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Erschienen in: Journal of Engineering Thermophysics 2/2022

01.06.2022

Heat Transfer Enhancement during Pool Water Boiling Using 3D Printed Capillary-Porous Coatings

verfasst von: V. S. Serdyukov, O. A. Volodin, V. P. Bessmeltsev, A. N. Pavlenko

Erschienen in: Journal of Engineering Thermophysics | Ausgabe 2/2022

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Abstract

The paper presents the results of an experimental study of the effect of 3D capillary-porous copper coatings with various geometries on the heat transfer rate and bubble dynamics during water pool boiling. The surfaces were modified via additive manufacturing (3D printing). It is shown that for the fabricated surfaces, the heat transfer enhancement is up to 2 times as compared with the reference bare surface. The highest degrees of the heat transfer enhancement are achieved for the coatings with the smallest wavelength of the structure modulation and channel width. High-speed video recording of boiling was also carried out, based on which the bubble departure diameters were analyzed for surfaces of various types.

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Literatur
1.
Zurück zum Zitat Mudawar, I., Recent Advances in High-Flux, Two-Phase Thermal Management, J. Thermal Sci. Eng. Appl., 2013, vol. 5, no. 2, p. 021012.CrossRef Mudawar, I., Recent Advances in High-Flux, Two-Phase Thermal Management, J. Thermal Sci. Eng. Appl., 2013, vol. 5, no. 2, p. 021012.CrossRef
2.
Zurück zum Zitat Liang, G. and Mudawar, I., Review of Nanoscale Boiling Enhancement Techniques and Proposed Systematic Testing Strategy to Ensure Cooling Reliability and Repeatability, Appl. Thermal Eng., 2021, vol. 184, p. 115982.CrossRef Liang, G. and Mudawar, I., Review of Nanoscale Boiling Enhancement Techniques and Proposed Systematic Testing Strategy to Ensure Cooling Reliability and Repeatability, Appl. Thermal Eng., 2021, vol. 184, p. 115982.CrossRef
3.
Zurück zum Zitat Dedov, A.V., A Review of Modern Methods for Enhancing Nucleate Boiling Heat Transfer, Thermal Eng., 2019, vol. 66, no. 12, pp. 881–915.ADSCrossRef Dedov, A.V., A Review of Modern Methods for Enhancing Nucleate Boiling Heat Transfer, Thermal Eng., 2019, vol. 66, no. 12, pp. 881–915.ADSCrossRef
4.
Zurück zum Zitat Surtaev, A.S., Serdyukov, V.S., and Pavlenko, A.N., Nanotechnologies for Thermophysics: Heat Transfer and Crisis Phenomena at Boiling, Nanotech. Russia, 2016, vol. 11, pp. 696–715.CrossRef Surtaev, A.S., Serdyukov, V.S., and Pavlenko, A.N., Nanotechnologies for Thermophysics: Heat Transfer and Crisis Phenomena at Boiling, Nanotech. Russia, 2016, vol. 11, pp. 696–715.CrossRef
5.
Zurück zum Zitat Shojaeian, M. and Koşar, A., Pool Boiling and Flow Boiling on Micro- and Nanostructured Surfaces, Exp. Thermal Fluid Sci., 2015, vol. 63, pp. 45–73.CrossRef Shojaeian, M. and Koşar, A., Pool Boiling and Flow Boiling on Micro- and Nanostructured Surfaces, Exp. Thermal Fluid Sci., 2015, vol. 63, pp. 45–73.CrossRef
6.
Zurück zum Zitat Beaman, J.J., Bourell, D.L., Seepersad, C.C., and Kovar, D., Additive Manufacturing Review: Early Past to Current Practice, J. Manuf. Sci. Eng., 2020, vol. 142, no. 11, p. 110812.CrossRef Beaman, J.J., Bourell, D.L., Seepersad, C.C., and Kovar, D., Additive Manufacturing Review: Early Past to Current Practice, J. Manuf. Sci. Eng., 2020, vol. 142, no. 11, p. 110812.CrossRef
