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421 results for “thrips”
Fig. 4 in Attraction of thrips (Thysanoptera) to colored sticky traps in a Florida olive grove
Fig. 4. Comparison of mean numbers of thrips (± SE) collected by sticky traps, tap samples, or brush samples between pre-bloom, bloom, and post-bloom sampling periods. Bars with different letters indicate significantly different means (P <0.05).
Fig. 3 in Attraction of thrips (Thysanoptera) to colored sticky traps in a Florida olive grove
Fig. 3. Differences in mean numbers of thrips (± SE) collected by tap and brush samples between plots. Bars with different letters indicate significantly different means (P <0.05).
Fig. 5 in Attraction of thrips (Thysanoptera) to colored sticky traps in a Florida olive grove
Fig. 5. Collection of mean numbers of thrips (± SE) (all species and stages combined) from differently colored sticky traps with combined data from all collection dates, or collections from bloom period alone. Bars with different letters indicate significantly different means (P <0.05).
Fig. 2 in Attraction of thrips (Thysanoptera) to colored sticky traps in a Florida olive grove
Fig. 2. Spectral reflectance of sticky card traps (white, blue, yellow, and clear), and abaxial and adaxial surfaces of olive leaves.
Fig. 2 in Management of flower thrips in Florida strawberries with Steinernema feltiae (Rhabditida: Steinernematidae) and the insecticide sulfoxaflor
Fig. 2. Least square means (± 95% confidence intervals) for (A) adult and (B) larval thrips (Frankliniella bispinosa) per 10 strawberry flowers from research plots near Balm, Florida, sprayed 3, 7, and 16 Mar 2016 with Steinernema feltiae and 3 and 16 Mar 2016 with insecticides. Treatments were applied and reapplied when total thrips counts exceeded 5 per flower. Means in lower panel with the same letter are not significantly different (Tukey's HSD test, α = 0.05) (Experiment 2).
Fig. 1 in Management of flower thrips in Florida strawberries with Steinernema feltiae (Rhabditida: Steinernematidae) and the insecticide sulfoxaflor
Fig. 1. Least square means (± 95% confidence intervals) for (A) adult and (B) larval thrips (Frankliniella bispinosa) per 10 strawberry flowers from research plots near Balm, Florida, sprayed 26 Feb, and 1, 5, and 9 Mar 2016 with Steinernema feltiae or insecticides. Means in each panel with the same letter are not significantly different (Tukey's HSD test, α = 0.05) (Experiment 1).
Fig. 3 in Management of flower thrips in Florida strawberries with Steinernema feltiae (Rhabditida: Steinernematidae) and the insecticide sulfoxaflor
Fig. 3. Hourly temperature (lef y-axis), rainfall, and relative humidity (right y-axis) 26 Feb to 25 Mar 2016 at Balm, Florida.
Fig. 1 in Evaluation of reduced-risk insecticides to control chilli thrips (Thysanoptera: Thripidae) and conserve natural enemies on ornamental plants
Fig. 1. Mean percentage (± SEM) of Rhaphiolepsis indica foliage with Scirtothrips dorsalis feeding damage 42 days afer insecticide treatment. Different letters indicate significant differences between treatments using Tukey-Kramer HSD means comparison (P <0.05). Cyantraniliprole low (59.1 mL per 378.5 L) and cyantraniliprole high (236.6 mL per378.5 L).
