Εμφανίζονται 1 - 20 Αποτελέσματα από 125 για την αναζήτηση '"колориметрия"', χρόνος αναζήτησης: 2,09δλ Περιορισμός αποτελεσμάτων
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    Academic Journal

    Πηγή: Сборник статей

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    Relation: Актуальные вопросы современной медицинской науки и здравоохранения : Сборник статей IX Международной научно-практической конференции молодых ученых и студентов, 17-18 апреля 2024 г. Т. 1.; http://elib.usma.ru/handle/usma/21162

    Διαθεσιμότητα: http://elib.usma.ru/handle/usma/21162

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    Academic Journal

    Συγγραφείς: Y. N. Saukova, Е. Н. Савкова

    Πηγή: Measurement Standards. Reference Materials; Том 20, № 2 (2024); 77-98 ; Эталоны. Стандартные образцы; Том 20, № 2 (2024); 77-98

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    Relation: https://www.rmjournal.ru/jour/article/view/490/337; Digital colorimetry in chemical and pharmaceutical analysis / A. A. Chaplenko [et al.] // Moscow University Chemistry Bulletin. 2022. Vol. 77. P. 61–67. https://doi.org/10.3103/S002713142202002X; Inner product of RGB unit vectors for simple and versatile detection of color transition / N. Kakiuchi [et al.] // Analytical Science. 2021. Vol. 37, № 1. P. 3–5. https://doi.org/10.2116/analsci.20C015; Development of a double monitoring system for the determination of Cr(VI) in different water matrices by HPLC– UV and digital image-based colorimetric detection method with the help of a metal sieve-linked double syringe system in complexation / T. U. Gösterişli [et al.] // Environmental Monitoring and Assessment. 2022. Vol. 194. P. 691. https://doi.org/10.1007/s10661-022-10392-2; Development of a double-monitoring method for the determination of total antioxidant capacity as ascorbic acid equivalent using CUPRAC assay with RP-HPLC and digital image-based colorimetric detection / T. Borahan [et al.] // European Food Research and Technology. 2022. Vol. 248. P. 707–713. https://doi.org/10.1007/s00217-021-03923-7; Khalid H. S., Fakhre N. A. An android smartphone-based digital image colorimeter for detecting acid fuchsine dye in aqueous solutions // Journal of the Iranian Chemical Society. 2023. Vol. 20. P. 3043–3057. https://doi.org/10.1007/s13738-023-02896-6; Polat F. An advantageous analytical method for the determination of fluoride in saliva exploiting smartphone-based digital-image colorimetry // Chemical Papers. 2022. Vol. 76. P. 6215–6221. https://doi.org/10.1007/s11696–022–02313-x; Exploring smart phone based colorimetric technology for on-site quantitative determination of adulterant (neutralizer) in milk / V. Kumar [et al.] // Journal of Food Science and Technology. 2022. Vol. 59. P. 3693–3699. https://doi.org/10.1007/s13197-022-05392-6; Saadati M. A simple spot test method with digital imaging for chromium speciation in water samples // Journal of Analytical Chemistry. 2022. Vol. 77. P. 704–710. https://doi.org/10.1134/S1061934822060089; A method based on digital image colorimetry for determination of total phenolic content in fruits / R. C. Costa [et al.] // Food Analytical Methods. 2023. Vol. 16. P. 1261–1270. https://doi.org/10.1007/s12161-023-02492-7; Caleja-Ballesteros H. J. R., Ballesteros J. I. Digital image-based quantification of ethanol in distilled spirits using red cabbage (Brassica oleracea) extract // Chemical Papers. Vol. 77. P. 7977–7984. https://doi.org/10.1007/s11696-023-03034-5; Palygorskite and solvatochromic dye in solid-state colorimetric devices for rapid assessment of the amount of water in ethanol fuel / C.G. de Souza [et al.] // Chemical Papers. 2023. Vol. 77. P. 6341–6350. https://doi.org/10.1007/s11696-023-02943-9; Inagawa A., Kimura M., Uehara N. Total protein assay by PCA-based RGB-spectrum conversion methods with smartphone-acquired digital images // Analytical Sciences. 2022. Vol. 38. P. 869–880. https://doi.org/10.1007/s44211-022-00107-5; Yin C., Zhang X. Role of high-precision real-time digital image based on data simulation in the construction of rural public space environment // Soft Computing. 2023. https://doi.org/10.1007/s00500-023-08376-6; Non-contact optical dynamic measurements at different ranges: a review / Y. Fu [et al.] // Acta Mechanica Sinica. 2021. Vol. 37. P. 537–553. https://doi.org/10.1007/s10409-021-01102-1; Barten P. G. J. Spatiotemporal model for the contrast sensitivity of the human eye and its temporal aspects // Human Vision, Visual Processing, and Digital Display IV : Proc. SPIE1913 / San Jose, CA, United States: 1993. https://doi.org/10.1117/12.152690; Saukova Y. The validation model of information measuring channel in technical vision systems // International Journal of Advanced Engineering and Technology. 2018. Vol. 1, № . 4. P. 28–33.; Фершильд М. Д. Модели цветового восприятия. Второе издание : пер. с англ. 2006.; Зуйков И. Е., Савкова Е. Н. Колориметрия с высоким пространственным разрешением // Приборы и методы измерений. 2013. № 1. С. 86–91.; Sutkowski M., Saukova Y. Extending of digital camera dynamic range on the Imaging Processing basis // Приборы и методы измерений. 2017. Т. 8, № 3. С. 271–278. https://doi.org/10.21122/2220-9506-2017-8-3-271-278; Савкова Е. Н., Миргород Ю. С. Оптимизация параметров пиксельной графики по критерию минимума неопределенности // сборник тезисов докладов Международной научно-технической конференции Метрология – 2017 / под общ. ред. канд. техн. наук В. Л. Гуревича. Минск: БелГИМ, 2017. С. 90–94.; Saukova Y., Matyush I. The metrological assurance of the colorimetry in software and hardware environments // International Journal of Innovative Research in Electronics and Communications (IJIREC). 2016. Vol. 3, Iss. 5. P. 6–19. http://dx.doi.org/10.20431/2349–4050.0305002; Эпштейн Н. А. Валидация аналитических методик: графические и расчетные критерии для оценки линейности методик на практике // Разработка и регистрация лекарственных средств. 2019. Т. 8, № 2. С. 122–130. https://doi.org/10.33380/2305-2066-2019-8-2-122-13023; Эрмер Й., Миллер Д. Х. МакБ. Валидация методик в фармацевтическом анализе. Примеры наилучших практик: пер с англ. М. : Группа компаний ВИАЛЕК, 2013. 512 с.; Пригодность применения. Руководство для лабораторий по валидации методов и смежным вопросам; под ред. Б. Магнуссона и У. Эрнемарка : перевод второго издания 2014 года. Киев : ООО Юрка Любченка, 2016. 96 с.; Handbook of chemometrics and qualimetrics / D. L. Massart [et al.]. Part A. Amsterdam: Elsevier, 1997. 886 p.; Chemometrics in chromatography / L. Komsta [et al.]. Boca Raton: CRC Press, 2018. 506 p. https://doi.org/10.1201/9781315154404; Schanda J. Colorimetry. Understanding the CIE system. John Wiley & SONS, INC., Publication, 2019. 500 p.; Толковый словарь русского языка / С. И. Ожегов; под ред. проф. Л. И. Скворцова. 27-е изд., испр. М. : Издательство АСТ : Издательство Мир и образование, 2023. 393 с.; https://www.rmjournal.ru/jour/article/view/490

