Laser Treatment Technique for Boiling Heat Transfer Application

Laser Treatment Technique for Boiling Heat Transfer Application

ORMAN Łukasz J., RADEK Norbert, PIETRASZEK Jacek, HONUS Stanislav, DZIEDZIC Joanna

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Abstract. The article discusses the use of laser treatment to produce surfaces that enhance boiling heat transfer. The laser beam has been applied on copper substrates to generate longitudal fins of regular geometry. The altered morphology pattern enables to dissipate higher heat flux values than the smooth, untreated surface – in the case of distilled water and ethyl alcohol as boiling agents. The issue of modeling nucleate pool boiling heat flux on laser processed surfaces is discussed in the paper considering two selected models of boiling.

Keywords
Boiling, Laser Treatment, Surface Treatment

Published online 9/1/2023, 8 pages
Copyright © 2023 by the author(s)
Published under license by Materials Research Forum LLC., Millersville PA, USA

Citation: ORMAN Łukasz J., RADEK Norbert, PIETRASZEK Jacek, HONUS Stanislav, DZIEDZIC Joanna, Laser Treatment Technique for Boiling Heat Transfer Application, Materials Research Proceedings, Vol. 34, pp 178-185, 2023

DOI: https://doi.org/10.21741/9781644902691-22

The article was published as article 22 of the book Quality Production Improvement and System Safety

Content from this work may be used under the terms of the Creative Commons Attribution 3.0 license. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.