7.
Zurück zum Zitat Wong, K.K. and Leong, K.C., Saturated Pool Boiling Enhancement Using Porous Lattice Structures Produced by Selective Laser Melting, Int. J. Heat Mass Transfer, 2018, vol. 121, pp. 46–63.CrossRef Wong, K.K. and Leong, K.C., Saturated Pool Boiling Enhancement Using Porous Lattice Structures Produced by Selective Laser Melting, Int. J. Heat Mass Transfer, 2018, vol. 121, pp. 46–63.CrossRef
8.
Zurück zum Zitat Kang, Z. and Wang, L., Boiling Heat Transfer on Surfaces with 3D-Printing Microstructures, Exp. Thermal Fluid Sci., 2018, vol. 93, pp. 165–170.CrossRef Kang, Z. and Wang, L., Boiling Heat Transfer on Surfaces with 3D-Printing Microstructures, Exp. Thermal Fluid Sci., 2018, vol. 93, pp. 165–170.CrossRef
9.
Zurück zum Zitat Zhang, C., Zhang, L., Xu, H., Li, P., and Qian, B., Performance of Pool Boiling with 3D Grid Structure Manufactured by Selective Laser Melting Technique, Int. J. Heat Mass Transfer, 2019, vol. 128, pp. 570–580.CrossRef Zhang, C., Zhang, L., Xu, H., Li, P., and Qian, B., Performance of Pool Boiling with 3D Grid Structure Manufactured by Selective Laser Melting Technique, Int. J. Heat Mass Transfer, 2019, vol. 128, pp. 570–580.CrossRef
10.
Zurück zum Zitat Liu, H., Wang, J., Gu, Z., Fei, X., and Zhang, L., Enhancement of Pool Boiling Heat Transfer Using 3D-Printed Groove Structure, Int. J. Heat Mass Transfer, 2021, p. 122155.CrossRef Liu, H., Wang, J., Gu, Z., Fei, X., and Zhang, L., Enhancement of Pool Boiling Heat Transfer Using 3D-Printed Groove Structure, Int. J. Heat Mass Transfer, 2021, p. 122155.CrossRef
11.
Zurück zum Zitat Liu, H., Zhang, C., Wang, J., and Zhang, L., Critical Heat Flux Enhancement Using Composite Porous Structure Produced by Selective Laser Melting, Appl. Thermal Eng., 2021, vol. 197, p. 117396.CrossRef Liu, H., Zhang, C., Wang, J., and Zhang, L., Critical Heat Flux Enhancement Using Composite Porous Structure Produced by Selective Laser Melting, Appl. Thermal Eng., 2021, vol. 197, p. 117396.CrossRef
12.
Zurück zum Zitat Zhukov, V.I., Pavlenko, A.N., and Shvetsov, D.A., The Effect of Pressure on Heat Transfer at Evaporation/Boiling in Horizontal Liquid Layers of Various Heights on a Microstructured Surface Produced by 3D Laser Printing, Int. J. Heat Mass Transfer, 2020, vol. 163, p. 120488.CrossRef Zhukov, V.I., Pavlenko, A.N., and Shvetsov, D.A., The Effect of Pressure on Heat Transfer at Evaporation/Boiling in Horizontal Liquid Layers of Various Heights on a Microstructured Surface Produced by 3D Laser Printing, Int. J. Heat Mass Transfer, 2020, vol. 163, p. 120488.CrossRef
13.
Zurück zum Zitat Pavlenko, A.N., Kuznetsov, D.V., and Bessmeltsev, V.P., Experimental Study on Heat Transfer and Critical Heat Flux During Pool Boiling of Nitrogen on 3D Printed Structured Copper Capillary-Porous Coatings, J. Eng. Therm., 2021, vol. 30, no. 3, pp. 341–349.CrossRef Pavlenko, A.N., Kuznetsov, D.V., and Bessmeltsev, V.P., Experimental Study on Heat Transfer and Critical Heat Flux During Pool Boiling of Nitrogen on 3D Printed Structured Copper Capillary-Porous Coatings, J. Eng. Therm., 2021, vol. 30, no. 3, pp. 341–349.CrossRef
14.
