To see the other types of publications on this topic, follow the link: Polydispersed materials.

Journal articles on the topic 'Polydispersed materials'

Create a spot-on reference in APA, MLA, Chicago, Harvard, and other styles

Select a source type:

Consult the top 50 journal articles for your research on the topic 'Polydispersed materials.'

Next to every source in the list of references, there is an 'Add to bibliography' button. Press on it, and we will generate automatically the bibliographic reference to the chosen work in the citation style you need: APA, MLA, Harvard, Chicago, Vancouver, etc.

You can also download the full text of the academic publication as pdf and read online its abstract whenever available in the metadata.

Browse journal articles on a wide variety of disciplines and organise your bibliography correctly.

1

Ifijen, Ikhazuagbe H., Eribe M. Jonathan, Jacob N. Jacob, Nyaknno U. Udokpoh, and Ukeme D. Archibong. "Synthesis of Polydispersed P(St-MMA-AA) Microspheres and Fabrication of Colloidal Crystals with Non-Compact Morphology." Tanzania Journal of Science 48, no. 1 (2022): 140–47. http://dx.doi.org/10.4314/tjs.v48i1.13.

Full text
Abstract:
Great attention has been given to the synthesis of monodispersed and uniform colloidal polymer particles with controllable particle sizes. However, investigations on the preparation, characterization and fabrication of polydisperse polymeric particles are very few. Polydisperse polymers are also needed to meet the new demands of the modern markets due to the ease of their synthesis. This study, therefore, synthesized polydispersed poly(styrene-methyl-methacrylate acrylic-acid) (P(St-MMA-AA)) via emulsion polymerization synthetic approach under unstable reaction conditions. The synthesized P(St
APA, Harvard, Vancouver, ISO, and other styles
2

Kadushnikov, R. M., and A. R. Beketov. "Geometrical modeling the structure of polydispersed materials." Soviet Powder Metallurgy and Metal Ceramics 28, no. 10 (1989): 800–805. http://dx.doi.org/10.1007/bf00796178.

Full text
APA, Harvard, Vancouver, ISO, and other styles
3

Mutuma, Bridget K., Boitumelo Matsoso, Kamalakannan Ranganathan, Daniel Wamwangi, and Neil J. Coville. "Generation of open-ended, worm-like and graphene-like structures from layered spherical carbon materials." RSC Advances 6, no. 24 (2016): 20399–408. http://dx.doi.org/10.1039/c5ra25880d.

Full text
APA, Harvard, Vancouver, ISO, and other styles
4

Prado, Miguel O., Edgar D. Zanotto, and Catia Fredericci. "Sintering polydispersed spherical glass particles." Journal of Materials Research 18, no. 6 (2003): 1347–54. http://dx.doi.org/10.1557/jmr.2003.0185.

Full text
Abstract:
We used the Clusters model to study the densification kinetics and resulting porosity of a compact of polydispersed soda-;lime-;silica glass spheres. In addition to the physical data (viscosity, surface tension, particle size distribution) required by the Clusters model, for the first time in glass-;sintering studies, we took extra variables into account: the average number of necks per sphere, the effects of pre-;existing crystals on the particle surfaces, and sample size. The model predicted both the densification kinetics and the resulting pore-;size distribution of sintered compacts. A cro
APA, Harvard, Vancouver, ISO, and other styles
5

Bose, Paulami, Papri Chakraborty, Jyoti Sarita Mohanty, et al. "Atom transfer between precision nanoclusters and polydispersed nanoparticles: a facile route for monodisperse alloy nanoparticles and their superstructures." Nanoscale 12, no. 43 (2020): 22116–28. http://dx.doi.org/10.1039/d0nr04033a.

Full text
APA, Harvard, Vancouver, ISO, and other styles
6

Ji, Shunying, and Hayley H. Shen. "Internal parameters and regime map for soft polydispersed granular materials." Journal of Rheology 52, no. 1 (2008): 87–103. http://dx.doi.org/10.1122/1.2807441.

