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离岸透空式结构波浪上托力计算方法的探讨 被引量:5
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作者 施斌 《水运工程》 北大核心 2005年第11期20-24,28,共6页
在分析前人试验研究成果的基础上,结合透空式码头结构型式,提出作用在透空式结构面板上的波浪上托力压强分布形式为:同一时刻既有冲击型上托力压强分布,又有均布型上托力压强分布,并给出上托力的计算宽度和总上托力的计算方法。
关键词 透空式结构 波浪上托力 冲击分布 均布型分布 计算方法
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Connection Between Liquid Distribution and Gas-Liquid Mass Transfer in Monolithic Bed 被引量:3
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作者 许闽 刘辉 +2 位作者 李成岳 周媛 季生福 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2011年第5期738-746,共9页
With a particular focus on the connection between liquid flow distribution and gas-liquid mass transfer in monolithic beds in the Taylor flow regime, hydrodynamic and gas-liquid mass transfer experiments were carriedo... With a particular focus on the connection between liquid flow distribution and gas-liquid mass transfer in monolithic beds in the Taylor flow regime, hydrodynamic and gas-liquid mass transfer experiments were carriedout in a column with a monolithic bed of cell density of 50 cpsi with trio different distributors (nozzle and packed bed distributors). Liquid saturation in individual channels was measured by using self-made micro-conductivity probes. A mal-distribution factor was used to evaluate uniform degree of phase distribution in monoliths. Overall bed pressure drop and mass transfer coefficients were measured. For liquid flow distribution and gas-liquid masstransfer, it is found that the superficial liquid velocity is a crucial factor and the packed bed distributor is better than the nozzle distributor. A semi-theoretical analysis using single channel models shows that the packed bed distributor always yields shorter and uniformly distributed liquid slugs compared to the nozzle distributor, which in turn ensures a better mass transfer performance. A bed scale mass transfer model is proposed by employing the single channel models in individual channels and incorporating effects of non-uniform liquid distribution along the bedcross-section. The model predicts the overall gas-liquid mass transfer coefficient wig a relative error within +30%. 展开更多
关键词 MONOLITHS flow distribution gas-liquid mass transfer Taylor flow SINGLE-CHANNEL
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