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Number of results: 17
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Abstract

This study offers a new method to synthesize facilely willemite (Zn2SiO4) based phosphor at the temperature of 800 °C. The ZnO-SiO2 nanocomposite was calcined at different temperatures between 500 and 1000 °C. The structural, morphological and optical properties of the nanocomposite obtained at various calcination temperatures were studied using different techniques. The FT-IR, XRD and the UV-vis result confirmed the formation of willemite phase. The precursor was confirmed to be amorphous by XRD at room temperature, but upon calcination temperature at 500 °C, it was transformed into a crystalline structure. The crystallinity and the particle size of the nanocomposite increase as the calcination temperature were increased as revealed by XRD and TEM measurement. The sample exhibits a spherical morphology from 500 to 800 °C and dumbbell-like morphology above 800 °C as shown by the FESEM images. The absorption spectrum suffers intense in lower temperature and tends to shift to lower wavelength in the UV region as the calcination temperature increases. The band gap values were found to be increasing from 3.228-5.550 eV obtained between 500 to 1000 °C, and all the results confirm the formation of willemite phase at 800 °C.
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Authors and Affiliations

Ibrahim Mustapha Alibe
Khamirul Amin Matori
Haj Abdul Aziz Sidek
Yakoob Yazid
Elias Saion
Ali Mustapha Alibe
Mohd Hafiz Mohd Zaid
Ali Engku Abd Ghapur Engku
Tasiu Zangina
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Abstract

In this study, high performance magnesium-yttria nanocomposite’s room temperature, strength and ductility were significantly enhanced by the dispersion of nano-sized nickel particles using powder blending and a microwave sintering process. The strengthening effect of the dispersed nano-sized nickel particles was consistent up to 100°C and then it gradually diminished with further increases in the test temperature. The ductility of the magnesium-yttria nanocomposite remained unaffected by the dispersed nano-sized nickel particles up to 100°C. Impressively, it was enhanced at 150°C and above, leading to the possibility of the near net shape fabrication of the nanocomposite at a significantly low temperature.

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Authors and Affiliations

Fida S. Hassan
Khin Sandar Tun
F. Patel
Nasser Al-Aqeeli
M. Gupta
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Abstract

Polymer mixed-matrix nanocomposite membranes were prepared by a wet-phase inversion method and used in ultrafiltration processes to treat wastewater treatment plant effluent spiked with organic micropollutants. The effects of halloysite (Hal), TiO2, and functionalized single-walled carbon nanotube (SWCNT-COOH) nanofillers on the treatment efficiency, permeability loss, and fouling behavior of polyethersulfone (PES) membranes were investigated and compared with those of a pristine PES membrane. The nanocomposite membranes exhibited lower porosity and stronger negative surface charge because of the added hydrophilic nanofillers. The PES-Hal membrane achieved the optimal balance of permeability and micropollutant removal owing to enhanced pollutant adsorption on the membrane surface and the creation of an easily removable cake layer (i.e., reversible fouling). The PES-SWCNT-COOH membrane demonstrated the highest treatment efficiency, but also the high permeability loss. In contrast, PES-TiO2 exhibited excellent antifouling properties, but poorer treatment capabilities.
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Bibliography

