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首页> 外文期刊>Engineering analysis with boundary elements >Geometric details and modeling accuracy requirements for shipboard impressed current cathodic protection system modeling
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Geometric details and modeling accuracy requirements for shipboard impressed current cathodic protection system modeling

机译:当前舰载阴极保护系统建模的几何细节和建模精度要求

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In any computational approach it is necessary to idealize the structure modeled to some extent. In much of the work completed to date using boundary element methods to model shipboard impressed current cathodic protection systems (ICCP) propellers have been idealized as solid disks. While this simplified geometry may capture the shadowing nature of the component it may not capture essential features of the near hull potential field in the vicinity of the propeller. Earlier work utilized the disk representation of propellers as a required compromise between modeling and problem size limitations. Advances in computing power coupled with advances in model generation programs have resulted in the ability to readily create complex geometries without significant concerns related to mesh size. In this work three different representations of propellers are evaluated. The first method for modeling the propellers is the disk model used in past analyses. In the second case, the propeller is modeled in detail including individual blades. In the third detailed approach, a propeller is modeled as a solid that is shaped to simulate the complex geometry of a rotating assembly. Calculated potential fields for these two advanced geometric representations are compared with results based on the solid disk representation. The hull geometry used in all cases is that of the US Navy CVN aircraft carrier class. (c) 2004 Elsevier Ltd. All rights reserved.
机译:在任何计算方法中,都必须在某种程度上理想化建模的结构。迄今为止,在使用边界元方法对舰船施加压力的当前阴极保护系统(ICCP)螺旋桨进行建模的大部分工作中,均已将其理想化为实心圆盘。尽管这种简化的几何形状可以捕获部件的阴影性质,但可能无法捕获螺旋桨附近的近船体势场的基本特征。早期的工作将螺旋桨的磁盘表示形式用作建模和问题大小限制之间的必要折中方案。计算能力的提高与模型生成程序的提高相结合,使得人们能够轻松创建复杂的几何图形,而无需担心网格大小。在这项工作中,对螺旋桨的三种不同表示形式进行了评估。对螺旋桨建模的第一种方法是过去分析中使用的磁盘模型。在第二种情况下,对螺旋桨进行了详细建模,包括各个叶片。在第三种详细方法中,将螺旋桨建模为实体,该实体的形状可模拟旋转组件的复杂几何形状。将这两种高级几何表示形式的计算势场与基于固态磁盘表示形式的结果进行比较。在所有情况下使用的船体几何形状都是美国海军CVN航母级的几何形状。 (c)2004 Elsevier Ltd.保留所有权利。

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