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1,131 results for “oribatid mites”
Figure 1 in Oribatid mite (Acari) community structure in steppic habitats of Burgos Province, central northern Spain
Figure 1. Species richness variation of oribatids in different habitats of the steppic plots of northern Spain.
Figure 4 in Relative abundance of oribatid mites (Sarcoptiformes: Oribatida) in two tillage systems of irrigated and rain-fed wheat farms of Khodabandeh County, Iran
Figure 4. Means comparison of shannon-wiener index of oribatid mites in four systems (Different letters on the top of the bars indicate significant difference at P <0.05 by Student Newman-Keuls test).
Figure 3 in Relative abundance of oribatid mites (Sarcoptiformes: Oribatida) in two tillage systems of irrigated and rain-fed wheat farms of Khodabandeh County, Iran
Figure 3. Means comparison of diversity of oribatid mites in sampling times (Different letters on the top of the bars indicate significant difference at P <0.05 by Student Newman-Keuls test).
Figure 2 in Relative abundance of oribatid mites (Sarcoptiformes: Oribatida) in two tillage systems of irrigated and rain-fed wheat farms of Khodabandeh County, Iran
Figure 2. Means comparison of species richness of oribatid mites in four systems (Different letters on the top of the bars indicate significant difference at P <0.05 by Student Newman.
Figure 1 in Relative abundance of oribatid mites (Sarcoptiformes: Oribatida) in two tillage systems of irrigated and rain-fed wheat farms of Khodabandeh County, Iran
Figure 1. Means comparison of species richness of oribatid mites in sampling times (Different letters on the top of the bars indicate significant difference at P <0.05 by Student Newman–Keuls test).
Figure 7 in Oribatid mites (Acari: Oribatida) from the Sella massif (Dolomites, Trentino, Italy) with description of Trichoribates valeriae n. sp. (Ceratozetidae)
Figure 7 Trichoribates valeriaen. sp., adult: legs, antiaxial view. A – Leg I, right, except tarsus. B – Leg I, right, tarsus. C – Leg II, right, except tarsus. D – Leg II, right, tarsus. E – Leg III, left, except tarsus. F – Leg. III, left, tarsus. G – Leg IV, left, except tarsus. H – Leg IV, left, tarsus. Scale bar 1 Figs A, C, E, G 50 µm, Scale bar 2 figs B D F H 50 µm.
Figure 1 in Oribatid mites (Acari: Oribatida) from the Sella massif (Dolomites, Trentino, Italy) with description of Trichoribates valeriae n. sp. (Ceratozetidae)
Figure 1 Sampling locality of Trichoribates valeriaen. sp. (all fotos Irene Schatz, Figs 1A – 1E: 19. July 2017, Fig. 1F: 20. June 2017). A
Figure 6 in Oribatid mites (Acari: Oribatida) from the Sella massif (Dolomites, Trentino, Italy) with description of Trichoribates valeriae n. sp. (Ceratozetidae)
Figure 6 Trichoribates valeriaen. sp., adult: A – right chelicera, antiaxial view. Scale bar 50 µm. B – right palp, antiaxial view. Scale bar 20 µm. C – male genital, frontal view (below genital plate). Scale bar 20 µm. D – ovipositor (paratype), everted, releasing egg. Scale bar 100 µm.
Figure 5 in Oribatid mites (Acari: Oribatida) from the Sella massif (Dolomites, Trentino, Italy) with description of Trichoribates valeriae n. sp. (Ceratozetidae)
Figure 5 Trichoribates valeriaen. sp., adult: A – anterior part of the body, dorsolateral view, showing porose areasAd, Am, Ah, Al. B – posterior view. Scale bar 100 µm.
Figure 9 in Oribatid mites (Acari: Oribatida) from the Sella massif (Dolomites, Trentino, Italy) with description of Trichoribates valeriae n. sp. (Ceratozetidae)
Figure 9 Trichoribates valeriaen. sp., larva: A – dorsal view. B – ventral view (legs not shown). Scale bar 50 µm.
Figure 8 in Oribatid mites (Acari: Oribatida) from the Sella massif (Dolomites, Trentino, Italy) with description of Trichoribates valeriae n. sp. (Ceratozetidae)
Figure 8 Trichoribates valeriaen. sp., tritonymph: A – dorsal view. B – ventral view (legs not shown). Scale bar 100 µm.
Figure 6 in New faunistical and taxonomic data on oribatid mites (Acari: Oribatida) of Taiwan
Figure 6 Jacotella puyuman. sp., adult: a – subcapitulum, ventral view; b – palp, left, paraxial view; c – chelicera, right, antiaxial view; d – leg I, without trochanter, right, antiaxial view; e – leg II, without trochanter and tarsus, right, ventroantiaxial view; f – leg III, without tarsus, left, ventroantiaxial view; g – leg IV, left, antiaxial view. Scale bar 20 μm (a, c-g), 10 μm (b).