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    Academic Journal

    Πηγή: chemistry of plant raw material; No 1 (2021); 287-298
    Химия растительного сырья; № 1 (2021); 287-298

    Περιγραφή αρχείου: application/pdf

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    Conference

    Θέμα γεωγραφικό: RSVPU

    Περιγραφή αρχείου: application/pdf

    Relation: Экологическая безопасность в техносферном пространстве : сборник материалов Пятой Международной научно-практической конференции преподавателей, молодых ученых и студентов. - Екатеринбург, 2022

    Διαθεσιμότητα: https://elar.uspu.ru/handle/ru-uspu/40844

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    Academic Journal

    Πηγή: Український метрологічний журнал / Ukrainian Metrological Journal; № 3 (2022); 49-55
    Украинский метрологический журнал / Ukrainian Metrological Journal; № 3 (2022); 49-55
    Ukrainian Metrological Journal; No. 3 (2022); 49-55

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    Σύνδεσμος πρόσβασης: http://umj.metrology.kharkov.ua/article/view/269783

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    Academic Journal

    Πηγή: chemistry of plant raw material; No 3 (2018); 239-250
    Химия растительного сырья; № 3 (2018); 239-250

    Περιγραφή αρχείου: application/pdf

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    Academic Journal

    Πηγή: Chemosensors

    Περιγραφή αρχείου: application/pdf

    Relation: Chemosensors. 2021. Vol. 9, iss. 7; Voskoboynikova, O. B. Optical pH Sensing in Milk: A Small Puzzle of Indicator Concentrations and the Best Detection Method / O. B. Voskoboynikova, A. V. Sukhanov, A. Duerkop // Chemosensors. — 2021. — Vol. 9, iss. 7. — [177, 9 p.].; http://earchive.tpu.ru/handle/11683/69111

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    Academic Journal

    Συνεισφορές: This work was supported by State Budgeted Project 0324-2019-0041 and the Russian Foundation for Basic Research, project 20-04-00579.

