1
|
Arndt S, Russell A, Tomas J, Müller P, Shekhar S, Brandstädter K, Bruns C, Wex C. Rupture probability of porcine liver under planar and point loading. Biomed Phys Eng Express 2016. [DOI: 10.1088/2057-1976/2/5/055018] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/12/2022]
|
2
|
Sparrey CJ, Keaveny TM. The Effect of Flash Freezing on Variability in Spinal Cord Compression Behavior. J Biomech Eng 2009; 131:111010. [DOI: 10.1115/1.4000079] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/08/2022]
Abstract
The compression behavior of spinal cord tissue is important for understanding spinal cord injury mechanics but has not yet been established. Characterizing compression behavior assumes precise specimen geometry; however, preparing test specimens of spinal cord tissue is complicated by the extreme compliance of the tissue. The objectives of this study were to determine the effect of flash freezing on both specimen preparation and mechanical response and to quantify the effect of small deviations in specimen geometry on mechanical behavior. Specimens of porcine spinal cord white matter were harvested immediately following sacrifice. The tissue was divided into two groups: partially frozen specimens were flash frozen (60 s at −80°C) prior to cutting, while fresh specimens were kept at room temperature. Specimens were tested in unconfined compression at strain rates of 0.05 s−1 and 5.0 s−1 to 40% strain. Parametric finite element analyses were used to investigate the effect of specimen face angle, cross section, and interface friction on the mechanical response. Flash freezing did not affect the mean mechanical behavior of the tissue but did reduce the variability in the response across specimens (p<0.05). Freezing also reduced variability in the specimen geometry. Variations in specimen face angle (0–10 deg) resulted in a 34% coefficient of variation and a 60% underestimation of peak stress. The effect of geometry on variation and error was greater than that of interface friction. Taken together, these findings demonstrate the advantages of flash freezing in biomechanical studies of spine cord tissue.
Collapse
Affiliation(s)
- Carolyn J. Sparrey
- Department of Mechanical Engineering, University of California, Berkeley, Berkeley, 94720 CA
| | - Tony M. Keaveny
- Department of Mechanical Engineering, University of California, Berkeley, Berkeley, 94720 CA; Department of Neurological Surgery, University of California, San Francisco, San Francisco, 94143 CA; Department of Bioengineering, University of California, Berkeley, Berkeley, 94720 CA
| |
Collapse
|
3
|
Roan E, Vemaganti K. The Nonlinear Material Properties of Liver Tissue Determined From No-Slip Uniaxial Compression Experiments. J Biomech Eng 2006; 129:450-6. [PMID: 17536913 DOI: 10.1115/1.2720928] [Citation(s) in RCA: 65] [Impact Index Per Article: 3.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/08/2022]
Abstract
The mechanical response of soft tissue is commonly characterized from unconfined uniaxial compression experiments on cylindrical samples. However, friction between the sample and the compression platens is inevitable and hard to quantify. One alternative is to adhere the sample to the platens, which leads to a known no-slip boundary condition, but the resulting nonuniform state of stress in the sample makes it difficult to determine its material parameters. This paper presents an approach to extract the nonlinear material properties of soft tissue (such as liver) directly from no-slip experiments using a set of computationally determined correction factors. We assume that liver tissue is an isotropic, incompressible hyperelastic material characterized by the exponential form of strain energy function. The proposed approach is applied to data from experiments on bovine liver tissue. Results show that the apparent material properties, i.e., those determined from no-slip experiments ignoring the no-slip conditions, can differ from the true material properties by as much as 50% for the exponential material model. The proposed correction approach allows one to determine the true material parameters directly from no-slip experiments and can be easily extended to other forms of hyperelastic material models.
Collapse
Affiliation(s)
- Esra Roan
- CAE Research Laboratory, Department of Mechanical, Industrial, and Nuclear Engineering, University of Cincinnati, P.O. Box 210072, Cincinnati, OH 45221-0072, USA.
| | | |
Collapse
|