Figure 4 in New faunistical and taxonomic data on oribatid mites (Acari: Oribatida) of Taiwan
Figure 4 Tyrphonothrus nivnun. sp., adult, SEM micrographs (a-d) and microscope images (e-i): a – dorsal view; b – lateral view; c – tuberculate notogastral cerotegument; d – claws of leg tarsus I; e – epimeral setae3a and 3b; f – epimeral integument (deep focus); g, h – genital plates (superficial and deep focus, respectively); i – claws of leg tarsus III. Scale bar 200 μm (a, b), 10 μm (c), 50 μm (d); images without scale bar.
Figure 3 in New faunistical and taxonomic data on oribatid mites (Acari: Oribatida) of Taiwan
Figure 3 Tyrphonothrus nivnun. sp., adult: a – subcapitulum, ventral view; b – palp, right, antiaxial view; c – chelicera, right, antiaxial view;
Figure 1 in New faunistical and taxonomic data on oribatid mites (Acari: Oribatida) of Taiwan
Figure 1 Collecting place of oribatid mite species: a –Tyrphonothrus nivnun. sp.; b – Jacotella puyuman. sp.
Figure 4 in Contribution to the knowledge of the oribatid mite genus Setoppia (Acari, Oribatida, Oppiidae), with description of a new species from South Africa
Figure 4 Map on distribution ofSetoppiaspecies in South Africa. Symbols of species: S. antennata – filled A;S. clavimera– filled C;S. fortis – filled F;S. izinyosa– filled triangle;S. karinae– filled squares; S. paraquattuorn. sp. – filled P;S.quattuor– filled circles;S. tuberosa– filled T;S. verrucosa– filled crosses. Symbols in red indicate type localities.
Figure 3 in Contribution to the knowledge of the oribatid mite genus Setoppia (Acari, Oribatida, Oppiidae), with description of a new species from South Africa
Figure 3 Map on distribution ofSetoppiaspecies. Designations of species: 1 – S. angustopili(Hammer, 1962) (Chile, Argentina); 2 – S. antennata(Balogh & Mahunka, 1966) (South Africa); 3 –S. bornemisszai(Balogh, 1982) (Australia); 4 – S. clavimera(Mahunka, 1985) (South Africa); 5 – S. compressa(Balogh & Mahunka, 1975) (Australia); 6 – S. fortis (Balogh & Mahunka, 1966) (South Africa); 7 –S. izinyosa HugoCoetzee, 2017 (South Africa); 8 – S. karinae(Mahunka, 1973) (Zimbabwe, South Africa); 9 – S. longisetosa(Balogh & Mahunka, 1975) (Australia); 10 – S. mahunkai(Hammer, 1968) (New Zealand); 11 – S. parrillarensisErmilov, 2019 (Chile); 12 – S. quattuor(Kok, 1967) (South Africa); 13 – S. strinovichi (Balogh, 1982) (Australia); 14 – S. szaboi(Mahunka, 1988) (Tanzania); 15 – S. toroki (Balogh, 1982) (Australia); 16 – S. toxotes (Balogh, 1982) (Australia); 17 – S. tuberosa(Mahunka, 1984) (South Africa); 18 – S. vanga(Mahunka, 1994) (Madagascar); 19 – S. verrucosa(Mahunka, 1985) (South Africa); 20 – S. paraquattuorn. sp. (South Africa).
Figure 1 in Contribution to the knowledge of the oribatid mite genus Setoppia (Acari, Oribatida, Oppiidae), with description of a new species from South Africa
Figure 1 Setoppia paraquattuorn. sp., adult: A – dorsal view (legs omitted); B – ventral view (gnathosoma and legs omitted); C – lateral view (gnathosoma and legs omitted). Scale bar 100 μm.
Figure 2 in Contribution to the knowledge of the oribatid mite genus Setoppia (Acari, Oribatida, Oppiidae), with description of a new species from South Africa
Figure 2 Setoppia paraquattuorn. sp., adult: A – subcapitulum, ventral view; B – palp, left, paraxial view; C – chelicera, left, paraxial view; D – leg I, right, antiaxial view; E – leg II (tarsus omitted), right, antiaxial view; F – leg III (tarsus omitted), left, antiaxial view; G – leg IV, left, antiaxial view. Scale bar 20 μm (A–C), 50 μm (D–G).
Figure 3 in Oribatid mites of conventional and organic vineyards in the Valencian Community, Spain
Figure 3 Detrended correspondence analysis (DCA) in studied plots in El Poble Nou de Benitatxell: Tr – zone between rows driven by a tractor, Vi– zone between vines, Bo – border; 12 most abundant species (withD> 5) are underlined; eigenvalues for axes 1 and 2 are 0.54 and
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