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1.
An. acad. bras. ciênc ; 90(1): 373-383, Mar. 2018. tab, graf
Article in English | LILACS | ID: biblio-886881

ABSTRACT

ABSTRACT The intercropping is an important cultural practice commonly used in pest management. It is based on the principle that increased plant diversity in the agro-ecosystem can lead to reductions of pest populations in the crop. The current study aimed to assess the impact the colored fiber cotton-cowpea intercropped systems on Aphis gossypii and Aphis craccivora and on their predator Cycloneda sanguinea and the losses and the dispersion behavior of these aphids and their predator in these cropping systems. The experiment had a randomized block experimental design with two bioassays and four treatments. The number of apterous and alate aphids (A. gossypii) per cotton plant was 1.46 and 1.73 or 1.97 and 2.19 times highest in the solid cotton system than that found in the cotton-cowpea intercropped systems (S1) and (S2), respectively. On the other hand, the cotton-cowpea intercropped systems (S1 and S2) reduced, respectively, in 43% and 31% the number of apterousA. gossypiiper cotton plant compared to the control. Implementing cotton-cowpea intercropped system in the S1 scheme reduced A. gossypii infestation, favored the multiplication of C. sanguinea, and allowed obtaining heavier open bolls.


Subject(s)
Animals , Aphids/physiology , Predatory Behavior/physiology , Coleoptera/physiology , Crops, Agricultural/parasitology , Gossypium/parasitology , Vigna/parasitology , Biological Assay , Pest Control, Biological , Analysis of Variance , Statistics, Nonparametric , Animal Distribution
2.
An. acad. bras. ciênc ; 90(1): 311-323, Mar. 2018. tab, graf
Article in English | LILACS | ID: biblio-886887

ABSTRACT

ABSTRACT Population dynamics of aphids have been studied in sole and intercropping systems. These studies have required the use of more precise analytical tools in order to better understand patterns in quantitative data. Mathematical models are among the most important tools to explain the dynamics of insect populations. This study investigated the population dynamics of aphids Aphis gossypii and Aphis craccivora over time, using mathematical models composed of a set of differential equations as a helpful analytical tool to understand the population dynamics of aphids in arrangements of cotton and cowpea. The treatments were sole cotton, sole cowpea, and three arrangements of cotton intercropped with cowpea (t1, t2 and t3). The plants were infested with two aphid species and were evaluated at 7, 14, 28, 35, 42, and 49 days after the infestations. Mathematical models were used to fit the population dynamics of two aphid species. There were good fits for aphid dynamics by mathematical model over time. The highest population peak of both species A. gossypii and A. craccivora was found in the sole crops, and the lowest population peak was found in crop system t2. These results are important for integrated management programs of aphids in cotton and cowpea.


Subject(s)
Animals , Aphids/physiology , Crops, Agricultural/parasitology , Gossypium/parasitology , Vigna/parasitology , Reference Values , Species Specificity , Time Factors , Wings, Animal/physiology , Population Dynamics , Population Density , Models, Theoretical
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