  1. Adeniyi, A., Mbaya, R., Popoola, P., Gomotsegang, F., Ibrahim, I. & Onyango, M. (2020). Predicting the fouling tendency of thin film composite membranes using fractal analysis and membrane autopsy, Alexandria Engineering Journal, 59, 6, pp. 4397-4407. DOI:10.1016/j.aej.2020.07.046
  2. Arif, Z., Sethy, N.K., Mishra, P.K. & Verma, B. (2019). Antifouling behaviour of PVDF/TiO2 composite membrane: a quantitative and qualitative assessment, Iranian Polymer Journal, 19, 28, pp. 301-312. DOI:10.1007/s13726-019-00700-y
  3. Bassyouni, M., Abdel-Aziz, M.H., Zoromba, M.Sh., Abdel-Hamid, S.M.S. & Drioli, E. (2019). A review of polymeric nanocomposite membranes for water purification, Journal of Industrial and Engineering Chemistry, 73, pp. 19-46. DOI:10.1016/j.jiec.2019.01.045
  4. Bodzek, M., Konieczny, K. & Kwiecińska-Mydlak, A. (2021). New generation of semipermeable membranes with carbon nanotubes for water and wastewater treatment: Critical review, Archives of Environmental Protection, 47, 3, pp. 3-27, DOI:10.24425/aep.2021.138460
  5. Bohdziewicz, J., Dudziak, M., Kamińska, G. & Kudlek, E. (2016). Chromatographic determination and toxicological potential evaluation of selected micropollutants in aquatic environment - analytical problems, Desalination and Water Treatment, 57, pp. 1361-1369. DOI:10.1080/19443994.2015.1017325
  6. Bu, F., Gao, B., Yue, Q., Liu, C., Wang, W. & Shen, X. (2019). The Combination of Coagulation and Adsorption for Controlling Ultrafiltration Membrane Fouling in Water Treatment, Water, 11, pp. 1-13. DOI:10.3390/w11010090
  7. Buruga, K., Song, H., Shan, J., Bolan, N., Thimmarajampet Kalathi, J. & Kim, K-H. (2019). A review on functional polymer-clay based nanocomposite membranes for treatment of water, Journal of Hazardous. Materials, 379, pp. 1-27. DOI:10.1016/j.jhazmat.2019.04.067
  8. Dudziak, M. & Burdzik-Niemiec, E. (2017). Ultrafiltration through modified membranes in wastewater treatment containing 17β-estradiol and bisphenol A, Przemysł Chemiczny, 96, pp. 448-452, DOI: 10.15199/62.2017.2.35 (in Polish).
  9. Esfahani, M.R., Aktij, S.A., Dabaghian, Z., Firouzjaei, M.D., Rahimpour, A., Eke, J.; Escobar, I.C., Abolhassani, M., Greenlee, L.F., Esfahani, A.R., Sadmani, A. & Koutahzadeh, N. (2019). Nanocomposite membranes for water separation and purification: Fabrication, modification, and applications, Separation and Purification Technolology, 213, pp. 465-499. DOI:10.1016/j.seppur.2018.12.050
  10. Farjami, M., Vatanpour, V. & Moghadassi, A. (2020). Effect of nanoboehmite/poly(ethylene glycol) on the performance and physiochemical attributes EPVC nano-composite membranes in protein separation, Chemical Engineering Research and Design, 156, pp. 371-383. DOI:10.1016/j.cherd.2020.02.009
  11. Gamoń, F., Tomaszewski, M., Cema, G. & Ziembińska-Buczyńska, A. (2022). Adsorption of oxytetracycline and ciprofloxacin on carbon-based nanomaterials as affected by pH, Archives of Environmental Protection, 48, 2, pp. 34-41. DOI:10.24425/aep.2022.140764
  12. Ghaemi, N., Madaeni, S.S., Alizadeh, A., Rajabi, H. & Daraei, P. (2011). Preparation, characterization and performance of polyethersulfone/organically modified montmorillonite nanocomposite membranes in removal of pesticides, Journal of Membrane Science, 382, pp. 135-147. DOI:10.1016/j.memsci.2011.08.004
  13. Haas, R., Opitz, R. & Grischek, T. (2019). The AquaNES Project: Coupling Riverbank Filtration and Ultrafiltration in Drinking Water Treatment, Water, 11, pp. 1-14. DOI:10.3390/w11010018.
