Measuring forces in liver cutting: new equipment and experimental results

被引:42
作者
Chanthasopeephan, T [1 ]
Desai, JP [1 ]
Lau, ACW [1 ]
机构
[1] Drexel Univ, MEM Dept, PRISM Lab, Philadelphia, PA 19104 USA
基金
美国国家科学基金会;
关键词
integrated cutting equipment; liver-cutting forces; surgical simulation;
D O I
10.1114/1.1624601
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
We are interested in modeling the liver cutting process as accurately as possible by determining the mechanical properties experimentally and developing a predictive model that is self-consistent with the experimentally determined properties. In this paper, we present the newly developed hardware and software to characterize the mechanical response of pig liver during (ex vivo) cutting. We describe the custom-made cutting apparatus, the data acquisition system, and the characteristics of the cutting force versus displacement plot. The force-displacement behavior appears to reveal that the cutting process consists of a sequence of intermittent localized crack extension in the tissue on the macroscopic scale. The macroscopic cutting force-displacement curve shows repeating self-similar units of localized. linear loading followed by sudden unloading. The sudden unloading coincides with observed onset of localized crack growth. This experimental data were used to determine the self-consistent local effective Young's modulus for the specimens, to be used in finite element models. Results from finite element analyses models reveal that the magnitude of the self-consistent local effective Young's modulus determined by plane-stress and plane-strain varies within close bounds. Finally, we have also observed that the local effective Young's modulus determined by plane stress and plane strain analysis decreases with increasing cutting speed. (C) 2003 Biomedical Engineering Society.
引用
收藏
页码:1372 / 1382
页数:11
相关论文
共 34 条
[1]   A high-frequency shear device for testing soft biological tissues [J].
Arbogast, KB ;
Thibault, KL ;
Pinheiro, BS ;
Winey, KI ;
Margulies, SS .
JOURNAL OF BIOMECHANICS, 1997, 30 (07) :757-759
[2]   Virtual environments for medical training: Graphical and haptic simulation of laparoscopic common bile duct exploration [J].
Basdogan, C ;
Ho, CH ;
Srinivasan, MA .
IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2001, 6 (03) :269-285
[3]  
BASDOGAN C, 1998, P MED MEETS VIRT REA
[4]  
Bathe K.J., 2006, Finite Element Procedures
[5]   Interactive simulation of surgical cuts [J].
Bielser, D ;
Gross, MH .
EIGHTH PACIFIC CONFERENCE ON COMPUTER GRAPHICS AND APPLICATIONS, PROCEEDINGS, 2000, :116-+
[6]  
BROUWER I, 2001, P MED M VIRT REAL
[7]  
CHANTHASOPEEPHA.T, 2003, IEEE RSJ INT C INT R
[8]   Real-time elastic deformations of soft tissues for surgery simulation [J].
Cotin, S ;
Delingette, H ;
Ayache, N .
IEEE TRANSACTIONS ON VISUALIZATION AND COMPUTER GRAPHICS, 1999, 5 (01) :62-73
[9]   INTERACTIVELY DEFORMABLE MODELS FOR SURGERY SIMULATION [J].
COVER, SA ;
EZQUERRA, NF ;
OBRIEN, JF ;
ROWE, R ;
GADACZ, T ;
PALM, E .
IEEE COMPUTER GRAPHICS AND APPLICATIONS, 1993, 13 (06) :68-75
[10]  
D'Aulignac D, 2000, P IEEE INT C ROB AUT