Numerical Investigation of Heat Transfer Intensification Using Lattice Structures in Heat Exchangers

Author:

Pulin Anton1,Laptev Mikhail1,Kortikov Nikolay2,Barskov Viktor1,Roschenko Gleb1,Alisov Kirill1,Talabira Ivan1,Gong Bowen1,Rassokhin Viktor3,Popovich Anatoly4,Novikov Pavel4

Affiliation:

1. Higher School of Power Engineering, Institute of Power Engineering, Peter the Great St. Petersburg Polytechnic University, 29 Politechnicheskaya Str., St. Petersburg 195251, Russia

2. Higher School of Nuclear and Thermal Energy, Institute of Power Engineering, Peter the Great St. Petersburg Polytechnic University, 29 Politechnicheskaya Str., St. Petersburg 195251, Russia

3. Laboratory “Modeling of Technological Processes and Design of Power Equipment”, Great St. Petersburg Polytechnic University, 29 Politechnicheskaya Str., St. Petersburg 195251, Russia

4. Laboratory “Synthesis of New Materials and Structures”, Institute of Mechanical Engineering, Materials and Transport, Peter the Great St. Petersburg Polytechnic University, 29 Politechnicheskaya Str., St. Petersburg 195251, Russia

Abstract

Heat exchangers make it possible to utilize energy efficiently, reducing the cost of energy production or consumption. For example, they can be used to improve the efficiency of gas turbines. Improving the efficiency of a heat exchanger directly affects the efficiency of the device for which it is used. One of the most effective ways to intensify heat exchange in a heat exchanger without a significant increase in mass-dimensional characteristics and changes in the input parameters of the flows is the introduction of turbulators into the heat exchangers. This article investigates the increase in efficiency of heat exchanger apparatuses by introducing turbulent lattice structures manufactured with the use of additive technologies into their design. The study is carried out by numerical modeling of the heat transfer process for two sections of the heat exchanger: with and without the lattice structure inside. It was found that lattice structures intensify the heat exchange by creating vortex flow structures, as well as by increasing the heat exchange area. Thus, the ratio of convection in thermal conductivity increases to 3.03 times. Also in the article, a comparative analysis of the results obtained with the results of heat transfer intensification using classical flow turbulators is carried out. According to the results of the analysis, it was determined that the investigated turbulators are more effective than classical ones, however, the pressure losses in the investigated turbulators are much higher.

Funder

Russian Science Foundation

Publisher

MDPI AG

Reference14 articles.

1. Chernyakov, L.A., and Gavrilov, T.A. (2014). An Experimental Study of the Effect of Fluid Turbulence on Heat Exchanger Parameters, Notes of Petrozavodsk State University.

2. Gorobets, V.G. (2006). Comparative Analysis of Heat Transfer and Hydraulic Resistance of Bundles of Pipes with Fins of Various Types, Publishing House of the Institute of Technical Thermophysics of the National Academy of Sciences of Ukraine.

3. Effect analysis on performance enhancement of a novel air cooling battery thermal management system with spoilers;Ningbo;Appl. Therm. Eng.,2021

4. Enhancing the performance of parabolic trough collectors using nanofluids and turbulators;Evangelos;Renew. Sustain. Energy Rev.,2018

5. Numerical investigations of the impact of a novel turbulator configuration on the performances enhancement of heat exchangers;Tarik;J. Energy Storage,2022

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