  14. Hao, S., Jia, Z., Wen, J., Li, S., Peng, W., Huang, R. & Xu, X. (2021). Progress in adsorptive membranes for separation – A review, Separation and Purification Technology, 255, 117772. DOI:10.1016/j.seppur.2020.117772.
  15. Inurria, A., Cay-Durgun, P., Rice, D., Zhang, H., Seo, D.-K., Lind, M.L. & Perreault, F. (2019). Polyamide thin-film nanocomposite membranes with graphene oxide nanosheets: Balancing membrane performance and fouling propensity, Desalination, 451, pp. 139-147. DOI:10.1016/j.desal.2018.07.004.
  16. Kamińska, G. (2022). Modification of ultrafiltration membranes with nanoparticles and their application, Wydawnictwo Politechniki Śląskiej, Gliwice 2022. (in Polish)
  17. Kamińska, G. & Bohdziewicz, J. (2018). Separation of selected organic micropollutants on ultrafiltration membrane modified with carbon nanotubes.Ochrona. Środowiska, 40, 4, pp. 37-42. (in Polish)
  18. Kamińska, G., Bohdziewicz, J., Calvo, J.I., Prádanos, P., Palacio, L. & Hernández, A. (2015). Fabrication and characterization of polyethersulfone nanocomposite membranes for the removal of endocrine disrupting micropollutants from wastewater. Mechanisms and performance, Journal of Membrane Science, 493, pp. 66-79. DOI:10.1016/j.memsci.2015.05.047
  19. Kamińska, G., Bohdziewicz, J., Palacio, L., Hernández, A. & Prádanos, P. (2016). Polyacrylonitrile membranes modified with carbon nanotubes: characterization and micropollutants removal analysis, Desalination and Water Treatment, 57, pp. 1344-1353. DOI:10.1080/19443994.2014.1002277
  20. Kamińska, G., Pronk, W. & Traber, J. (2020). Effect of coagulant dose and backflush pressure on NOM membrane fouling in inline coagulation-ultrafiltration, Desalination and Water Treatment, 199, pp. 188-197. DOI:10.5004/dwt.2020.25657.
  21. Leo, C.P.; Chai, W.K.; Mohammad, A.W., Qi, Y., Hoedley, A.F.A. & Chai, S.P. (2011). Phosphorus removal using nanofiltration membranes, Water Science and Technology 64, pp.199-205. DOI:10.2166/wst.2011.598.
  22. Mao, Y., Huang, Q. Meng, B., Zhou, K., Liu, G., Gigliuzza, A., Drioli, E. & Jin, W. (2020). Roughness-enhanced hydrophobic graphene oxide membrane for water desalination via membrane distillation, Journal of Membrane Science, 611, 118364. DOI:10.1016/j.memsci.2020.118364.
  23. Marszałek, A. (2022). Encapsulation of halloysite with sodium alginate and application in the adsorption of copper from rainwater, Archives of Environmental Protection, 48, 1, pp. 75-82. DOI:10.24425/aep.2022.140546.
  24. Maximous, N., Nakhla, G., Wan, W. & Wong, K. (2009). Preparation, characterization and performance of Al2O3/PES membrane for wastewater filtration, Journal of Membrane Science, 341, pp. 67–75. DOI:10.1016/j.memsci.2009.05.040.
  25. Mozia, S.; Grylewicz, A.; Zgrzebnicki, M.; Darowna, D. & Czyżewski, A. (2019). Investigations on the properties and performance of mixed matrix polyethersulfone membranes modified with halloysite nanotubes, Polymers-Basel. 11, 671, pp. 1-18. DOI:10.3390/polym11040671.
  26. Muthumareeswaran, M.R. & Agarwal, G.P. (2014). Feed concentration and pH effect on arsenate and phosphate rejection via polyacrylonitrile ultrafiltration membrane, Journal of Membrane Science, 468, pp. 11-19. DOI:10.1016/j.memsci.2014.05.040.
  27. Nasir, A., Masood, F., Yasin, T. & Hammed, A. (2019). Progress in polymeric nanocomposite membranes for wastewater treatment: Preparation, properties and applications, Journal of Industrial and Engineering Chemistry, 79, pp. 29-40. DOI:10.1016/j.jiec.2019.06.052.