Fig. 3 in Effect of BAM-FX in developing a management program to control major insect pests of tomato: sweetpotato whitefly (Hemiptera: Aleyrodidae), thrips (Thysanoptera: Thripidae), and their transmitted viruses
Fig. 3. Mean number of western flower thrips (Frankliniella occidentalis) per 5 leaf sample of tomato treated with various treatments of BAM‑FX and N‑P‑K granular fertilizer in 2016. Bars represent standard error of the means. T1 = BAM‑FX applied on soil, no pesticide, no N‑P‑K fertilizer; T2 = BAM‑FX applied on foliage, no pesticide, no N‑P‑K fertilizer; T3 = BAM‑FX applied on soil, pesticide, no N‑P‑K fertilizer; T4 = BAM‑FX applied on foliage, pesticide, no N‑P‑K fertilizer; T5 = BAM‑FX applied on foliage, pesticide, N‑P‑K fertilizer; T6 = no BAM‑FX, pesticide, N‑P‑K fertilizer; T7 = no BAM‑FX, no pesticide, N‑P‑K fertilizer; D1 = first sampling date (14 Dec); D2 = second sampling date (21 Dec); D3 = third sampling date (21 Dec); D4 = fourth sampling date (28 Dec); D5 = fifth sampling date (4 Jan); D6 = sixth sampling date (11 Jan).
Fig. 2 in Effect of BAM-FX in developing a management program to control major insect pests of tomato: sweetpotato whitefly (Hemiptera: Aleyrodidae), thrips (Thysanoptera: Thripidae), and their transmitted viruses
Fig. 2. Mean number of common blossom thrips (Frankliniella schultzei) per 5 leaf sample of tomato treated with various treatments of BAM‑FX and N‑P‑K granular fertilizer in 2016. Bars represent standard error of the means. T1 = BAM‑FX applied on soil, no pesticide, no N‑P‑K fertilizer; T2 = BAM‑FX applied on foliage, no pesticide, no N‑P‑K fertilizer; T3 = BAM‑FX applied on soil, pesticide, no N‑P‑K fertilizer; T4 = BAM‑FX applied on foliage, pesticide, no N‑P‑K fertilizer; T5 = BAM‑FX applied on foliage, pesticide, N‑P‑K fertilizer; T6 = no BAM‑FX, pesticide, N‑P‑K fertilizer; T7 = no BAM‑FX, no pesticide, N‑P‑K fertilizer; D1 = first sampling date (14 Dec); D2 = second sampling date (21 Dec); D3 = third sampling date (21 Dec); D4 = fourth sampling date (28 Dec); D5 = fifh sampling date (4 Jan); D6 = 6th sampling date (11 Jan).
Fig. 2 in Biocontrol bites biocontrol: potential interference of the Brazilian peppertree biological control thrips Pseudophilothrips ichini (Thysanoptera: Phlaeothripidae) by Montandoniola confusa (Hemiptera: Anthocoridae)
Fig. 2. Cases of predation on Pseudophilothrips ichini by Montandoniola confusa: (A) adult M. confusa feeding on an adult P. ichini in a garden plot on 30 Dec 2019; (B) adult M. confusa feeding on larval P. ichini in a laboratory colony on 24 Aug 2021; (C) nymphal M. confusa feeding on an adult P. ichini in a laboratory colony on 16 Aug 2021; and (D) nymphal M. confusa feeding on a larval P. ichini in a laboratory colony on 22 Nov 2021. Photo credit for plate B: Jenna Owens; photo credit for plate D: Carly Cogan.
Fig. 1 in Biocontrol bites biocontrol: potential interference of the Brazilian peppertree biological control thrips Pseudophilothrips ichini (Thysanoptera: Phlaeothripidae) by Montandoniola confusa (Hemiptera: Anthocoridae)
Fig. 1. (A) Dorsal view of a point-mounted adult specimen of Montandoniola confusa collected on Brazilian peppertree in an outdoor garden plot in Davie, Broward County, Florida, USA, on 2 Feb 2020; (B) dorsal view of a point-mounted late nymphal instar specimen of M. confusa collected in an indoor thrips colony rearing cage on 20 Aug 2021.
