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Heat transfer and bed dynamics study on a swirling fluidized bed under various inlet configurations

机译:各种入口配置下旋转流化床的传热和床动力学研究

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The present paper aims to study the heat transfer from the wall to the bed in a laboratory-scale swirling fluidized bed with a blade distributor. The experiments were carried out in a swirling fluidized bed reactor with an internal diameter of 10 cm and a total length of 50 cm connected with two different blade-distributors, one with seven blades and another with twelve blades. The heat transfer process represented by the heat transfer coefficient and bed flow dynamics represented by the bed and distributor pressure drops were investigated at different designs and operating conditions, mainly the number of blades, using gas plenum, and using gas plenum with different central bodies. Sand particles (Geldart type D) with a mean diameter of 1.5 mm was used as a bed material fluidized by air. The experiments were carried out at different fluidization number of 2.8, 3.3,4.2, and 4.5 at minimum fluidization velocity of 0.8 m/s. Increasing distributor blades from seven to twelve blades resulted in enhancing the operation of a fluidized bed reactor due to increasing the heat transfer coefficient and reducing the bed and distributor pressure drop. Using gas plenum resulted in decreasing the bed and distributor bed pressure drop and also resulted in decreasing the heat transfer coefficient. Two central bodies with conical and cylindrical shapes were installed in the plenum. The two central bodies had a negative effect on the operation of the fluidized bed that leads to increasing both distributor and bed pressure drops and to decreasing the heat transfer coefficient. For all the cases were studies, the heat transfer coefficient in the horizontal direction had the same behavior; it increased near the walls and it was almost constant at the center region of the reactor. Also, the heat transfer coefficient increased at the lower bed heights and vice versa.
机译:本文旨在研究与刀片分配器的实验室旋转流化床中的从墙壁到床的热量。该实验在旋转流化床反应器中进行,内径为10cm,总长度为50厘米,与两个不同的刀片分配器连接,一个具有七个叶片,另一个具有十二叶片。在不同的设计和操作条件下研究了由床和分配压力下降的传热系数和床流动动力学表示的传热过程,主要是使用气体增压器的叶片的数量,以及使用具有不同中心体的气体增压器。使用平均直径为1.5mm的砂颗粒(Geldart型D)作为空气流化的床材料。实验在不同的流化物量为2.8,3.3,4.2和4.5,最小流化速度为0.8m / s。增加了七到十二叶片的分配器叶片导致由于增加传热系数和减少床和分配压降,增强流化床反应堆的操作。使用气体增压仪导致床和分配器床压降降低,导致传热系数降低。在增压室中安装了具有圆锥形和圆柱形状的两个中心体。两个中心体对流化床的操作产生负面影响,导致分配器和床压下降并降低传热系数。对于所有病例进行研究,水平方向的传热系数具有相同的行为;它在墙壁附近增加,在反应器的中心区域几乎恒定。而且,传热系数在下床高度增加,反之亦然。

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