Artigos de revistas sobre o tema "Macrofluidie"
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Veja os 33 melhores artigos de revistas para estudos sobre o assunto "Macrofluidie".
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Gome, Gilad, Ofra Benny, Oded Shoseyov e Jonathan Giron. "Design Principles for Laser-Printed Macrofluidics". Inventions 9, n.º 4 (26 de junho de 2024): 68. http://dx.doi.org/10.3390/inventions9040068.
Texto completo da fonteHuang, A., J. Lew, Y. Xu, Y. C. Tai e C. M. Ho. "Microsensors and Actuators for Macrofluidic Control". IEEE Sensors Journal 4, n.º 4 (agosto de 2004): 494–502. http://dx.doi.org/10.1109/jsen.2004.830949.
Texto completo da fonteForet, František, Vladimíra Datinská, Ivona Voráčová, Jakub Novotný, Pantea Gheibi, Jan Berka e Yann Astier. "Macrofluidic Device for Preparative Concentration Based on Epitachophoresis". Analytical Chemistry 91, n.º 11 (6 de maio de 2019): 7047–53. http://dx.doi.org/10.1021/acs.analchem.8b05860.
Texto completo da fonteBrouzes, Eric, April Carniol, Tomasz Bakowski e Helmut H. Strey. "Precise pooling and dispensing of microfluidic droplets towards micro- to macro-world interfacing". RSC Adv. 4, n.º 73 (2014): 38542–50. http://dx.doi.org/10.1039/c4ra07110g.
Texto completo da fonteGome, Gilad, Benyamin Chak, Shadi Tawil, Dafna Shpatz, Jonathan Giron, Ilan Brajzblat, Chen Weizman, Andrey Grishko, Sharon Schlesinger e Oded Shoseyov. "Cultivation of Bovine Mesenchymal Stem Cells on Plant-Based Scaffolds in a Macrofluidic Single-Use Bioreactor for Cultured Meat". Foods 13, n.º 9 (28 de abril de 2024): 1361. http://dx.doi.org/10.3390/foods13091361.
Texto completo da fonteDzulhelmy bin Amari, Mohamad, Muhamad Saifuddin b. Abdull Shukor e Sukarnur Che Abdullah. "Optimization of Velocity Flap Structures in High Sensitivity Macrofluidic Airflow Sensor". International Journal of Engineering & Technology 7, n.º 4.27 (30 de novembro de 2018): 11. http://dx.doi.org/10.14419/ijet.v7i4.27.22428.
Texto completo da fonteSauter, Claude, Kaouthar Dhouib e Bernard Lorber. "From Macrofluidics to Microfluidics for the Crystallization of Biological Macromolecules†". Crystal Growth & Design 7, n.º 11 (novembro de 2007): 2247–50. http://dx.doi.org/10.1021/cg700955f.
Texto completo da fonteHilfiker, Rolf, Hans-Friedrich Eicke, Simon Geiger e Gaudenz Furler. "Optical studies of critical phenomena in macrofluid-like three-component microemulsions". Journal of Colloid and Interface Science 105, n.º 2 (junho de 1985): 378–87. http://dx.doi.org/10.1016/0021-9797(85)90311-x.
Texto completo da fonteEicke, Hans-Friedrich, Rolf Hilfiker e Harry Thomas. "Probing order phenomena in macrofluids by pulsed electro-optical Kerr effect measurements". Chemical Physics Letters 120, n.º 3 (outubro de 1985): 272–75. http://dx.doi.org/10.1016/0009-2614(85)87056-1.
Texto completo da fonteGiesler, Jasper, Laura Weirauch, Jorg Thöming, Georg R. Pesch e Michael Baune. "Dielectrophoretic Particle Chromatography: From Batch Processing to Semi-Continuous High-Throughput Separation". Powders 3, n.º 1 (6 de fevereiro de 2024): 54–64. http://dx.doi.org/10.3390/powders3010005.
Texto completo da fonteJóhannesson, Haukur, e Bertil Halle. "Solvent diffusion in ordered macrofluids: A stochastic simulation study of the obstruction effect". Journal of Chemical Physics 104, n.º 17 (maio de 1996): 6807–17. http://dx.doi.org/10.1063/1.471347.