Fig. 3 in Fossil thrips of the family Uzelothripidae suggest 53 million years of morphological and ecological stability
Fig. 3. Ascomycetes found attached to the cuticle of the fossil and extant uzelothripid insects. The small panels show higher magnification images of some fossil and extant fungi found at the locations indicated by the arrows. A. Fossil apterous specimen of Uzelothrips eocenicus P. Nel and A. Nel sp. nov. The image is composed of photographs obtained from those optical sections which show the attached fungi most clearly. The arrowhead in the uppermost left panel indicates a Capnosporium−like conidium; the arrowhead in the middle right panel indicates a tapering hypha tip with dividing stage. B. Recent specimen of Uzelothrips scabrosus Hood, 1952 (reconstitution of two photographs by Laurence A. Mound, see also Mound 2011). The asterisk refers to the elongated hypha that has possibly grown on the surface of the thrips after attachment.
Fig. 1 in Fossil thrips of the family Uzelothripidae suggest 53 million years of morphological and ecological stability
Fig. 1. Macropterous specimen of uzelothripid insect Uzelothrips eocenicus P. Nel and A. Nel sp. nov., Lowermost Eocene, Le Quesnoy, Oise, France. A. Dorsal habitus; inset: detail of antennal segments III and IV. B. Drawings of right antennal segments III and IV in dorsal (B1) and ventral (B2) views. C. Camera lucida drawing of dorsal habitus. D. Detail of the head showing symmetrical pair of humps between eyes, each bearing three prominent tubercles from which arise setae.
Fig. 2 in Fossil thrips of the family Uzelothripidae suggest 53 million years of morphological and ecological stability
Fig. 2. Apterous specimen of uzelothripid insect Uzelothrips eocenicus P. Nel and A. Nel sp. nov., Lowermost Eocene, Le Quesnoy, Oise, France. A. Dorsal habitus. B. Drawings of right antennal segments III and IV in dorsal (B1) and ventral (B2) views. C. Detail of tergites IV and V showing comb of short teeth on posterior margins. D. Camera lucida drawing in ventral view of head and antenna.
Figs 11–12 in To the knowledge of the fauna of thrips (Thysanoptera) of the Middle East and the South Caspian region
Figs 11–12. Species of the genus Thrips, habitus. Рис. 11–12. ВиΑы роΑа Thrips, общий виΑ. 11 – Th. australis (Bagnall, 1915); 12 – Th. mareoticus (Priesner, 1932).
Figs 1–10 in To the knowledge of the fauna of thrips (Thysanoptera) of the Middle East and the South Caspian region
Figs 1–10. (?) Aeolothips sp. 1 – habitus; 2 – head; 3 – pronotum; 4 – antennomeres III–IX; 5 – sculpture of mesonotum; 6 – sculpture of metanotum; 7–8 – tergites; 9–10 – sternites. Рис. 1–10. (?) Aeolothips sp. 1 – общий виΑ; 2 – гоΛова; 3 – переΑнеспинка; 4 – III–IX чΛеники усиков; 5 – скуΛьптура среΑнеспинки; 6 – скуΛьптура заΑнеспинки; 7–8 – тергиты; 9–10 – стерниты.
Fig. 3 in Factors Affecting Thrips (Thysanoptera: Thripidae) Population Densities in Watermelon Crops
Fig. 3. Daily average (mean ± standard error) of air temperature, wind speed, photoperiod, and rain during 2 seasons of watermelon cultivation.
Fig. 2 in Factors Affecting Thrips (Thysanoptera: Thripidae) Population Densities in Watermelon Crops
Fig. 2. Frankliniella schultzei and predator densities (mean ± standard error) in 2 seasons of watermelon cultivation. *When a pair of histograms is topped by the same letter, the average densities of this arthropod did not differ in the 2 seasons of cultivation according to the F test and P <0.05.
Fig. 1 in Factors Affecting Thrips (Thysanoptera: Thripidae) Population Densities in Watermelon Crops
Fig. 1. Frankliniella schultzei density depending on the position of the leaf on the branch in watermelon plants in vegetative (A), flowering (B), and (C) fruiting stages. The more apical leaf branch was considered number 1, the second number 2, and so on.
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