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Thermal Design and Numerical Analysis of Transportable Bitumen Storage Tank for Improved Liquefied Bitumen Supply

机译:改进液化沥青供应的可运输沥青储罐的热设计与数值分析

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Asphalt plant manufactures the hot black mix required for road construction. Bitumen is used as a binding agent that binds the aggregates (stones) together. Liquid bitumen ranging between 150 to 160 °C is sprayed on aggregates in a twin shaft mixer having mixer pads mounted on both shafts rotating in opposite direction with respect to each other (inward direction). Hence, asphalt plant needs the supply of hot and liquid bitumen, which is stored in storage tanks and is used as and when required. In this paper, the thermal design and simulation-based numerical analysis of 42,000 and 50,000 L capacity of transportable bitumen storage tank are presented. Usually, bitumen in the storage tank is heated by a thermal fluid called Therminol, having an inlet temperature of 180 °C, flows through tube bank present inside the storage tank. Therminol is heated by the fire-tube boiler. Thus, an effective heat exchanging system in the bitumen storage tank is crucial. In the existing storage tank, the solid bitumen rocks need 12 h of heating to obtain liquid bitumen ranging between 150 to 160 °C. Here, computational fluid dynamics (CFD)-based simulations are carried out to design the effective heat transferring system. Various flow conditions of Therminol, as well as different tube bank configuration, are been simulated and presented. The CFD analysis shows that with proper and modified distribution of tube bank inside the storage vessel helps to improve the heat transfer by a factor 2-3 and hence is capable to liquefy bitumen within 6 h.
机译:沥青厂生产道路建设所需的热黑色混合。沥青用作结合剂,该粘合剂将聚集体(石头)结合在一起。在双轴混合器中喷射150至160°C之间的液体沥青在双轴混合器中喷射在两个轴上彼此相对旋转(向内方向)的两个轴上旋转。因此,沥青植物需要供应热量和液体沥青,其储存在储罐中,并且在需要时使用。本文提出了42,000和50,000升可运输沥青储罐的热设计和基于仿真的数值分析。通常,储罐中的沥青由称为热醇的热流体加热,其入口温度为180℃,流过储罐内部的管芯。热管锅炉加热。因此,沥青储罐中的有效热交换系统至关重要。在现有的储罐中,固体沥青岩石需要12小时加热,得到150至160℃之间的液体沥青。这里,进行计算流体动力学(CFD)基于基于仿真以设计有效的传热系统。模拟并呈现了热门的各种流动条件,以及不同的管堤配置。 CFD分析表明,在储存容器内部的管芯的适当和改进的分布有助于提高因子2-3的热传递,因此能够在6小时内液化沥青。

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