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Figure 2 A-G in A new species of Halopteris (Hydrozoa: Leptothecata) and redescription of Plumularia rotunda from Victoria, Australia
Figure 2 A-G. Plumularia rotunda (NMV F207643) from Barwon Heads. A, stem. B, stem internode and hydrothecae, C, hydrotheca, ventral view. D, hydrotheca, lateral view showing deep submarginal ridge. E,Plumularia rotunda, hydrotheca of (NMV F57984) lectotype of Plumularia delicatula var. rotunda Mulder and Trebilcock, 1911 for comparison with D. F cauline internode, and axillar nematotheca of (NMV F207643). G, cauline nematotheca of (NMV F207643). Scale bar: A, 1.0 mm; B, 0.5 mm; C-G, 0.2 mm.
Figure 3 A-D in A new species of Halopteris (Hydrozoa: Leptothecata) and redescription of Plumularia rotunda from Victoria, Australia
Figure 3 A-D. Plumularia wilsoni. (A-C, from Robe, South Australia, author's collection). A, stem internodes with hydrotheca. B, hydrocladium and hydrotheca. C, male gonotheca.. D, hydrotheca of lectotype (NMV F59050). Scale bar: A, B, D, 0.2 mm; C, 1.0 mm.
Figure 2 in C. H. McLennan ('Mallee Bird') and his Aboriginal informant Jowley: The source of early records of the Night Parrot Pezoporus occidentalis in Victoria?
Figure 2. Participants at a reception held for Gregory Mathews by the 1914 RAOU Council at Melbourne's Royal Botanic Gardens on 10 March 1914. From left to right the participants are: Dr J. Leach, L. Chandler, C. McLennan, C. Barrett, A.J. Campbell, D. Le Souef, T. Tregellas, Z. Grey and G. Mathews.
Figure 4 in A late Miocene record of the echinoid Maretia (Echinoidea, Spatangoida) from Victoria, Australia.
Figure 4. Generalised map of the Indo-Pacific Region showing localities where fossil specimens attributable to Maretia have been found (•).
Figure 2 in A late Miocene record of the echinoid Maretia (Echinoidea, Spatangoida) from Victoria, Australia.
Figure 2. Maretia sp. aff. planulata (Lamarck, 1816): A-C, adapical, adoral, left lateral and posterior views of NMV P324333; D, E, adapical and adoral views, and F, aboral ambulacrum V detail of NMV P324332, both specimens from the late Miocene, Tambo River Formation, Swan Reach, Victoria. G-I, adapical, adoral, left lateral and posterior views of extant specimen of Maretia planulata from the Philippines. Scale bar 10 mm unless otherwise stated.
Figure 1A-F in A new species of Halopteris (Hydrozoa: Leptothecata) and redescription of Plumularia rotunda from Victoria, Australia
Figure 1A-F. Halopteris urceolata sp. nov. A, part of stem of holotype colony (NMV F207310) showing secondary branching. B, branched hydrocladium. C, median inferior nematotheca. D, twin lateral nematothecae. E, cauline nematotheca. F, microbasic eurytele. Scale bar: A, 1.0 mm; B, 0.3 mm; C-E, 0.1 mm; F, 10 µm.
Figure 1. A, B in A late Miocene record of the echinoid Maretia (Echinoidea, Spatangoida) from Victoria, Australia.
Figure 1. A, B, general location maps; C, map of East Gippsland, Victoria, from Bairnsdale to Lakes Entrance, showing locality NMV PL3110 at Swan Reach.
Figure 3 in A late Miocene record of the echinoid Maretia (Echinoidea, Spatangoida) from Victoria, Australia.
Figure 3. Maretia sp. aff. planulata (Lamarck, 1816): A, adapical view of NMV P324337 recording presence of four gonopores; B, partial adoral view of NMV P324338 showing phyllodes and small tubercules at termination of interambulacra with peristome; C, partial adapical view of NMV P324332 showing interambulacra 1 and ambulacrun I and II; D, E, adoral view and labrum detail of NMV P324336; F, adapical view of NMV P324331; G, partial adoral view of NMV P324332 showing an indistinct section of subanal fasciole crossing episternal plates; H, partial posterior view of NMV P324333 with re-entrant section of subanal fasciole adjoining the periproct. Specimens from the late Miocene, Tambo River Formation, Swan Reach, Victoria. Scale bar 10 mm unless otherwise stated.
