Chip formation and morphology in cryogenic machining of Al-SiC composites
Identifikátory výsledku
Kód výsledku v IS VaVaI
<a href="https://www.isvavai.cz/riv?ss=detail&h=RIV%2F68407700%3A21220%2F25%3A00382206" target="_blank" >RIV/68407700:21220/25:00382206 - isvavai.cz</a>
Výsledek na webu
<a href="https://doi.org/10.1007/s00170-025-15337-w" target="_blank" >https://doi.org/10.1007/s00170-025-15337-w</a>
DOI - Digital Object Identifier
<a href="http://dx.doi.org/10.1007/s00170-025-15337-w" target="_blank" >10.1007/s00170-025-15337-w</a>
Alternativní jazyky
Jazyk výsledku
angličtina
Název v původním jazyce
Chip formation and morphology in cryogenic machining of Al-SiC composites
Popis výsledku v původním jazyce
This study investigated the influence of cryogenic cooling on chip formation and morphology during the turning of aluminum-silicon carbide (A359/SiC-20wt%) composites using an uncoated tungsten carbide cutting tool. The primary objective was to enhance the cutting conditions and improve the overall efficacy of the machining process for aluminum composite materials. Compared with dry machining, cryogenic cooling significantly altered the chip formation process, producing shorter and less curled chips at all tested cutting speeds. The rake and dual cooling strategies proved to be the most effective in terms of chip breakability, despite the relatively unchanged tool-chip contact length (chip ratio increased up to 25% and chip curl increased up to 20%). Cryogenic cooling also led to a reduction in average chip thickness, particularly with the dual cooling strategy, contributing to improved material removal efficiency. Microstructural analysis revealed that under cryo-cooling conditions, the hard SiC particles were distributed more uniformly within the chips, in contrast to the particle redistribution along the shear bands observed in dry cutting. Chip separation is primarily facilitated by the formation and propagation of cracks and microcracks along the matrix-particle interface, leading to noticeably frayed chip edges and improved breakability. The study also examined the effects of cutting speed and cooling strategy on chip characteristics, such as chip curl diameter, average chip thickness, chip compression ratio, and shear angle. For example, the chip curl diameter decreased by 18% with cutting speed and the shear angle increased by 16%. These findings contribute to the understanding of machining aluminum matrix composites under cryogenic conditions and provide insights for optimizing cutting parameters to enhance the machining performance, tool life, and surface quality.
Název v anglickém jazyce
Chip formation and morphology in cryogenic machining of Al-SiC composites
Popis výsledku anglicky
This study investigated the influence of cryogenic cooling on chip formation and morphology during the turning of aluminum-silicon carbide (A359/SiC-20wt%) composites using an uncoated tungsten carbide cutting tool. The primary objective was to enhance the cutting conditions and improve the overall efficacy of the machining process for aluminum composite materials. Compared with dry machining, cryogenic cooling significantly altered the chip formation process, producing shorter and less curled chips at all tested cutting speeds. The rake and dual cooling strategies proved to be the most effective in terms of chip breakability, despite the relatively unchanged tool-chip contact length (chip ratio increased up to 25% and chip curl increased up to 20%). Cryogenic cooling also led to a reduction in average chip thickness, particularly with the dual cooling strategy, contributing to improved material removal efficiency. Microstructural analysis revealed that under cryo-cooling conditions, the hard SiC particles were distributed more uniformly within the chips, in contrast to the particle redistribution along the shear bands observed in dry cutting. Chip separation is primarily facilitated by the formation and propagation of cracks and microcracks along the matrix-particle interface, leading to noticeably frayed chip edges and improved breakability. The study also examined the effects of cutting speed and cooling strategy on chip characteristics, such as chip curl diameter, average chip thickness, chip compression ratio, and shear angle. For example, the chip curl diameter decreased by 18% with cutting speed and the shear angle increased by 16%. These findings contribute to the understanding of machining aluminum matrix composites under cryogenic conditions and provide insights for optimizing cutting parameters to enhance the machining performance, tool life, and surface quality.
Klasifikace
Druh
J<sub>imp</sub> - Článek v periodiku v databázi Web of Science
CEP obor
—
OECD FORD obor
20301 - Mechanical engineering
Návaznosti výsledku
Projekt
<a href="/cs/project/EF16_026%2F0008404" target="_blank" >EF16_026/0008404: Strojírenská výrobní technika a přesné strojírenství</a><br>
Návaznosti
P - Projekt vyzkumu a vyvoje financovany z verejnych zdroju (s odkazem do CEP)
Ostatní
Rok uplatnění
2025
Kód důvěrnosti údajů
S - Úplné a pravdivé údaje o projektu nepodléhají ochraně podle zvláštních právních předpisů
Údaje specifické pro druh výsledku
Název periodika
The International Journal of Advanced Manufacturing Technology
ISSN
0268-3768
e-ISSN
1433-3015
Svazek periodika
137
Číslo periodika v rámci svazku
5-6
Stát vydavatele periodika
GB - Spojené království Velké Británie a Severního Irska
Počet stran výsledku
19
Strana od-do
2899-2917
Kód UT WoS článku
001441674100001
EID výsledku v databázi Scopus
2-s2.0-105001085995