Full text
APA, Harvard, Vancouver, ISO, and other styles
7

Oscar Prado, Miguel, Edgar Dutra Zanotto, and Ralf Müller. "Model for sintering polydispersed glass particles." Journal of Non-Crystalline Solids 279, no. 2-3 (2001): 169–78. http://dx.doi.org/10.1016/s0022-3093(00)00399-9.

Full text
APA, Harvard, Vancouver, ISO, and other styles
8

Gubaidullin, D. A. "Sound propagation in polydispersed air fogs." Journal of Aerosol Science 29 (September 1998): S817—S818. http://dx.doi.org/10.1016/s0021-8502(98)90591-2.

Full text
APA, Harvard, Vancouver, ISO, and other styles
9

Davardoostmanesh, Maryam, Elaheh K. Goharshadi, and Hossein Ahmadzadeh. "Electrophoretic size fractionation of graphene oxide nanosheets." New Journal of Chemistry 43, no. 13 (2019): 5047–54. http://dx.doi.org/10.1039/c8nj06411c.

Full text
Abstract:
Size fractionation of polydispersed graphene oxide (GO) into highly monodispersed fractions by electrophoresis is reported. The smallest fraction with nanosheets of approximately the same size shows photoluminescence properties.
APA, Harvard, Vancouver, ISO, and other styles
10

Bakhronov Koshim Shayimovich, Khudoiberdieva Nazora Sharofovna, and Yunusova Sitora Tolib qizi. "Liquidation of solid particles of polydispersed grained material." International Journal on Integrated Education 3, no. 10 (2020): 319–21. http://dx.doi.org/10.31149/ijie.v3i10.783.

Full text
Abstract:
The results of experimental studies on the study of the expansion of the fluidized bed are presented. It is noted that the general picture of the expansion of the fluidized bed of polydisperse granular materials differs from monodisperse systems, and at the same time the porosity value of the pseudo-fluidized bed corresponds to the results of calculations according to the equations available in the literature.
APA, Harvard, Vancouver, ISO, and other styles
11

Gumerov, N. A., and A. I. Ivandaev. "Sound propagation in polydispersed gas suspensions." Journal of Applied Mechanics and Technical Physics 29, no. 5 (1989): 706–14. http://dx.doi.org/10.1007/bf00857919.

Full text
APA, Harvard, Vancouver, ISO, and other styles
12

Mousa, Mohanad, and Yu Dong. "Towards Sophisticated 3D Interphase Modelling of Advanced Bionanocomposites via Atomic Force Microscopy." Journal of Nanomaterials 2020 (August 4, 2020): 1–22. http://dx.doi.org/10.1155/2020/4526108.

Full text
Abstract:
Nanomechanical properties and interphase dimensions of PVA bionanocomposites reinforced with halloysite nanotubes (HNTs) and Cloisite 30B montmorillonite (MMT) were evaluated by means of peak force quantitative nanomechanical mapping (PFQNM). A three-phase theoretical composite model was established based on hard-core–soft-shell structures consisting of hard mono-/polydispersed anisotropic particles and soft interphase and matrices. Halpin-Tsai model and Mori-Tanaka model were employed to predict experimentally determined tensile moduli of PVA bionanocomposites where effective volume fraction
APA, Harvard, Vancouver, ISO, and other styles
13

Polat, Kinyas, Ilghar Orujalipoor, Semra İde, and Murat Şen. "Nano and microstructures of SEBS/PP/wax blend membranes: SAXS and WAXS analyses." Journal of Polymer Engineering 35, no. 2 (2015): 151–57. http://dx.doi.org/10.1515/polyeng-2014-0093.

Full text
Abstract:
Abstract Elastomeric polymers are interesting materials for polymer chemists and other novel material designers in the field of industrial and technological science, because of their physical (mechanical, thermal and electrical) properties. In the context of this study, 35% and 68% styrene-(ethylene-butylene)-styrene (SEBS) containing mixtures, namely SEBS35 and SEBS68, were focused on among of our novel synthesized SEBS blends which compose of microstructures. The structural changes, globular contents (globules) and uniformities of the samples at nanoscale and microscale were investigated by
APA, Harvard, Vancouver, ISO, and other styles
14

Bary, B. "A polydispersed particle system representation of the porosity for non-saturated cementitious materials." Cement and Concrete Research 36, no. 11 (2006): 2061–73. http://dx.doi.org/10.1016/j.cemconres.2006.07.001.

