Related Experiment Video
Updated: Nov 29, 2025

Light Spot-Based Assay for Analysis of Drosophila Larval Phototaxis
Published on: September 27, 2019
Centre-of-mass and minimal speed limits of the great hammerhead
1Faculty of Aerospace Engineering, Technion, Haifa, Israel.
Abstract:
The great hammerhead is denser than water, and hence relies on hydrodynamic lift to compensate for its lack of buoyancy, and on hydrodynamic moment to compensate for a possible misalignment between centres of mass and buoyancy. Because hydrodynamic forces scale with the swimming speed squared, whereas buoyancy and gravity are independent of it, there is a critical speed below which the shark cannot generate enough lift to counteract gravity, and there are anterior and posterior centre-of-mass limits beyond which the shark cannot generate enough pitching moment to counteract the buoyancy-gravity couple. The speed and centre-of-mass limits were found from numerous wind-tunnel experiments on a scaled model of the shark. In particular, it was shown that the margin between the anterior and posterior centre-of-mass limits is a few tenths of the product between the length of the shark and the ratio between its weight in and out of water; a diminutive 1% body length. The paper presents the wind-tunnel experiments, and discusses the roles that the cephalofoil and the pectoral and caudal fins play in longitudinal balance of a shark.
Related Concept Videos
Center of Mass: Introduction
Center of Mass
The knowledge of the center of mass can also help us to describe and predict the motion of objects. For example, when a ball is thrown...
Composite Bodies
Composite bodies have widespread applications in mechanical engineering, from automobiles to aircraft to rockets. For example, an automobile wheel comprises...
Significance of Center of Mass
Internal Forces and Center of Gravity
Internal forces are generated within a body due to the interaction between its particles. These forces can be categorized into tension, compression, and...
Center of Gravity
To determine its location, the principle of moments can be utilized by dividing the object into...

