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  1. A Bayesian catalog of 100 high-significance voids in the Local Universe
    2025/07/09 by Rosa Malandrino, R Malandrino, Guilhem Lavaux +9 · 1 voice · 2 citations
    Earth and Planetary Sciences · Physics and Astronomy · #Astronomy and Astrophysical Research #Bayesian probability #COSMIC cancer database #Cluster analysis #Galaxy #Geophysics and Gravity Measurements #History and Developments in Astronomy #Posterior probability #Probability distribution #Sky #Universe #Void (composites)
  2. Predicting efficiency of solar cells based on transparent conducting electrodes
    2017/01/03 by Ankush Kumar · 1 citation
    Engineering · #Nanowire Synthesis and Applications #Thin-Film Transistor Technologies #Nanomaterials and Printing Technologies #Solar cell #Materials science #Transmittance #Optoelectronics #Electrode #Solar cell efficiency #Theory of solar cells #Energy conversion efficiency #Electrical conductor #Void (composites) #Composite material #Physics
  3. Mercury CSD 2.0– new features for the visualization and investigation of crystal structures
    2008/03/08 by Clare F. Macrae, Ian Bruno, Ian J. Bruno +10 · 54 citations
    Chemistry · Materials Science · #Chemistry #Computer science #Crystal structure #Crystallization and Solubility Studies #Crystallography #Crystallography and molecular interactions #Data mining #Intermolecular force #Materials science #Mercury (programming language) #Molecule #Nanotechnology #Organic chemistry #Programming language #Visualization #Void (composites) #X-ray Diffraction in Crystallography
  4. A process to make massive ice in the martian regolith using long-term diffusion and thermal cracking
    2005/09/22 by D FISHER, D. Jerome Fisher · 7 citations
    Physics and Astronomy · #Arctic ice pack #Astro and Planetary Science #Astrobiology #Composite material #Cracking #Geology #Mars Exploration Program #Martian #Materials science #Mineralogy #Planetary Science and Exploration #Porosity #Regolith #Scientific Research and Discoveries #Sea ice #Sea ice growth processes #Thermal #Thermal diffusivity #Thermodynamics #Void (composites)
  5. Water: cavity size distribution and hydrogen bonds
    2004/09/10 by Giuseppe Graziano · 5 citations
    Chemistry · Physics and Astronomy · #Advanced Chemical Physics Studies #Atomic physics #Chemical physics #Chemistry #Computational chemistry #Group (periodic table) #Hydrogen #Hydrogen atom #Hydrogen bond #Materials science #Molecular physics #Molecule #Organic chemistry #Physics #Quantum, superfluid, helium dynamics #Spectroscopy and Quantum Chemical Studies #Van der Waals radius #Void (composites) #van der Waals force
  6. The effect of rare-earth filling on the lattice thermal conductivity of skutterudites
    1996/04/15 by George S. Nolas, Glen A. Slack, Donald T. Morelli +2 · 3 citations
    Materials Science · Physics and Astronomy · #Advanced Thermoelectric Materials and Devices #Thermal properties of materials #Rare-earth and actinide compounds #Condensed matter physics #Materials science #Thermal conductivity #Phonon #Crystallite #Thermoelectric materials #Thermoelectric effect #Skutterudite #Lattice (music) #Scattering #Void (composites) #Composite material #Thermodynamics #Metallurgy #Physics #Optics
  7. The structure of the Universe traced by rich clusters of galaxies
    1994/07/15 by M. Einasto, J. Einasto, E. Tago +2 · 5 citations
    Physics and Astronomy · Economics, Econometrics and Finance · #Galaxies: Formation, Evolution, Phenomena #Complex Systems and Time Series Analysis #Statistical Mechanics and Entropy #Supercluster (genetic) #Physics #Astrophysics #Galaxy groups and clusters #Void (composites) #Galaxy cluster #Galaxy #Cluster (spacecraft) #Sky #Universe #Galaxy group #Astronomy
  8. A new method for the determination of particle size distributions from small-angle neutron scattering measurements
    1988/12/01 by J. A. Potton, G. J. Daniell, G.J. Daniell +2 · 3 citations
    Chemistry · Engineering · Mathematics · Physics and Astronomy · #Astron #Chemistry #Computational physics #Data set #Geometry #Inverse #Ion-surface interactions and analysis #Materials science #Mathematics #Neutron scattering #Nuclear Physics and Applications #Nuclear physics #Nuclear reactor physics and engineering #Optics #Particle size #Physics #Principle of maximum entropy #Scattering #Small-angle scattering #Statistical physics #Statistics #Void (composites)
  9. A three-dimensional model for ductile fracture by the growth and coalescence of microvoids
    1985/06/01 by P. F. Thomason, P.F. Thomason · 3 citations
    Engineering · Materials Science · #Coalescence (physics) #Composite material #Hardening (computing) #Humanities #Materials science #Metal Forming Simulation Techniques #Metallurgy and Material Forming #Microstructure and mechanical properties #Physics #Void (composites)
  10. Analysis of the cup-cone fracture in a round tensile bar
    1984/01/01 by Viggo Tvergaard, V. Tvergaard, A. Needleman · 41 citations
    Engineering · Materials Science · #Coalescence (physics) #Composite material #Fatigue and fracture mechanics #Finite element method #High-Velocity Impact and Material Behavior #Hydrostatic stress #Materials science #Metal Forming Simulation Techniques #Necking #Physics #Thermodynamics #Ultimate tensile strength #Void (composites) #Volume fraction
  11. Dynamic fracture and spallation in ductile solids
    1981/04/01 by J. N. Johnson · 7 citations
    Engineering · Materials Science · #Composite material #Constitutive equation #Finite element method #High-Velocity Impact and Material Behavior #Materials science #Mechanics #Metal Forming Simulation Techniques #Microstructure and mechanical properties #Necking #Neutron #Physics #Plasticity #Spallation #Structural engineering #Ultimate tensile strength #Viscoplasticity #Void (composites)
  12. Quantificationof Nanovoids in Fully-Aromatic Thin-FilmComposite Polyamide Membranes Using a Quartz Crystal MicrobalanceEquipped with a Humidity Cell
    2026/07/25 by Chenyue Wu, Zhe Yang, Lu Elfa Peng +2
    Engineering · Environmental Science · #Composite number #Humidity #Membrane #Membrane Separation Technologies #Membrane Separation and Gas Transport #Microstructure #Nanopore and Nanochannel Transport Studies #Polyamide #Quartz crystal microbalance #Void (composites)