Zurück zum Zitat Bergles, A.E. and Chyu, M.C., Characteristics of Nucleate Pool Boiling from Porous Metallic Coatings, J. Heat Transfer, 1982, vol. 104, pp. 279–285.CrossRef Bergles, A.E. and Chyu, M.C., Characteristics of Nucleate Pool Boiling from Porous Metallic Coatings, J. Heat Transfer, 1982, vol. 104, pp. 279–285.CrossRef
15.
Zurück zum Zitat Bessmeltsev, V.P., Pavlenko, A.N., and Zhukov, V.I., Development of a Technology for Creating Structured Capillary-Porous Coatings by Means of 3D Printing for Intensification of Heat Transfer During Boiling, Optoel. Instrum. Data Process., 2019, vol. 55, no. 6, pp. 554–563.ADSCrossRef Bessmeltsev, V.P., Pavlenko, A.N., and Zhukov, V.I., Development of a Technology for Creating Structured Capillary-Porous Coatings by Means of 3D Printing for Intensification of Heat Transfer During Boiling, Optoel. Instrum. Data Process., 2019, vol. 55, no. 6, pp. 554–563.ADSCrossRef
16.
Zurück zum Zitat Kwark, S.M., Moreno, G., Kumar, R., Moon, H., and You, S.M., Nanocoating Characterization in Pool Boiling Heat Transfer of Pure Water, Int. J. Heat Mass Transfer, 2010, vol. 53, nos. 21/22, pp. 4579–4587.CrossRef Kwark, S.M., Moreno, G., Kumar, R., Moon, H., and You, S.M., Nanocoating Characterization in Pool Boiling Heat Transfer of Pure Water, Int. J. Heat Mass Transfer, 2010, vol. 53, nos. 21/22, pp. 4579–4587.CrossRef
17.
Zurück zum Zitat Rohsenow, W.M., A Method of Correlating Heat Transfer Data for Surface Boiling of Liquids, Cambridge: MIT Division of Industrial Cooperation, 1951. Rohsenow, W.M., A Method of Correlating Heat Transfer Data for Surface Boiling of Liquids, Cambridge: MIT Division of Industrial Cooperation, 1951.
18.
Zurück zum Zitat Surtaev, A.S., Pavlenko, A.N., Kuznetsov, D.V., Kalita, V.I., Komlev, D.I., Ivannikov, A.Y., and Radyuk, A.A., Heat Transfer and Crisis Phenomena at Pool Boiling of Liquid Nitrogen on the Surfaces with Capillary-Porous Coatings, Int. J. Heat Mass Transfer, 2017, vol. 108, pp. 146–155.CrossRef Surtaev, A.S., Pavlenko, A.N., Kuznetsov, D.V., Kalita, V.I., Komlev, D.I., Ivannikov, A.Y., and Radyuk, A.A., Heat Transfer and Crisis Phenomena at Pool Boiling of Liquid Nitrogen on the Surfaces with Capillary-Porous Coatings, Int. J. Heat Mass Transfer, 2017, vol. 108, pp. 146–155.CrossRef
19.
Zurück zum Zitat Surtaev, A., Kuznetsov, D., Serdyukov, V., Pavlenko, A., Kalita, V., Komlev, D., Radyuk, A., and Ivannikov, A., Structured Capillary-Porous Coatings for Enhancement of Heat Transfer at Pool Boiling, Appl. Thermal Eng., 2018, vol. 133, pp. 532–542.CrossRef Surtaev, A., Kuznetsov, D., Serdyukov, V., Pavlenko, A., Kalita, V., Komlev, D., Radyuk, A., and Ivannikov, A., Structured Capillary-Porous Coatings for Enhancement of Heat Transfer at Pool Boiling, Appl. Thermal Eng., 2018, vol. 133, pp. 532–542.CrossRef
Metadaten
Titel
Heat Transfer Enhancement during Pool Water Boiling Using 3D Printed Capillary-Porous Coatings
verfasst von
V. S. Serdyukov
O. A. Volodin
V. P. Bessmeltsev
A. N. Pavlenko
Publikationsdatum
01.06.2022
Verlag
Pleiades Publishing
Erschienen in
Journal of Engineering Thermophysics / Ausgabe 2/2022
Print ISSN: 1810-2328
Elektronische ISSN: 1990-5432
DOI
https://doi.org/10.1134/S1810232822020011

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