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Modal Synthesis of Flexible Mechanisms for Airfoil Shape Control

机译:机翼形状控制柔性机构的模态综合

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The use of 'compliant' or flexible mechanisms constitutes a very promising option for the successful realization of shape-adaptable airfoil structures. Achieving large deformations by exploiting structural flexibility instead of employing conventional mechanisms with moveable parts offers several advantages: absence of backlash and wear, no need for lubrication, reduced noise, smooth geometry changes, a lighter design, and reduced manufacturing costs. As a counterpart, compliant systems are more complex to analyze and design due to their inherent coupled behavior. Established design procedures, developed in the framework of kinematics design, are of limited use for application to shape-adaptable structures due to differences in requirement priorities. This study presents a novel synthesis procedure for compliant shape-adaptable airfoils. Initially devised for the so-called belt-rib airfoils, the procedure can be extended to the general case of compliant airfoils with an external flexible skin (optionally reinforced by frames) and a system of internal stiffeners. After the description of the core synthesis algorithm, which is based on a modal approach, its integration in a global design procedure is discussed. Application to the case of a belt-rib airfoil is then considered. The compliant structure resulting from the procedure combines the characteristic qualities of a compliant system (smooth deformation pattern, absence of moveable parts, low weight) with the low load-dependence of kinematics which is typical of conventional mechanisms.
机译:使用“顺应性”或柔性机构构成了成功实现形状适应性机翼结构的非常有前途的选择。通过利用结构灵活性而不是采用带有活动部件的常规机构来实现较大的变形,它具有以下优点:无间隙和磨损,无需润滑,减少噪音,平滑的几何形状变化,更轻的设计并降低了制造成本。作为对等物,合规系统由于其固有的耦合行为而使其分析和设计更加复杂。在运动学设计框架内开发的既定设计程序,由于需求优先级的差异,在应用于形状适应性结构方面用途有限。这项研究提出了一种新的合成方法,以适应形状适应性的机翼。最初是为所谓的带肋式机翼设计的,该程序可以扩展到具有外部柔性蒙皮(可选地由框架加固)和内部加强筋系统的顺应性机翼的一般情况。在描述了基于模态方法的核心综合算法之后,讨论了其在全局设计过程中的集成。然后考虑应用于带肋式机翼的情况。该程序产生的柔顺结构将柔顺系统的特性(平滑的变形模式,缺少可移动部件,重量轻)与传统机构常见的低运动学负载相结合。

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