Full text
APA, Harvard, Vancouver, ISO, and other styles
15

Karagiannakis, Nikolaos P., Eugene D. Skouras, and Vasilis N. Burganos. "Modelling Thermal Conduction in Polydispersed and Sintered Nanoparticle Aggregates." Nanomaterials 12, no. 1 (2021): 25. http://dx.doi.org/10.3390/nano12010025.

Full text
Abstract:
Nanoparticle aggregation has been found to be crucial for the thermal properties of nanofluids and their performance as heating or cooling agents. Most relevant studies in the literature consider particles of uniform size with point contact only. A number of forces and mechanisms are expected to lead to deviation from this ideal description. In fact, size uniformity is difficult to achieve in practice; also, overlapping of particles within aggregates may occur. In the present study, the effects of polydispersity and sintering on the effective thermal conductivity of particle aggregates are inv
APA, Harvard, Vancouver, ISO, and other styles
16

Joh, Sung Wu, Seung Hwan Lee, and Jae Ryoun Youn. "Rheological behavior of polydispersed bubble suspensions in shear flows." Polymer Engineering & Science 50, no. 1 (2009): 128–37. http://dx.doi.org/10.1002/pen.21517.

Full text
APA, Harvard, Vancouver, ISO, and other styles
17

Solonenko, A. P., E. S. Chikanova, A. E. Shevchenko, and D. A. Polonyankin. "Microstructure of spherical granules based on hydroxyapatite and wollastonite." Journal of Physics: Conference Series 2182, no. 1 (2022): 012080. http://dx.doi.org/10.1088/1742-6596/2182/1/012080.

Full text
Abstract:
Abstract Spherical granules are one of the preferred forms of biomaterials for bone defects healing. Chemical composition and microstructure of these materials are largely determines their behavior in vivo. Synthesis and properties investigation of polydispersed porous composite granular materials containing several bioactive components are the important task of modern biomedical chemistry. In this work, the microstructure of organomineral granules based on hydroxyapatite, wollastonite, and gelatine, and the products of their calcination were studied. It was found that as a result of removal o
APA, Harvard, Vancouver, ISO, and other styles
18

Gumerov, N. A. "Long waves of finite amplitude in polydispersed gas suspensions." Journal of Applied Mechanics and Technical Physics 31, no. 4 (1991): 660–64. http://dx.doi.org/10.1007/bf00851347.

Full text
APA, Harvard, Vancouver, ISO, and other styles
19

Wetter, Niklaus U., Julia M. Giehl, Felix Butzbach, Danilo Anacleto, and Ernesto Jiménez-Villar. "Polydispersed Powders (Nd3+ :YVO4 ) for Ultra Efficient Random Lasers." Particle & Particle Systems Characterization 35, no. 4 (2017): 1700335. http://dx.doi.org/10.1002/ppsc.201700335.

Full text
APA, Harvard, Vancouver, ISO, and other styles
20

Loginov, V. M., T. L. Neklyudova, N. V. Titova, and A. S. Vlasov. "Grain-size composition of polydispersed clay mixtures and their packing densities." Glass and Ceramics 44, no. 8 (1987): 351–53. http://dx.doi.org/10.1007/bf00702192.

Full text
APA, Harvard, Vancouver, ISO, and other styles
21

Sander, Markus, Richard H. West, Matthew S. Celnik, and Markus Kraft. "A Detailed Model for the Sintering of Polydispersed Nanoparticle Agglomerates." Aerosol Science and Technology 43, no. 10 (2009): 978–89. http://dx.doi.org/10.1080/02786820903092416.

Full text
APA, Harvard, Vancouver, ISO, and other styles
22

Sun, Cuizhi, and Nobuyuki Takegawa. "Calibration of a particle mass spectrometer using polydispersed aerosol particles." Aerosol Science and Technology 53, no. 1 (2018): 1–7. http://dx.doi.org/10.1080/02786826.2018.1532071.

