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  • Other Sources  (31)
  • Articles (OceanRep)  (31)
  • GEOMAR Helmholtz Centre for Ocean Research Kiel  (19)
  • Wiley  (7)
  • Christian-Albrechts-Universität zu Kiel  (4)
  • American Meteorological Society
  • Springer Nature
  • 2020-2022  (31)
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  • Other Sources  (31)
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  • Articles (OceanRep)  (31)
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  • 1
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    In:  GEOMAR Helmholtz Centre for Ocean Research Kiel, 1 pp.
    Publication Date: 2020-03-11
    Description: Ponta Delgada - Las Palmas, 06.03. - 09.03.2020
    Type: Report , NonPeerReviewed
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  • 2
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    In:  GEOMAR Helmholtz Centre for Ocean Research Kiel, 1 pp.
    Publication Date: 2020-03-16
    Description: Ponta Delgada - Las Palmas, 10.03. - 16.03.2020
    Type: Report , NonPeerReviewed
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  • 3
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    In:  GEOMAR Helmholtz Centre for Ocean Research Kiel, 5 pp.
    Publication Date: 2020-03-16
    Description: 09.03.-15.03.2020
    Type: Report , NonPeerReviewed
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  • 4
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    In:  GEOMAR Helmholtz Centre for Ocean Research Kiel, 1 pp.
    Publication Date: 2020-03-24
    Description: Ponta Delgada - Las Palmas, 17.03. - 23.03.2020
    Type: Report , NonPeerReviewed
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  • 5
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    In:  GEOMAR Helmholtz Centre for Ocean Research Kiel, 3 pp.
    Publication Date: 2020-04-01
    Description: 23.03.-26.03.2020
    Type: Report , NonPeerReviewed
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  • 6
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    In:  GEOMAR Helmholtz Centre for Ocean Research Kiel, 1 pp.
    Publication Date: 2020-03-30
    Description: Ponta Delgada - Las Palmas, 24. - 30.03.2020
    Type: Report , NonPeerReviewed
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  • 7
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    AGU (American Geophysical Union) | Wiley
    In:  (Submitted) Journal of Geophysical Research: Solid Earth .
    Publication Date: 2021-01-07
    Description: It is generally assumed that seismic activity at volcanoes is closely connected to degassing processes. Intuitively, one would therefore expect a good correlation between degassing rates and seismic amplitude. However, both examples and counterexamples of such a correlation exist. In this study on Villarrica volcano (Chile), we pursued a different approach to relate gas flux and volcanic seismicity using 3 months of SO$_2$ flux rate measurements and 12 days of seismic recordings from early 2012.〈br /> We analyzed the statistical distributions of interevent times between transient seismic waveforms commonly associated with explosions and between peaks in the degassing time series.〈br /> Both event types showed a periodic recurrence with a mode of 20-25 s and around 1 h for transients and degassing, respectively. The normalized interevent times were fitted by almost identical log-normal distributions. Given the actually very different time scales, this similarity potentially indicates a scale-invariant phenomenon. We could reproduce these empirical findings by modelling the occurrence of transients as a renewal process from which the degassing events were derived recursively with increasing probability since the previous degassing event. In this model, the seismic transients could be either produced by degassing processes within the conduit or by gas release at the lava lake surface while the longer intervals of the degassing events may be explained by accumulation of gas either in the magma column or in the juvenile gas plume.〈br /> Additionally, we analyzed volcano-tectonic events, which behaved very differently from the transients. They showed the clustered occurrence of tectonic earthquakes.
    Type: Article , NonPeerReviewed
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  • 8
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    GEOMAR Helmholtz Centre for Ocean Research Kiel
    In:  GEOMAR Helmholtz Centre for Ocean Research Kiel, Kiel, Germany, 3 pp.
    Publication Date: 2020-07-13
    Description: 05.07.-12.07.2020
    Type: Report , NonPeerReviewed
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  • 9
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    Wiley
    In:  In: Bergey's Manual of Systematics of Archaea and Bacteria (BMSAB). , ed. by Brenner, D. J., Krieg, N. R. and Staley, J. T. Wiley, New York, USA, pp. 506-507. ISBN 978-1-118-96060-8
    Publication Date: 2020-11-27
    Description: Proteobacteria Alphaproteobacteria Rhizobiales Hyphomicrobiaceae Blas.to.chlo'ris. Gr. masc. n. blastos bud shoot; Gr. masc. adj. chloros green; N.L. fem. n. Blastochloris green bud shoot. Proteobacteria / Alphaproteobacteria / Rhizobiales / Hyphomicrobiaceae / Blastochloris Blastochloris species are anoxygenic phototrophic Alphaproteobacteria that have bacteriochlorophyll b in their photosynthetic reaction centers. Crystals of the photosynthetic reaction centers of Blastochloris viridis were the first that have been studied in high‐resolution structure analysis at 3 Å resolution. Internal photosynthetic membranes are present as lamellae underlying and parallel to the cytoplasmic membrane. Cells are rod shaped to ovoid and exhibit polar growth, budding, and asymmetric cell division and form rosette‐like cell aggregates. They are motile by means of subpolar flagella and stain Gram‐negative. Straight‐chain monounsaturated C18:1 is the predominant component of cellular fatty acids. Ubiquinones and menaquinones are present, and the lipopolysaccharides are characterized by a 2,3‐diamino‐2,3‐deoxy‐d‐glucose (DAG)‐containing, phosphate‐free lipid A with amide‐bound C14:0 3OH. DNA G + C content (mol%): 63.8–68.3. Type species: Blastochloris viridis (Drews and Giesbrecht 1966) Hiraishi 1997 (Rhodopseudomonas viridis Drews and Giesbrecht 1966).
    Type: Book chapter , NonPeerReviewed
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  • 10
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    Christian-Albrechts-Universität zu Kiel
    In:  Christian-Albrechts-Universität zu Kiel, Kiel, Germany, 2 pp.
    Publication Date: 2021-03-30
    Description: AL552 Erster Wochenbericht (Berichtszeitraum 16.3.-22.3.2021)
    Type: Report , NonPeerReviewed
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