鱼的旋转跳跃表现受惯性时刻的影响
Frank E Fish1, Anthony J Nicastro2, Kaitlyn L Cardenas1
1Department of Biology, West Chester University, West Chester, PA 19383, USA.
The Journal of experimental biology
|December 27, 2023
概括
鱼使用身体形状和附属物控制来执行空中旋转. 较大的惯性时刻限制了大型鱼和海豚的旋转性能,而不是旋转海豚.
科学领域:
- 海洋生物学 海洋生物学
- 生物力学 生物力学
- 动物的运动 动物的运动.
背景情况:
- 鱼表现出了非凡的空中行为,包括跳跃和旋转.
- 螺旋海豚的苗条形态和附属物控制被假定是为了促进快速的空中旋转.
- 之前的研究表明,身体形状和附属体配置影响线能力.
研究的目的:
- 为了研究生物力学因素限制鱼的空中旋转性能.
- 测试假设,较大的惯性瞬间减少旋转速度和旋转的数量.
- 为了比较不同种类的鱼的旋转能力.
主要方法:
- 对各种鱼物种的视频录像和生物数据的分析.
- 开发一个模型,根据惯性时刻和控制表面使用情况来预测空中旋转性能.
- 测量游泳速度,惯性时刻,以及地表下螺旋速率.
主要成果:
- 惯性时刻和控制面的使用是决定空中旋转执行的主要因素.
- 对空中旋转的模型预测 (旋转海豚:7号,太平洋条纹海豚:2号,瓶鼻海豚:2号,鱼0.76号,驼背:1) 与观测结果一致.
- 在较大的鱼中,较高的惯性时刻显著限制了与螺旋海豚相比的地下螺旋和空中机动.
结论:
- 鱼的空中旋转性能受到惯性时刻和控制表面有效性之间的权衡的限制.
- 旋海豚的形态优化为快速的空中旋转,而较大的鱼则受到较高的惯性时刻的限制.
- 了解这些生物力学原理,可以了解鱼运动多样性的演变.
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