TY - JOUR
T1 - Optimization of factors influencing temperature rise and thermal necrosis of a robot driven piezoelectric osteotomy in bovine cortical bone
T2 - An in vitro study using an orthogonal test design
AU - Tang, Hao
AU - Deng, Wang
AU - Sun, Zhibin
AU - Wang, Yu
AU - Li, Lan
AU - Ding, Yi
AU - Zhou, Yixin
N1 - Publisher Copyright:
© 2019 Elsevier Ltd
PY - 2019/12
Y1 - 2019/12
N2 - Background: This study aimed to provide a comprehensive investigation into factors influencing the thermal effect in robot assisted osteotomies utilizing a piezoelectric osteotome and to identify an optimal combination of factors that minimize the thermal effect in an orthogonal experimental design. Methods: Fresh bovine cortical bone was cut under standardized conditions using a robot arm, a piezoelectric osteotome, and a cooling system. Temperature was monitored and the histological depth of osteocyte thermal necrosis was examined to quantify the thermal effect(s). Eighteen experimental trials were conducted according to the standard L18 (21 × 37) orthogonal design table to explore the roles of 6 factors: power of the piezoelectric osteotome, cutting depth, cutting speed, coolant type, coolant flow velocity, and coolant temperature. Findings: Our data showed that coolant flow velocity, coolant temperature and cutting speed significantly influenced temperature (p <.05), while no significant temperature increase was identified relating to cutting depth, power of the piezoelectric osteotome and coolant type. The findings of histological osteocyte thermal necrosis correlated with the results of the temperature change. Interpretation: Coolant flow velocity, coolant temperature and cutting speed were key factors influencing the thermal impact of the piezoelectric osteotome. With proper combination of these 3 factors, a piezoelectric osteotome is safe to use from a thermal perspective.
AB - Background: This study aimed to provide a comprehensive investigation into factors influencing the thermal effect in robot assisted osteotomies utilizing a piezoelectric osteotome and to identify an optimal combination of factors that minimize the thermal effect in an orthogonal experimental design. Methods: Fresh bovine cortical bone was cut under standardized conditions using a robot arm, a piezoelectric osteotome, and a cooling system. Temperature was monitored and the histological depth of osteocyte thermal necrosis was examined to quantify the thermal effect(s). Eighteen experimental trials were conducted according to the standard L18 (21 × 37) orthogonal design table to explore the roles of 6 factors: power of the piezoelectric osteotome, cutting depth, cutting speed, coolant type, coolant flow velocity, and coolant temperature. Findings: Our data showed that coolant flow velocity, coolant temperature and cutting speed significantly influenced temperature (p <.05), while no significant temperature increase was identified relating to cutting depth, power of the piezoelectric osteotome and coolant type. The findings of histological osteocyte thermal necrosis correlated with the results of the temperature change. Interpretation: Coolant flow velocity, coolant temperature and cutting speed were key factors influencing the thermal impact of the piezoelectric osteotome. With proper combination of these 3 factors, a piezoelectric osteotome is safe to use from a thermal perspective.
KW - Coolant flow velocity
KW - Coolant temperature
KW - Cutting speed
KW - Orthogonal experimental design
KW - Piezoelectric osteotome
KW - Thermal effects
UR - https://www.scopus.com/pages/publications/85074008625
U2 - 10.1016/j.clinbiomech.2019.10.013
DO - 10.1016/j.clinbiomech.2019.10.013
M3 - 文章
C2 - 31675680
AN - SCOPUS:85074008625
SN - 0268-0033
VL - 70
SP - 249
EP - 256
JO - Clinical Biomechanics
JF - Clinical Biomechanics
ER -