Full text
APA, Harvard, Vancouver, ISO, and other styles
23

Jung, Chang H., Young Jun Yoon, Junshik Um, et al. "Approximated expression of the hygroscopic growth factor for polydispersed aerosols." Journal of Aerosol Science 151 (January 2021): 105670. http://dx.doi.org/10.1016/j.jaerosci.2020.105670.

Full text
APA, Harvard, Vancouver, ISO, and other styles
24

Zarichnyak, Yu P., S. S. Ordan'yan, A. N. Sokolov, and E. K. Stepanenko. "Calculation of the linear elastic modulus of polydispersed sintered composites." Powder Metallurgy and Metal Ceramics 33, no. 7-8 (1995): 431–36. http://dx.doi.org/10.1007/bf00559596.

Full text
APA, Harvard, Vancouver, ISO, and other styles
25

Kadushnikov, R. M., I. G. Kamenin, and A. R. Beketov. "Computer simulation of the evolution of the microstructure of polydispersed materials. III. Normal grain growth." Soviet Powder Metallurgy and Metal Ceramics 30, no. 6 (1991): 462–65. http://dx.doi.org/10.1007/bf00795068.

Full text
APA, Harvard, Vancouver, ISO, and other styles
26

Kadushnikov, R. M., V. V. Skorokhod, and O. B. Lykova. "Computer simulation of the evolution of the microstructure of two-phase polydispersed materials during sintering." Powder Metallurgy and Metal Ceramics 32, no. 4 (1993): 292–98. http://dx.doi.org/10.1007/bf00560012.

Full text
APA, Harvard, Vancouver, ISO, and other styles
27

Parekh, Kinnari. "Thermo-magnetic properties of ternary polydispersed Mn0.5Zn0.5Fe2O4 ferrite magnetic fluid." Solid State Communications 187 (June 2014): 33–37. http://dx.doi.org/10.1016/j.ssc.2014.02.005.

Full text
APA, Harvard, Vancouver, ISO, and other styles
28

Zouari, R., A. Benhamida, and H. Dumontet. "A micromechanical iterative approach for the behavior of polydispersed composites." International Journal of Solids and Structures 45, no. 11-12 (2008): 3139–52. http://dx.doi.org/10.1016/j.ijsolstr.2008.01.016.

Full text
APA, Harvard, Vancouver, ISO, and other styles
29

Hareli, Shlomo, Ophir Nave, and Vladimir Gol’dshtein. "The Evolutions in Time of Probability Density Functions of Polydispersed Fuel Spray—The Continuous Mathematical Model." Applied Sciences 11, no. 20 (2021): 9739. http://dx.doi.org/10.3390/app11209739.

Full text
Abstract:
The dynamics of the particle size distribution (PSD) of polydispersed fuel spray is important in the evaluation of the combustion process. A better understanding of the dynamics can provide a tool for selecting a PSD that will more effectively meet the needs of the system. In this paper, we present an efficient and elegant method for evaluating the dynamics of the PSD. New insights into the behaviour of polydispersed fuel spray were obtained. A simplified theoretical model was applied to the experimental data and a known approximation of the polydispersed fuel spray. This model can be applied
APA, Harvard, Vancouver, ISO, and other styles
30

Phan-Thien, N., and D. C. Pham. "Differential multiphase models for polydispersed suspensions and particulate solids." Journal of Non-Newtonian Fluid Mechanics 72, no. 2-3 (1997): 305–18. http://dx.doi.org/10.1016/s0377-0257(97)90002-1.

Full text
APA, Harvard, Vancouver, ISO, and other styles
31

Sahu, S., Y. Hardalupas, and A. M. K. P. Taylor. "Interaction of droplet dispersion and evaporation in a polydispersed spray." Journal of Fluid Mechanics 846 (May 3, 2018): 37–81. http://dx.doi.org/10.1017/jfm.2018.247.