  28. Nguyen, M.N., Trinh, P.B., Butkhardt, C.J. & Schafer, A.I. (2021). Incorporation of single-walled carbon nanotubes in ultrafiltration support structure for the removal of steroid hormone micropollutants, Separation and Purification Technology, 264, 118405. DOI:10.1016/j.seppur.2021.118405.
  29. Niedergall, K., Bach, M., Hirth, T., Tovar, G.E.M. & Schiestel, T. (2014). Removal of micropollutants from water by nanocomposite membrane adsorbers, Separation and Purification Technology, 131, 27, pp. 60-68. DOI:10.1016/j.seppur.2014.04.032.
  30. Rogowska, J., Cieszynska-Semenowicz, M., Ratajczyk, W. & Wolska, L. (2020). Micropollutants in treated wastewater, Ambio, 49(2), pp. 487-503. DOI:10.1007/s13280-019-01219-5
  31. Saki, H., Alemayehu, E., Schomburg, J. & Lennartz, B. (2019). Halloysite nanotubes as adsorptive material for phosphate removal from aqueous solution, Water 11, 2, 203. DOI:10.3390/w11020203.
  32. Shaban, M., AbdAllah, H., Said, L. & Ahmed, A.M. (2019). Water desalination and dyes separation from industrial wastewater by PES/TiO2NTs mixed matrix membranes, Journal of Polymer Research, 26, 181, pp. 1-12. DOI:10.1007/s10965-019-1831-4.
  33. Shakak, M., Rezaee, R., Maleki, A., Jafari, A., Safari, M., Shahmoradi, B., Daraei, H. & Lee, S-M. (2019). Synthesis and characterization of nanocomposite ultrafiltration membrane (PSF/PVP/SiO2) and performance evaluation for the removal of amoxicillin from aqueous solutions, Environmental Technology & Innovation, 17, 100529. DOI:10.1016/j.eti.2019.100529.
  34. Suhalim, N.S., Kasim, N., Mahmoudi, E., Shamsudin, I.J., Mohammad, A.W., Zuki, F.M. & Jamari, N. (2022). Rejection Mechanism of Ionic Solute Removal by Nanofiltration Membranes: An Overview, Nanomaterials, 12, 437. DOI:10.3390/nano12030437.
  35. Vatanpour, V., Mansourpanah, Y., Soroush Mousavi Khadem, S., Zinadini, S., Dizge, N., Reza Ganjali, M., Mirsadeghi, S., Rezapour, M., Reza Saeb, M. & Karimi-Male, H. (2021). Nanostructured polyethersulfone nanocomposite membranes for dual protein and dye separation: Lower antifouling with lanthanum (III) vanadate nanosheets as a novel nanofiller, Polymer Testing, 94, pp. 107040. DOI:10.1016/j.polymertesting.2020.107040.
  36. Vatanpour, V., Madaeni, S.S., Rajabi, L., Zinadini, S. & Derakhshan, A.A. (2012). Boehmite nanoparticles as a new nanofiller for preparation of antifouling mixed matrix membranes, Journal of Membrane Science, 401-402, pp. 132-143. DOI:10.1016/j.memsci.2012.01.040.
  37. Wang, S., Yao, S., Du, K., Yuan, R., Chen, H., Wang, F. & Zhou, B. (2021). The mechanisms of conventional pollutants adsorption by modified granular steel slag, Environmental Engineering Research, 26, 1, 190352. DOI:10.4491/eer.2019.352.
  38. Zhang, J., Nguyen, M.N., Li, Y., Yang, C. & Schafer, A.I. (2020). Steroid hormone micropollutant removal from water with activated carbon fiber-ultrafiltration composite membranes, Journal of Hazardous Materials, 391, 122020. DOI:10.1016/j.jhazmat.2020.122020.
  39. Zhang, X., Wang, D.K., Lopez, D.R.S. & Diniz da Costa, J. (2014). Fabrication of nanostructured TiO2 hollow fiber photocatalytic membrane and application for wastewater treatment, Chemical Engineering Journal, 236, pp. 314-322. DOI:10.1016/j.cej.2013.09.059.
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Authors and Affiliations

