The effect of external flow on 3D orientation of a microscopic sessile suspension feeder, Vorticella convallaria.
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[1] William Thielicke,et al. Particle Image Velocimetry for MATLAB: Accuracy and enhanced algorithms in PIVlab , 2021, Journal of Open Research Software.
[2] Rachel E. Pepper,et al. The effect of external flow on the feeding currents of sessile microorganisms , 2021, Journal of the Royal Society Interface.
[3] R. Holzman,et al. Coral tentacle elasticity promotes an out-of-phase motion that improves mass transfer , 2020, Proceedings of the Royal Society B.
[4] Rachel E. Pepper,et al. Vorticella: A Protozoan for Bio-Inspired Engineering , 2016, Micromachines.
[5] William Thielicke,et al. PIVlab – Towards User-friendly, Affordable and Accurate Digital Particle Image Velocimetry in MATLAB , 2014 .
[6] Rachel E. Pepper,et al. A new angle on microscopic suspension feeders near boundaries. , 2013, Biophysical journal.
[7] P. Madoni. Protozoa in wastewater treatment processes: A minireview , 2011 .
[8] F. Shakoori,et al. Resistance and uptake of heavy metals by Vorticella microstoma and its potential use in industrial wastewater treatment , 2010 .
[9] Rachel E. Pepper,et al. Nearby boundaries create eddies near microscopic filter feeders , 2010, Journal of The Royal Society Interface.
[10] H. Arndt,et al. Detachment and motility of surface-associated ciliates at increased flow velocities , 2009 .
[11] Hiroyuki Fujita,et al. Three-dimensional two-component velocity measurement of the flow field induced by the Vorticella picta microorganism using a confocal microparticle image velocimetry technique. , 2009, Biomicrofluidics.
[12] T. Oki,et al. The implications of projected climate change for freshwater resources and their management , 2008 .
[13] H. Arndt,et al. Effects of microcurrents in the boundary layer on the attachment of benthic heterotrophic nanoflagellates , 2007 .
[14] P. Jonsson,et al. Attachment to suspended particles may improve foraging and reduce predation risk for tintinnid ciliates , 2004 .
[15] E. Cleven. Seasonal and spatial distribution of ciliates in the sandy hyporheic zone of a lowland stream , 2004 .
[16] M. Chaoui,et al. Creeping flow around a sphere in a shear flow close to a wall , 2003 .
[17] H. Lemmer,et al. On the dynamics and function of ciliates in sequencing batch biofilm reactors. , 2003, Water science and technology : a journal of the International Association on Water Pollution Research.
[18] V. Starczak,et al. Influences of benthic boundary‐layer flow on feeding rates of ciliates and flagellates at the sediment‐water interface , 2001 .
[19] D. Grünbaum,et al. A model of feeding currents in encrusting bryozoans shows interference between zooids within a colony , 1995 .
[20] A. Alldredge,et al. In situ settling behavior of marine snow1 , 1988 .
[21] M. Sleigh,et al. COLLECTION OF FOOD BY VORTICELLA1 , 1976 .
[22] T. Reynoldson,et al. Vorticella as an Indicator Organism for Activated Sludge , 1942, Nature.
[23] K. Küsel,et al. Colonization dynamics of biofilm-associated ciliate morphotypes at different flow velocities. , 2009, European journal of protistology.
[24] A. Delgado,et al. Analysis of the flow field induced by the sessile peritrichous ciliate Opercularia asymmetrica. , 2007, Journal of biomechanics.
[25] H. E. Buhse,et al. Evidence for a Signal Transduction System Initiating Stalk Excision in Vorticella convallaria , 2003 .
[26] E. J. Vacchiano,et al. A novel method for mass-culturing Vorticella , 1991 .
[27] J. G. Field,et al. The Ecological Role of Water-Column Microbes in the Sea* , 1983 .