    Πηγή: Vavilov Journal of Genetics and Breeding; Том 24, № 4 (2020); 441-445 ; Вавиловский журнал генетики и селекции; Том 24, № 4 (2020); 441-445 ; 2500-3259

    Περιγραφή αρχείου: application/pdf

    Relation: https://vavilov.elpub.ru/jour/article/view/2653/1399; Еремина М.А., Карпова Е.К., Раушенбах И.Ю., Пирожкова Д.С., Андреенкова О.В., Грунтенко Н.Е. Влияние мутаций генов инсулинового сигнального каскада на изменение уровня углеводов у самок Drosophila melanogaster при тепловом стрессе. Генетика. 2019;55(4):485-488. DOI 10.1134/S0016675819030068.; Ростовцев В.Р., Резник Г.Е. Количественное определение липидных фракций в крови. Лаб. дело. 1982;4:26-29.; Abdullah S., Davies S., Wall R. Spectrophotometric analysis of lipid used to examine the phenology of the tick Ixodes ricinus. Parasit Vectors. 2018;11:523. DOI 10.1186/s130-71-018-3102-3.; Al-Anzi B., Zinn K. Colorimetric measurement of triglycerides cannot provide an accurate measure of stored fat content in Drosophila. PLoS One. 2010;5(8):e12353. DOI 10.1371/journal.pone.0012353.; Álvarez-Rendón J.P., Salceda R., Riesgo-Escovar J.R. Drosophila melanogaster as a model for diabetes type 2 progression. BioMed. Res. Int. 2018;2018:1417528. DOI 10.1155/2018/1417528.; Anschau А., Caruso C.S., Kuhn R.C., Franco T.T. Validation of the sulfo-phospho-vanillin (spv) method for the determination of lipid content in oleaginous microorganisms. Braz. J. Chem. Eng. 2017; 34(1):19-27. DOI 10.1590/0104-6632.20170341s20140222.; Bozdoğan H., Erbey M., Aksoy H.A. Total amount of protein, lipid and carbohydrate of some adult species belong to curculionidae family (Coleoptera: Curculionidae). J. Entomol. Zool. Stud. 2016;4(5):242-248.; Byreddy A.R., Gupta A., Barrow C.J., Puri M. A quick colorimetric method for total lipid quantification in microalgae. J. Microbiol. Meth. 2016;125:28-32.; Cheng Y.S., Zheng Y., VanderGheynst J.S. Rapid quantitative analysis of lipids using a colorimetric method in a microplate format. Lipids. 2011;46(1):95-103. DOI 10.1007/s11745-010-3494-0.; Dionne M.S., Pham L.N., Shirasu-Hiza M., Schneider D.S. Akt and FOXO dysregulation contribute to infection-induced wasting in Drosophila. Curr. Biol. 2006;16:1977-1985.; Foray V., Pelisson P.-F., Venner M.C.B., Desouhant E., Venner S., Menu F., Giron D., Rey B. A handbook for uncovering the complete energetic budget in insects: the van Handel’s method (1985) revisited. Physiol. Entomol. 2012;37:295-302. DOI 10.1111/j.13653032.2012.00831.x.; Fukumura K., Konuma T., Tsukamoto Y., Nagata S. Adipokinetic hormone signaling determines dietary fatty acid preference through maintenance of hemolymph fatty acid composition in the cricket Gryllus bimaculatus. Sci. Rep. 2018;8:4737. DOI 10.1038/s41598018-22987-2.; Gontijo A.M., Garelli A. The biology and evolution of the Dilp8Lgr3 pathway: a relaxin-like pathway coupling tissue growth and developmental timing control. Mech. Dev. 2018;154:44-50. DOI 10.1016/j.mod.2018.04.005.; Gruntenko N.E., Adonyeva N.V., Burdina E.V., Karpova E.K., Andreenkova O.V., Gladkikh D.V., Ilinsky Y.Y., Rauschenbach I.Yu. The impact of FOXO on dopamine and octopamine metabolism in Drosophila under normal and heat stress conditions. Biol. Open. 2016;5:1706-1711. DOI 10.1242/bio.022038.; Gruntenko N.E., Rauschenbach I.Y. The role of insulin signalling in the endocrine stress response in Drosophila melanogaster: a minireview. Gen. Comp. Endocrinol. 