可自动调形的缩小版汽车原型,实测降阻8.5%。
A reduced-scale autonomous morphing vehicle prototype with enhanced aerodynamic efficiency
- 用内置电机驱动可变形结构,实现车身实时调形。
- 自动优化算法找到最优形态,平均阻力降低8.5%。
- 为全尺寸可变型汽车设计提供实验依据,适合关注节能减碳者。
道路车辆造成大量温室气体排放。通过主动调整车身外形以适应气动环境,是提升气动效率、减少排放的潜在策略。本研究提出一个缩小版可变型车辆原型,可通过内置电机驱动的可变形结构主动响应气动环境,提升燃油经济性。该原型集成优化算法,能自主识别使气动阻力最小的结构形态。在大型风洞设施中开展的大量实验表明,自主优化算法找到的最优形态可使平均阻力降低8.5%。实验数据全面验证了形状可变技术的高效性,显示车辆从次优形态过渡到最优形态时,阻力持续下降。小尺度模型的实验结果为全尺寸可变型汽车的设计提供了宝贵指导,有望带来显著的能源节约和温室气体减排。本研究证明了在真实道路环境下实时形状可变的可行性与优势,为实现高气动效率、低排放的全尺寸可变型汽车铺平道路。
原文摘要 · Abstract (English)
Road vehicles contribute to significant levels of greenhouse gas (GHG) emissions. A potential strategy for improving their aerodynamic efficiency and reducing emissions is through active adaptation of their exterior shapes to the aerodynamic environment. In this study, we present a reduced-scale morphing vehicle prototype capable of actively interacting with the aerodynamic environment to enhance fuel economy. Morphing is accomplished by retrofitting a deformable structure actively actuated by built-in motors. The morphing vehicle prototype is integrated with an optimization algorithm that can autonomously identify the structural shape that minimizes aerodynamic drag. The performance of the morphing vehicle prototype is investigated through an extensive experimental campaign in a large-scale wind tunnel facility. The autonomous optimization algorithm identifies an optimal morphing shape that can elicit an 8.5% reduction in the mean drag force. Our experiments provide a comprehensive dataset that validates the efficiency of shape morphing, demonstrating a clear and consistent decrease in the drag force as the vehicle transitions from a suboptimal to the optimal shape. Insights gained from experiments on scaled-down models provide valuable guidelines for the design of full-size morphing vehicles, which could lead to appreciable energy savings and reductions in GHG emissions. This study highlights the feasibility and benefits of real-time shape morphing under conditions representative of realistic road environments, paving the way for the realization of full-scale morphing vehicles with enhanced aerodynamic efficiency and reduced GHG emissions.
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