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Academic literature on the topic 'Теплофізична модель'
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Journal articles on the topic "Теплофізична модель"
Мних, Антон Сергійович, Михайло Юрійович Пазюк, Ірина Анатоліївна Овчинникова, Олена Миколаївна Баришенко, and Наталія Олександрівна Міняйло. "ПРО МАТЕМАТИЧНЕ МОДЕЛЮВАННЯ ПРОЦЕСІВ ТЕПЛООБМІНУ В СТАЦІОНАРНИХ ШАРАХ СИПКИХ МАТЕРІАЛІВ." Scientific Journal "Metallurgy", no. 2 (February 22, 2022): 5–13. http://dx.doi.org/10.26661/2071-3789-2021-2-01.
Full textBasok, B. I., A. М. Nedbaylo, and I. К. Bozhko. "ЧИСЕЛЬНА МОДЕЛЬ РОБОТИ ГОРИЗОНТАЛЬНОГО ГРУНТОВОГО КОЛЕКТОРА ТЕПЛОНАСОСНОЇ УСТАНОВКИ." Industrial Heat Engineering 39, no. 3 (June 20, 2017): 66–72. http://dx.doi.org/10.31472/ihe.3.2017.10.
Full textShapoval, S. L. "Прилад для дослідження структурно-механічних та теплофізичних властивостей м’яса птиці." Scientific Messenger of LNU of Veterinary Medicine and Biotechnologies 20, no. 85 (March 2, 2018): 100–106. http://dx.doi.org/10.15421/nvlvet8519.
Full textМахоркін, Ігор, Микола Махоркін, Тетяна Махоркіна, and Петро Пукач. "Аналітично-числове визначення стаціонарного теплового стану термочутливих багатошарових структур простої геометрії." Bulletin of Lviv National Agrarian University Agroengineering Research, no. 25 (December 20, 2021): 148–56. http://dx.doi.org/10.31734/agroengineering2021.25.148.
Full textІващенко, Валерій, Геннадій Швачич, and Олена Іващенко. "РОЗПОДІЛЕНІ АЛГОРИТМИ РОЗВ’ЯЗКУ ПРИКЛАДНИХ ЗАДАЧ В ЕКСТРЕМАЛЬНІЙ ПОСТАНОВЦІ." Modern Problems of Metalurgy, no. 24 (March 28, 2021): 35–45. http://dx.doi.org/10.34185/1991-7848.2021.01.04.
Full textШульга, Оксана Сергіївна, Сергій Олександрович Іванов, Володимир Васильович Листопад, and Олександр Григорович Мазуренко. "ДОСЛІДЖЕННЯ ТЕПЛОФІЗИЧНИХ ХАРАКТЕРИСТИК ФОРМУВАЛЬНОГО РОЗЧИНУ БІОДЕГРАДАБЕЛЬНОГО ЇСТІВНОГО ПОКРИТТЯ/ПЛІВКИ." Scientific Works 82, no. 2 (February 15, 2019): 47–55. http://dx.doi.org/10.15673/swonaft.v82i2.1169.
Full textГолубков, Павло Сергійович, Олександр Кирилович Войтенко, and Олег Григорович Бурдо. "Моделювання термомеханічних процесів виготовлення пельменів спеціальної форми." Scientific Works 84, no. 1 (December 14, 2020): 54–60. http://dx.doi.org/10.15673/swonaft.v84i1.1869.
Full textDeshko, V. I., I. Iu Bilous, and M. I. Zhyzha. "МОДЕЛЮВАННЯ СУМІСНОГО ВПЛИВУ СОНЯЧНОЇ ТА ТЕПЛОВОЇ РАДІАЦІЇ НА РІВЕНЬ ОПАЛЕННЯ ПРИМІЩЕННЯ." Кераміка: наука і життя, no. 4(29) (December 31, 2015): 34. http://dx.doi.org/10.26909/csl.4.2015.5.
Full textНОВАК, Сергій, Михайло НОВАК, and Варвара ДРІЖД. "ОЦІНЮВАННЯ ТЕПЛОФІЗИЧНИХ ВЛАСТИВОСТЕЙ РЕАКТИВНИХ ВОГНЕЗАХИСНИХ ПОКРИТТІВ ДЛЯ СТАЛЕВИХ КОНСТРУКЦІЙ." Науковий вісник: Цивільний захист та пожежна безпека, no. 2(12) (December 23, 2021): 69–81. http://dx.doi.org/10.33269/nvcz.2021.2(12).69-81.
Full textAzhazha, Zh, L. Ledovskaya, A. Pilipenko, S. Sayenko, and G. Kholomeyev. "Теплофізичні аспекти вибору параметрів глибинного сховища високоактивних відходів та відпрацьованого ядерного палива." Nuclear and Radiation Safety, no. 1(53) (March 12, 2012): 44–48. http://dx.doi.org/10.32918/nrs.2012.1(53).08.
Full textDissertations / Theses on the topic "Теплофізична модель"
Ткачук, І. Є., and В. Д. Рудь. "Аналітичний опис теплофізичних явищ при механічній обробці спечених матеріалів." Thesis, Сумський державний університет, 2014. http://essuir.sumdu.edu.ua/handle/123456789/38161.
Full textМягкий, Олександр Валерійович. "Підвищення завадостійкості теплової дефектоскопії багатошарових конструкцій та трубопроводів." Thesis, Харківський національний університет радіоелектроніки, 2018. http://repository.kpi.kharkov.ua/handle/KhPI-Press/40779.
