Engineering Additive Manufacturing and Molding Techniques to Create Lifelike Willis’ Circle Simulators with Aneurysms for Training Neurosurgeons

Neurosurgeons require considerable expertise and practical experience in dealing with the critical situations commonly encountered during difficult surgeries; however, neurosurgical trainees seldom have the opportunity to develop these skills in the operating room. Therefore, physical simulators are...

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Main Authors: Pin-Chuan Chen, Jang-Chun Lin, Chung-Hsuan Chiang, Yi-Chin Chen, Jia-En Chen, Wei-Hsiu Liu
Format: Article
Language:English
Published: MDPI AG 2020-12-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/12/12/2901
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spelling doaj-d84241b0d1454fed957e070357132e872020-12-04T00:05:12ZengMDPI AGPolymers2073-43602020-12-01122901290110.3390/polym12122901Engineering Additive Manufacturing and Molding Techniques to Create Lifelike Willis’ Circle Simulators with Aneurysms for Training NeurosurgeonsPin-Chuan Chen0Jang-Chun Lin1Chung-Hsuan Chiang2Yi-Chin Chen3Jia-En Chen4Wei-Hsiu Liu5Department of Mechanical Engineering, National Taiwan University of Science and Technology, Taipei 106, TaiwanDepartment of Radiation Oncology, Shuang Ho Hospital, Taipei Medical University, Taipei 110, TaiwanDepartment of Mechanical Engineering, National Taiwan University of Science and Technology, Taipei 106, TaiwanDepartment of Mechanical Engineering, National Taiwan University of Science and Technology, Taipei 106, TaiwanMedical 3D Printing Center, Tri-Service General Hospital and National Defense Medical Center, Taipei 114, TaiwanDepartment of Neurological Surgery, Tri-Service General Hospital and National Defense Medical Center, Taipei 114, TaiwanNeurosurgeons require considerable expertise and practical experience in dealing with the critical situations commonly encountered during difficult surgeries; however, neurosurgical trainees seldom have the opportunity to develop these skills in the operating room. Therefore, physical simulators are used to give trainees the experience they require. In this study, we created a physical simulator to assist in training neurosurgeons in aneurysm clipping and the handling of emergency situations during surgery. Our combination of additive manufacturing with molding technology, elastic material casting, and ultrasonication-assisted dissolution made it possible to create a simulator that realistically mimics the brain stem, soft brain lobes, cerebral arteries, and a hollow transparent Circle of Willis, in which the thickness of vascular walls can be controlled and aneurysms can be fabricated in locations where they are likely to appear. The proposed fabrication process also made it possible to limit the error in overall vascular wall thickness to just 2–5%, while achieving a Young’s Modulus closely matching the characteristics of blood vessels (~5%). One neurosurgical trainee reported that the physical simulator helped to elucidate the overall process of aneurysm clipping and provided a realistic impression of the tactile feelings involved in this delicate operation. The trainee also experienced shock and dismay at the appearance of leakage, which could not immediately be arrested using the clip. Overall, these results demonstrate the efficacy of the proposed physical simulator in preparing trainees for the rigors involved in performing highly delicate neurological surgical operations.https://www.mdpi.com/2073-4360/12/12/2901neurosurgeon surgical simulatoraneurysm clipping surgery practicefully transparent and elastic vascular Simulatoradditive manufacturingmoldingdissolution
collection DOAJ
language English
format Article
sources DOAJ
author Pin-Chuan Chen
Jang-Chun Lin
Chung-Hsuan Chiang
Yi-Chin Chen
Jia-En Chen
Wei-Hsiu Liu
spellingShingle Pin-Chuan Chen
Jang-Chun Lin
Chung-Hsuan Chiang
Yi-Chin Chen
Jia-En Chen
Wei-Hsiu Liu
Engineering Additive Manufacturing and Molding Techniques to Create Lifelike Willis’ Circle Simulators with Aneurysms for Training Neurosurgeons
Polymers
neurosurgeon surgical simulator
aneurysm clipping surgery practice
fully transparent and elastic vascular Simulator
additive manufacturing
molding
dissolution
author_facet Pin-Chuan Chen
Jang-Chun Lin
Chung-Hsuan Chiang
Yi-Chin Chen
Jia-En Chen
Wei-Hsiu Liu
author_sort Pin-Chuan Chen
title Engineering Additive Manufacturing and Molding Techniques to Create Lifelike Willis’ Circle Simulators with Aneurysms for Training Neurosurgeons
title_short Engineering Additive Manufacturing and Molding Techniques to Create Lifelike Willis’ Circle Simulators with Aneurysms for Training Neurosurgeons
title_full Engineering Additive Manufacturing and Molding Techniques to Create Lifelike Willis’ Circle Simulators with Aneurysms for Training Neurosurgeons
title_fullStr Engineering Additive Manufacturing and Molding Techniques to Create Lifelike Willis’ Circle Simulators with Aneurysms for Training Neurosurgeons
title_full_unstemmed Engineering Additive Manufacturing and Molding Techniques to Create Lifelike Willis’ Circle Simulators with Aneurysms for Training Neurosurgeons
title_sort engineering additive manufacturing and molding techniques to create lifelike willis’ circle simulators with aneurysms for training neurosurgeons
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2020-12-01
description Neurosurgeons require considerable expertise and practical experience in dealing with the critical situations commonly encountered during difficult surgeries; however, neurosurgical trainees seldom have the opportunity to develop these skills in the operating room. Therefore, physical simulators are used to give trainees the experience they require. In this study, we created a physical simulator to assist in training neurosurgeons in aneurysm clipping and the handling of emergency situations during surgery. Our combination of additive manufacturing with molding technology, elastic material casting, and ultrasonication-assisted dissolution made it possible to create a simulator that realistically mimics the brain stem, soft brain lobes, cerebral arteries, and a hollow transparent Circle of Willis, in which the thickness of vascular walls can be controlled and aneurysms can be fabricated in locations where they are likely to appear. The proposed fabrication process also made it possible to limit the error in overall vascular wall thickness to just 2–5%, while achieving a Young’s Modulus closely matching the characteristics of blood vessels (~5%). One neurosurgical trainee reported that the physical simulator helped to elucidate the overall process of aneurysm clipping and provided a realistic impression of the tactile feelings involved in this delicate operation. The trainee also experienced shock and dismay at the appearance of leakage, which could not immediately be arrested using the clip. Overall, these results demonstrate the efficacy of the proposed physical simulator in preparing trainees for the rigors involved in performing highly delicate neurological surgical operations.
topic neurosurgeon surgical simulator
aneurysm clipping surgery practice
fully transparent and elastic vascular Simulator
additive manufacturing
molding
dissolution
url https://www.mdpi.com/2073-4360/12/12/2901
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