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  • 1
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    Naturalis Biodiversity Center
    In:  Blumea: Biodiversity, Evolution and Biogeography of Plants vol. 64 no. 2, pp. 183-185
    Publication Date: 2024-06-25
    Description: Schisandra cauliflora, a new species found in northern Vietnam and described here is referable to Schisandra subg. Sphaerostema. A morphological comparison with related species, and a key to species in the subgenus is provided.Adescription including details of distribution and habitat is supplemented with a line-drawing.
    Keywords: Plant Science ; Ecology ; Evolution ; Behavior and Systematics ; northern Vietnam ; Schisandra ; Schisandra cauliflora ; Schisandraceae ; Sphaerostema
    Repository Name: National Museum of Natural History, Netherlands
    Type: info:eu-repo/semantics/article
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  • 2
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    Naturalis Biodiversity Center
    In:  Blumea: Biodiversity, Evolution and Biogeography of Plants vol. 64 no. 2, pp. 190-193
    Publication Date: 2024-06-25
    Description: Anadendrum chlorospathum is described as a new species from Central Vietnam, unique in the genus by a glossy medium green spathe, flowers in which the perigone is shorter than the gynoecium, and having anthers longer at anthesis than the filaments.
    Keywords: Plant Science ; Ecology ; Evolution ; Behavior and Systematics ; Anadendrum chlorospathum ; Gia Lai ; Indochina ; new species ; Vietnam
    Repository Name: National Museum of Natural History, Netherlands
    Type: info:eu-repo/semantics/article
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  • 3
    Publication Date: 2024-06-25
    Description: Empogona jenniferae is described from the upper quartzitic slopes of Mt Chimanimani on both sides of the Zimbabwe-Mozambique border, a prospective Tropical Important Plant Area. Its conservation status is assessed as Critically Endangered under the 2012 IUCN criteria. A figure and notes on the endemic plant species of Chimanimani are provided. Two additional names in Empogona, E. congesta and E. congesta subsp. chasei are published.
    Keywords: conservation ; new combinations ; TIPA ; Tricalysia ; Tropical Important Plant Area
    Repository Name: National Museum of Natural History, Netherlands
    Type: info:eu-repo/semantics/article
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  • 4
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    In:  Blumea: Biodiversity, Evolution and Biogeography of Plants vol. 64, pp. 92-95
    Publication Date: 2024-06-25
    Description: In order to recognise both taxa previously regarded as varieties of Heliotropium baclei, nowadays classified in Euploca, a new combination is necessary. As the two varieties are clearly separable in terms of morphology and biogeography, we propose to raise these varieties to the species level, for which the new combination Euploca katangensis needs to be created. Moreover, we propose the new combination Euploca madagascariensis for Heliotropium madagascariense, a species from Madagascar considered by some as conspecific with H. baclei, but treated here as distinct. For these three species with beaked fruits, constituting the ‘Euploca baclei complex’, a key and a distribution map, based on revised herbarium specimens, is given. Two additional combinations, Euploca bullockii and Euploca sessilistigma are made to complete the transfer of tropical African Heliotropium species that belong in Euploca.
    Keywords: Africa ; biogeography ; Boraginaceae ; endozoochory ; Euploca ; Heliotropiaceae ; Heliotropium ; key ; map
    Repository Name: National Museum of Natural History, Netherlands
    Type: info:eu-repo/semantics/article
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  • 5
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    Naturalis Biodiversity Center
    In:  Blumea: Biodiversity, Evolution and Biogeography of Plants vol. 64 no. 3, pp. 231-252
    Publication Date: 2024-06-25