2018;258:134-139. DOI 10.1016/j.ygcen.2017.05.019.; Hildebrandt A., Bickmeyer I., Kühnlein R.P. Reliable Drosophila body fat quantification by a coupled colorimetric assay. PLoS One. 2011; 6(9):e23796. DOI 10.1371/journal.pone.0023796.; Kleinert M., Clemmensen C., Hofmann S.M., Moore M.C., Renner S., Woods S.C., Huypens P., Beckers J., de Angelis M.H., Schürmann A., Bakhti M., Klingenspor M., Heiman M., Cherrington A.D., Ristow M., Lickert H., Wolf E., Havel P.J., Müller T.D., Tschöp M.H. Animal models of obesity and diabetes mellitus. Nat. Rev. Endocrinol. 2018;14(3):140-162. DOI 10.1038/nrendo.2017.161.; Knight J.A., Anderson S., Rawle J.M. Chemical basis of the sulfo-phospho-vanillin reaction for estimating total serum lipids. Clin. Chem. 1972;18(3):199-202.; Lee C.L. What we can learn from the energetic levels of insects: a guide and review. Ann. Entomol. Soc. Am. 2019;112(3):220-226. DOI 10.1093/aesa/say051.; Liu Z., Huang X. Lipid metabolism in Drosophila: development and disease. Acta Biochim. Biophys. Sin. (Shanghai). 2013;45(1):44-50. DOI 10.1093/abbs/gms105.; Lu Y., Ludsin S.A., Fanslow D.L., Pothoven S.A. Comparison of three microquantity techniques for measuring total lipids in fish. Can. J. Fish. Aquat. Sci. 2008;65:2233-2241. DOI 10.1139/F08-135.; Murillo-Maldonado J.M., Sánchez-Chávez G., Salgado L.M., Salceda R., Riesgo-Escovar J.R. Drosophila insulin pathway mutants affect visual physiology and brain function besides growth, lipid, and carbohydrate metabolism. Diabetes. 2011;60(5):1632-1636. DOI 10.2337/db10-1288.; Musselman L.P., Kühnlein R.P. Drosophila as a model to study obesity and metabolic disease. J. Exp. Biol. 2018;221(Suppl.1):jeb163881. DOI 10.1242/jeb.163881.; Park J., Jeong H.J., Yoon E.Y., Moon S.J. Easy and rapid quantification of lipid contents of marine dinoflagellates using the sulpho-phosphovanillin method. Algae. 2016;31(4):391-401. DOI 10.4490/algae.2016.31.12.7.; Patel A., Antonopoulou I., Enman J., Rova U., Christakopoulos P., Matsakas L. Lipids detection and quantification in oleaginous microorganisms: an overview of the current state of the art. BMC Chem. Eng. 2019;1:13. DOI 10.1186/s42480-019-0013-9.; Rauschenbach I.Yu., Karpova E.K., Burdina E.V., Adonyeva N.V., Bykov R.A., Ilinsky Y.Y., Menshanov P.N., Gruntenko N.E. Insulinlike peptide DILP6 regulates juvenile hormone and dopamine metabolism in Drosophila females. Gen. Comp. Endocrinol. 2016;243: 1-9. DOI 10.1016/j.ygcen.2016.11.0040016-6480.; Tennessen J.M., Barry W.E., Cox J., Thummel C.S. Methods for studying metabolism in Drosophila. Methods. 2014;68(1):105-115. DOI 10.1016/j.ymeth.2014.02.034.; Trinh I., Boulianne G.L. Modeling obesity and its associated disorders in Drosophila. Physiology. 2013;28:117-124. DOI 10.1152/physiol.00025.2012.; Van Handel E. Rapid determination of total lipids in mosquitoes. J. Am. Mosq. Control Assoc. 1985;1:302-304.; https://vavilov.elpub.ru/jour/article/view/2653

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    Academic Journal

    Πηγή: Visnyk NTUU KPI Seriia-Radiotekhnika Radioaparatobuduvannia; 64; 101-109
    Вестник НТУУ" КПИ ". Серия радиотехника Радиоаппаратостроение; 64; 101-109
    Вісник НТУУ "КПІ". Серія Радіотехніка, Радіоапаратобудування; 64; 101-109

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