Patek S N, Baio J E
Department of Integrative Biology, University of California, Berkeley, CA 94720-3140, USA.
J Exp Biol. 2007 Oct;210(Pt 20):3538-46. doi: 10.1242/jeb.009084.
The dynamic interplay between static and sliding friction is fundamental to many animal movements. One interesting example of stick-slip friction is found in the sound-producing apparatus of many spiny lobster species (Palinuridae). The acoustic movements of the spiny lobster's plectrum over the file are generated by stick-slip friction between the two surfaces. We examined the microscopic anatomy, kinematics, acoustics and frictional properties of the California spiny lobster (Panulirus interruptus) toward the goal of quantitatively characterizing the frictional and acoustic mechanics of this system. Using synchronous high-speed video and sound recordings, we tested whether plectrum kinematics are correlated with acoustic signal features and found that plectrum velocity is positively correlated with acoustic amplitude. To characterize the frictional mechanics of the system, we measured frictional forces during sound production using excised plectrums and files. Similar to rubber materials sliding against hard surfaces, the static coefficient of friction in this system was on average 1.7. The change in the coefficient of friction across each stick-slip cycle varied substantially with an average change of 1.1. Although driven at a constant speed, the plectrum slipped at velocities that were positively correlated with the normal force between the two surfaces. Studies of friction in biological systems have focused primarily on adhesion and movement, while studies of stick-slip acoustics have remained under the purview of musical acoustics and engineering design. The present study offers an integrative analysis of an unusual bioacoustic mechanism and contrasts its physical parameters with other biological and engineered systems.
静摩擦力和滑动摩擦力之间的动态相互作用是许多动物运动的基础。在许多刺龙虾物种(龙虾科)的发声器官中发现了一个有趣的粘滑摩擦例子。刺龙虾的拨弦片在锉上的声学运动是由两个表面之间的粘滑摩擦产生的。我们研究了加州刺龙虾(中断龙虾)的微观解剖结构、运动学、声学和摩擦特性,目的是定量表征该系统的摩擦和声学机制。通过同步高速视频和声音记录,我们测试了拨弦片运动学是否与声学信号特征相关,发现拨弦片速度与声幅呈正相关。为了表征该系统的摩擦机制,我们使用切除的拨弦片和锉在发声过程中测量了摩擦力。与橡胶材料在硬表面上滑动类似,该系统的静摩擦系数平均为1.7。每个粘滑周期内摩擦系数的变化差异很大,平均变化为1.1。尽管拨弦片以恒定速度驱动,但其滑动速度与两个表面之间的法向力呈正相关。生物系统中的摩擦研究主要集中在粘附和运动方面,而粘滑声学研究仍属于音乐声学和工程设计的范畴。本研究对一种不寻常的生物声学机制进行了综合分析,并将其物理参数与其他生物和工程系统进行了对比。