    Description: Within the morphologically diverse pantropical genus Phyllanthus, many subgenera, sections and subsections are recognized. While most taxonomic revisions often focus on local floras, closely related and often resembling species are not always treated in full. Subgenus Macraea is here revised for the first time over its whole distribution, including an identification key and descriptions of its species with distributions, ecology, uses and vernacular names. The currently acknowledged varieties of Phyllanthus distichus are rejected due to inadequate morphological differences. Phyllanthus panayensis is synonymized with P. lancifolius. Phyllanthus alpestris has now become a variety of P. glaucophyllus because of the resemblance in morphology and distribution. The species complex around Phyllanthus virgatus remains taxonomically difficult, but Phyllanthus virgatus var. gardnerianus and Phyllanthus virgatus var. hirtellus are here recognized on the species level as P. gardnerianus, stat nov. and P. tararae, stat & nom. nov. A new species from the Philippines, Phyllanthus ridsdalei, is described
    Keywords: Plant Science ; Ecology ; Evolution ; Behavior and Systematics ; Euphorbiaceae ; Macraea ; new species ; Phyllanthaceae ; Phyllanthus ; revision ; species descriptions ; taxonomy
    Repository Name: National Museum of Natural History, Netherlands
    Type: info:eu-repo/semantics/article
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  • 6
    Publication Date: 2024-06-25
    Keywords: ARK-XIV/2; ARK-XIX/4b; ARK-XV/3; ARK-XVI/2; ARK-XVII/1; ARK-XVIII/1; ARK-XX/2; ARK-XXI/1b; ARK-XXIII/2; ARK-XXIV/1; ARK-XXV/1; ARK-XXV/2; ARK-XXVI/1; AWI_PhyOce; F10-1; F10-10; F10-11; F10-2; F10-3; F10-4; F10-5; F10-6; F10-7; F10-9; F11-2; F11-3; F15-1; F15-2; F15-3; F15-4; F15-5; F15-6; F15-7; F15-8; F16-1; F16-2; F16-3; F16-4; F16-5; F16-6; F16-7; F16-8; F5-1; F5-10; F5-11; F5-12; F5-13; F5-14; F5-2; F5-3; F5-4; F5-5; F5-6; F5-7; F5-8; F5-9; F6-1; F6-10; F6-11; F6-12; F6-13; F6-14; F6-15; F6-2; F6-3; F6-4; F6-5; F6-6; F6-7; F6-8; F6-9; F7-1; F7-10; F7-11; F7-2; F7-3; F7-4; F7-5; F7-6; F7-7; F7-8; F7-9; F8-1; F8-10; F8-11; F8-12; F8-2; F8-3; F8-4; F8-5; F8-6; F8-7; F8-8; F8-9; F9-1; F9-10; F9-2; F9-3; F9-4; F9-5; F9-6; F9-7; F9-8; F9-9; LA07/9; LA97/2; Lance; Maria S. Merian; Mooring (long time); MOORY; MSM02/4; North Greenland Sea; Physical Oceanography @ AWI; Polarstern; PS52; PS55; PS57; PS59; PS62; PS64; PS66; PS68; PS72; PS74; PS76; PS78
    Type: Dataset
    Format: 90 datasets
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  • 7
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    PANGAEA
    In:  Supplement to: Ho, Sze Ling; Laepple, Thomas (2016): Flat meridional temperature gradient in the early Eocene in the subsurface rather than surface ocean. Nature Geoscience, https://doi.org/10.1038/ngeo2763
    Publication Date: 2024-06-25
    Description: This dataset contains the collection of available published paired Uk'37 and Tex86 records spanning multi-millennial to multi-million year time scales, as well as a collection of Mg/Ca-derived temperatures measured in parallel on surface and subsurface dwelling foraminifera, both used in the analyses of Ho and Laepple, Nature Geoscience 2016. As the signal-to-noise ratios of proxy-derived Holocene temperatures are relatively low, we selected records that contain at least the last deglaciation (oldest sample 〉18kyr BP).
    Keywords: 130-806; 138-850; 145-882; 161-977A; 165-999A; 175-1085; 184-1143; 184-1146; 184-1147; 202-1239; 202-1240; 202-1241; 202-1241C; 293G; 313; 64PE-174P13; 77; Alboran Sea; Arabian Sea; AUSCAN; AWI_PerDyn; Benguela Current, South Atlantic Ocean; CALYPSO; CALYPSO2; Calypso Corer; Calypso Corer II; Caribbean Sea; CD129; Charles Darwin; COMPCORE; Composite Core; DRILL; Drilling/drill rig; Eastern Mediterranean, Continental slope off Israel; Elevation of event; Equatorial East Pacific; Event label; GC; GeoB10038-4; GeoB12610-2; GeoB7702-3; GeoB7926-2; GeoB9528-3; GEOSCIENCES, MARMARCORE; Giant piston corer; GPC; Gravity corer; Gravity corer (Kiel type); Guaymas Basin; IMAGES III - IPHIS; IMAGES IV-IPHIS