References
[1] M. Piasecka, K. Strąk. Influence of the surface enhancement on the heat transfer in a minichannel, Heat Transfer Engineering 40(13-14) (2019) 1162-1175. https://doi.org/10.1080/01457632.2018.1457264
[2] M. Piasecka, K. Strąk, B. Grabas. Vibration-assisted laser surface texturing and electromachining for the intensification of boiling heat transfer in a minichannel, Archives of Metallurgy and Materials 62(4) (2017) 1983-1990. https://doi.org/10.1515/amm-2017-0296
[3] R. Kaniowski, R. Pastuszko. Pool boiling of water on surfaces with open microchannels, Energies 14(11) (2021) art. 3062. https://doi.org/10.3390/en14113062
[4] R. Kaniowski, R. Pastuszko. Boiling of FC-72 on surfaces with open copper microchannel, Energies 14(21) (2021) art. 7283. https://doi.org/10.3390/en14217283
[5] I. Pranoto, M.A. Rahman, P.A.P. Mahardhika. Pool boiling heat transfer performance and bubble dynamics from pin fin-modified surfaces with geometrical shape variation, Energies 15(5) (2022) 1847. https://doi.org/10.3390/en15051847
[6] E.A. Chinnov, S.Y. Khmel, V.Y. Vladimirov, A.I. Safonov, V.V. Semionov, K.A. Emelyanenko, A.M. Emelyanenko, L.B. Boinovich. Boiling beat transfer enhancement on biphilic surfaces, Energies 15(19) (2022) 7296. https://doi.org/10.3390/en15197296
[7] A.V. Belyaev, A.V. Dedov, N.E. Sidel’nikov, P. Jiang, A.N. Varava, R. Xu. Flow boiling heat transfer intensification due to inner surface modification in circular mini-channel, Water 14(24) (2022) 4054. https://doi.org/10.3390/w14244054
[8] P. Kurp et al. The influence of treatment parameters on the microstructure, properties and bend angle of laser formed construction bars, Arch. Metall. Mater. 61 (2016) 1151-1156. https://doi.org/10.1515/amm-2016-0192
[9] P. Kurp, D. Soboń. The influence of laser padding parameters on the tribological properties of the Al2O3 coatings, METAL 2018 27th Int. Conf. Metall. Mater. (2018) 1157-1162. ISBN 978-808729484-0
[10] P. Kurp, H. Danielewski Metal expansion joints manufacturing by a mechanically assisted laser forming hybrid method – concept, Technical Transactions 119 (2022) art.e2022008. https://doi.org/10.37705/TechTrans/e2022008
[11] D. Klimecka-Tatar. Electrochemical characteristics of titanium for dental implants in case of the electroless surface modification, Arch. Metall. Mater. 61 (2016) 923-926. https://doi.org/10.1515/amm-2016-0156
[12] D. Nowakowski et al. Application of machine learning in the analysis of surface quality – the detection the surface layer damage of the vehicle body, METAL 2021 – 30th Int. Conf. Metallurgy and Materials (2021), Ostrava, Tanger 864-869. https://doi.org/10.37904/metal.2021.4210
[13] B. Antoszewski et al. Assessment of technological capabilities for forming al-c-b system coatings on steel surfaces by electrospark alloying method, Materials 14 (2021) art.739. https://doi.org/10.3390/ma14040739
[14] A. Ga̧dek et al. Application of computer-aided analysis of an image for assessment of reinforced polymers structures, Polymers 51 (2006) 206-211. https://doi.org/10.14314/polimery.2006.206
[15] A. Gadek-Moszczak, P. Matusiewicz. Polish stereology – A historical review, Image Analysis and Stereology 36 (2017) 207-221. https://doi.org/10.5566/ias.1808
[16] I. Jastrzębska, A. Piwowarczyk. Traditional vs. Automated Computer Image Analysis—A Comparative Assessment of Use for Analysis of Digital SEM Images of High-Temperature Ceramic Material, Materials 16 (2023) art. 812. https://doi.org/10.3390/ma16020812
[17] K. Trzewiczek et al. Evaluation of the state for the material of the live steam superheater pipe coils of V degree. Adv. Mater. Res. 874 (2014) 35-42. https://doi.org/10.4028/www.scientific.net/AMR.874.35
[18] G. Filo, E. Lisowski, M. Domagała, J. Fabiś-Domagała, H. Momeni. Modelling of pressure pulse generator with the use of a flow control valve and a fuzzy logic controller, AIP Conf. Proc. 2029 (2018) art.20015. https://doi.org/10.1063/1.5066477
[19] M. Domagala et al. The Influence of Oil Contamination on Flow Control Valve Operation, Mater. Res. Proc. 24 (2022) 1-8. https://doi.org/10.21741/9781644902059-1
[20] A. Dudek, B. Lisiecka, R. Ulewicz. The effect of alloying method on the structure and properties of sintered stainless steel, Archives of Metallurgy and Materials 62 (2017) 281-287. https://doi.org/10.1515/amm-2017-0042
[21] R. Ulewicz et al. Structure and mechanical properties of fine-grained steels, Period. Polytech. Transp. Eng. 41 (2013) 111-115. https://doi.org/10.3311/PPtr.7110
[22] D. Klimecka-Tatar, M. Ingaldi. Assessment of the technological position of a selected enterprise in the metallurgical industry, Mater. Res. Proc. 17 (2020) 72-78. https://doi.org/10.21741/9781644901038-11
