评价脉冲射流混合容器中浆料的传递和泵送

C. Enderlin, J. Bamberger, M. Minette
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引用次数: 0

摘要

由于重力作用,如果固体和液体之间的密度差为正(即颗粒具有负浮力),除非流变特性和流动条件足以克服重力效应,否则浆料中的固体会沉降。沉降速率取决于颗粒的力平衡,其中包括与流体流变相关的表面力。在流体和固体性质相同的情况下,更大、密度更大的颗粒往往沉降得更快。当将泥浆泵入容器时,其浓度可以防止因混合不足而阻碍沉降,颗粒和密度分布会导致优先沉降,从而在容器内的固体浓度中产生分层。对于输送管线入口位于罐体下部的容器,分层固体浓度可能对输送系统的性能有害。输送管道入口处输送的浆液中固体浓度升高会导致浆液的有效粘度或体积密度超过泵的设计极限。这些情况可能会导致输油管堵塞或由于压降过大而引起泵的空化。这些条件可以加剧周期性进口条件存在于输油管进口。当容器混合是间歇性的,如脉冲射流混合器(PJM)时,会产生周期性条件。输油管进口条件受到PJM操作的周期性影响,涉及固体悬浮物及其向输油管进口的输送。提出了一种衡量方法,并制定了相应的测试要求,以评估管道堵塞的预防效果。管道堵塞机制解决了由于稳态高密度泥浆进入输送管线而导致的堵塞问题,并将泵入口的净正吸头(NPSHA)降低到泵运行所需的水平以下。考虑的项目包括过渡到降低的相对流速,这样就不能保持固体沉积的临界管道速度,Ucd,以及在运输过程中重固体的分离。防止堵塞的建议要求包括:•夹带泥浆的粘度和密度限制,以防止管道中的压降超过泵的容量。•对夹带泥浆的粘度和密度进行限制,以防止可用的净正吸头(NPSHA)低于运行泵所需的净正吸头(NPSHR)。•输送管线的速度和流速要求,以保持悬浮固体,同时避免由于输送管线内固体沉积而导致的管线堵塞。本文描述了规模和测试要求的发展,以验证拟议的转移和泵出方法是否适合在工厂操作窗口内成功运行。
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Evaluating Transfer and Pumping of Slurries From Pulsed Jet Mixed Vessels
Due to gravity, solids in slurries will settle if density differences between the solids and liquid are positive (i.e., particle has a negative buoyant force) unless rheological properties and flow conditions are adequate to overcome the gravitational effects. The rate of settling depends on the force balance of the particle, which includes the surface forces associated with fluid rheology. Given the same fluid and solid properties, the larger and more dense particles tend to settle faster. When pumping slurry into a vessel at concentrations precluding hindered settling with insufficient mixing, particle and density distributions can result in preferential settling, creating stratification in the solids concentration within the vessel. For vessels with transfer line inlets located in the lower portion of the tank, the stratified solids concentration may be detrimental to the transfer system performance. Elevated concentrations of solids in the slurry entrained at the inlet to the transfer line can result in the effective viscosity or slurry bulk density exceeding the design limits of the pump. These conditions could result in plugging of the transfer line or onset of cavitation of the pumps because of excessive pressure drop. These conditions can be exacerbated with periodic inlet conditions existing at the transfer line inlet. Periodic conditions can result when vessel mixing is intermittent such as with pulsed jet mixers (PJM). The transfer line inlet conditions are impacted by the periodic nature of the PJM operations with respect to suspension of solids and their transport to the inlet of the transfer line. A scaling approach is presented, and corresponding test requirements are developed for assessing the prevention of plugging the pipeline. Line plugging mechanisms are addressed that exclude plugging due to steady-state high-density slurry entering the transfer line and reducing the net positive suction head available (NPSHA) at the pump inlet to below that required for pump operation. Items considered include the transition to reduced relative flow velocities, such that the critical pipe velocity for solids deposition, Ucd, is not maintained, and segregation of heavy solids during the transport. The recommended requirements to prevent plugging include: • Limits for viscosity and density for entrained slurry to prevent the pressure drop in the pipeline from exceeding pump capacity. • Limits for viscosity and density for entrained slurry to prevent the net positive suction head available (NPSHA) from falling below the net positive suction head required (NPSHR) for operating the pump. • Transfer line velocity and flow rate requirements to maintain solids in suspension, while avoiding line plugging that results from deposition of solids within the transfer line. This paper describes the development of the scaling and testing requirements to verify that proposed approaches for transfer and pump out are appropriately developed for operational success within the plant operating windows.
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