Gabriela Kamińska
1
ORCID: ORCID

  1. Institute of Water and Wastewater Engineering, Gliwice, Poland
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Abstract

Nanostructured systems based on ZnO nanoparticles composite systems/polymer fibers have attracted a lot of attention in the last years because of their applications in multiple areas. Nanofibres based on polymers are used in many domains such as nanocatalysis, controlled release of medicines, environmental protection and so on. This work show the synthesis of cellulose acetate butyrate (CAB) nanofiber useful as substrates for growing ZnO nanocrystals and that ZnO is an unorganic metal oxide nanoparticle used to improve the piezoelectric properties of the polymer. The piezoelectric propertiesof ZnO-doped polymeric was investigated with atomic force microscopy and measurements were performed, in contact technique, in piezoelectric response mode (PFM).In order to analyze the structural and textural features, the obtained materials were characterized using advanced physical-chemical techniques such as X-ray diffraction (XRD), Atomic Force Microscopy (AFM), Scanning Electron Microscopy (SEM). The XRD patterns show the characteristic reflections of ZnO with a hexagonal type wurtzit structure and the broad peaks of the polymer. The SEM images reveal the presence of ZnO nanoparticles on top of the polymer nanofibres.In most ZnO-based nanocomposites their morphology is uncontrolled (agglomerated granules), but in ase of using cellulose acetobutyrate this becomes controlled by observing through flower-like structures SEM and AFM) The study of the functional properties of ZnO/polymer fiber composite systems showed that they have piezoelectric properties which give them the characteristics of smart material with possible sensor and actuator applications.Recent literature reports that the synthesis and characterization of ZnO-polymer nanocomposites are more flexible materials for various applications.
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Authors and Affiliations

G. Calin
1
ORCID: ORCID
L. Sachelarie
1
ORCID: ORCID
N. Olaru
2
ORCID: ORCID

  1. Apollonia University of Iasi, Faculty of Dental Medicine, 11 Pacurari Str., 700511, Iasi, Romania
  2. Institute of Macromolecular Chemistry “Petru Poni” Iasi, Aleea Grigore Ghica Voda,41A, 700487, Iasi, Romania
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Abstract

The present work investigated the properties of rubber vulcanizates containing different nanoparticles (Cloisite 20A and Cloisite Na+) and prepared using different sonication amplitudes. The results showed that a maximum improvement in tensile strength of more than 60% over the reference sample was obtained by the nanocomposites containing 2 wt.% Cloisite 20A and 1 wt.% Cloisite Na+ and mixed with a maximum amplitude of 270 µm. The modulus at 300% elongation increased by approximately 18% and 25% with the addition of 2 wt.% Cloisite 20A and 3 wt.% Cloisite Na+, respectively. The shape retention coefficient of rubber samples was not significantly affected by the mixing amplitude, while the values of the softness measured at the highest amplitude (270 µm) were higher compared to those of mixtures homogenized with lower amplitudes. The loading-unloading and loading-reloading processes showed similar trends for all tested nanocomposites. However, they increased with increasing levels of sample stretching but were not significantly affected by filler content at a given elongation. More energy was dissipated during the loading-unloading process than during the loading-reloading. SEM micrographs of rubber samples before and after cycling loading showed rough, stratified, and elongated morphologies. XRD results showed that elastomeric chains were intercalated in the MMT nanosheets, confirming the improvement of mechanical properties. The difference between the hydrophilic pristine nanoclay (Cloisite Na+) and organomodified MMT (Cloisite 20A) was also highlighted, while the peaks of the stretched rubber samples were smaller, regardless of the rubber composition, due most probably to the decrease of interlayer spacing.
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Authors and Affiliations

Anita Białkowska
1
Małgorzata Przybyłek
1
Marta Sola-Wdowska
1
Milan Masař
2
Mohamed Bakar
1
ORCID: ORCID

  1. University of Technology and Humanities in Radom, Faculty of Chemical Engineering and Commodity Science, Poland
  2. Tomaš Bata University in Zlin, Centre of Polymer Systems, Czech Republic
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Abstract

The addition of hard ceramic particles of nc-(Ti,Mo)C in carbon network into Ti matrix has been proved to be an efficient way to enhance their properties. The purpose of this work was to analyze the corrosion, tribological, mechanical and morphological effects of combining nc-(Ti,Mo)C/C with titanium metal, to create a unique composite via selective laser melting technique (SLM). Composites with different weight percentage (5, 10 and 20 wt %) of ceramic phase were produced. The samples of pure Ti and Ti-6Al-4V alloy were also tested, as a reference. These composites were examined for corrosion resistance in body fluid (artificial saliva solution). Moreover, the properties of titanium composites reinforced with nc-TiC powders were compared. It was stated that mechanical properties were significantly improved with increasing amount of nc-(Ti,Mo)C/C in Ti matrix. In terms of corrosion resistance, the composites showed worse properties compared to pure titanium and Ti-6Al-4V alloy, but better than TiC-reinforced composites.

