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dc.contributor.authorKuskova, N. I.-
dc.contributor.authorДубовенко, Костянтин Вікторович-
dc.contributor.authorDubovenko, Kostyantyn-
dc.contributor.authorPetrichenko, S. V.-
dc.contributor.authorTsolin, P. L.-
dc.contributor.authorChaban, S. O.-
dc.date.accessioned2024-01-23T10:53:47Z-
dc.date.available2024-01-23T10:53:47Z-
dc.date.issued2013-
dc.identifier.citationKuskova, N. I., Dubovenko, K. V., Petrichenko, S. V., Tsolin, P. L., & Chaban, S. O. (2013). Electrodischarge technology and equipment to produce new carbon nanomaterials. Surface Engineering and Applied Electrochemistry, 49(3), 215–221. https://doi.org/10.3103/s1068375513030095uk_UA
dc.identifier.urihttps://dspace.mnau.edu.ua/jspui/handle/123456789/16878-
dc.descriptionПовний текст статті доступний з сайту видавця за посиланням: https://link.springer.com/article/10.3103/S1068375513030095uk_UA
dc.description.abstractA continuous and nonwaste process is proposed that consists of a set of simultaneous operations concerning the electrodischarge treatment of carbon liquid in reactors through exposure to high temperatures and pressures generated by a plasma discharge channel, the selection and separation of the processed sub-stance in filtering or centrifugal separating devices, and the recirculation of the purified material in a closed hydraulic system. The product, depending on the method used for the selection and separation, is a thick pasty mass or a dry powder mixture containing various modifications of carbon: fullerenes, nanotubes, and nanodiamonds (up to 10% of the total weight). A prototype of the electric equipment has been built to provide processing performance of from 0.02 to 1.5 kg/hour. It has a maximum installed capacity of 5 kV A, and the specific energy consumption ranges from 0.1 to 10 MJ/kg. The surge-current generator with microprocessor control was designed for industrial applications. It allows achieving the maximum discharge pulse recurrence frequency of 200 Hz, which is limited by the time of the medium's relaxation and the dielectric strength's restoration in the discharge gap. This ensures the versatile regulation and a shift in the corresponding processing performance of the single-reactor systems in the range from 0.4 to 30 kg/hour. This technology is complemented with the developed method for the enrichment of the produced ultrafine powder. It consists of an original sequence of physical and chemical methods (magnetic separation, acid treatment, chromatographic purification, etc.) and can increase the targeted selectivity of the processed products.uk_UA
dc.language.isoenuk_UA
dc.subjectcarbon nanomaterialsuk_UA
dc.subjectelectrodischarge technology and equipmentuk_UA
dc.subjectChromatographic analysisuk_UA
dc.subjectElectric dischargesuk_UA
dc.subjectElectric equipmentuk_UA
dc.subjectEnergy utilizationuk_UA
dc.subjectFiltrationuk_UA
dc.subjectHydraulic equipmentuk_UA
dc.subjectIndustrial applicationsuk_UA
dc.subjectMagnetic separationuk_UA
dc.subjectNanodiamondsuk_UA
dc.subjectNanostructured materialsuk_UA
dc.subjectCarbon nano-materialsuk_UA
dc.subjectChromatographic purificationuk_UA
dc.subjectDielectric strengthsuk_UA
dc.subjectMicroprocessor controluk_UA
dc.subjectProcessing performanceuk_UA
dc.subjectSimultaneous operationuk_UA
dc.subjectSpecific energy consumptionuk_UA
dc.subjectTechnology and equipmentsuk_UA
dc.subjectCarbonuk_UA
dc.subjectElectric Dischargesuk_UA
dc.subjectHigh Voltagesuk_UA
dc.subjectMetal Powderuk_UA
dc.titleElectrodischarge technology and equipment to produce new carbon nanomaterialsuk_UA
dc.typeArticleuk_UA
Розташовується у зібраннях:Публікації науково-педагогічних працівників МНАУ у БД Scopus

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