首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems >SIMULTANEOUS ENERGY HARVESTING AND GUST ALLEVIATION FOR A MULTIFUNCTIONAL WING SPAR USING REDUCED ENERGY CONTROL LAWS VIA PIEZOCERAMICS
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SIMULTANEOUS ENERGY HARVESTING AND GUST ALLEVIATION FOR A MULTIFUNCTIONAL WING SPAR USING REDUCED ENERGY CONTROL LAWS VIA PIEZOCERAMICS

机译:使用减少的能量控制法通过压电陶瓷进行多功能翼静脉的同时能量收集和阵风

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The increasing need for lightweight structures in Unmanned Aerial Vehicle (UAV) applications raise issues involving gust alleviation. Here we examine the gust alleviation problem using a self-sensing, self-charging, and self-actuating structure. The basic idea is that the wing itself is able to harvest and store energy from the normal vibrations during flight along with any available sunlight. If the wing experiences any strong, unexpected wind gust, it will sense the increased vibration levels and provide vibration control to maintain its stability. In this paper, a multifunctional wing spar is designed, which integrates a flexible solar cell array, piezoceramic wafers, a thin film battery and an electronics module into a composite structure. This multifunctional wing spar therefore carries on the functions of energy harvesting and storage, as well as the functions of gust alleviation via piezoelectric materials. The piezoceramic wafers act as sensors, actuators, and harvesters. The global modulus and stiffness of this multifunctional wing spar are estimated using both the rule of mixtures and the cross section transformation method. These values are then used in an Euler-Bernoulli cantilever beam model of the multifunctional spar. The first two dominant modes are predicted analytically for the distributed parameter model. The finite element method is employed to confirm the analytical eigenvalues estimation. Special attention is given to the self-contained gust alleviation with the goal of using harvested energy. The gust signals are generated using a Gaussian white noise source n (t) ~ N (0,1) fed into a linear filter, with the required intensity, scale lengths, and power spectral density (PSD) function for the given flight velocity and height. The Dryden PSD function is implemented for atmospheric turbulence modeling. The recently developed reduced energy control law is combined with a positive strain feedback controller to minimize the actuation energy and the dissipated heat energy. Positive feedback operation amplifiers (op-amps) and voltage buffer op-amps are implemented for two dominant mode gust disturbance controls. This work builds off of our previous research in self-charging structures and holds promise for improving UAV performance in wind gust alleviation.
机译:无人驾驶飞行器(UAV)应用中的轻质结构的需求越来越需要提出涉及阵风缓解的问题。在这里,我们使用自我传感,自我充电和自动结构来检查阵风缓解问题。基本思想是,机翼本身能够在飞行期间与任何可用的阳光一起收获和储存能量。如果机翼经历任何强大,意外的风阵风,它将感测增加的振动水平并提供振动控制以保持其稳定性。在本文中,设计了一种多功能翼翼,它将柔性太阳能电池阵列,压电陶瓷晶片,薄膜电池和电子模块集成为复合结构。因此,这种多功能翼翼略管携带能量收集和储存的功能,以及通过压电材料的阵风缓解的功能。压电陶瓷晶片充当传感器,执行器和收割机。使用混合物规则和横截面变换方法估计该多功能翼翼氏族的全局模量和刚度。然后将这些值用于多功能翼梁的Euler-Bernoulli悬臂模型。对于分布式参数模型,分析了前两个主导模式。有限元方法用于确认分析特征值估计。特别注意自给式阵风缓解,目的是使用收获的能量。使用馈入线性滤波器的高斯白噪声源N(T)〜N(0,1)产生阵列信号,具有所需的强度,刻度长度和给定飞行速度的功率谱密度(PSD)功能高度。 Dryden PSD功能用于大气湍流建模。最近显影的能量控制定律与正应变反馈控制器相结合,以最大限度地减少致动能和消散的热能。正反馈操作放大器(OP-AMPS)和电压缓冲器OP-AMPS用于两个主导模式阵风干扰控制。这项工作从我们以前的自充电结构进行了研究,并拥有了提高风力阵风缓解的无人机性能的承担。

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