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Authors and Affiliations

P. Figiel
A. Biedunkiewicz
W. Biedunkiewicz
D. Grzesiak
M. Pawlyta
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Abstract

Al-CuO is a thermite material exhibiting the exothermic reaction only when aluminum melts. For wide spread of its application, the reaction temperature needs to be reduced in addition to the enhancement of total reaction energy. In the present study, a thermite nanocomposite with a large contact area between Al and CuO was fabricated in order to lower the exothermic reaction temperature and to improve the reactivity. A cryomilling process was performed to achieve the nanostructure, and the effect of composition on the microstructure and its reactivity was studied in detail. The microstructure was characterized using SEM and XRD, and the thermal property was analyzed using DSC. The results show that as the molar ratio between Al and CuO varies, the fraction of uniform nanocomposite structure was changed affecting the exothermic reaction characteristics.

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Authors and Affiliations

Minseok Oh
Kwanil Kim
Byungmin Ahn
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Abstract

This work presents a theoretical study for the distribution of nanocomposite structure of plasmonic thin-film solar cells through the absorber layers. It can be reduced the material consumption and the cost of solar cell. Adding nanometallic fillers in the absorber layer has been improved optical, electrical characteristics and efficiency of traditional thin film solar cells (ITO /CdS/PbS/Al and SnO2/CdS/CdTe/Cu) models that using sub micro absorber layer. Also, this paper explains analysis of J-V, P-V and external quantum efficiency characteristics for nanocomposites thin film solar cell performance. Also, this paper presents the effect of increasing the concentration of nanofillers on the absorption, energy band gap and electron-hole generation rate of absorber layers and the effect of volume fraction on the energy conversion efficiency, fill factor, space charge region of the nanocomposites solar cells.

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Authors and Affiliations

Ahmed Thabet
Safaa Abdelhady
A.A. Ebnalwaled
A.A. Ibrahim
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Abstract

The paper presents the results of research on nanocomposite nickel/graphene oxide (Ni / GO) coatings produced by electrochemical reduction method on a steel substrate. Discussed is the method of manufacturing composite coatings with nickel matrix and embedded graphene oxide flakes. For comparative purposes, the studies also included a nanocrystalline Ni coating without embedded graphene oxide flakes. Graphene oxide was characterized by Raman spectroscopy, infrared spectroscopy (FTIR) and transmission (TEM) and scanning (SEM) electron microscopy. Results of studies on the structure of nickel and composite Ni/GO coatings deposited in a bath containing different amount of graphene oxide are presented. The coatings were characterized by scanning electron microscopy, light microscopy, Raman spectroscopy and X-ray diffraction. The adhesion of the prepared coatings to the substrate was examined by the scratch method. The microhardness of the coatings was measured using the Vickers method on perpendicular cross-sections to the surface. Corrosion tests of the coatings were investigated using the potentiodynamic method. The influence of graphene oxide on the structure and properties of composite coatings deposited from baths with different content of graphene oxide was determined.

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Authors and Affiliations

G. Cieślak
M. Trzaska
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Abstract

Nowadays, titanium is one of the most popular materials for aeronautical applications due to its good corrosion resistance, formability and strength. In this paper, rutile reinforced titanium matrix composites were produced via powder metallurgy. The steps included high energy ball milling of raw titanium and rutile powders in a planetary ball mill, which was followed by cold-pressing and sintering without external pressure. For the characterization of the milled powders and the sintered composites, scanning electron microscope, X-ray diffraction and compressive strength examinations were carried out. The results showed that the rutile has a strengthening effect on the titanium matrix. 1 wt% rutile increased the compressive strength compared to the raw titanium. Increasing the milling time of the metal matrix decreased the compressive strength values.