Texto completo da fonteÇakal, Gaye Ö., İnci Eroğlu e Saim Özkar. "Simulation of continuous boric acid slurry reactors in series by microfluid and macrofluid models". Journal of Crystal Growth 306, n.º 1 (agosto de 2007): 240–47. http://dx.doi.org/10.1016/j.jcrysgro.2007.04.058.
Texto completo da fonteHilfiker, Rolf, e Hans-Friedrich Eicke. "Self-consistency of the percolation model as applied to a macrofluid-like water-in-oil microemulsion". Journal of the Chemical Society, Faraday Transactions 1: Physical Chemistry in Condensed Phases 83, n.º 5 (1987): 1621. http://dx.doi.org/10.1039/f19878301621.
Texto completo da fonteNorfolk, Laura, Andrea Rawlings, Jonathan Bramble, Katy Ward, Noel Francis, Rachel Waller, Ashley Bailey e Sarah Staniland. "Macrofluidic Coaxial Flow Platforms to Produce Tunable Magnetite Nanoparticles: A Study of the Effect of Reaction Conditions and Biomineralisation Protein Mms6". Nanomaterials 9, n.º 12 (4 de dezembro de 2019): 1729. http://dx.doi.org/10.3390/nano9121729.
Texto completo da fonteTIAN, FEI, WEIDONG SHI e HUA JIANG. "INNER FLOW FIELD OF POOL MIXED BY THREE SUBMERSIBLE MIXERS". Journal of Advanced Manufacturing Systems 11, n.º 02 (dezembro de 2012): 91–97. http://dx.doi.org/10.1142/s0219686712500072.
Texto completo da fonteVass, Sz, T. Gilányi e S. Borbély. "SANS Study of the Structure of Sodium Alkyl Sulfate Micellar Solutions in Terms of the One-Component Macrofluid Model". Journal of Physical Chemistry B 104, n.º 9 (março de 2000): 2073–81. http://dx.doi.org/10.1021/jp9934735.
Texto completo da fonteGeiger, Simon, e Hans-Friedrich Eicke. "The macrofluid concept versus the molecular mixture: A spin-echo-NMR study of the water/aerosol OT/Oil system". Journal of Colloid and Interface Science 110, n.º 1 (março de 1986): 181–87. http://dx.doi.org/10.1016/0021-9797(86)90367-x.
Texto completo da fonteWeislogel, Mark M., J. Alex Baker e Ryan M. Jenson. "Quasi-steady capillarity-driven flows in slender containers with interior edges". Journal of Fluid Mechanics 685 (23 de setembro de 2011): 271–305. http://dx.doi.org/10.1017/jfm.2011.314.
Texto completo da fonteLin, Baobao, Bao Li, Wu Zeng, Yulan Zhao, Huiping Li, Yin Gu e Peng Liu. "Needle‐Plug/Piston‐Based Modular Mesoscopic Design Paradigm Coupled With Microfluidic Device for Point‐of‐Care Pooled Testing". Advanced Science, 13 de setembro de 2024. http://dx.doi.org/10.1002/advs.202406076.
Texto completo da fonteOsawa, Takahiro, Wenchu Wang, Jinlu Dai e Evan T. Keller. "Macrofluidic recirculating model of skeletal metastasis". Scientific Reports 9, n.º 1 (18 de outubro de 2019). http://dx.doi.org/10.1038/s41598-019-50577-3.
Texto completo da fonte"Verification Test of High Flap Macrofluidic Air Flow Sensor in Wind Tunnel". International Journal of Engineering and Advanced Technology 9, n.º 1 (30 de outubro de 2019): 5672–76. http://dx.doi.org/10.35940/ijeat.a3045.109119.
Texto completo da fonteNguyen, Quynh M., Joanna Abouezzi e Leif Ristroph. "Early turbulence and pulsatile flows enhance diodicity of Tesla’s macrofluidic valve". Nature Communications 12, n.º 1 (17 de maio de 2021). http://dx.doi.org/10.1038/s41467-021-23009-y.
