PixelPrint: Generating Patient-Specific Phantoms for Spectral CT using Dual Filament 3D Printing.

Pouyan Pasyar, Jessica Im, Kai Mei, Leening Liu, Olivia Sandvold, Michael Geagan, Peter B Noël
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Abstract

In recent years, the importance of spectral CT scanners in clinical settings has significantly increased, necessitating the development of phantoms with spectral capabilities. This study introduces a dual-filament 3D printing technique for the fabrication of multi-material phantoms suitable for spectral CT, focusing particularly on creating realistic phantoms with orthopedic implants to mimic metal artifacts. Previously, we developed PixelPrint for creating patient-specific lung phantoms that accurately replicate lung properties through precise attenuation profiles and textures. This research extends PixelPrint's utility by incorporating a dual-filament printing approach, which merges materials such as calcium-doped Polylactic Acid (PLA) and metal-doped PLA, to emulate both soft tissue and bone, as well as orthopedic implants. The PixelPrint dual-filament technique utilizes an interleaved approach for material usage, whereby alternating lines of calcium-doped and metal-doped PLA are laid down. The development of specialized filament extruders and deposition mechanisms in this study allows for controlled layering of materials. The effectiveness of this technique was evaluated using various phantom types, including one with a dual filament orthopedic implant and another based on a human knee CT scan with a medical implant. Spectral CT scanner results demonstrated a high degree of similarity between the phantoms and the original patient scans in terms of texture, density, and the creation of realistic metal artifacts. The PixelPrint technology's ability to produce multi-material, lifelike phantoms present new opportunities for evaluating and developing metal artifact reduction (MAR) algorithms and strategies.

PixelPrint:使用双丝三维打印技术生成用于光谱 CT 的患者特异性模型。
近年来,光谱 CT 扫描仪在临床中的重要性显著增加,因此有必要开发具有光谱功能的模型。本研究介绍了一种用于制造适用于光谱 CT 的多材料模型的双丝三维打印技术,尤其侧重于制造带有骨科植入物的逼真模型,以模拟金属伪影。此前,我们开发了 PixelPrint,用于制作患者特异性肺部模型,通过精确的衰减轮廓和纹理准确复制肺部特性。这项研究扩展了 PixelPrint 的用途,采用了双丝打印方法,将掺钙聚乳酸(PLA)和掺金属聚乳酸等材料融合在一起,以模拟软组织和骨骼以及骨科植入物。PixelPrint 双丝技术采用交错式材料使用方法,交替铺设掺钙聚乳酸和掺金属聚乳酸。这项研究开发了专用的长丝挤出机和沉积机制,从而实现了材料的可控分层。该技术的有效性通过各种类型的模型进行了评估,其中包括一个带有双丝矫形植入物的模型和另一个基于带有医疗植入物的人体膝关节 CT 扫描的模型。光谱 CT 扫描仪的结果表明,在纹理、密度和真实金属伪影的创建方面,模型与原始患者扫描结果高度相似。PixelPrint 技术能够制作多种材料的逼真模型,为评估和开发减少金属伪影 (MAR) 算法和策略提供了新的机遇。
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