[23] S. Marković et al. Exploitation characteristics of teeth flanks of gears regenerated by three hard-facing procedures, Materials 14 (20210 art. 4203. https://doi.org/10.3390/ma14154203
[24] M. Krynke et al. Maintenance management of large-size rolling bearings in heavy-duty machinery, Acta Montan. Slovaca 27 (2022) 327-341. https://doi.org/10.46544/AMS.v27i2.04
[25] P. Regulski, K.F. Abramek The application of neural networks for the life-cycle analysis of road and rail rolling stock during the operational phase, Technical Transactions 119 (2022) art. e2022002. https://doi.org/10.37705/TechTrans/e2022002
[26] D. Siwiec, R. Dwornicka, A. Pacana. Improving the non-destructive test by initiating the quality management techniques on an example of the turbine nozzle outlet, Materials Research Proceedings 17 (2020) 16-22. https://doi.org/10.21741/9781644901038-3
[27] K. Czerwinska et al. Improving quality control of siluminial castings used in the automotive industry, METAL 2020 29th Int. Conf. Metall. Mater. (2020) 1382-1387. https://doi.org/10.37904/metal.2020.3661
[28] T. Lipiński, R. Ulewicz. The effect of the impurities spaces on the quality of structural steel working at variable loads, Open Eng. 11 (2021) 233-238. https://doi.org/10.1515/eng-2021-0024
[29] K. Czerwińska, A. Piwowarczyk. The use of combined quality management instruments to analyze the causes of non-conformities in the castings of the cover of the rail vehicle bearing housing, Prod. Eng. Arch. 28 (2022) 289-294. https://doi.org/10.30657/pea.2022.28.36
[30] M. Ingaldi. Overview of the main methods of service quality analysis, Production Engineering Archives 18 (2018) 54-59. https://doi.org/10.30657/pea.2018.18.10
[31] R. Ulewicz, F. Nový. Quality management systems in special processes, Transp. Res. Procedia 40 (2019) 113-118. https://doi.org/10.1016/j.trpro.2019.07.019
[32] D. Siwiec, A. Pacana. Method of improve the level of product quality, Prod. Eng. Arch. 27 (2021) 1-7. https://doi.org/10.30657/pea.2021.27.1
[33] R. Ulewicz. Outsorcing quality control in the automotive industry, MATEC Web of Conf. 183 (2018) art.03001. https://doi.org/10.1051/matecconf/201818303001
[34] A. Pacana et al. Analysis of quality control efficiency in the automotive industry, Transp. Res. Procedia 55 (2021) 691-698. https://doi.org/10.1016/j.trpro.2021.07.037
[35] M. Nowicka-Skowron, R. Ulewicz. Quality management in logistics processes in metal branch, METAL 2015 24th Int. Conf. Metall. Mater. (2015) 1707-1712. ISBN 978-8087294628
[36] R. Ulewicz et al. Logistic controlling processes and quality issues in a cast iron foundry, Mater. Res. Proc. 17 (2020) 65-71. https://doi.org/10.21741/9781644901038-10
[37] J. Fabiś-Domagała, G. Filo, H. Momeni, M. Domagała. Instruments of identification of hydraulic components potential failures, MATEC Web of Conf. 183 (2018) art.03008. https://doi.org/10.1051/matecconf/201818303008
[38] K. Knop et al. Evaluating and Improving the Effectiveness of Visual Inspection of Products from the Automotive Industry, Lecture Notes in Mechanical Engineering (2019) 231-243. https://doi.org/10.1007/978-3-030-17269-5_17
[39] J. Fabis-Domagala, M. Domagala. A Concept of Risk Prioritization in FMEA of Fluid Power Components, Energies 15 (2022) art.6180. https://doi.org/10.3390/en15176180
[40] A. Maszke, R. Dwornicka, R. Ulewicz. Problems in the implementation of the lean concept at a steel works – Case study, MATEC Web of Conf. 183 (2018) art.01014. https://doi.org/10.1051/matecconf/201818301014
[41] R. Ulewicz, M. Ulewicz. Problems in the Implementation of the Lean Concept in the Construction Industries, LNCE 47 (2020) 495-500. https://doi.org/10.1007/978-3-030-27011-7_63
[42] R. Ulewicz et al. Implementation of Lean Instruments in Ceramics Industries, Manag. Sys. Prod. Eng. 29 (2021) 203-207. https://doi.org/10.2478/mspe-2021-0025
[43] Ł.J. Orman, N. Radek, J. Pietraszek, J. Wojtkowiak, M. Szczepaniak. Laser treatment technology of the surface for pool boiling heat transfer enhancement, Materials 16(4) (2023) 1365; https://doi.org/10.3390/ma16041365
[44] M. Krechowicz, A. Krechowicz, A. Risk assessment in energy infrastructure installations by horizontal directional drilling using machine learning, Energies, 14(2) (2021) 289. https://doi.org/10.3390/en14020289
[45] G. Smirnov, B.A. Afanasiev. Investigation of vaporisation in screen wick – capillary structures”, in Advances in Heat Pipe Technology, VI Int. Heat Pipe Conference Proceedings (1982) London, 405 – 413.
[46] K. Nishikawa, T. Ito, K. Tanaka. Enhanced heat transfer by nucleate boiling on a sintered metal layer, Heat transfer – Japanese Research 8 (1979), 65 – 81.