• Title/Summary/Keyword: Pea weevil

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Occurrence of Pea Weevil, Bruchus pisorum Linnaeus (Coleoptera: Bruchidae) and Its Control Efficacy of Insecticides in Yeongnam District (영남지방내 완두콩바구미의 발생 및 약제방제 효과)

  • Kim, Hyun-Ju;Bae, Soon-Do;Lee, Geon-Hwi;Park, Sung-Tae;Park, Chung-Gyoo
    • Korean journal of applied entomology
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    • v.46 no.1 s.145
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    • pp.159-164
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    • 2007
  • Pea weevil was easily observed in the flower and pod of garden pea, but not observed in soybean at various locations in Yeongnam district through 2001 to 2003. Number of pea weevil observed in pea flower was the highest at Milyang (20), followed by Yangsan (15), Sacheon (14) and Changnyong (13), and was the lowest at Pohang (3). On the other hand, number of pea weevil observed in pea pod was the highest at Tongyeong (192), followed by Changnyong (171), Sacheon (157) and Changwon (138), and was the lowest at Pohang (12) which showed simila. tendency with the result of pea flower. Number of pea weevil occurrence observed in pea pod after one and two times applications of Insecticides in pea field were different at harvest day of 30th May while were not significantly different at harvest day of 5th June. Likewise, number of pea pod damage after one and two times applications of insecticides were different at harvest day of 10th May while was not different at harvest day of 5th June. Thus, control efficacies of insecticides according to application times against pea weevil showed very high with above 95% at harvest day of 6th June while showed variable control efficacies at harvest of 30th May.

Control of Pea Weevil (Bruchus pisorum L.) in Jeonnam Province (전남지역에서의 완두콩바구미 방제 체계)

  • Lee, Si-Woo;Kim, Kwang-Ho;Park, Chang-Gyoo;Park, Hong-Hyun;Lee, Kwan-Suk;Choi, Byeong-Ryeol;Lee, Sang-Guye
    • The Korean Journal of Pesticide Science
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    • v.14 no.3
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    • pp.284-288
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    • 2010
  • A series of experiments was carried out for selecting insecticides and determining proper spraying time to control pea weevil (Bruchus pisorum Linnaeus) in Jeonnam area. In the field trial two times spray with diazinon, carbaryl, imidacloprid, spinosad, etofenprox, clorpyrifos-methyl showed good control effect and threetimes spray showed the better control effect. The second spray (spraying on 10th of May) took the major role of insecticide effectiveness expression for controlling pea weevil. Further trial for selecting insecticides among organophosphates to control pea weevil in lab was conducted and every organophosphate insecticide tested was very effective to pea weevil even at the concentration of one forth of its recommending concentration.

Effects of Temperature on the Oviposition, Feeding and Emergence of the Azuki Bean Weevil (Callosobruchus chinensis L.) in the stored beans (저장두류(貯藏豆類)에 대(對)한 팥바구미의 산란(産卵).섭식(攝食) 및 우화(羽化)에 미치는 온도(溫度)의 영향(影響))

  • Kim, Kyu-Chin;Choi, Hyeon-Soon
    • Korean journal of applied entomology
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    • v.26 no.2 s.71
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    • pp.71-81
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    • 1987
  • This study was conducted to study the effects of temperature on the oviposition, feeding and emergence of the azuki bean weevil(ABW) (Callesobruchus chinensis L.) in the stored beans. And ovipositional preference, hatching and emergence on the preference and non-preference hosts were also investigated. ABW has four generations a year and overwinters as larva stage in the bean grains. Optimum oviposition temperature of the ABW ranges from $25^{\circ}C\;to\;30^{\circ}C$. Oviposition preference in different hosts was in the order of azuki bean, mung bean, soy bean, kidney bean, black-soybean, pea. At $25^{\circ}C$, optimum development temperature emergence of period the ABW averaged 29 days on azuki bean, 31 days on mung bean, 49 days on soy bean, 46 days on black-soybean, 34 days on Pea. Percent hatch in different hosts was in the order of azuki bean, mung bean, soy bean, pea, black-soybean, kidney bean. But percent emergence was in the order of azuki bean, mung bean, pea, black-soybean, kidney bean. Especially, in azuki bean and mung bean, percentage of hatching and emergence was very high. And in soy bean and black-soybean, percentage of hatching was high but emergence was low. The kidney bean was hatching but not emergence at all. The longevity at the different temperatures appeared to be $4{\sim}5$ days at $35^{\circ}C,\;5{\sim}7$ days at $25^{\circ}C{\sim}30^{\circ}C$, $10{\sim}15$ days at $20^{\circ}C\;and\;19{\sim}24$ days at $15^{\circ}C$. Kidney bean of feeding non-preference host oviposited at Seed coat and Endosperm, but no larva developed. And cotyledon and embryo parts were not oviposited at all. The percentage of germination of egg laid bean grain and damaged bean grains was low. Especially, the percentage of germination of damaged bean grains was 0% on azuki bean, 5% on black-soy bean, 7% on Pea.

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Synthetic method and insecticidal activity of ricinine (Ricinine의 합성법 및 살충활성)

  • Kwon, Oh-Kyung;Lim, Soo-Kil;Choi, Dal-Soon;Kyung, Suk-Hun
    • The Korean Journal of Pesticide Science
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    • v.2 no.1
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    • pp.18-23
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    • 1998
  • In order to obtain leading compound for the development of new pesticide through the organic synthesis of natural products, the synthesis of ricinine, an active compound of Ricinus communis, was established and biological activities of synthetic compounds against insects were examined. The synthetic scheme of ricinine was composed of four steps by the spontaneous condensation of the cyanoacetyl chloride. A modified synthetic process was also estabilshed to enhance the synthetic yield by simple cyclization of ethoxymethylene malononitrile. In the bioassay results of synthetic ricinine and intermediates on four insects, the mortality of ricinine on brown planthopper (BPH, Nilaparvata lugens) and pea weevil(PW, Bruchus rufimanus) was 80% and 75% at the concentration of 1,000 ${\mu}g/ml$ respectively. Chloronorricinine and chlororicinic acid having chloride group in molecular structure gave 60% mortality on two-spotted mite (TSSM, Tetranychus urticae) at the concentration of 500 ${\mu}g/ml$. The mortality of compounds on house mosquito (HM, Culex pipens pallens) was meager at 10 ${\mu}g/ml$ level.

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