Figure 9 in Population biology of the ghost shrimps, Trypaea australiensis and Biffarius arenosus (Decapoda: Thalassinidea), in Western Port, Victoria.
Figure 9. Relationships between embryo volume (mm3) and body size (CL3 = carapace length3) for females of Trypaea australiensis and Biffarius arenosus. Embryos were from females collected from March 2006 to May 2007 at Warneet and Crib Point, Western Port.
Figure 8 in Population biology of the ghost shrimps, Trypaea australiensis and Biffarius arenosus (Decapoda: Thalassinidea), in Western Port, Victoria.
Figure 8. Carapace length (CL) size frequency distributions for Biffarius arenosus collected at Crib Point, Western Port in 2006-2007. Non-ovigerous females are shown by black bars, ovigerous females by grey bars and males by open bars (n = number of shrimp collected). Individuals are grouped into size classes by rounding to the closest mm from two decimal places. Arrows show mean CL for cohorts as calculated in FISAT II.
Figure 7 in Population biology of the ghost shrimps, Trypaea australiensis and Biffarius arenosus (Decapoda: Thalassinidea), in Western Port, Victoria.
Figure 7. Carapace length (CL) size frequency distributions for Biffarius arenosus collected at Warneet, Western Port in 2006-2007. Non-ovigerous females are shown by black bars, ovigerous females by grey bars and males by open bars (n = number of shrimp collected). Individuals are grouped into size classes by rounding to the closest mm from two decimal places. Arrows indicate mean CL of cohorts calculated in FISAT II.
Figure 5 in Population biology of the ghost shrimps, Trypaea australiensis and Biffarius arenosus (Decapoda: Thalassinidea), in Western Port, Victoria.
Figure 5. Proportion of ovigerous females for April 2004 to March 2005 (a. Trypaea australiensis, b Biffarius arenosus) and March 2006 to May 2007 (c. T. australiensis, d. B. arenosus) at Warneet, Western Point. Proportion of ovigerous females for April 2006, October 2006 - February 2007 and April 2007 (e. T. australiensis, f. B. arenosus) at Crib Point, Western Port. Solid line is total proportions of ovigerous females, triangles with dashed line is proportion of ovigerous females with uneyed embryos and squares with dashed line is proportion of ovigerous females with eyed embryos.
Figure 4 in Population biology of the ghost shrimps, Trypaea australiensis and Biffarius arenosus (Decapoda: Thalassinidea), in Western Port, Victoria.
Figure 4. Carapace length (CL) size frequency distributions for Trypaea australiensis collected at Crib Point, Western Port in 2006-2007. Nonovigerous females are shown by black bars, ovigerous females by grey bars and males by open bars (n = number of shrimp collected). Individuals are grouped into size classes by rounding to the closest mm from two decimal places. Arrows show mean CL of the cohorts using FISAT II.
Figure 2 in Population biology of the ghost shrimps, Trypaea australiensis and Biffarius arenosus (Decapoda: Thalassinidea), in Western Port, Victoria.
Figure 2. Carapace length (CL) size frequency distributions for Trypaea australiensis collected at Warneet, Western Port in 2004-2005. Non-ovigerous females are shown by black bars, ovigerous females by grey bars and males by open bars (n = number of shrimp collected). Individuals are grouped into size classes by rounding to the closest mm from two decimal places. Arrows show mean CL length of the cohorts identified using FISAT II
Figure 3 in Population biology of the ghost shrimps, Trypaea australiensis and Biffarius arenosus (Decapoda: Thalassinidea), in Western Port, Victoria.
Figure 3. Carapace length (CL) size frequency distributions for Trypaea australiensis collected at Warneet, Western Port in 2006-2007. Non-ovigerous females are shown by black bars, ovigerous females by grey bars and males by open bars (n = number of shrimp collected). Individuals are grouped into size classes by rounding to the closest mm from two decimal places. Arrows show the mean CL length of cohorts identified using FISAT II.
Figure 17. A, C in Early Silurian phacopide trilobites from central Victoria, Australia
Figure 17. A, C, Struveria sp. 2, from PL206, Wallan. A, NMV P138209, pygidium, × 2. C, NMV P139337, cranidium, × 5.5. B, Dalmanitidae indet., NMV P127957, partial view of incomplete thorax, × 0.9, from old Costerfield Antimony Mine, Costerfield. D–F, Bessazoon sp. D, NMV P147769, pygidium (fragment), × 1.8, from PL256, Wallan. E, NMV P312817, cranidium (fragment), × 2.2, from PL6361, Springfield. F, NMV P147770, pygidium (fragment), × 2.4, from PL256, Wallan.
