Turkey vultures tune their airspeed to changing air density

被引:1
作者
Rader, Jonathan A. [1 ]
Hedrick, Tyson L. [1 ]
机构
[1] Univ N Carolina, Dept Biol, Chapel Hill, NC 27599 USA
基金
美国国家科学基金会;
关键词
Air density; Equivalent airspeed; Gliding flight; 3D tracking; Flapping flight; Elevation gradient; MIGRATING BIRDS; FLIGHT ENERGETICS; GLIDING BIRDS; BEHAVIOR; ALTITUDE; SPEEDS; EVOLUTION; BLACK; WIND; HEMOGLOBINS;
D O I
10.1242/jeb.246828
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Animals must tune their physical performance to changing environmental conditions, and the breadth of environmental tolerance may contribute to delineating the geographic range of a species. A common environmental challenge that flying animals face is the reduction of air density at high elevation and the reduction in the effectiveness of lift production that accompanies it. As a species, turkey vultures ( Cathartes aura) ) inhabit a >3000 m elevation range, and fly considerably higher, necessitating that they accommodate for a 27% change in air density (0.890 to 1.227 kg m(-3)) through behavior, physiology or biomechanics. We predicted that birds flying at high elevation would maintain aerodynamic lift performance behaviorally via higher flight speeds, rather than increases in power output or local phenotypic adaptation. We used three-dimensional videography to track turkey vultures flying at three elevations, and data supported the hypothesized negative relationship between median airspeed and air density. Additionally, neither the ratio of horizontal speed to sinking speed nor flapping behavior varied with air density.
引用
收藏
页数:9
相关论文
共 50 条
[21]   Turkey Vulture survival is reduced in areas of greater road density [J].
Naveda-Rodriguez, Adrian ;
Bildstein, Keith L. ;
Barber, David R. ;
Therrien, Jean-Francois ;
Avery, Michael L. ;
Kluever, Bryan M. ;
Rush, Scott A. ;
Vilella, Francisco J. .
ORNITHOLOGICAL APPLICATIONS, 2023, 125 (04)
[22]   Effect of air density on the performance of a small wind turbine blade: A case study in Iran [J].
Pourrajabian, Abolfazl ;
Mirzaei, Masoud ;
Ebrahimi, Reza ;
Wood, David .
JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2014, 126 :1-10
[23]   Electron Density of the Femtosecond Optical Filament in Air [J].
Chen, Yu-hsin ;
Varma, Sanjay ;
Milchberg, Howard .
2011 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2011,
[24]   Modelling of weather characteristics and wind power density in Elazig-Turkey [J].
Akpinar, Ebru Kavak ;
Akpinar, S. .
ENERGY EDUCATION SCIENCE AND TECHNOLOGY PART A-ENERGY SCIENCE AND RESEARCH, 2010, 25 (1-2) :45-57
[25]   Stocking density effects on turkey hen performance to 11 weeks of age [J].
Jhetam, S. ;
Buchynski, K. ;
Shynkaruk, T. ;
Schwean-Lardner, K. .
POULTRY SCIENCE, 2022, 101 (06)
[26]   CRITICAL SWITCHING IMPULSE STRENGTH OF LONG AIR GAPS - MODELING OF AIR DENSITY EFFECTS [J].
RIZK, FAM .
IEEE TRANSACTIONS ON POWER DELIVERY, 1992, 7 (03) :1507-1515
[27]   Effect of air density on cyclone performance and system design [J].
Wang, L ;
Buser, MD ;
Parnell, CB ;
Shaw, BW .
TRANSACTIONS OF THE ASAE, 2003, 46 (04) :1193-1201
[28]   Calculation of Air Density for Wind Energy Systems Use [J].
Bingol, Ferhat .
JOURNAL OF POLYTECHNIC-POLITEKNIK DERGISI, 2018, 21 (02) :273-281
[29]   Effect of air density on output power of wind turbine [J].
Li Yingzhi ;
Liu Wenxia .
INDUSTRIAL INSTRUMENTATION AND CONTROL SYSTEMS II, PTS 1-3, 2013, 336-338 :1114-1117
[30]   The effect of air density variation on wind power flux [J].
Essa, Khaled S.M. ;
Etman, Soad M. ;
Embaby, M. .
Wind Engineering, 2004, 28 (03) :305-310