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Experimental Analysis of Robotic Cortical Bone Specimen Drilling Performance: Effect of Cryogen

Authors
Ha, Ju-HyungChoe, Joon-HyeokSeo, Jae-WooKim, Ji-SooKim, Dong Min
Issue Date
Nov-2024
Publisher
ASME
Keywords
precision drilling; cryogenic; osteonecrosis; surgical robotics
Citation
Journal of Biomechanical Engineering, v.146, no.11
Indexed
SCIE
SCOPUS
Journal Title
Journal of Biomechanical Engineering
Volume
146
Number
11
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/74442
DOI
10.1115/1.4066022
ISSN
0148-0731
1528-8951
Abstract
In orthopedic surgery, precise bone screw insertion is crucial for stabilizing fractures, necessitating a preliminary cortical bone drilling procedure. However, this process can induce temperatures exceeding 70 degrees C due to the low thermal conductivity of cortical bone, potentially leading to thermal osteonecrosis. Furthermore, significant cutting forces and torque pose risks of tool breakage and bone damage, underlining the need for high precision and optimal processing parameters. Traditionally, drilling relies on the surgeon's experience and often results in imprecise outcomes due to inconsistent feed rates. Therefore, this study proposes the use of a 6-axis robot for controlled drilling, offering precise control over angular velocities and consistent feed rates. Additionally, explore the use of cryogenic liquid nitrogen (LN2) as a novel cooling method compared to conventional saline solutions, examining its efficacy under various cutting conditions. The results demonstrate that LN2 cooling conditions lead to a reduction in thrust and torque under specific processing conditions, and facilitate smoother chip evacuation. Additionally, LN2 significantly lowers the peak temperature around the drilling site, thus minimizing the risk of thermal osteonecrosis. Consequently, the use of a 6-axis robot provides consistent feed rates, and LN2 cooling achieves optimal processing conditions, enabling a more controlled and effective drilling process.
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