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Authors and Affiliations

D.A. Angel
T. Miko
M. Benke
Z. Gacsi
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Abstract

Fe-based bulk metallic glasses (BMGs) have been extensively investigated due to their ultrahigh strength and elastic moduli as well as desire magnetic properties. However, these BMGs have few applications in industrial productions because of their brittleness at room temperature. This study is focused on the effect of cooling rate on the mechanical properties (especially toughness) in the Fe41Co7Cr15Mo14Y2C15B6 BMG. For this aim, two samples with the mentioned composition were fabricated in a water-cooled copper mold with a diameter of 2 mm, and in a graphite mold with a diameter of 3 mm. The formation of crystalline phases of Fe23(B, C)6, α-Fe and Mo3Co3C based on XRD patterns was observed after the partial crystallization process. To determine the toughness of the as-cast and annealed samples, the indentation technique was used. These results revealed that the maximum hardness and toughness were depicted in the sample casted in the water-cooled copper mold and annealed up to 928°C. The reason of it can be attributed to the formation of crystalline clusters in the amorphous matrix of the samples casted in the graphite mold, so that this decrease in the cooling rate causes to changing the chemical composition of the amorphous matrix.
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Authors and Affiliations

P. Rezaei-Shahreza
1
ORCID: ORCID
H. Redaei
1
ORCID: ORCID
P. Moosavi
1
ORCID: ORCID
S. Hasani
1
A. Seifoddini
1
ORCID: ORCID
B. Jeż
2
ORCID: ORCID
M. Nabiałek
2
ORCID: ORCID

  1. Yazd University, Department of Mining and Metallurgical Engineering, 89195-741, Yazd, Iran
  2. Częstochowa University of Technology, Faculty of Production Engineering and Materials Technology, Department of Physics, 19 Armii Krajowej Av., 42-200 Częstochowa, Poland
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Abstract

Fe-40wt% TiB2 nanocomposites were fabricated by mechanical activation and spark-plasma sintering of a powder mixture of iron boride (FeB) and titanium hydride (TiH2). The powder mixture of (FeB, TiH2) was prepared by high-energy ball milling in a planetary ball mill at 700 rpm for 3 h followed by spark-plasma sintering (SPS) at various conditions. Analysis of the change in relative sintered density and densification rate during sintering showed that a self-propagating high-temperature synthesis reaction occurs to form TiB2 from FeB and Ti. A sintered body with relative density higher than 98% was obtained after sintering at 1150°C for 5 and 15 min. The microstructural observation of sintered compacts with the use of FE-SEM and TEM revealed that ultrafine particulates with approximately 5 nm were evenly distributed in an Fe-matrix. A hardness value of 83 HRC was obtained, which is equivalent to that of conventional WC-20 Co systems.
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Authors and Affiliations

B.-W. Kim
X.-K. Huynh
J.-S. Kim
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Abstract

Results of scientific researches show the trend of active using nitrides and borides of transition

metals and their combination in developing protective materials. While single elements

nitrides have been well studied, their multilayer modifications and combinations require

more detailed study. Physical-mechanical properties and structural-phase state of multilayer

coating according to the deposition conditions is an important task for the study.

It will be the analysis of physical-mechanical and electrical properties of coatings based on

refractory metals nitrides, their structure and phase composition and surface morphology

depending on the parameters of condensation. It was established the structure and behavior

of nano scale coatings based on refractory metals nitrides (Ti, Zr) depending on the size

of nano grains, texture, stress occurring in coatings.

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Authors and Affiliations

Anton Panda
Konstiantyn Dyadyura
Tatyana Hovorun
Oleksandr Pylypenko
Marina Dunaeva
Iveta Pandova
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Abstract

Photoactive nanofilled nematic is proposed. Stable three-component photoresponsive nanocomposite was prepared from photo-insensitive nanofilled nematic by inclusion of 3 wt.% azobenzene-containing photoactive mesogen 4-(4′-ethoxyphenylazo)phenyl hexanoate (EPH). The host nanofilled nematic was produced from the room-temperature nematic liquid crystal 4-n-heptyl cyanobiphenyl (7CB) and 3 wt.% filler of Aerosil 300 hydrophilic silica nanospheres of size 7 nm. Apparent effect of stimulation with a relatively weak continuous illumination by UV light (375 nm wavelength) takes place for both the alternating-current electric field-dependent optical transmittance and the electro-optic amplitude-frequency modulation by thin films (25 µm thick) of the EPH/aerosil/7CB nanocomposite. The light-stimulated electro-optics of EPH-doped aerosil/7CB films and the corresponding reversible light control are achieved through trans-cis-trans photoisomerization of the photoactive agent EPH. As such, the initial electro-optical response of the studied photoactive nanocomposites is recovered with continuous blue-light illumination. The examined EPH/aerosil/7CB nanocomposites exhibit photo-controllable electro-optical response that is of practical interest.

