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15 results for “Ceroptres”

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Fig. 10 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 10. The shear force response of the sagittae in the inner surface. (A) Left sagitta and (B) right sagitta. The initial position of the sound source is at 90°. Color variation indicates the magnitude of shear stress.

opencc-by-4.0Nov 2021View details →
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Fig. 9 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 9. The reception directivity and response intensity of each sagittae of L. crocea at different frequencies. (A) Left sagitta and (B) right sagitta. The x-axis represents the sound incidence angle; the y-axis represents the normalized response intensity. The incidence angle 0° represents the front of the sagittae, -180° represents the left side of the sagitta, and 180° represents the right side. Each color corresponds to a different sound frequency: 400 Hz (blue), 600 Hz (black), 800 Hz (red), 1000 Hz (purple), 1200 Hz (cyan).

opencc-by-4.0Nov 2021View details →
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Fig. 8 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 8. Reception directivity of sagittae (exposed to 800 Hz sound wave) of Larimichthys crocea. The initial position of the sound source is at a 90° angle. Color corresponds to the left (blue) and right (red) sagitta.

opencc-by-4.0Nov 2021View details →
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Fig. 7 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 7. Relationship between shear stress of sagittae (on the inner surface) and sound frequency; the incident angle of the sound wave is located in front of the sagittae. (A) Shear stress response of the sagittae; (B) shear stress response results after treatment with the TKEO method.

opencc-by-4.0Nov 2021View details →
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Fig. 6 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 6. The surface shear stress response of sagittae of Larimichthys crocea from sound signals at two frequencies: 400 Hz (A) and 800 Hz (B). Color variation indicates the magnitude of shear stress.

opencc-by-4.0Nov 2021View details →
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Fig. 5 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 5. The pulse echo measurement data from three sagittae of Larimichthys crocea. (A) sagitta 1; (B) sagitta 2; (C) sagitta 3.

opencc-by-4.0Nov 2021View details →
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Fig. 4 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 4. (A) Reconstructed paired sagittae of Larimichthys crocea from a 3D scanner. (B) The layout of sagittae and sound source in the finite element model; the initial position of the sound source is in front of the sagittae.

opencc-by-4.0Nov 2021View details →
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Fig. 3 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 3. Phylogenetic trees of the Tragopan blythii and outgroups. (A) Tree based on combined sequences; (B) Tree based on mtDNA; (C) Tree based on nuclear sequence. Values on the labels indicate posterior probabilities/bootstrap support calculated by Bayesian inference/ML inference. "-" means the topology estimated from Bayesian inference is different from ML inference.

opencc-by-4.0Jul 2021View details →
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Fig. 1 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 1. Extant distribution of the Blyth's Tragopan Tragopan blythii identified by colored outlines: red represents distribution of T. b. molesworthi, green represents distribution of T. b. blythii. However, the geographical boundary between subspecies is not very clear, T. b. blythii was also found on the northern banks of the Brahmaputra (indicated by mixed colors), which is usually considered to be the range of T. b. molesworthi (Hennache and Ottaviani 2020). Geographical ranges are generated from the BirdLife's species range maps (BirdLife International and Handbook of the Birds of the World 2018).

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Fig. 2 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 2. The color of bare facial skin of male Blyth's Tragopans in Mount Kennedy, Mount Saramati and areas nearby. The geographical locations indicate where the images were taken.

opencc-by-4.0Jul 2021View details →
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Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 2. Temporal changes in the isotopic value of the tissues of the freshwater shrimp Macrobrachium borellii after a diet shift. One-compartment models described the changes in changes in δ13C (a) and δ15N (b) adequately well. For each graph, the curve is the best fit. Circles indicate individual shrimp sampled at each time (1, 2, 4, 7, 13, 19, 25, 31, 40, 64, 97 days). The black circles represent the hepatopancreas and the white circles the muscle. Dashed black line represents the δ13C and δ15N value of diet 2. The isotope values for diet 1 were δ13C = -26.1‰ and 1 δ15N = 2.1‰.

opencc-by-4.0Jul 2021View details →
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Fig. 1 in Ceroptres kovalevi Belizin 1973

Fig. 1. Scheme of the trial design to determine the turnover rates and the trophic discrimination factor of the freshwater shrimp Macrobrachium borellii. The black circles represent the shrimp. The composition of the diets is detailed in table 1. During the trial period, the following variables were controlled for: temperature, photoperiod, dissolved oxygen, oxygen saturation percentage, pH, conductivity, ammonium, nitrite, and nitrates. The extraction of the specimens was carried out completely at random. On the extraction days, samples of hepatopancreas and muscle were obtained.

opencc-by-4.0Jul 2021View details →
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Fig. 3 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 3. (A) A pair of sagittae from Larimichthys crocea. (B) Polished sagitta sample.

opencc-by-4.0Nov 2021View details →
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Fig. 2 in Fig. 2 in Ceroptres kovalevi Belizin 1973

Fig. 2. Experimental setup for measuring the sound speed of Larimichthys crocea sagittae.

opencc-by-4.0Nov 2021View details →
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FIGURE 11. Ceroptres cerri a in Revision of world Ceroptresini (Hymenoptera: Cynipidae) with the description of a new genus and five new species

FIGURE 11. Ceroptres cerri a) head in anterior view, b) mesosoma in lateral view and c) metasoma in lateral view; C. clavicornis d) head in anterior view, e) mesosoma in lateral view and f) metasoma in lateral view.

opennotspecifiedOct 2019View details →

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