Smoothed particle hydrodynamics-based simulation of blast injuries in human mandible

Objective To establish a smoothed particle hydrodynamics (SPH) model for simulating the process and biomechanical characteristics of blast injuries in human mandible. Methods Based on computed tomography and magnetic resonance imaging (MRI) data of the maxillofacial region in human, we established a...

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Main Authors: XU Shuai, HUANG Junjie, ZHANG Gang, TAN Yinghui
Format: Article
Language:zho
Published: Editorial Office of Journal of Third Military Medical University 2020-10-01
Series:Di-san junyi daxue xuebao
Subjects:
Online Access:http://aammt.tmmu.edu.cn/Upload/rhtml/202005088.htm
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spelling doaj-d0e2c65132eb49e0b49431998a1505112021-05-29T11:22:39ZzhoEditorial Office of Journal of Third Military Medical UniversityDi-san junyi daxue xuebao1000-54042020-10-0142201971197710.16016/j.1000-5404.202005088Smoothed particle hydrodynamics-based simulation of blast injuries in human mandible XU Shuai0HUANG Junjie1ZHANG Gang2TAN Yinghui3Department of Stomatology, Second Affiliated Hospital, Army Medical University (Third Military Medical University), Chongqing, 400037, China Department of Stomatology, Second Affiliated Hospital, Army Medical University (Third Military Medical University), Chongqing, 400037, China Department of Stomatology, Second Affiliated Hospital, Army Medical University (Third Military Medical University), Chongqing, 400037, China Department of Stomatology, Second Affiliated Hospital, Army Medical University (Third Military Medical University), Chongqing, 400037, China Objective To establish a smoothed particle hydrodynamics (SPH) model for simulating the process and biomechanical characteristics of blast injuries in human mandible. Methods Based on computed tomography and magnetic resonance imaging (MRI) data of the maxillofacial region in human, we established a SPH model of blast injuries in the mandible and masseter muscles and assessed its validity by comparison with a three-dimensional finite element model (FEM). Result The number of particles in the SPH model of mandible is 4 538, which is similar to anatomical structure of human, with less loss of details. The SPH model simulates the explosion damage of mandible and masseter caused by blast wave. The explosion results in the fractures in the left mandibular angle and condyle, and extensively torn in the masseter muscle is. The simulation results are close to the FEM. Conclusion Compared with the FEM model, the SPH model shows obvious advantages in simulating large tissue deformation, crack growth and explosion impact on the mandible, and provides a new method for studying maxillofacial blast injuries.http://aammt.tmmu.edu.cn/Upload/rhtml/202005088.htmblast injuriesmandiblesmoothed particle hydrodynamic mode
collection DOAJ
language zho
format Article
sources DOAJ
author XU Shuai
HUANG Junjie
ZHANG Gang
TAN Yinghui
spellingShingle XU Shuai
HUANG Junjie
ZHANG Gang
TAN Yinghui
Smoothed particle hydrodynamics-based simulation of blast injuries in human mandible
Di-san junyi daxue xuebao
blast injuries
mandible
smoothed particle hydrodynamic mode
author_facet XU Shuai
HUANG Junjie
ZHANG Gang
TAN Yinghui
author_sort XU Shuai
title Smoothed particle hydrodynamics-based simulation of blast injuries in human mandible
title_short Smoothed particle hydrodynamics-based simulation of blast injuries in human mandible
title_full Smoothed particle hydrodynamics-based simulation of blast injuries in human mandible
title_fullStr Smoothed particle hydrodynamics-based simulation of blast injuries in human mandible
title_full_unstemmed Smoothed particle hydrodynamics-based simulation of blast injuries in human mandible
title_sort smoothed particle hydrodynamics-based simulation of blast injuries in human mandible
publisher Editorial Office of Journal of Third Military Medical University
series Di-san junyi daxue xuebao
issn 1000-5404
publishDate 2020-10-01
description Objective To establish a smoothed particle hydrodynamics (SPH) model for simulating the process and biomechanical characteristics of blast injuries in human mandible. Methods Based on computed tomography and magnetic resonance imaging (MRI) data of the maxillofacial region in human, we established a SPH model of blast injuries in the mandible and masseter muscles and assessed its validity by comparison with a three-dimensional finite element model (FEM). Result The number of particles in the SPH model of mandible is 4 538, which is similar to anatomical structure of human, with less loss of details. The SPH model simulates the explosion damage of mandible and masseter caused by blast wave. The explosion results in the fractures in the left mandibular angle and condyle, and extensively torn in the masseter muscle is. The simulation results are close to the FEM. Conclusion Compared with the FEM model, the SPH model shows obvious advantages in simulating large tissue deformation, crack growth and explosion impact on the mandible, and provides a new method for studying maxillofacial blast injuries.
topic blast injuries
mandible
smoothed particle hydrodynamic mode
url http://aammt.tmmu.edu.cn/Upload/rhtml/202005088.htm
work_keys_str_mv AT xushuai smoothedparticlehydrodynamicsbasedsimulationofblastinjuriesinhumanmandible
AT huangjunjie smoothedparticlehydrodynamicsbasedsimulationofblastinjuriesinhumanmandible
AT zhanggang smoothedparticlehydrodynamicsbasedsimulationofblastinjuriesinhumanmandible
AT tanyinghui smoothedparticlehydrodynamicsbasedsimulationofblastinjuriesinhumanmandible
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