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旋转床填料内径向温度分布实验分析 被引量:6
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作者 徐春艳 刘承斌 +2 位作者 施力田 郑冲 郭锴 《北京化工大学学报(自然科学版)》 CAS CSCD 北大核心 2005年第3期23-26,共4页
为了精确描述旋转床填料内的温度分布关系,文中对旋转床的径向温度分布进行了实验测定,结果发现在实验范围内,旋转床填料内的径向温度分布与转子的转速有关,与液体流量有关,但气体流量的变化对温度分布的影响很小。文中推导出传热系数公... 为了精确描述旋转床填料内的温度分布关系,文中对旋转床的径向温度分布进行了实验测定,结果发现在实验范围内,旋转床填料内的径向温度分布与转子的转速有关,与液体流量有关,但气体流量的变化对温度分布的影响很小。文中推导出传热系数公式,并结合实验数据计算出传热系数,有力地证明了传热端效应的存在。 展开更多
关键词 旋转填充床 温度分布 径向传热系数 传热端效应
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Radial heat transport in packed beds-I: Experimental investigation of heat transfer coefficients of pellets and monolith catalysts at atmospheric and high pressures
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作者 Mohamed A. Al-Meshragi Hadi A. Elakrami Hesham G. Ibrahim 《Journal of Chemistry and Chemical Engineering》 2009年第6期1-14,共14页
The effect of operating pressure on the radial heat transfer coefficients, in a non-adiabatic fixed packed bed was studied at atmospheric and higher pressures, The study was concerned with investigating the effect of ... The effect of operating pressure on the radial heat transfer coefficients, in a non-adiabatic fixed packed bed was studied at atmospheric and higher pressures, The study was concerned with investigating the effect of the pressure on the radial thermal conductivity (K^r) and wall heat transfer coefficient (h~) for both pellets and monolith catalysts. The study included beds that were packed with pellets and monoliths, separately. The radial temperature distribution was measured at different beds heights and feed flow rates for both types of packing. Steady-state temperatures were measured using nine chromel-alumel thermocouples arranged on a stainless steel-cross. After temperatures were collected, the radial thermal conductivity and wall heat transfer coefficient were calculated using a two-dimensional pseudo-homogeneous model. The results showed that, the radial temperature profile at the entrance of the heating section was nearly even, and a constant temperature along the radius (0F/0r=0) taken as a boundary condition to solve the partial differential equation controlling the heat transfer. Temperature profiles obtained at elevated pressures were smoother at the center of the reactor and increased sharply near the wall, than profiles at atmospheric pressure. It could also be observed, that the radial temperature profiles in the center of the reactor using a monolith catalyst at elevated pressure were more even and smoother than those of pellets. Temperature profiles in fixed beds were found to be very sensitive to Ker and hw. In pressures between atmospheric and 10 bars, there was no change in the effective heat transport parameters (i.e. they are independent of pressure in this range). Both parameters were strongly affected by the pressure changes, above 10 bars. For the same Reynolds number (Ker) increased by 27% and 53% at 11 and 20 bars, respectively, in pellets catalyst. And they increased by factors of 2.3 and 4, when the pressure increased to the same pressures, in monolith catalyst. On the other hand, the effect of pressure on (hw) was completely the opposite, h,~ for pellets and monolith catalysts were found to be decreasing with increasing the pressure. Moreover, both coefficients increased with the Reynolds number at all applied pressures. This increase was higher for pellets than it for monoliths. 展开更多
关键词 heat transfer packed beds pseudo-homogeneous model pressure effect
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Experimental Study and Analysis on Heat Transfer Coefficient of Radial Heat Pipe 被引量:4
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作者 Chengming Shi Wang Yang Canjun Xu 《Journal of Thermal Science》 SCIE EI CAS CSCD 2010年第5期425-429,共5页
The experimental study was performed on five eccentric radial heat pipes with two outer-tube diameters.The test range can be given as follows,working fluid filling ratio Ω=44%~83%,heat flux q=10000W/m2~32000W/m2,an... The experimental study was performed on five eccentric radial heat pipes with two outer-tube diameters.The test range can be given as follows,working fluid filling ratio Ω=44%~83%,heat flux q=10000W/m2~32000W/m2,and working temperature tv=50 ℃~120 ℃.The correlations between radial heat pipe heat transfer performance and filling ratio,heat flux,working temperature were studied in the experiment.Based on linear regression of experimental data,the relationship between heat pipe equivalent heat resistance R and working temperature tv,heat flux q and filling ratio Ω was obtained. 展开更多
关键词 radial heat pipe boiling heat transfer coefficient filling ratio heat flux working temperature
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