A computational fluid dynamics analysis of cryo-CO2 flow and thermal behaviour in high-speed milling process

Cryogenic CO2 machining performance is mainly dependent on how well heat generated during cutting is dissipated from the cutting zone. Understanding the heat transfer phenomenon is crucial for optimizing thermal behavior and its effects, which remain challenging to capture experimentally. Thus, this...

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Published in:Applied Thermal Engineering
Main Author: Mohamad Fauzee N.F.; Abdul Halim N.H.; Solihin Z.H.; Tharazi I.; Zakaria I.A.; Hadi M.A.
Format: Article
Language:English
Published: Elsevier Ltd 2025
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85214335349&doi=10.1016%2fj.applthermaleng.2024.125342&partnerID=40&md5=1784b58fb22cf367902c3601e4db3d82
id 2-s2.0-85214335349
spelling 2-s2.0-85214335349
Mohamad Fauzee N.F.; Abdul Halim N.H.; Solihin Z.H.; Tharazi I.; Zakaria I.A.; Hadi M.A.
A computational fluid dynamics analysis of cryo-CO2 flow and thermal behaviour in high-speed milling process
2025
Applied Thermal Engineering
264

10.1016/j.applthermaleng.2024.125342
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85214335349&doi=10.1016%2fj.applthermaleng.2024.125342&partnerID=40&md5=1784b58fb22cf367902c3601e4db3d82
Cryogenic CO2 machining performance is mainly dependent on how well heat generated during cutting is dissipated from the cutting zone. Understanding the heat transfer phenomenon is crucial for optimizing thermal behavior and its effects, which remain challenging to capture experimentally. Thus, this novel study aimed to optimize the thermal behaviour of the cutting tool and workpiece of high-speed milling under cryo-CO2 cooling by the combination of computational fluid dynamics (CFD) analysis and RSM-Box Behnken design. A complex 3D cryo-CO2 model was developed and validated against experimental data of cryo-CO2 flow temperature and it showed differences of less than 6 % when compared with CFD results. By the RSM-BBD method, 15 sets of parameters were simulated where the influence of cryo-CO2 flow rate, nozzle distance (D), and nozzle diameter (∅) on heat transfer coefficients (h) and heat transfer rates (Q) were analyzed through ANOVA. The simulations resulted in h ranging from 33.75 W/m2 to 88.92 W/m2 and Q of between 126.22 W to 301.25 W. Cryo-CO2 temperature trajectory and splashing effect from the nozzle to the cutting zone were also observed. The proportion of the h had a significant influence on the heat transfer. Further studies on tool and workpiece surface temperatures were conducted, where a higher flow rate had been suggested for advanced heat dissipation. ANOVA revealed both responses were dominantly influenced by flow rate followed by nozzle distance and their interaction. By multi-objective optimization, an optimum set of parameters was identified: flow rate = 13 L/min, D = 15 mm; ∅ = 1.3 mm and predicted to produce h at 77.23 W/m2 and Q at 264.45 W for maximum heat dissipation. Thus, it is worth mentioning that this study provided some potential approaches and a promising way for the enhancement of cryo-CO2 system towards optimizing the efficiency and performance of cryo-CO2 machining. © 2024 Elsevier Ltd
Elsevier Ltd
13594311
English
Article

author Mohamad Fauzee N.F.; Abdul Halim N.H.; Solihin Z.H.; Tharazi I.; Zakaria I.A.; Hadi M.A.
spellingShingle Mohamad Fauzee N.F.; Abdul Halim N.H.; Solihin Z.H.; Tharazi I.; Zakaria I.A.; Hadi M.A.
A computational fluid dynamics analysis of cryo-CO2 flow and thermal behaviour in high-speed milling process
author_facet Mohamad Fauzee N.F.; Abdul Halim N.H.; Solihin Z.H.; Tharazi I.; Zakaria I.A.; Hadi M.A.
author_sort Mohamad Fauzee N.F.; Abdul Halim N.H.; Solihin Z.H.; Tharazi I.; Zakaria I.A.; Hadi M.A.
title A computational fluid dynamics analysis of cryo-CO2 flow and thermal behaviour in high-speed milling process
title_short A computational fluid dynamics analysis of cryo-CO2 flow and thermal behaviour in high-speed milling process
title_full A computational fluid dynamics analysis of cryo-CO2 flow and thermal behaviour in high-speed milling process
title_fullStr A computational fluid dynamics analysis of cryo-CO2 flow and thermal behaviour in high-speed milling process
title_full_unstemmed A computational fluid dynamics analysis of cryo-CO2 flow and thermal behaviour in high-speed milling process
title_sort A computational fluid dynamics analysis of cryo-CO2 flow and thermal behaviour in high-speed milling process
publishDate 2025
container_title Applied Thermal Engineering
container_volume 264
container_issue
doi_str_mv 10.1016/j.applthermaleng.2024.125342
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85214335349&doi=10.1016%2fj.applthermaleng.2024.125342&partnerID=40&md5=1784b58fb22cf367902c3601e4db3d82
description Cryogenic CO2 machining performance is mainly dependent on how well heat generated during cutting is dissipated from the cutting zone. Understanding the heat transfer phenomenon is crucial for optimizing thermal behavior and its effects, which remain challenging to capture experimentally. Thus, this novel study aimed to optimize the thermal behaviour of the cutting tool and workpiece of high-speed milling under cryo-CO2 cooling by the combination of computational fluid dynamics (CFD) analysis and RSM-Box Behnken design. A complex 3D cryo-CO2 model was developed and validated against experimental data of cryo-CO2 flow temperature and it showed differences of less than 6 % when compared with CFD results. By the RSM-BBD method, 15 sets of parameters were simulated where the influence of cryo-CO2 flow rate, nozzle distance (D), and nozzle diameter (∅) on heat transfer coefficients (h) and heat transfer rates (Q) were analyzed through ANOVA. The simulations resulted in h ranging from 33.75 W/m2 to 88.92 W/m2 and Q of between 126.22 W to 301.25 W. Cryo-CO2 temperature trajectory and splashing effect from the nozzle to the cutting zone were also observed. The proportion of the h had a significant influence on the heat transfer. Further studies on tool and workpiece surface temperatures were conducted, where a higher flow rate had been suggested for advanced heat dissipation. ANOVA revealed both responses were dominantly influenced by flow rate followed by nozzle distance and their interaction. By multi-objective optimization, an optimum set of parameters was identified: flow rate = 13 L/min, D = 15 mm; ∅ = 1.3 mm and predicted to produce h at 77.23 W/m2 and Q at 264.45 W for maximum heat dissipation. Thus, it is worth mentioning that this study provided some potential approaches and a promising way for the enhancement of cryo-CO2 system towards optimizing the efficiency and performance of cryo-CO2 machining. © 2024 Elsevier Ltd
publisher Elsevier Ltd
issn 13594311
language English
format Article
accesstype
record_format scopus
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