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Curved fibre path optimisation for improved shape adaptive composite propeller blade design

机译:改进形状自适应复合螺旋桨叶片设计的弯曲光纤路径优化

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The propulsive efficiency of a shape adaptive composite propeller increases with passive pitch (twist) change under a hydrodynamic load. These adaptive marine propellers are usually designed using straight fibre tows to obtain optimised layup with such bend-twist character. This paper aims to present an alternative optimisation approach for such composite propellers using a curved fibre path method where tow paths are allowed to vary spatially within individual plies. In this work, three optimisation studies were performed to highlight that employing curved tows produce better results, including increased twist change for efficiency or, lowered deflection for structural improvements. Laminate plates were first optimised and manufactured using an automated fibre placement robot for experimental validation. Cantilevered loading test results show that optimised curved fibre plates generated 10% more twist compared to their straight fibre counterparts. In the following optimisation on a hydrofoil model, the curved fibre design produced the same tip angle change as the optimised straight fibre layup, yet it reduced the tip deflection by 15%. Finally, the optimisation was performed on a Wageningen B-series marine propeller, in which the optimised blade design with curved fibre layup achieved a 20% reduction in the Tsai-Hill failure index under the same pitch change.
机译:形状自适应复合螺旋桨的推进效率随着流体动力负载下的无源间距(扭曲)变化而增加。这些自适应船舶螺旋桨通常使用直纤维粉末设计,以获得具有这种弯曲扭曲性格的优化叠加。本文旨在使用弯曲光纤路径方法为这种复合螺旋桨提供替代优化方法,其中允许牵引路径在各个层内空间地变化。在这项工作中,进行了三项优化研究以强调采用弯曲拖带产生更好的结果,包括增加效率的扭曲变化,包括结构改进的偏转。首先使用用于实验验证的自动纤维放置机器人优化和制造层压板。悬臂式加载试验结果表明,与其直纤维对应物相比,优化的弯曲纤维板产生了> 10%的扭曲。在下面的水翼模型上的优化中,弯曲光纤设计产生了相同的尖端角度变化作为优化的直纤维上篮,但它将尖端偏转降低了15%。最后,在Wageningen B系列海上螺旋桨上进行了优化,其中具有曲线纤维覆盖的优化刀片设计在相同的间距变化下达到了Tsai-Hill失效指数的20%降低。

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