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Computational fluid dynamics modelling for refining component design: AEM: Advanced equipment and material processes

机译:用于精炼组件设计的计算流体动力学建模:AEM:先进的设备和材料工艺

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The importance of Computational Fluid Dynamic (CFD) modelling will be demonstrated for refining component design. Improving the flow dynamics within components can reduce the pressure required to establish flow, eliminate eddy flows, eliminate zero flow locations and establish uniform laminar flow or turbulent flow. Reducing the system back pressure allows for smaller pumps and less energy to establish and maintain flow (GF). Eliminating eddy flows and zero flow locations will improve process control (APC), reduce particulates generation (CFM), reduce degradation of components (ER) and improve equipment reliability (ER). The elimination of eddy flows can reduce erosion of components such as 0-rings. The exclusion of zero flow locations within a chemical heater will eliminate overheating and reduce degradation of chemistry. Improving the thermodynamics within components can reduce degradation of chemistry (CFM) and improve the uniformity of thermal characteristic within a component (APC) resulting in decreased thermal variations of the chemistry (YE).
机译:将演示计算流体动力学(CFD)建模对改进零部件设计的重要性。改善组件内部的流动动力学可以降低建立流量,消除涡流,消除零流量位置以及建立均匀的层流或湍流所需的压力。降低系统背压允许使用较小的泵,并减少建立和维持流量(GF)的能量。消除涡流和零流位置将改善过程控制(APC),减少颗粒物产生(CFM),减少组件降解(ER)并提高设备可靠性(ER)。消除涡流可以减少零件(例如0形圈)的腐蚀。排除化学加热器内零流量位置将消除过热并减少化学物质的降解。改善组件内的热力学可以减少化学物质的降解(CFM),并提高组件内热特性的均匀性(APC),从而减少化学物质(YE)的热变化。

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