III; IMAGES VIII - MONA; IMAGES VII - WEPAMA; IMAGES XII - MARCO POLO; IMAGES XIV - MARCO POLO 2; Joides Resolution; KAL; Kasten corer; KL-74, AS-12; Latitude of event; Leg130; Leg138; Leg145; Leg161; Leg165; Leg175; Leg184; Leg202; Longitude of event; M52/2; M53/1; M65/1; M75/2; M75/2_97-2; Marion Dufresne (1995); MD012378; MD01-2378; MD012390; MD01-2390; MD01-2461; MD022515; MD02-2515; MD032607; MD03-2607; MD052904; MD05-2904; MD06-3067; MD104; MD106; MD111; MD122; MD123; MD126; MD131; MD147; MD155; MD96-2048; MD972146; MD97-2146; MD972151; MD97-2151; MD982195; MD98-2195; Meteor (1986); Method comment; Mindanao; NIOP-C2; NIOP-C2_905_PC; North Pacific Ocean; North-West African margin; PABESIA; PC; PEGASE; Pemba Channel; Permafrost Research (Periglacial Dynamics) @ AWI; Persistent Identifier; Piston corer; Professor Logachev; Reference/source; SL; SO184/1; SO18460; SO185; SO213/2; SO213/2_59-2; SO42; SO42-74KL; Sonne; SOPATRA; South China Sea; Southern Ocean; South Pacific Ocean; Species; SW Indian Ocean; Timor Sea; TTR-12_293G; TTR-12/3; Tyro; V12; V12-107; Vema; VITAL; Walvis Ridge; WIND; WIND-28K
    Type: Dataset
    Format: text/tab-separated-values, 159 data points
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  • 8
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    PANGAEA
    In:  Supplement to: Leinen, Margaret W; Stakes, Debra S (1979): Metal accumulation rates in the central equatorial Pacific during Cenozoic time. Geological Society of America Bulletin, 90(4), 357-375, https://doi.org/10.1130/0016-7606(1979)90%3C357:MARITC%3E2.0.CO;2
    Publication Date: 2024-06-25
    Description: Accumulation rates of Mg, Al, Si, Mn, Fe, Ni, Cu, Zn, opal, and calcium carbonate have been calculated from their concentrations in samples from equatorial Deep Sea Drilling Project sites. Maps of element accumulation rates and of Q-mode factors derived from raw data indicate that the flux of trace metals to equatorial Pacific sediments has varied markedly through time and space in response to changes in the relative and absolute influence of several depositional influences: biogenic, detrital, authigenic, and hydrothermal sedimentation. Biologically derived material dominates the sediment of the equatorial Pacific. The distributions of Cu and Zn are most influenced by surface-water biological activity, but Ni, Al, Fe, and Mn are also incorporated into biological material. All of these elements have equatorial accumulation maxima similar to those of opal and calcium carbonate at times during the past 50 m.y. Detritus distributed by trade winds and equatorial surface circulation contributes Al, non-biogenic Si, Fe, and Mg to the region. Detrital sediment is most important in areas with a small supply of biogenic debris and low bulk-accumulation rates. Al accumulation generally increases toward the north and east, indicating its continental source and distribution by the northeast trade winds. Maxima in biological productivity during middle Eocene and latest Miocene to early Pliocene time and concomitant well-developed surface circulation contributed toward temporal maxima in the accumulation rates of Cu, Zn, Ni, and Al in sediments of those ages. Authigenic material is also important only where bulk-sediment accumulation rates are low. Ni, Cu, Zn, and sometimes Mn are associated with this sediment. Fe is almost entirely of hydrothermal origin. Mn is primarily hydrothermal, but some is probably scavenged from sea water by amorphous iron hydroxide floes along with other elements concentrated in hydrothermal sediments, Ni, Cu, and Zn. During the past 50 m.y. all of these elements accumulated over the East Pacific Rise at rates nearly an order of magnitude higher than those at non-rise-crest sites. In addition, factor analysis indicates that some of this material is carried substantial distances to the west of the rise crest. Accumulation rates of Fe in basal metalliferous sediments indicate that the hydrothermal activity that supplied amorphous Fe oxides to the East Pacific Rise areas was most intense during middle Eocene and late Miocene to early Pliocene time.
