首页> 外文会议>ASME/JSME Joint Fluids Engineering Conference >REWETTING VELOCITY OF HIGH-TEMPERATURE VERTICAL-NARROW-ANNULAR FLOW PASSAGES UNDER COUNTER-CURRENT FLOW CONDITION
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REWETTING VELOCITY OF HIGH-TEMPERATURE VERTICAL-NARROW-ANNULAR FLOW PASSAGES UNDER COUNTER-CURRENT FLOW CONDITION

机译:在逆流流动条件下重新擦拭高温垂直环状流动通道的速度

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Quenching of a thin gap annular flow passage by gravitational liquid penetration was examined experimentally by using R-113. The outer wall was made of copper. The inner wall was made of copper or glass. The inner diameter of the outer wall of the annular flow passages was 40 or 41 mm and the annular gap clearance 5 was 0.5, 1.0, 2.0 and 5.0 mm. The outer wall was heated initially up to 250 °C and also the inner wall was heated when the copper inner wall was used. The quenching was observed in δ≥ 1.0 mm. When δ = 0.5 mm, the wall was just gradually cooled down. The relation between the wall superheat and the heat flux during quenching process was similar to the boiling curve of pool boiling. However, the peak heat flux as well as the heat flux in the film and the transition boiling was lower than those'in the pool boiling. These heat fluxes became lower as the gap clearance became narrow. The rewetting velocity became slow as the gap clearance became narrow. The rewetting velocity seemed to have a unique relation for the Peclet number Pe = (ρ_SC_Sδ_SU/λ_S) and the Biot number Bi=(hδ_s/λ_s)~(1/2); Pe∝(Bi)~(1/2) which was the same as that of the Yamanouchi correlation. A decrease in the heat flux (the heat transfer coefficient) in the rewetting front region, which corresponds to the peak heat flux, results in a decrease in the rewetting velocity as the gap clearance becomes narrow.
机译:通过使用R-113实验检查通过重力液体渗透的薄隙环形流动通道的淬火。外壁由铜制成。内壁由铜或玻璃制成。环形流动通道的外壁的内径为40或41mm,环形间隙间隙5为0.5,1.0,2.0和5.0mm。外壁最初被加热至高达250℃,并且当使用铜内壁时,内壁也被加热。在δ≥1.0mm中观察到猝灭。当Δ= 0.5mm时,壁逐渐冷却。淬火过程中壁过热和热通量之间的关系类似于池中的沸腾曲线。然而,峰值热通量以及薄膜中的热通量和过渡沸腾的热量低于池中的过渡沸腾。随着间隙间隙变窄,这些热通量变低。随着差距间隙变窄,重回速度变慢。重复速度似乎具有对Peclet号PE =(ρ_SΔ_su/λ_s)的唯一关系和生物编号bi =(hΔ_s/λ_s)〜(1/2); PEα(BI)〜(1/2)与Yamanouchi相关性相同。随着间隙间隙变窄,重新润湿前部区域中的热通量(传热系数)减小,其对应于峰值热通量,导致重新擦除速度的减小。

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