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793 results for “Tetranychidae”
Figure 1 in Efficiency of some commercial stimulants in inducing tomato resistance to Tetranychus urticae (Acari: Tetranychidae)
Figure 1. Population of movable stages of Tetranychus urticae on tomato leaves of several plant ages for cultivars K186 F1 and 023 F1 treated with some commercial stimulants during the 2017 (A) and 2018 (B) summer seasons. Population at three weeks after transplanting was immediately before treatment. Columns with the same letter represent means that are not significantly different according to Tukey's multiple range test (p <0.05). Vertical bars represent ± standard error of the mean (n = 21).
Figure 1. A in Evaluate the efficiency of releasing two predatory species at their optimal temperature for controlling Tetranychus urticae (Acari: Tetranychidae) in a croton greenhouse
Figure 1. A timeline representing the release of predatory species P. persimilis and S. punctillum to control the twospotted mite T. urticae in a croton greenhouse.
Figure 3 in Evaluate the efficiency of releasing two predatory species at their optimal temperature for controlling Tetranychus urticae (Acari: Tetranychidae) in a croton greenhouse
Figure 3. The comparison between the population of T. urticae in predators' greenhouse and control greenhouse.
Figure 3 in Efficiency of some commercial stimulants in inducing tomato resistance to Tetranychus urticae (Acari: Tetranychidae)
Figure 3. Scanning Electron Microscopy (SEM) images of the lower-surface of leaves sprayed with water (control), Silical®, Postar®, and Ultrafit® to visualize the diversity of trichome types (glandular: GT and non-glandular: NGT) and densities for tomato cultivars K-186 F1 and 023 F1.
Figure 4 in Acaricidal potential of Euphorbia seguieriana and E. helioscopia (Euphorbiaceae) extracts against Tetranychus urticae (Acari: Tetranychidae)
Figure 4. HPLC chromatograms of Euphorbia helioscopia (a) and E. seguieriana (b) methanol extracts used for measuring quercetin content (c) in both plant species (the data is based on only one replicate measurement).
Figure 3 in Acaricidal potential of Euphorbia seguieriana and E. helioscopia (Euphorbiaceae) extracts against Tetranychus urticae (Acari: Tetranychidae)
Figure 3. HPLC chromatograms of Euphorbia helioscopia (a) and E. seguieriana (b) methanol extracts used for
Figure 2 in Development and life table parameters of the Phytoseius corniger Wainstein (Acari: Phytoseiidae) feeding on the two-spotted spider mite, Tetranychus urticae Koch (Acari: Tetranychidae) under laboratory conditions
Figure 2. The age-specific survival rate (lx), and fecundity (mx) of Phytoseius corniger fed on Tetranychus urticae under laboratory conditions (25 ± 2 °C, 55 ± 5% of RH, and 16L: 8D h photoperiod).
Figure 1 in Development and life table parameters of the Phytoseius corniger Wainstein (Acari: Phytoseiidae) feeding on the two-spotted spider mite, Tetranychus urticae Koch (Acari: Tetranychidae) under laboratory conditions
Figure 1. Age-stage specific survival rate (sjx) of the parent cohort of bisexual Phytoseius corniger fed on Tetranychus urticae under laboratory conditions (25 ± 2 °C, 55 ± 5% of RH, and 16L: 8D h photoperiod). Note: L stands for larva, N1 for protonymph, and N2 for deutonymph, respectively.
Figure 2 in Susceptibility of the sweet pepper (Capsicum annuum L.) to the infestation of Tetranychus urticae (Acari: Tetranychidae) and the different insect pests under greenhouse conditions in Ismailia, Egypt
Figure 2. The interaction effects of seasons and cultivars on the Chl., Car., total protein and phenol contents (A) and the activity of the antioxidant enzymes (B) of the two sweet pepper cultivars during the two growing seasons 2021–22.
