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Construction methodology for lip surface of a submerged inlet

机译:水下进水口唇面的施工方法

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The design of submerged inlet remains a challenge as the design involves both the fuselage and the inlet internal duct. The inlet lip surface blending needs to meet stringent conditions, which vary considerably from fore lip to aft lip. The need for high aerodynamics performance also adds to the difficulty of the design process. In this paper a methodology is presented by which the inlet lip surface is mapped to a rectangular grid system which is topologically similar to the surface to be blended. A number of key grid lines can be identified, through the construction of the key curves, which are outer profile curve, inner profile curve, ridge curve and multiple blending curves. Furthermore, lip surface can be blended through the application of sweeping algorithm. A detailed example as presented in this paper illustrates the whole design procedure and technique to transform the design of a spatial curve into that of two planar curves on two developable surfaces. The above method facilitates the design of spatial curves for outer profile curve and ridge curve. The lip surface blending leaves a number of design parameters which can be manipulated to offer the scope of optimization of the aerodynamic performance in the subsequent CFD phase of the development. The numerical simulation conducted indicates that actual performances meet the design objectives well, which demonstrates the effectiveness of this design methodology. (C) 2016 Elsevier Masson SAS. All rights reserved.
机译:浸入式进气口的设计仍然是一个挑战,因为设计涉及机身和进气口内部导管。入口唇的表面融合需要满足严格的条件,从前唇到后唇的变化很大。对高空气动力学性能的需求也增加了设计过程的难度。在本文中,提出了一种方法,通过该方法可以将入口唇表面映射到矩形网格系统,该系统在拓扑上类似于要混合的表面。通过关键曲线的构造,可以识别出许多关键网格线,这些曲线是外部轮廓曲线,内部轮廓曲线,山脊曲线和多个混合曲线。此外,可以通过应用扫掠算法来融合嘴唇表面。本文提供的一个详细示例说明了将空间曲线的设计转换为两个可展开表面上的两个平面曲线的设计的整个设计过程和技术。上述方法有助于设计外部轮廓曲线和脊曲线的空间曲线。唇部表面融合留下了许多设计参数,可以对其进行控制,以在后续的开发CFD阶段提供优化空气动力学性能的范围。进行的数值模拟表明,实际性能可以很好地满足设计目标,从而证明了这种设计方法的有效性。 (C)2016 Elsevier Masson SAS。版权所有。

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