带的短SUS304管中过冷沸腾换热(HT)和稳态临界热通量(CHFs)的质量速度(G = 4016至13850 kg / m〜2s),入口液体温度(T_(in)= 285.82至363.96 K),出口压力(P_(out),= 764.76至889.02 kPa)并成倍增加热量输入(Q = Q0 exp(t /τ),z = 8.5 s)实验水回路由一个由变频器控制的多级罐装式循环泵组成。 SUS304试管的内径(d = 6毫米),加热长度(1 = 59.5毫米),有效长度(L_(eff)= 49.l毫米),盖子(= 9.92),L_(eff)/ d( = 8.18),并使用具有平均表面粗糙度(Ra = 3.18μm)的壁厚(δ= 0.5 mm)。使用具有y [= H / d =(180度旋转的螺距)/ d]的扭曲比的SUS304扭曲带。澄清了带扭带插入件的SUS304管的内表面温度和热通量之间的关系,从无沸点到CHF。将带有扭曲带插入件的SUS304管的过冷沸腾换热与我们的空SUS304管数据以及由我们和其他工人的相关性为过冷沸腾换热计算的值进行比较。详细研究了扭带插入物和旋流速度对过冷沸腾换热和CHF的影响,并研究了SUS304-S中过冷沸腾换热和CHF对水湍流的广泛和精确的相关性。根据实验数据给出了带有扭曲胶带插入物的试管。相关性可以描述过冷沸腾传热系数和这项工作中获得的CHF在-25至+ 15%之间的差异。

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