scholarly journals Modern methods of intensification of heat exchange processes in plate apparatuses

Author(s):  
N Yu Savvin ◽  
L A Kushchev ◽  
A I Alifanova
2021 ◽  
Vol 2057 (1) ◽  
pp. 012013
Author(s):  
B Ya Benderskiy ◽  
A A Chernova

Abstract The paper deals with the numerical simulation of the flow of thermally conductive viscous gaseous combustion products in the flow paths of a power plant. The influence of the shape of the mass supply surface on the gas dynamics and heat exchange near the recessed nozzle of the power plant is investigated. The coupled problem of heat exchange is solved by the method of control volumes. It is shown that the compensator geometry determines the localization of both the topological features of the flow near the recessed nozzle and the position of local maximums of the heat transfer coefficient. It has been revealed that The use of a channel with a star-shaped cross section and a triangular form of compensator rays leads to an intensification of heat exchange processes near a recessed nozzle.


1973 ◽  
Vol 25 (3) ◽  
pp. 1090-1093
Author(s):  
G. F. Gorshkov ◽  
V. S. Komarov ◽  
M. M. Maev ◽  
V. S. Terpigor'ev

Author(s):  
L. A. Kushchev ◽  
V. A. Uvarov ◽  
N. Yu. Savvin ◽  
S. V. Chuikin

Statement of the problem. The problem of intensification of heat exchange processes in a plate heat exchanger on the basis of the HH№ 02 heat exchanger of the Ridan company is discussed. It is essential to carry out an analysis of the existing methods of intensification of heat exchange processes in plate devices according to the results of the analysis to choose the most promising method of intensification of heat exchange process and based on it to develop a patent-protected design of a heat exchange plate. Laboratory tests of the intensified plate heat exchanger with increased turbulence of the coolant are performed. The results of thermal tests on a specialized laboratory installation of the resulting and the serial heat exchanger are presented.Results. The results of the comparison of experimental studies of the intensified plate heat exchanger with the increased turbulence of the heat carrier and the serial plate heat exchanger of identical heat power are shown. The graphs of dependence of the heat transfer coefficient, which is the major characteristic of the operation of heat exchange equipment, on the average temperature pressure are designed. Conclusions. As a result of the laboratory tests in the specialized laboratory of BSTU named after V. G. Shukhov and research at the Voronezh State Technical University established a rise in the heat transfer coefficient due to the increased turbulence of the coolant flow, which causes a decrease in metal consumption and reduces the cost of heat exchange equipment.


Author(s):  
Л. А. Кущев ◽  
В. А. Уваров ◽  
Н. Ю. Саввин ◽  
С. В. Чуйкин

Постановка задачи. Рассматривается задача интенсификации теплообменных процессов в пластинчатом теплообменном аппарате на базе теплообменника НН№ 02 фирмы Ridan . Необходимо выполнить анализ существующих методов интенсификации теплообменных процессов в пластинчатых аппаратах, по результатам анализа выбрать наиболее перспективный метод интенсификации процесса теплообмена и на его основе разработать патентозащищенную конструкцию теплообменной пластины. Выполнить лабораторные испытания интенсифицированного пластинчатого теплообменного аппарата с повышенной турбулизацией теплоносителя. Сравнить результаты теплотехнических испытаний на специализированной лабораторной установке разработанного теплообменника и серийного. Результаты. Приведены результаты сравнения экспериментальных исследований интенсифицированного пластинчатого теплообменного аппарата с повышенной турбулизацией теплоносителя и серийного пластинчатого теплообменника одинаковой тепловой мощности. Построены графики зависимости коэффициента теплопередачи, являющегося основной характеристикой работы теплообменного оборудования, от среднего температурного напора. Выводы. В результате лабораторных испытаний в специализированной лаборатории БГТУ им. В. Г. Шухова и исследований в Воронежском государственном техническом университете установлен прирост коэффициента теплопередачи за счет повышенной турбулизации потока теплоносителя, что приводит к снижению металлоемкости и уменьшению стоимости теплообменного оборудования. Statement of the problem. The problem of intensification of heat exchange processes in a plate heat exchanger on the basis of the HH№ 02 heat exchanger of the Ridan company is discussed. It is essential to carry out an analysis of the existing methods of intensification of heat exchange processes in plate devices according to the results of the analysis to choose the most promising method of intensification of heat exchange process and based on it to develop a patent-protected design of a heat exchange plate. Laboratory tests of the intensified plate heat exchanger with increased turbulence of the coolant are performed. The results of thermal tests on a specialized laboratory installation of the resulting and the serial heat exchanger are presented. Results. The results of the comparison of experimental studies of the intensified plate heat exchanger with the increased turbulence of the heat carrier and the serial plate heat exchanger of identical heat power are shown. The graphs of dependence of the heat transfer coefficient, which is the major characteristic of the operation of heat exchange equipment, on the average temperature pressure are designed. Conclusions. As a result of the laboratory tests in the specialized laboratory of BSTU named after V. G. Shukhov and research at the Voronezh State Technical University established a rise in the heat transfer coefficient due to the increased turbulence of the coolant flow, which causes a decrease in metal consumption and reduces the cost of heat exchange equipment.


Author(s):  
A.F. Khasanova ◽  
◽  
M.A. Gallyamov ◽  
Z.A. Zakirova ◽  
◽  
...  

2014 ◽  
Vol 21 (1) ◽  
pp. 21-30 ◽  
Author(s):  
Edmundas Monstvilas ◽  
Karolis Banionis ◽  
Jurga Poderytė ◽  
Raimondas Bliūdžius ◽  
Arūnas Burlingis

The article presents the solution of heat balance equation system, describing heat exchange processes in ventilated envelopes, which was applied to derive formulas for the calculation of temperatures in the ventilated layers of the envelopes. The accurateness of the formulas was assessed by experimental research and analysis of the calculation results. During the process of heat exchange balance equation solution, the equations were simplified by introducing the following restriction into the derived formulas: they may only be applied for the ventilated envelopes with steel or similar coatings as their external layers, i.e. coatings having small heat capacity and minor difference between the external and internal surface temperatures. The derived formulas enable the calculation of the temperatures of the ventilated envelopes in the distance which does not exceed a half of the ventilated air gap length measuring from the air entrance into the gap. However, this restriction does not impede the estimation of the average thermal indicators of the ventilated envelopes.


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