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Authors and Affiliations

Georgi B. Hadjichristov
Yordan G. Marinov
Alexander G. Petrov
Subbarao Krishna Prasad
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Abstract

The use of organically modified clays as nano-reinforcement in polymer matrices is widely investigated owing to their remarkable reinforcement at low filler loading. In this body of work, the nanocomposites were prepared by melt blending nanoclay with polyamide 11 (PA 11) utilising a twin-screw extruder in order to maximise the dispersion of clay particles within the matrix during compounding. The main aim of the work was to study the reinforcing effect of nanoclay within PA 11 using two micromechanical model namely Halpin-Tsai and Mori-Tanaka composite theories. These theories were used to predict the effective tensile modulus of PA 11 nanocomposites and the results were compared to the experimental data. In addition, the Halpin-Tsai model was used to predict the storage modulus and heat distortion temperature (HDT) of PA 11 nanocomposites. It was found that the tensile modulus for nanocomposites with a high clay aspect ratio exhibits up to 10% higher when compared to the nanocomposites with lower clay aspect ratio. Thus, it is believed that the combination of clay aspect ratio and modulus contributes to the super reinforcing effect of nanoclay within the PA 11 matrix.
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Authors and Affiliations

Khairul Anwar Abdul Halim
1 2
ORCID: ORCID
James E. Kennedy
3
ORCID: ORCID
Mohd Arif Anuar Mohd Salleh
1 2
ORCID: ORCID
Azlin Fazlina Osman
1 2
ORCID: ORCID
Mohd Firdaus Omar
1 2
ORCID: ORCID
N.M. Sunar
4
ORCID: ORCID

  1. Universiti Malaysia Perlis, Centre of Excellence Geopolymer and Green Technology (CEGeoGTech), 01000 Perlis, Malaysia
  2. Universiti Malaysia Perlis, Faculty of Chemical Engineering and Technology, Kompleks Pusat Pengajian Jejawi 3, Kawasan Perindustrian Jejawi, 02600, Arau, Perlis, Malaysia
  3. Athlone Institute of Technology, Dublin Road, Co. Westmeath , Ireland
  4. Universiti Tun Hussein Onn Malaysia, Research Centre for Soft Soil (RECESS), Institute of Integrate d Engineering, 86400 Parit Raja, Johor, Malaysia
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Abstract

The present work comprises the development of Al6061/nano Al2O3 composites with 0 to 4 weight percent in steps of 0.5 wt. % of nano alumina particles by using ultrasonic assisted stir casting. Casted samples were subjected to heat treatment and hot forging. Further forged and heat-treated gear blanks of nano Al2O3 (0 to 3.0 weight %) reinforced nanocomposites were machined to make spur gears for the wear test. The results have shown that nano Al2O3 reinforcement in the Al6061 matrix with heat treatment and forging improves the hardness and compressive strength up to 3.5 wt. %, after that, it starts decreasing because of the agglomeration of nano alumina particles. SEM results reveal grain refinement of the pure alloy after reinforcement. Removal of porosity and voids observed after forging operation. Wear resistance increasing with incorporation of Al2O3 nanoparticles in base alloy, reinforcement wt. %, precipitation hardening and hot forging also improves wear resistance and mechanical properties. These composites have widespread applications in gear, brake discs, crankshaft, clutch plates, pistons, and other components of automobiles and aircraft structures.
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Authors and Affiliations

Rajesh Purohit
1
M.M.U. Qureshi
1
Ashish Kumar
1
ORCID: ORCID
Abhishek Mishra
1
R.S. Rana
1

  1. Mechanical Engineering Department, MANIT, Bhopal, India-462003

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