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PUBMED FOR HANDHELDS

Journal Abstract Search


174 related items for PubMed ID: 16849180

  • 1. Nonlinear time-periodic models of the longitudinal flight dynamics of desert locusts Schistocerca gregaria.
    Taylor GK, Zbikowski R.
    J R Soc Interface; 2005 Jun 22; 2(3):197-221. PubMed ID: 16849180
    [Abstract] [Full Text] [Related]

  • 2. Dynamic flight stability in the desert locust Schistocerca gregaria.
    Taylor GK, Thomas AL.
    J Exp Biol; 2003 Aug 22; 206(Pt 16):2803-29. PubMed ID: 12847126
    [Abstract] [Full Text] [Related]

  • 3. Time-varying span efficiency through the wingbeat of desert locusts.
    Henningsson P, Bomphrey RJ.
    J R Soc Interface; 2012 Jun 07; 9(71):1177-86. PubMed ID: 22112649
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  • 7. Relationships between body mass, motor output and flight variables during free flight of juvenile and mature adult locusts, Schistocerca gregaria.
    Fischer H, Kutsch W.
    J Exp Biol; 2000 Sep 07; 203(Pt 18):2723-35. PubMed ID: 10952873
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  • 8. Synchronization of wing beat cycle of the desert locust, Schistocerca gregaria, by periodic light flashes.
    Schmeling F, Stange G, Homberg U.
    J Comp Physiol A Neuroethol Sens Neural Behav Physiol; 2010 Mar 07; 196(3):199-211. PubMed ID: 20131057
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  • 9. Simultaneous measurement of aerodynamic forces and kinematics in flapping wings of tethered locust.
    Shkarayev S, Kumar R.
    Bioinspir Biomim; 2015 Oct 23; 10(6):066003. PubMed ID: 26496206
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  • 10. Role of wing pronation in evasive steering of locusts.
    Ribak G, Rand D, Weihs D, Ayali A.
    J Comp Physiol A Neuroethol Sens Neural Behav Physiol; 2012 Jul 23; 198(7):541-55. PubMed ID: 22547148
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  • 11. The hind wing of the desert locust (Schistocerca gregaria Forskål). III. A finite element analysis of a deployable structure.
    Herbert RC, Young PG, Smith CW, Wootton RJ, Evans KE.
    J Exp Biol; 2000 Oct 23; 203(Pt 19):2945-55. PubMed ID: 10976031
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  • 12. Photogrammetric reconstruction of high-resolution surface topographies and deformable wing kinematics of tethered locusts and free-flying hoverflies.
    Walker SM, Thomas AL, Taylor GK.
    J R Soc Interface; 2009 Apr 06; 6(33):351-66. PubMed ID: 18682361
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  • 13. Neural correlates of flight loss in a Mexican grasshopper, Barytettix psolus. I. Motor and sensory cells.
    Arbas EA.
    J Comp Neurol; 1983 Jun 01; 216(4):369-80. PubMed ID: 6308070
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  • 14. The complex aerodynamic footprint of desert locusts revealed by large-volume tomographic particle image velocimetry.
    Henningsson P, Michaelis D, Nakata T, Schanz D, Geisler R, Schröder A, Bomphrey RJ.
    J R Soc Interface; 2015 Jul 06; 12(108):20150119. PubMed ID: 26040598
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  • 15. Details of insect wing design and deformation enhance aerodynamic function and flight efficiency.
    Young J, Walker SM, Bomphrey RJ, Taylor GK, Thomas AL.
    Science; 2009 Sep 18; 325(5947):1549-52. PubMed ID: 19762645
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  • 16. Surgical lesion of the anterior optic tract abolishes polarotaxis in tethered flying locusts, Schistocerca gregaria.
    Mappes M, Homberg U.
    J Comp Physiol A Neuroethol Sens Neural Behav Physiol; 2007 Jan 18; 193(1):43-50. PubMed ID: 16988831
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  • 17. Turning manoeuvres in free-flying locusts: high-speed video-monitoring.
    Berger S, Kutsch W.
    J Exp Zool A Comp Exp Biol; 2003 Oct 01; 299(2):127-38. PubMed ID: 12975801
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  • 18. Bilateral flight muscle activity predicts wing kinematics and 3-dimensional body orientation of locusts responding to looming objects.
    McMillan GA, Loessin V, Gray JR.
    J Exp Biol; 2013 Sep 01; 216(Pt 17):3369-80. PubMed ID: 23737560
    [Abstract] [Full Text] [Related]

  • 19. Migrating locusts can detect polarized reflections to avoid flying over the sea.
    Shashar N, Sabbah S, Aharoni N.
    Biol Lett; 2005 Dec 22; 1(4):472-5. PubMed ID: 17148236
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  • 20. A radiotelemetric 2-channel unit for transmission of muscle potentials during free flight of the desert locust, Schistocerca gregaria.
    Fischer H, Kautz H, Kutsch W.
    J Neurosci Methods; 1996 Jan 22; 64(1):39-45. PubMed ID: 8869482
    [Abstract] [Full Text] [Related]


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