Full textThe dissertation on the receipt of scientific degree of candidate of engineering sciences on speciality 05.11.13 – devices and methods of testing and materials composition determination. Kharkiv National University of Radio Electronics, Kharkiv, 2019. The dissertation is devoted to the question of immunity to interference improvement in the thermal non-destructive testing of multilayered honeycomb constructions and pipelines, both by the monitoring mode selection with the criterion of maximum signal-to-interference ratio, and by the further computer processing of obtained experimental data. Thermophysical models of multilayered honeycomb constructions are proposed. The software package "TermoPro_TFH_Statistic" was worked out and number of experiments at the thermal flaw detection modes selection were performed on its basis. A number of full-size and laboratory-scale experiments were conducted to investigate the interference effect on thermal non-destructive testing. A number of filters have been worked out, as well as the sequence of their use to significantly reduce the interference level during the thermal flaw detection. Due to this, the sensitivity of thermal defectoscopy to detection of defects of the "non-adhesive" type in honeycomb structures increased – the size of the threshold defect was decreased from 6mm to 3mm, and the reliability of their detection increased by 17-20%.
Мягкий, Олександр Валерійович. "Підвищення завадостійкості теплової дефектоскопії багатошарових конструкцій та трубопроводів." Thesis, Національний технічний університет "Харківський політехнічний інститут", 2019. http://repository.kpi.kharkov.ua/handle/KhPI-Press/40777.
Full textThe dissertation on the receipt of scientific degree of candidate of engineering sciences on speciality 05.11.13 – devices and methods of testing and materials composition determination. Kharkiv National University of Radio Electronics, Kharkiv, 2019. The dissertation is devoted to the question of immunity to interference improvement in the thermal non-destructive testing of multilayered honeycomb constructions and pipelines, both by the monitoring mode selection with the criterion of maximum signal-to-interference ratio, and by the further computer processing of obtained experimental data. Thermophysical models of multilayered honeycomb constructions are proposed. The software package "TermoPro_TFH_Statistic" was worked out and number of experiments at the thermal flaw detection modes selection were performed on its basis. A number of full-size and laboratory-scale experiments were conducted to investigate the interference effect on thermal non-destructive testing. A number of filters have been worked out, as well as the sequence of their use to significantly reduce the interference level during the thermal flaw detection. Due to this, the sensitivity of thermal defectoscopy to detection of defects of the "non-adhesive" type in honeycomb structures increased – the size of the threshold defect was decreased from 6mm to 3mm, and the reliability of their detection increased by 17-20%.
Бабкова, Надія Вікторівна. "Моделі та інформаційна технологія ідентифікації фізичних параметрів високотемпературних процесів." Thesis, НТУ "ХПІ", 2016. http://repository.kpi.kharkov.ua/handle/KhPI-Press/28147.
Full textThesis for a candidate degree in technical science, specialty 05.13.06 – Information Technologies. – National Technical University "Kharkiv Polytechnic Institute". – Kharkiv, 2017. The aim of the research lies in the improvement of the effectiveness of the determination process of thermal parameters based on the development models and methods of digital imaging and information technologies identification of the physical parameters of temperature processes. The main results: for the first time it is offered the solution to the inverse problem of convective heat transfer based on the us-age of algebra and theory of finite predicates tools and the theory of digital imaging that allows to determine the characteristics of the object that emits according to its digital image; the method of determining the temperature fields according to the digital image process got its further development and that helps to solve the problem of physical parameters ribbed structures; it was also improved the method of deter-mining the thermal parameters and temperature fields of building thermal process based on three-dimensional model of human color vision and developed discrete model of heat transfer in ribbed tubes that enabled to determine the optimal values of ribs in the process of heat transfer from hot gases into the working environment; it was improved the information technology of determining the physical parameters and temperature fields of building thermal process that automates the process of heating the processing of information and improve the process of monitoring the state of the object on the account of the determination of the imposition temperature fields areas.
Бабкова, Надія Вікторівна. "Моделі та інформаційна технологія ідентифікації фізичних параметрів високотемпературних процесів." Thesis, НТУ "ХПІ", 2017. http://repository.kpi.kharkov.ua/handle/KhPI-Press/28146.
Full textThesis for a candidate degree in technical science, specialty 05.13.06 – Information Technologies. – National Technical University "Kharkiv Polytechnic Institute". – Kharkiv, 2017. The aim of the research lies in the improvement of the effectiveness of the determination process of thermal parameters based on the development models and methods of digital imaging and information technologies identification of the physical parameters of temperature processes. The main results: for the first time it is offered the solution to the inverse problem of convective heat transfer based on the us-age of algebra and theory of finite predicates tools and the theory of digital imaging that allows to determine the characteristics of the object that emits according to its digital image; the method of determining the temperature fields according to the digital image process got its further development and that helps to solve the problem of physical parameters ribbed structures; it was also improved the method of deter-mining the thermal parameters and temperature fields of building thermal process based on three-dimensional model of human color vision and developed discrete model of heat transfer in ribbed tubes that enabled to determine the optimal values of ribs in the process of heat transfer from hot gases into the working environment; it was improved the information technology of determining the physical parameters and temperature fields of building thermal process that automates the process of heating the processing of information and improve the process of monitoring the state of the object on the account of the determination of the imposition temperature fields areas.