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A Shape Memory Alloy-Based Morphing Axial Fan Blade, Part Ⅰ: Blade Structure Design and Functional Characterization

机译:基于形状记忆合金的变形轴流式风扇刀片,第一部分:刀片结构设计和功能性格

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The possibility to realize adaptive structures is of great interest in turbomachinery design, owing to the benefits related to enhanced performance and efficiency. To accomplish this, a challenging approach is the employment of Shape Memory Alloys (SMAs), which can recover seemingly permanent strains by solid phase transformations whereby the so-called Shape Memory Effect (SME) takes place. This paper presents the development of a heavy-duty automotive cooling axial fan with morphing blades activated by SMA strips that works as actuator elements in the polymeric blade structure. Concerning the fan performance, this new concept differs from a conventional viscous fan clutch solution especially during the non-stationary operating condition. The blade design was performed in order to achieve the thermal activation of the strips by means of air stream flow. Two polymeric matrices were chosen to be tested in conjunction with a commercially available NiTi binary alloy, whose phase transformation temperatures were experimentally evaluated by imposing the actual operating thermal gradient. The SMA strips were then thermo-mechanically treated to memorize a bent shape and embedded in the polymeric blade. In a specifically designed wind tunnel, the different polymeric matrices equipped with the SMA strips were tested to assess the fluid temperature and surface pattern behavior of the blade. Upon heating they tend to recover the memorized shape and the blade is forced to bend, leading to a camber variation and a trailing edge displacement. The recovery behavior of each composite structure (polymeric matrix with SMA strips) was evaluated through digital image analysis techniques. The differences between the blade shape at the initial condition and at the maximum bending deformation were considered. According to these results, the best coupling of SMA strips and polymeric structure is assessed and its time-wise behavior is compared to the traditional time-wise behavior of a viscous fan clutch.
机译:由于与增强性能和效率相关的益处,实现自适应结构的可能性对涡轮机械设计具有很大的兴趣。为了实现这一点,具有挑战性的方法是使用形状记忆合金(SMA)的就业,其可以通过固相变换来恢复看似永久性菌株,由此发生所谓的形状记忆效应(SME)。本文介绍了由SMA条带激活的变形叶片的重型汽车冷却轴向风扇的开发,其用作聚合物叶片结构中的致动器元件。关于风扇性能,这种新概念与传统的粘性风扇离合器解决方案不同,特别是在非静止操作条件下。进行刀片设计以通过空气流流动实现条带的热激活。选择两种聚合物基质与市售的Niti二元合金结合测试,通过施加实际操作热梯度来实验评估其相变温度。然后将SMA条带热机械处理以记住弯曲的形状并嵌入聚合物叶片中。在专门设计的风洞中,测试配备有SMA条的不同聚合物基质以评估叶片的流体温度和表面图案行为。加热时,它们倾向于恢复记忆的形状,并且刀片被迫弯曲,导致弯曲变化和后缘位移。通过数字图像分析技术评估每种复合结构的恢复行为(具有SMA条带的聚合物基质)。考虑了初始条件和最大弯曲变形处的叶片形状与最大弯曲变形之间的差异。根据这些结果,评估SMA条带和聚合物结构的最佳耦合,并将其时间明智的行为与粘性风扇离合器的传统时间明智的行为进行比较。

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