应用熔丝制造三维打印和成型技术制作灵活、按比例缩放的神经元形态模型

IF 3.4 4区 工程技术 Q1 ENGINEERING, MECHANICAL Rapid Prototyping Journal Pub Date : 2024-07-12 DOI:10.1108/rpj-10-2023-0378
Osama Habbal, Ahmad Farhat, Reem Khalil, Christopher Pannier
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引用次数: 0

摘要

目的本研究的目的是评估一种创建神经元重建的有形三维(3D)形态(缩放模型)的新方法,并通过课堂调查评估其成本效益、可及性和适用性。设计/方法/途径该方法涉及将 NeuromorphoVis 存储库中的神经元重建图转换为可三维打印的模具文件。操作员使用消费级台式三维打印机和水溶性聚乙烯醇丝打印这些模具。然后在模具溶解之前,用聚氨酯或硅橡胶等铸造材料填充模具。我们在各种神经元形态上测试了我们的方法,评估了该方法的有效性、劳动力、加工时间和成本。此外,大学生物系的学生还通过调查将我们的三维打印神经元模型与商业生产的同类产品进行了比较,并根据他们对两种模型的直接体验进行了评估。我们的方法为制作有形的三维神经元提供了一种经济实惠的方法,为直接三维打印提供了一种可行的替代方案,它有多种材料可供选择,确保了灵活性和耐用性。创建的模型精确复制了原始计算机辅助设计(CAD)文件的逼真度和复杂性,使其成为神经科学教育中触觉使用的理想选择。与之前的研究相比,该方法利用成本较低的熔丝制造三维打印技术来创建精确的神经元物理三维表征。通过使用现成的材料和消费级三维打印机,该研究解决了与其他直接三维打印技术相关的高成本问题,从而制作出如此复杂和坚固的模型。此外,论文还证明了这些三维神经元模型在教育方面的实用性,为神经科学教育领域做出了宝贵贡献。
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Application of fused filament fabrication 3D printing and molding to produce flexible, scaled neuron morphology models
Purpose The purpose of this study is to assess a novel method for creating tangible three-dimensional (3D) morphologies (scaled models) of neuronal reconstructions and to evaluate its cost-effectiveness, accessibility and applicability through a classroom survey. The study addresses the challenge of accurately representing intricate and diverse dendritic structures of neurons in scaled models for educational purposes. Design/methodology/approach The method involves converting neuronal reconstructions from the NeuromorphoVis repository into 3D-printable mold files. An operator prints these molds using a consumer-grade desktop 3D printer with water-soluble polyvinyl alcohol filament. The molds are then filled with casting materials like polyurethane or silicone rubber, before the mold is dissolved. We tested our method on various neuron morphologies, assessing the method’s effectiveness, labor, processing times and costs. Additionally, university biology students compared our 3D-printed neuron models with commercially produced counterparts through a survey, evaluating them based on their direct experience with both models. Findings An operator can produce a neuron morphology’s initial 3D replica in about an hour of labor, excluding a one- to three-day curing period, while subsequent copies require around 30 min each. Our method provides an affordable approach to crafting tangible 3D neuron representations, presenting a viable alternative to direct 3D printing with varied material options ensuring both flexibility and durability. The created models accurately replicate the fidelity and intricacy of original computer aided design (CAD) files, making them ideal for tactile use in neuroscience education. Originality/value The development of data processing and cost-effective casting method for this application is novel. Compared to a previous study, this method leverages lower-cost fused filament fabrication 3D printing to create accurate physical 3D representations of neurons. By using readily available materials and a consumer-grade 3D printer, the research addresses the high cost associated with alternative direct 3D printing techniques to produce such intricate and robust models. Furthermore, the paper demonstrates the practicality of these 3D neuron models for educational purposes, making a valuable contribution to the field of neuroscience education.
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来源期刊
Rapid Prototyping Journal
Rapid Prototyping Journal 工程技术-材料科学:综合
CiteScore
8.30
自引率
10.30%
发文量
137
审稿时长
4.6 months
期刊介绍: Rapid Prototyping Journal concentrates on development in a manufacturing environment but covers applications in other areas, such as medicine and construction. All papers published in this field are scattered over a wide range of international publications, none of which actually specializes in this particular discipline, this journal is a vital resource for anyone involved in additive manufacturing. It draws together important refereed papers on all aspects of AM from distinguished sources all over the world, to give a truly international perspective on this dynamic and exciting area. -Benchmarking – certification and qualification in AM- Mass customisation in AM- Design for AM- Materials aspects- Reviews of processes/applications- CAD and other software aspects- Enhancement of existing processes- Integration with design process- Management implications- New AM processes- Novel applications of AM parts- AM for tooling- Medical applications- Reverse engineering in relation to AM- Additive & Subtractive hybrid manufacturing- Industrialisation
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