Figure 14 in Early Silurian phacopide trilobites from central Victoria, Australia
Figure 14. Bessazoon sp. A, NMV P139479, pygidium, × 2, from ʻLancefieldʼ. B, NMV P139481, pygidium, × 3.5, from ʻLancefieldʼ. C, NMV P139475, pygidium, from ʻLancefieldʼ. D, NMV P139474, pygidium, × 2.5, from ʻLancefieldʼ. E, NMV P139477, pygidium with doublure exposed, × 6, from ʻLancefieldʼ. F, NMV P139471, crushed cephalon, × 2, from ʻLancefieldʼ. G, NMV P139427, hypostome, × 3, from PL1452, Lancefield. H, J, NMV P139438, pygidium, from PL1452, Lancefield; H, enlargement of anterolateral region showing granular sculpture, × 8; J, × 2. I, NMV P139439, crushed cephalic doublure, × 1.9, from PL1452, Lancefield. K, thoracic segment, enlargement showing granulose ornament on pleural tip, × 8, from ʻLancefieldʼ. L, NMV P139470, fragment of cephalon, × 3, from ʻLancefieldʼ. M, NMV P139473, pygidium, × 2, from ʻLancefieldʼ. (E–F are internal moulds).
Figure 13. A–K in Early Silurian phacopide trilobites from central Victoria, Australia
Figure 13. A–K, Dalmanites athamas Öpik, 1953. A, NMV P138215, thoracopygon, × 1.5, from the ʻIllaenus bandʼ, Costerfield. B, NMV P138219, pygidium, × 3.5, from PL2269, Costerfield. C, paratype NMV P52485, cranidium, × 2, from PL2262, Costerfield. D, G, NMV P138217, pygidium, × 2, from PL389, Costerfield. E, paratype NMV P52486, cranidium, × 2, from PL2269, Costerfield. F, NMV P138218 pygidium, × 2, from PL2269, Costerfield. H, holotype NMV P52484, pygidium, × 1.5, from PL2262, Costerfield. I, NMV P138223, thorax, enlargement showing granulation, from PL2269, Costerfield. J, NMV P139805, teratological pygidium, × 2, from PL386, Costerfield. K, NMV P52482, incomplete fixigena, holotype of ʻDalmanitina (Eudolatites) aborigenumʼ Öpik, 1953, × 2, from PL2269, Costerfield. L, Struveria sp. 2, NMV P52483, pygidium, paratype of ʻDalmanitina (Eudolatites) aborigenumʼ Öpik, 1953, × 3, from PL2269, Costerfield. (B, D are latex casts)
Figure 11 in Early Silurian phacopide trilobites from central Victoria, Australia
Figure 11. Ivops wallanensis gen. et sp. nov., from PL206, Wallan. A, G, paratype NMV P138230, dorsal exoskeleton; A, × 4.3; G, × 3.2. B, F, J, L, paratype NMV P139324, exoskeleton with displaced pygidium; B, view of pygidium, × 6.5; F, view of cephalon, × 3.8; J, view of pygidium, × 5.4; L, view of cephalic doublure, × 3.8. C, E, holotype NMV P139323, enrolled exoskeleton, view of cephalon, × 3.8. D, paratype NMV P139325, cephalon, × 3.8. H–I, K, paratype NMV P139328, partly enrolled exoskeleton, view of cephalon, × 4.3. (A, C–F, J–K are internal moulds).
Figure 10. A, D, I in Early Silurian phacopide trilobites from central Victoria, Australia
Figure 10. A, D, I, Ananaspis sp. 1 from PL1338, Wallan. A, D, NMV P139354, cranidium, × 6.5. I, NMV P139356 cephalon (fragment), enlargement of eye, × 9. B–C, Ananaspis sp. 2, NMV P136142, damaged cephalothorax, from PL1371, Coburg; B, × 1.4; C, × 1.2. E–G, J, Ananaspis typhlagogus? (Öpik, 1953), NMV P147055, cephalon (crushed) from PL206, Wallan; E–G, × 3; J, × 2.5. H, Ivops wallanensis gen. et sp. nov., paratype NMV P139326, thoracopygon, × 3, from PL206, Wallan. K, Phacopidae gen. indet. 3, NMV P312077, partly disarticulated thoracopygon, × 4.5, from PL1369, Springfield. (A, C, E–H, J–K are internal moulds).
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