Full text
Abstract:
The interaction between droplet dispersion and evaporation in an acetone spray evaporating under ambient conditions is experimentally studied with an aim to understand the physics behind the spatial correlation between the local vapour mass fraction and droplets. The influence of gas-phase turbulence and droplet–gas slip velocity of such correlations is examined, while the focus is on the consequence of droplet clustering on collective evaporation of droplet clouds. Simultaneous and planar measurements of droplet size, velocity and number density, and vapour mass fraction around the droplets,
APA, Harvard, Vancouver, ISO, and other styles
32

Ungan, Aydin, Resat U. Payli, and Batu Balkanli. "Numerical Model of Polydispersed Silica Grain Dissolution in Glass Melting Furnaces." Journal of the American Ceramic Society 77, no. 7 (1994): 1921–27. http://dx.doi.org/10.1111/j.1151-2916.1994.tb07072.x.

Full text
APA, Harvard, Vancouver, ISO, and other styles
33

Park, S. H., and K. W. Lee. "Condensational growth of polydispersed aerosols for the entire particle size range." Journal of Aerosol Science 31 (September 2000): 813–14. http://dx.doi.org/10.1016/s0021-8502(00)90823-1.

Full text
APA, Harvard, Vancouver, ISO, and other styles
34

Belik, V. D., and Yu I. Nikitin. "New procedure for determining the particle-size composition of polydispersed micropowders." Powder Metallurgy and Metal Ceramics 34, no. 1-2 (1995): 82–85. http://dx.doi.org/10.1007/bf00559857.

Full text
APA, Harvard, Vancouver, ISO, and other styles
35

Grisorio, Roberto, Giovanni Allegretta, Gian Paolo Suranna, et al. "Monodispersed vs. polydispersed systems for bulk heterojunction solar cells: the case of dithienopyrrole/anthracene based materials." Journal of Materials Chemistry 22, no. 37 (2012): 19752. http://dx.doi.org/10.1039/c2jm33795a.

Full text
APA, Harvard, Vancouver, ISO, and other styles
36

Vol'dman, G. M., and M. A. Leont'ev. "Possible approach to quantitative description of the compaction process with hot isostatic pressing of polydispersed materials." Powder Metallurgy and Metal Ceramics 32, no. 4 (1993): 299–302. http://dx.doi.org/10.1007/bf00560013.

Full text
APA, Harvard, Vancouver, ISO, and other styles
37

Cameirao, A., H. Le Ba, M. Darbouret, J. M. Herri, J. L. Peytavy, and P. Glénat. "Chord length distributions interpretation using a polydispersed population: Modeling and experiments." Journal of Crystal Growth 342, no. 1 (2012): 65–71. http://dx.doi.org/10.1016/j.jcrysgro.2011.05.028.

Full text
APA, Harvard, Vancouver, ISO, and other styles
38

Amorós, J. L., E. Blasco, C. Feliu, and A. Moreno. "Densification of irregular polydispersed glass particles described as a complex relaxation process." Open Ceramics 9 (March 2022): 100205. http://dx.doi.org/10.1016/j.oceram.2021.100205.

Full text
APA, Harvard, Vancouver, ISO, and other styles
39

Ivanchenko, L. A., N. D. Pinchuk, and A. R. Parkhomei. "Effect of the plasticizer on structure formation in porified polydispersed glass ceramic composites." Glass and Ceramics 64, no. 3-4 (2007): 136–39. http://dx.doi.org/10.1007/s10717-007-0035-2.

Full text
APA, Harvard, Vancouver, ISO, and other styles
40

Baruah, Shashi D., and Narayan C. Laskar. "Relationship between Molecular Weight and Viscosity for Polydispersed Poly(n-docosyl acrylate)." Polymer Journal 28, no. 10 (1996): 893–95. http://dx.doi.org/10.1295/polymj.28.893.

Full text
APA, Harvard, Vancouver, ISO, and other styles
41

Cochet, M., Rudy Bazile, B. Ferret, and S. Cazin. "Evaporation of polydispersed droplets in a highly turbulent channel flow." Experiments in Fluids 47, no. 3 (2009): 379–94. http://dx.doi.org/10.1007/s00348-009-0667-9.

