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Light-trap and suction-trap catches of insects in the northern Gezira, Sudan, in the season of southward movement of the Inter-Tropical Front

Published online by Cambridge University Press:  10 July 2009

John Bowden
Affiliation:
Rothamsted Experimental Station, Harpenden, Herts., England
David G. Gibbs
Affiliation:
Rothamsted Experimental Station, Harpenden, Herts., England

Extract

Catches in light-traps adjoining cotton were obtained at the time of seasonal southward movement of the Inter-Tropical Front (ITF) in October, and during most of the following two months. Taxa studied were mostly Orthoptera and moths, many associated with sorghum, others long-distance migrants. Suction-trap catches at three heights up to 50 ft were obtained for short periods in October and November, and aircraft catches at 250 ft were also available on two days. Suction-trap catches of grass-feeding Homoptera suggest that displacement of these insects was associated with changes in wind direction marking movement of the ITF in October. The exact form of the displacement system in relation to the front cannot be reconstructed from catches at a single place, but it seems likely that proximity of the front at or soon after the time of a brief period of crepuscular activity stimulates insects to take flight and rise to 50 ft or more so that they are displaced. In many taxa, light-trap catches showed a regular pattern of increase, with only slight nightly fluctuations from a logarithmic trend, following full moon. Other increases were superimposed on this pattern at times when the ITF passed north of the trap site, and in some taxa particularly when it was far north. The pattern of change after full moon, shown most clearly in taxa with source populations close to the trap, was related to the moon's influence on the range of trap effectiveness. But various qualitative variations suggest that, in addition, aspects of behaviour or development may have adaptive relationships to the lunar cycle; variations include differences between taxa, particularly in timing of catch changes, and increasing proportion and decreasing maturity of females of certain taxa at the time of the regular increases in catch.

Type
Original Articles
Copyright
Copyright © Cambridge University Press 1973

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References

Balla, A. N. (1970). American bollworm in the Gezira and Managil. In Siddig, M. A. & Hughes, L. C. (Eds.). Cotton growth in the Gezira environment, 281292. Wad Medani, Agricultural Research Corporation.Google Scholar
Bogush, P. P. (1936). Some results of a study of insects by means of light traps in central Asia.—Bull. ent. Res. 27, 377380.CrossRefGoogle Scholar
Bowden, J. (1964). The Sphingidae (Lepidoptera) of Kwadso Ghana, with special reference to their phenology, the influence of moonlight on activity and the effect of weather conditions on abundance and activity.—165 pp. Ph.D. thesis, University of Bristol.Google Scholar
Bowden, J. (1973). The significance of moonlight in photoperiodic responses of insects.—Bull. ent. Res. 62, [preceding article].CrossRefGoogle Scholar
Brown, E. S., Betts, E. & Rainey, R. C. (1969). Seasonal changes in distribution of the African armyworm, Spodoptera exempta (Wlk.) (Lep., Noctuidae), with special reference to eastern Africa.—Bull. ent. Res. 58, 661728.CrossRefGoogle Scholar
Crowther, F. (1948). A review of experimental work. In Tothill, J. D. (Ed.). Agriculture in the Sudan, 439592. London, O.U.P.Google Scholar
Haggis, M. J. (1971). Light-trap catches of Spodoptera exempta (Walk.) in relation to wind direction.—E. Afr. agric. For. J. 37, 100108.CrossRefGoogle Scholar
Johnson, C. G. (1957). The distribution of insects in the air and the empirical relation of density to height.—J. Anim. Ecol. 26, 479494.CrossRefGoogle Scholar
Johnson, C. G. & Taylor, L. R. (1955). The development of large suction traps for airborne insects.—Ann. appl. Biol. 43, 5162.CrossRefGoogle Scholar
Nemec, S. J. (1971). Effects of lunar phases on light-trap collections and populations of bollworm moths.—J. econ. Ent. 64, 860864.Google Scholar
Osman, O. E. & Hastenrath, S. L. (1969). On the synoptic climatology of summer rainfall over Central Sudan.—Arch. Met. Geophys. Bioklim. (Ser.B) 17, 297324.CrossRefGoogle Scholar
Rainey, R.C. & Joyce, R. J. V. (1972). The use of airborne Doppler equipment in monitoring windfields for airborne insects: some recent results.—Proceedings 7th international aerospace instrumentation symposium, Cranfield 1972, 8.18.4.Google Scholar
Siddorn, J. W. & Brown, E. S. (1971). A Robinson light trap modified for segregating samples at predetermined time intervals, with notes on the effect of moonlight on the periodicity of catches of insects.—J. appl. Ecol. 8, 6975.CrossRefGoogle Scholar
Taylor, L. R. (1955). The standardization of air-flow in insect suction traps.—Ann. appl. Biol. 43, 390408.CrossRefGoogle Scholar
De Wilde, J. & Bonga, H. (1958). Observations on threshold intensity and sensitivity to different wave lengths of photoperiodic responses in the colorado beetle (Leptinotarsa decemlineata Say).—Entomologia exp. appl. 1, 301307.CrossRefGoogle Scholar
Williams, C. B. (1936). The influence of moonlight on the activity of certain nocturnal insects, particularly of the family Noctuidae, as indicated by a light trap.—Phil. Trans. R. Soc. (B) 226, 357389.Google Scholar
Woodhead, T. (1969). The diurnal variation of mean wind speed at four locations in Kenya and Tanzania.—E. Afr. agric. For. J. 35, 160165.CrossRefGoogle Scholar