    Keywords: 16-159; 16-160; 16-161; 16-162; 16-163; 5-42; 8-69; 8-70; 8-71; 8-72; 8-73; 8-74; 8-75; 9-77; 9-78; 9-79; 9-80; 9-81; 9-82; 9-83; Deep Sea Drilling Project; DRILL; Drilling/drill rig; DSDP; Glomar Challenger; Leg16; Leg5; Leg8; Leg9; North Pacific; North Pacific/BASIN; North Pacific/CONT RISE; North Pacific/HILL; North Pacific/PLAIN; North Pacific/VALLEY; South Pacific; South Pacific/BASIN; South Pacific/CONT RISE; South Pacific/VALLEY
    Type: Dataset
    Format: application/zip, 41 datasets
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  • 9
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    PANGAEA
    In:  Supplement to: Keigwin, Lloyd D (1979): Late Cenozoic stable isotope stratigraphy and paleoceanography of DSDP sites from the east equatorial and central north Pacific Ocean. Earth and Planetary Science Letters, 45(2), 361-382, https://doi.org/10.1016/0012-821X(79)90137-7
    Publication Date: 2024-06-25
    Description: Stable isotopic analyses of Middle Miocene to Quaternary foraminiferal calcite from east equatorial and central north Pacific DSDP cores have provided much new informatlon on the paleoceanography of the Pacific Neogene The history of delta18O change in planktonic foraminifera reflects the changing Isotopic composition and temperature of seawater at the time of test formation. Changes in the isotopic composition of benthonic foraminifera largely reflect changes m the volume of continental ice. Isotopic data from these cores indicates the following sequence of events related to continental glaciation (1) A permanent Antarctic ice sheet developed late in the Middle Miocene (about 13 to 11.5 m.y. ago) (2) The Late Miocene (about 11.5 to 5 m.y. ago) is marked by significant variation in delta18O of about 0.5‰ throughout, indicating instability of Antarctic ice cap size or bottom-water temperatures (3) The early Pliocene (5 to about 3 m.y. ago) was a time of relative stability in ice volume and bottom-water temperature (4) Growth of permanent Northern Hemisphere ice sheets is referred to have begun about 3 m.y. ago (5) The late Pliocene (3 to about 1.8 m.y. ago) is marked by one major glaciation or bottom-water cooling dated between about 2.1 to 2.3 m.y. (6) There is some evidence that the frequency of glacial-interglacial cycles increased at about 0.9 m.y. There is significant variation in delta13C at these sites but no geochemical interpretation is offered in this paper. The most outstanding feature of delta13C results is a permanent shift of about -0.8‰ found at about 6.5 m.y. in east equatorial and central north Pacific benthonic foraminifera. This benthonic carbon shift may form a useful marker in deep-sea cores recovering Late Miocene carbonates.
    Keywords: 16-157; 16-158; 32-310; Deep Sea Drilling Project; DRILL; Drilling/drill rig; DSDP; Glomar Challenger; Leg16; Leg32; North Pacific/CONT RISE; North Pacific/RIDGE; South Pacific/RIDGE
    Type: Dataset
    Format: application/zip, 5 datasets
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  • 10
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    PANGAEA
    In:  Supplement to: Kolodny, Yehoshua; Epstein, Samuel (1976): Stable isotope geochemistry of deep sea cherts. Geochimica et Cosmochimica Acta, 40(10), 1195-1209, https://doi.org/10.1016/0016-7037(76)90155-1
    Publication Date: 2024-06-25
    Description: Seventy four samples of DSDP recovered cherts of Jurassic to Miocene age from varying locations, and 27 samples of on-land exposed cherts were analyzed for the isotopic composition of their oxygen and hydrogen. These studies were accompanied by mineralogical analyses and some isotopic analyses of the coexisting carbonates. d18O of chert ranges between 27 and 39%. relative to SMOW, d18O of porcellanite - between 30 and 42%. The consistent enrichment of opal-CT in porcellanites in 18O with respect to coexisting microcrystalline quartz in chert is probably a reflection of a different temperature (depth) of diagenesis of the two phases. d18O of deep sea cherts generally decrease with increasing age, indicating an overall cpoling of the ocean bottom during the last 150 m.y. A comparison of this trend with that recorded by benthonic foraminifera (Douglas and Savin, 1975; http://www.deepseadrilling.org/32/volume/dsdp32_15.pdf) indicates the possibility of d18O in deep sea cherts not being frozen in until several tens of millions of years after deposition. Cherts of any Age show a spread of d18O values, increasing diagenesis being reflected in a lowering of d18O. Drusy quartz has the lowest d18O values. On-land exposed cherts are consistently depleted in 18O in comparison to their deep sea time equivalent cherts. Water extracted from deep sea cherts ranges between 0.5 and 1.4 wt %. dD of this water ranges between -78 and -95%. and is not a function of d18O of the cherts (or the temperature of their formation).
    Keywords: 11-100; 11-99A; 14-138; 14-140; 16-157; 16-158; 16-163; 17-164; 17-165A; 17-166; 17-167; 17-169; 17-171; 20-195; 20-195B; 20-196; 2-12B; 3-13A; 6-49; 6-50; 6-52; 7-62; 7-65; Deep Sea Drilling Project; DRILL; Drilling/drill rig; DSDP; Glomar Challenger; Leg11; Leg14; Leg16; Leg17; Leg2; Leg20; Leg3; Leg6; Leg7; North Atlantic/BASIN; North Atlantic/CHANNEL; North Atlantic/CONT RISE; North Pacific; North Pacific/ABYSSAL FLOOR; North Pacific/BASIN; North Pacific/CONT RISE; North Pacific/GUYOT; North Pacific/PLAIN; North Pacific/RIDGE; South Pacific/RIDGE
    Type: Dataset
    Format: application/zip, 4 datasets
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