Спряжений теплообмін багатошарових полімерних плівок при струминному їх охолодженні
Abstract
CONJUGATE HEAT TRANSFER OF COMPOZITE POLYMERIC FILMS WITH COOLING BY JETS
V. Gorobets
Single-layer polymer films and composite materials have a wide scope in various sectors of the economy. In agriculture they can be used in the processing and storage of agricultural products, greenhouses and more. In the production of blown polymer films consisting of multiple polymers with different properties, developed the device in which to cool them during the transition from molten to the solid state is used bilateral air cooling airflow. Research has shown that regimeof streams flow in jets must be turbulent. There are engineering methods for calculating heat jet cooling systems are based on the criterion of dependencies, fair only to some cooling mode, which limits the applicability of the limited terms of experimental research. These dependencies not take into account such important factors as the uneven distribution of the local heat transfer coefficients on the surface, unisothermical character of film surface, the presence of vouchers areas near die and other factors. Using a calculation of coarse assumptions can lead to significant errors in determining the temperature conditions of the polymer film and does not allow with sufficient accuracy to design cooling systems, and identify ways to intensify the heat processes and increase performance cooling devices.
The purpose of research - to develop mathematical models and numerical calculation of the transport processes in the jet air cooled tubular multilayer polymeric film and impact analysis of dynamical and geometrical factors on the conditions of the film formation.
In the article the mathematical model of transport processes in the jet air cooled tubular multilayer polymeric film is developed. The numerical calculation and thermal performance obtained blown polymer films based on dynamic and geometric parameters of the cooling system. The analysis of the impact of the major factors in the performance of devices for production of multilayer blown polymer films is worked and recommendations to improve the performance of these devices are developed.
References
Lukach, Ju. E. Petuhov, A.D., Senatos, V.A. (1981). Oborudovanie dlja proizvodstva polimernih pljonok [ Equipment for the production of polymer films]. Mashinostrojenie, 222.
Diban, Je. P., Mazur, A. I. (1982). Konvektivnij teploobmjen pri strujnom obtekanii tel [Convective Heat Transfer in jet flow of bodies]. Kyiv: Naukova dumka, 303.
Novikov, V. G. (1984). Soprjazhjennij teploobmen neprerivnih tel dvizhuchihsja cherez teplonositjel [Conjugate heat transfer of the continuous bodies moving through the coolant]. Institute of Engineering Thermophysics. Ukrainian Academy of Sciences. Kyiv, 19.
Grechannij, O. A., Nagolkina, Z.I., Senatos, V.A. (1984). Teploobmen pri strujnom obtekanii proizvolno neizotermicheskoj ploskoj poverhnosti [Heat transfer in the jet flow around an arbitrary non-isothermal flat surface]. Industrial Heat Engineering, 6, 3-10.
Dorfman, A. Sh., Grechannij, O. A.,. Novikov, V. G. (1981). . Soprjazhjennij teploobmen neprerivno dvizhuzhejsja ploskoj plastini pomochjennoj v potokje zhidkosti [Conjugate heat transfer continuously moving flat plate placed in a fluid stream]. High Temperature, 5, 973-979.
Gorobets, V. G., Senatos, V. A. (1992). Soprjazhennij teploobmen dvizhushihsja polimernih pljonok [Conjugate heat transfer motion of polymer films with their jet flow]. Theoretical Foundations of Chemical Engineering, 5, 698-706.
Gorobets,V.G. (2014). Heat transfer in a non–isothermal extended surface. 377.
Keis, V. M. (1972). Konvektivnij tjeplo– i massoperenos [Convective heat and mass transfer]. Moskow: Energy, 446.
Dorfman, A. Sh. (1982). Teploobmen pri obtekanii neizotermicheskih tel [Heat transfer in non– isothermal flow of bodies]. Moskow, Mashinostrojenie, 191.
Majers, G. E., Shauer, I.I., Justis, R. H. (1963). Teploobmen v ploskih turbulentnih strujah u stenki [Heat transfer in a plane turbulent jets on wall]. Heat transfer, 80 (3).
Kalitkin, N.N. (1972). Chislennie metodi [Numerical methods]. Moskow: Energiya. 680.
Berezin, I.S., Jidkov, N.P. Metodi vichislenii [Calculated methods]. Moscow: Gos. iz– vo fiz.– mat. l– ry , 620.
Downloads
Published
Issue
Section
License
Relationship between right holders and users shall be governed by the terms of the license Creative Commons Attribution – non-commercial – Distribution On Same Conditions 4.0 international (CC BY-NC-SA 4.0):https://creativecommons.org/licenses/by-nc-sa/4.0/deed.uk
Authors who publish with this journal agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution License that allows others to share the work with an acknowledgement of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgement of its initial publication in this journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work (See The Effect of Open Access).