| Literature DB >> 25130288 |
Anke Schmitz1, Benjamin Ponitz, Christoph Brücker, Helmut Schmitz, Jan Herweg, Horst Bleckmann.
Abstract
We investigated the mechanical properties (Young's modulus, bending stiffness, barb separation forces) of the tenth primary of the wings, of the alulae and of the middle tail feathers of Falco peregrinus. For comparison, we also investigated the corresponding feathers in pigeons (Columba livia), kestrels (Falco tinnunculus), and sparrowhawks (Accipiter nisus). In all four species, the Young's moduli of the feathers ranged from 5.9 to 8.4 GPa. The feather shafts of F. peregrinus had the largest cross-sections and the highest specific bending stiffness. When normalized with respect to body mass, the specific bending stiffness of primary number 10 was highest in F. tinnunculus, while that of the alula was highest in A. nisus. In comparison, the specific bending stiffness, measured at the base of the tail feathers and in dorso-ventral bending direction, was much higher in F. peregrinus than in the other three species. This seems to correlate with the flight styles of the birds: F. tinnunculus hovers and its primaries might therefore withstand large mechanical forces. A. nisus has often to change its flight directions during hunting and perhaps needs its alulae for this maneuvers, and in F. peregrinus, the base of the tail feathers might need a high stiffness during breaking after diving.Entities:
Keywords: feather morphology; nanoindentation; specific bending stiffness
Mesh:
Year: 2014 PMID: 25130288 DOI: 10.1002/jmor.20317
Source DB: PubMed Journal: J Morphol ISSN: 0022-2887 Impact factor: 1.804