模拟低空气密度和低重力条件下悬停襟翼频率的预测与测量。

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY Biomimetics Pub Date : 2025-01-29 DOI:10.3390/biomimetics10020083
Hyeonjun Lim, Giheon Ha, Hoon Cheol Park
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引用次数: 0

摘要

预测升力的能力对于在空气密度和重力变化的行星上进行扑翼飞行至关重要。在确定了地球上扑翼飞行所需的升力后,假设循环平均升力系数保持不变,可以使用空气密度和重力函数的比例方程来预测不同条件下的升力。然而,在扑翼中,由于气动和惯性力引起的被动变形可能会改变扑翼的运动学,使预测复杂化。本文研究了不同空气密度和重力条件下扑翼升力系数的变化,分别采用低压室和倾斜支架进行模拟。目前的研究发现,循环平均升力系数几乎保持不变,在不同的空气密度和重力条件下变化不到7%。在较低的空气密度下,由于较高的振动摩擦,测量频率与预测频率之间的差异增大。功耗分析表明,在较薄的大气中,能量需求更高,并预测在火星上悬停飞行所需的功率为5.14 W,比在地球上增加66%。未来的实验将测试火星的空气密度和重力条件,以实现在火星上的扑翼飞行。
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Prediction and Measurement of Hovering Flapping Frequency Under Simulated Low-Air-Density and Low-Gravity Conditions.

The ability to predict lift is crucial for enabling flapping flights on planets with varying air densities and gravities. After determining the lift required for a flapping flight on Earth, it can be predicted under different conditions using a scaling equation as a function of air density and gravity, assuming the cycle-average lift coefficient remains constant. However, in flapping wings, passive deformation due to aerodynamic and inertial forces may alter the flapping-wing kinematics, complicating predictions. In this study, we investigated changes in the lift coefficient of flapping wings under various air density and gravity conditions simulated using a low-pressure chamber and tilting stand, respectively. The current study found that the cycle-averaged lift coefficients remained nearly constant, varying by less than 7% across the air density and gravity conditions. The difference between the measured and predicted hovering frequencies increased under a lower air density due to the higher vibration-induced friction. The power consumption analysis demonstrated higher energy demands in thinner atmospheres and predicted a required power of 5.14 W for a hovering flight on Mars, which is a 66% increase compared to that on Earth. Future experiments will test Martian air density and gravity conditions to enable flapping flights on Mars.

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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
期刊最新文献
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