首页> 外文会议>AHS International Annual Forum vol.1; 20070501-03; Virginia Beach,VA(US) >Cross-sectional Design of Composite Rotor Blades Considering Manufacturing Constraints
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Cross-sectional Design of Composite Rotor Blades Considering Manufacturing Constraints

机译:考虑制造约束的复合材料转子叶片的截面设计

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In the design process, a cross-section of a composite rotor blade is required to possess some specified properties dictated by several often conflicting objectives that include performance, safety, and maintenance. These top-level objectives can be translated into specific requirements for sectional stiffnesses and moments of inertia, stress levels, and locations of shear and/or mass center, etc. Due to the complexity and limitations of computing capability, the designs are usually modeled as continuous-variable optimization problems without consideration of manufacturing constraints, such as values of discrete ply angles. As a result, the optimal designs obtained by an optimization approach often cannot be implemented in reality. In order to manufacture it, designers will naturally round the optimal solution to the closest one that satisfies the manufacturing constraints. However, this will risk violating the structural requirements. In this paper, manufacturing constraints are included in the optimization model. A two-phase method is developed to deal with this mixed continuous and discrete variable optimization problem. An efficient algorithm, sequential quadratic programming (SQP), is used to seek the optimal continuous solution from the relative large design space in the first stage. Manufacturing constraints are added in the second phase. The Genetic Algorithm (GA) is applied to search around the obtained optimal continuous solution for the optimal discrete solution. This two-step method is believed to be beneficial for designers, helping them to find an accepted cross-section layout faster than a one-step application of the GA. In addition to manufacturing constraints that can be explicitly specified, another important manufacturing consideration is related to the uncertainties associated with the manufacturing processes. To this end, the paper will present preliminary results regarding the effects of geometric imperfections on cross-sectional properties.
机译:在设计过程中,要求复合材料转子叶片的横截面具有一些特定的特性,这些特性是由几个经常相互冲突的目标所决定的,这些目标包括性能,安全性和维护。这些顶级目标可以转化为对截面刚度和惯性矩,应力水平以及剪切和/或质心位置等的特定要求。由于计算能力的复杂性和局限性,通常将设计建模为连续变量优化问题,而无需考虑制造约束,例如离散的层板角度值。结果,通过优化方法获得的最优设计通常不能在现实中实现。为了制造它,设计人员自然会将最佳解决方案四舍五入到满足制造限制的最接近解决方案。但是,这可能会违反结构要求。在本文中,制造约束包括在优化模型中。开发了一种两阶段方法来处理这种混合的连续和离散变量优化问题。一种有效的算法,顺序二次规划(SQP),用于在第一阶段从相对较大的设计空间中寻求最佳的连续解决方案。在第二阶段中添加了制造约束。遗传算法(GA)用于围绕获得的最优连续解搜索最优离散解。人们认为,这种分两步走的方法对设计人员是有好处的,它可以比GA的一步操作来帮助他们更快地找到可接受的横截面布局。除了可以明确指定的制造限制外,另一个重要的制造考虑因素还涉及与制造过程相关的不确定性。为此,本文将介绍有关几何缺陷对横截面特性的影响的初步结果。

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