3D Cohesive Finite Element Minimum Invasive Surgery Simulation Based on Kelvin-Voigt Model
Abstract Minimally invasive surgery is an important technique used for cytopathological examination. Recently, multiple studies have been conducted on a three-dimensional (3D) puncture simulation model as it can reveal the internal deformation state of the tissue at the micro level. In this study, a...
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Format: | Article |
Language: | English |
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SpringerOpen
2022-06-01
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Series: | Chinese Journal of Mechanical Engineering |
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Online Access: | https://doi.org/10.1186/s10033-022-00743-y |
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author | Yonghang Jiang Qinghua Song Xichun Luo |
author_facet | Yonghang Jiang Qinghua Song Xichun Luo |
author_sort | Yonghang Jiang |
collection | DOAJ |
description | Abstract Minimally invasive surgery is an important technique used for cytopathological examination. Recently, multiple studies have been conducted on a three-dimensional (3D) puncture simulation model as it can reveal the internal deformation state of the tissue at the micro level. In this study, a viscoelastic constitutive equation suitable for muscle tissue was derived. Additionally, a method was developed to define the fracture characteristics of muscle tissue material during the simulation process. The fracture of the muscle tissue in contact with the puncture needle was simulated using the cohesive zone model and a 3D puncture finite element model was established to analyze the deformation of the muscle tissue. The stress nephogram and reaction force under different parameters were compared and analyzed to study the deformation of the biological soft tissue and guide the actual operation process and reduce pain. |
first_indexed | 2024-12-12T04:33:29Z |
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id | doaj.art-34b7570c7bc24203959fa70f3e6ba6d6 |
institution | Directory Open Access Journal |
issn | 1000-9345 2192-8258 |
language | English |
last_indexed | 2024-12-12T04:33:29Z |
publishDate | 2022-06-01 |
publisher | SpringerOpen |
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series | Chinese Journal of Mechanical Engineering |
spelling | doaj.art-34b7570c7bc24203959fa70f3e6ba6d62022-12-22T00:38:01ZengSpringerOpenChinese Journal of Mechanical Engineering1000-93452192-82582022-06-0135111310.1186/s10033-022-00743-y3D Cohesive Finite Element Minimum Invasive Surgery Simulation Based on Kelvin-Voigt ModelYonghang Jiang0Qinghua Song1Xichun Luo2Centre for Precision Manufacturing, Department of Design Manufacturing & Engineering Management, University of StrathclydeKey Laboratory of High Efficiency and Clean Mechanical Manufacture, Ministry of Education, School of Mechanical Engineering, Shandong UniversityCentre for Precision Manufacturing, Department of Design Manufacturing & Engineering Management, University of StrathclydeAbstract Minimally invasive surgery is an important technique used for cytopathological examination. Recently, multiple studies have been conducted on a three-dimensional (3D) puncture simulation model as it can reveal the internal deformation state of the tissue at the micro level. In this study, a viscoelastic constitutive equation suitable for muscle tissue was derived. Additionally, a method was developed to define the fracture characteristics of muscle tissue material during the simulation process. The fracture of the muscle tissue in contact with the puncture needle was simulated using the cohesive zone model and a 3D puncture finite element model was established to analyze the deformation of the muscle tissue. The stress nephogram and reaction force under different parameters were compared and analyzed to study the deformation of the biological soft tissue and guide the actual operation process and reduce pain.https://doi.org/10.1186/s10033-022-00743-yMinimally invasive surgeryConstitutive model3D simulationCohesive zone model |
spellingShingle | Yonghang Jiang Qinghua Song Xichun Luo 3D Cohesive Finite Element Minimum Invasive Surgery Simulation Based on Kelvin-Voigt Model Chinese Journal of Mechanical Engineering Minimally invasive surgery Constitutive model 3D simulation Cohesive zone model |
title | 3D Cohesive Finite Element Minimum Invasive Surgery Simulation Based on Kelvin-Voigt Model |
title_full | 3D Cohesive Finite Element Minimum Invasive Surgery Simulation Based on Kelvin-Voigt Model |
title_fullStr | 3D Cohesive Finite Element Minimum Invasive Surgery Simulation Based on Kelvin-Voigt Model |
title_full_unstemmed | 3D Cohesive Finite Element Minimum Invasive Surgery Simulation Based on Kelvin-Voigt Model |
title_short | 3D Cohesive Finite Element Minimum Invasive Surgery Simulation Based on Kelvin-Voigt Model |
title_sort | 3d cohesive finite element minimum invasive surgery simulation based on kelvin voigt model |
topic | Minimally invasive surgery Constitutive model 3D simulation Cohesive zone model |
url | https://doi.org/10.1186/s10033-022-00743-y |
work_keys_str_mv | AT yonghangjiang 3dcohesivefiniteelementminimuminvasivesurgerysimulationbasedonkelvinvoigtmodel AT qinghuasong 3dcohesivefiniteelementminimuminvasivesurgerysimulationbasedonkelvinvoigtmodel AT xichunluo 3dcohesivefiniteelementminimuminvasivesurgerysimulationbasedonkelvinvoigtmodel |