Figure 1 in Study of the population fluctuations and feeding effects of Tetranychus urticae (Acari: Tetranychidae) on three cultivars of Capsicum annuum (Solanaceae)
Figure 1. Population fluctuations of T. urticae mobile stages on the three C. annuum cultivars at El-Beheira governorate
Figure 1 in Susceptibility of the sweet pepper (Capsicum annuum L.) to the infestation of Tetranychus urticae (Acari: Tetranychidae) and the different insect pests under greenhouse conditions in Ismailia, Egypt
Figure 1. Monthly abundance of total TSSM (A), associated insect pest (B), and predator (C) numbers on the two sweet pepper cultivars during the two growing seasons 2021–22.
Figure 3. Critical stop lines for a sequential count plan for T. urticae. For a in Spatial distribution and sampling plan for Tetranychus urticae (Acari: Tetranychidae) in bean crops
Figure 3. Critical stop lines for a sequential count plan for T. urticae. For a precision level of 10 and 25%.
Figure 2 in Spatial distribution and sampling plan for Tetranychus urticae (Acari: Tetranychidae) in bean crops
Figure 2. Sample sizes required to achieve a given precision level of 10 and 25% at different mean densities of T. urticae per leaf.
Figure 1 in Spatial distribution and sampling plan for Tetranychus urticae (Acari: Tetranychidae) in bean crops
Figure 1. Relationship between variance and mean density (all stages combined per leaf) of T. urticae samples collected from bean fields near Varamin vicinity, Tehran province, Iran. The red lines are the best-fitting lines of Taylor's power law.
Figura 1 in Variación quetotáxica en poblaciones de Tetranychus urticae Koch, 1836 y Eotetranychus lewisi (Mc Gregor, 1943) (Acari: Tetranychidae) de diferentes cultivos y localidades en la Provincia de Tungurahua, Ecuador
Figura 1. Gráfico tridimensional de componentes principales basado en 30 caracteres morfológicos donde se representa la variación de 18 muestras de ácaros. / Three-dimensional graph of main components based on 30 morphological characters where the variation of 18 samples of mites is represented.
Fig. 3. Spiraea japonica L in The Spider Mite Schizotetranychus Spireafolia (Acari, Tetranychidae), Specific Pest Of Spiraea In The A. V. Fomin Botanical Garden
Fig. 3. Spiraea japonica L. infested with Sch. spireafolia mites: a — upper surface of leaf, b — lower surface of leaf.
Fig. 2 in The Spider Mite Schizotetranychus Spireafolia (Acari, Tetranychidae), Specific Pest Of Spiraea In The A. V. Fomin Botanical Garden
Fig. 2. Morphological characteristics of Sch. spireafolia from A. V. Fomin Botanical Garden, Kyiv, Ukraine: a — female x10; b — male x10; c — dorsal setae x100; d — palp tarsus of female x100; e — palp tarsus of male x100; f — empodium of tarsus I of female x100; g —
Figure 1 in Functional response of the predatory mite, Typhlodromus bagdasarjani (Acari: Phytoseiidae) to protonymphs of Eotetranychus frosti (Acari: Tetranychidae) on four apple cultivars
Figure 1 The functional responses curves of adult females of Typhlodromus bagdasarjani to different densities ofEotetranychus frosti protonymphs on four apple cultivars.
Figure 3 in On the perception of leaf morphology and visible light byTetranychus urticae Koch (Acariformes, Tetranychidae)
Figure 3 Distribution of Tetranychus urticae females (A) and daily oviposition rate (B) on bean leaves: A1, B1 (BNI); A2, B2 (BNS); A3, B3
Figure 2 in On the perception of leaf morphology and visible light byTetranychus urticae Koch (Acariformes, Tetranychidae)
Figure 2 Survival (squares) and oviposition rate (circles) of Tetranychus urticae females fed on adaxial (AdSU-open squares and circles) or abaxial (AbSU-closed squares and circles) surface of bean (A) and lemon (B) leaves. Different letters denote significant differences (P<0.05)
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