Texto completo da fonteNijhuis, Job, Svenja Schmidt, Nam Nghiep Tran e Volker Hessel. "Microfluidics and Macrofluidics in Space: ISS-Proven Fluidic Transport and Handling Concepts". Frontiers in Space Technologies 2 (26 de janeiro de 2022). http://dx.doi.org/10.3389/frspt.2021.779696.
Texto completo da fonteCui, Jingang, Wei Jiang, Jilei Su, Jiazhen Zhang, Yongliang Yu e Yongsheng Ding. "Microfluidic-to-macrofluidic: A simple in vitro model of atherosclerosis induced by fluidic stimulation". Biomicrofluidics 17, n.º 4 (1 de julho de 2023). http://dx.doi.org/10.1063/5.0155267.
Texto completo da fonteLiu, Fangchen, Cyril Deroy e Amy E. Herr. "Microfluidics for macrofluidics: addressing marine-ecosystem challenges in an era of climate change". Lab on a Chip, 2024. http://dx.doi.org/10.1039/d4lc00468j.
Texto completo da fonteKirtane, Ameya R., Christina Karavasili, Aniket Wahane, Dylan Freitas, Katelyn Booz, Dao Thi Hong Le, Tiffany Hua et al. "Development of oil-based gels as versatile drug delivery systems for pediatric applications". Science Advances 8, n.º 21 (27 de maio de 2022). http://dx.doi.org/10.1126/sciadv.abm8478.
Texto completo da fonteCherubini, Marta, Scott Erickson, Prasanna Padmanaban, Per Haberkant, Frank Stein, Violeta Beltran-Sastre e Kristina Haase. "Flow in fetoplacental-like microvessels in vitro enhances perfusion, barrier function, and matrix stability". Science Advances 9, n.º 51 (22 de dezembro de 2023). http://dx.doi.org/10.1126/sciadv.adj8540.
Texto completo da fonteKern, Axelle Y., Yevgeniy Kreinin, Lise Charle, Mark Epshtein, Netanel Korin e Pierre H. Mangin. "A macrofluidic model to investigate the intrinsic thrombogenicity of clinically used stents and develop less thrombogenic stents". Heliyon, fevereiro de 2024, e26550. http://dx.doi.org/10.1016/j.heliyon.2024.e26550.
Texto completo da fonteDeng, Pengwei, Kangli Cui, Yang Shi, Yujuan Zhu, Yaqing Wang, Xiaoguang Shao e Jianhua Qin. "Fluidic Flow Enhances the Differentiation of Placental Trophoblast-Like 3D Tissue from hiPSCs in a Perfused Macrofluidic Device". Frontiers in Bioengineering and Biotechnology 10 (30 de junho de 2022). http://dx.doi.org/10.3389/fbioe.2022.907104.
Texto completo da fonteCho, Youngkyu, Kyuhwan Na, Yesl Jun, Jihee Won, Ji Hun Yang e Seok Chung. "Three-Dimensional In Vitro Lymphangiogenesis Model in Tumor Microenvironment". Frontiers in Bioengineering and Biotechnology 9 (4 de outubro de 2021). http://dx.doi.org/10.3389/fbioe.2021.697657.
Texto completo da fonteCui, Jingang, Wei Jiang, Jilei Su, Jiazhen Zhang, Yongliang Yu e Yongsheng Ding. "Erratum: “Microfluidic-to-macrofluidic: A simple in vitro model of atherosclerosis induced by fluidic stimulation” [Biomicrofluidics 17, 044106 (2023)]". Biomicrofluidics 17, n.º 5 (1 de setembro de 2023). http://dx.doi.org/10.1063/5.0174489.
Texto completo da fontePfützner, Andreas, Hendrick Jensch, Christopher Cardinal, Geetham Srikanthamoorthy, Eric Riehn e Nicole Thomé. "Laboratory Protocol and Pilot Results for Dynamic Interference Testing of Continuous Glucose Monitoring Sensors". Journal of Diabetes Science and Technology, 13 de maio de 2022, 193229682210955. http://dx.doi.org/10.1177/19322968221095573.
Texto completo da fonteSödergren, Simon, Karolina Svensson e Klas Hjort. "Microfluidic active pressure and flow stabiliser". Scientific Reports 11, n.º 1 (18 de novembro de 2021). http://dx.doi.org/10.1038/s41598-021-01865-4.
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