Full text
APA, Harvard, Vancouver, ISO, and other styles
42

Spasic, Aleksandar M., and Vukoman Jokanovic. "Stability of the Secondary Droplet-Film Structure in Polydispersed Systems." Journal of Colloid and Interface Science 170, no. 1 (1995): 229–40. http://dx.doi.org/10.1006/jcis.1995.1092.

Full text
APA, Harvard, Vancouver, ISO, and other styles
43

Prado, Miguel O., Catia Fredericci, and Edgar D. Zanotto. "Isothermal sintering with concurrent crystallization of polydispersed soda–lime–silica glass beads." Journal of Non-Crystalline Solids 331, no. 1-3 (2003): 145–56. http://dx.doi.org/10.1016/j.jnoncrysol.2003.08.076.

Full text
APA, Harvard, Vancouver, ISO, and other styles
44

Hsueh, C. H., and W. C. J. Wei. "Analyses of effective viscosity of suspensions with deformable polydispersed spheres." Journal of Physics D: Applied Physics 42, no. 7 (2009): 075503. http://dx.doi.org/10.1088/0022-3727/42/7/075503.

Full text
APA, Harvard, Vancouver, ISO, and other styles
45

Evdokimov, S. I., and A. M. Pan’shin. "Regularities of contact interactions between particles in a polydispersed mineral system." Russian Journal of Non-Ferrous Metals 48, no. 6 (2007): 387–92. http://dx.doi.org/10.3103/s1067821207060016.

Full text
APA, Harvard, Vancouver, ISO, and other styles
46

CHELLAM, S. "Artificial neural network model for transient crossflow microfiltration of polydispersed suspensions." Journal of Membrane Science 258, no. 1-2 (2005): 35–42. http://dx.doi.org/10.1016/j.memsci.2004.11.038.

Full text
APA, Harvard, Vancouver, ISO, and other styles
47

Miola, Marta, and Enrica Vernè. "In situ reduction of Ag on magnetic nanoparticles with gallic acid: effect of the synthesis parameters on morphology." Nanomedicine 17, no. 8 (2022): 499–511. http://dx.doi.org/10.2217/nnm-2021-0479.

Full text
Abstract:
Aim: Synthesis of Fe3O4–Ag composite nanoparticles (NPs) by a new in situ reduction of Ag NPs on the surface of Fe3O4 NPs using gallic acid as a reducing agent. Materials & methods: The influence of process parameters on NP morphology and functionalization was evaluated by means of field-emission scanning/scanning transmission electron microscopy and Fourier-transform IR spectroscopy. Results & conclusion: The synthesis conditions affected the morphology of the obtained NPs, evidence of the formation of polydispersed aggregates, nanoflower-like or nanodumbbell nanocomposites. In partic
APA, Harvard, Vancouver, ISO, and other styles
48

Prado, Miguel Oscar, Catia Fredericci, and Edgar Dutra Zanotto. "Non-isothermal sintering with concurrent crystallization of polydispersed soda–lime–silica glass beads." Journal of Non-Crystalline Solids 331, no. 1-3 (2003): 157–67. http://dx.doi.org/10.1016/j.jnoncrysol.2003.08.077.

Full text
APA, Harvard, Vancouver, ISO, and other styles
49

Araki, Yoshihiko. "Synthesis of a Polydispersed Polybutadiene Latex. Direct Method for High-Solid Polybutadiene Emulsion Preparation." Polymer Journal 19, no. 7 (1987): 863–71. http://dx.doi.org/10.1295/polymj.19.863.

Full text
APA, Harvard, Vancouver, ISO, and other styles
50

Krepper, Eckhard, Matthias Beyer, Thomas Frank, Dirk Lucas, and Horst-Michael Prasser. "CFD modelling of polydispersed bubbly two-phase flow around an obstacle." Nuclear Engineering and Design 239, no. 11 (2009): 2372–81. http://dx.doi.org/10.1016/j.nucengdes.2009.06.015.

Full text
APA, Harvard, Vancouver, ISO, and other styles
We offer discounts on all premium plans for authors whose works are included in thematic literature selections. Contact us to get a unique promo code!