首页> 外文会议>International Pump Users Symposium >INCREASE COOLING WATER SYSTEM CAPACITY WITHOUT INTRODUCING PROBLEMS AND MAINTENANCE: A CASE STUDY - PROBLEM IDENTIFICATION, SOLUTION SELECTION, AND MODELING
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INCREASE COOLING WATER SYSTEM CAPACITY WITHOUT INTRODUCING PROBLEMS AND MAINTENANCE: A CASE STUDY - PROBLEM IDENTIFICATION, SOLUTION SELECTION, AND MODELING

机译:在不引入问题和维护的情况下提高冷却水系统容量:案例研究 - 问题识别,解决方案选择和建模

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Increasing the capacity of a cooling water system requires more than just upgrading the cooling water pumps. The intake system needs to be evaluated as well to ensure it is capable of handling the upgraded pumps without introducing problems such as increased vortex activities. Even slight increase in pump capacity can create or increase vortex activity. Free surface and subsurface vortices can be extremely damaging to a pump and can cause major problems such as cavitation to the pump's impeller and casing, vibration, and decreased performance. The challenge here is to modify the existing cooling water intake system without major reconstruction that would be both costly and schedule intense. This paper presents a case study of an existing South Texas petrochemical plant where a turnaround upgrade required an increase in cooling water flow through the existing sump basin and the associated engineering work for a physical hydraulic model study. The main purpose of the physical hydraulic model study was to ascertain simple and low cost modifications to the pump intake bays that allow the required flow increase through the existing pump intake system without flow disruptions from the higher flow volume. The hydraulic model replicated the fundamental flow parameters in the sump's pump intake bays and led to an inexpensive, timely, and easy to implement solution that did not require major construction changes to the intake system. With physical modeling, the intricate interaction between cooling water and air can be analyzed and tested, a task that computational fluid dynamics cannot achieve to the required degree of precision. The physical model identified increased air entraining vortex activity and was used to develop remedial vortex suppression pipe modules that are in the process of being designed, constructed, and mounted on each pump intake bay. A follow up paper will cover the modification, implementation, and commissioning as a continuation of this paper.
机译:提高冷却水系统的容量需要的不仅仅是升级冷却水泵。还需要评估进气系统,以确保它能够在不引入增加的涡流活动等问题的情况下处理升级的泵。泵容量略微增加甚至可以创造或增加涡旋活动。自由表面和地下涡流对于泵可能极大地损害,并且可能导致泵的叶轮和套管,振动等空化等重大问题。这里的挑战是修改现有的冷却水进口系统,没有重大重建,既昂贵和涨幅。本文介绍了一个现有南德克萨斯石化厂的案例研究,其中周转升级需要通过现有的贮藏盆地和物理液压模型研究的相关工程工作增加冷却水流。物理液压模型研究的主要目的是对泵进气舱来确定简单,低成本的修改,允许通过现有的泵进气系统增加所需的流量,而不会从较高的流量中发生流动中断。液压模型在Sump的泵摄入托架中复制了基本流量参数,并导致了廉价,及时,易于实施的解决方案,这些解决方案不需要对进气系统进行重大施工变化。通过物理建模,可以分析和测试冷却水和空气之间的复杂相互作用,计算流体动力学不能达到所需精度的任务。物理模型确定了增加的空气夹带涡旋活动,并用于开发在进行设计,构造的过程中的补救涡抑制管模块,并安装在每个泵进气舱上。随访纸将涵盖修改,实施和调试作为本文的延续。

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