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Updated: May 23, 2026

Multimodal 3D Printing of Phantoms to Simulate Biological Tissue
Published on: January 11, 2020
SMUPhantom: a 3D-printable modular CT perfusion phantom for quantitative evaluation of tissue-mimicking dynamic
Boxuan Cao1, Hanxiao Song1, Mengwei Ma2,3
1School of Biomedical Engineering, Southern Medical University, Guangzhou 510515, People's Republic of China.
None:
Purpose.Physical computed tomography (CT) perfusion (CTP) phantoms are useful for controlled protocol evaluation, but a modular three-dimensional (3D)-printable platform that can generate distinguishable compartment-specific dynamic contrast behavior and support repeatability assessment remains needed. We developed the separate module uniting phantom (SMUPhantom) for protocol sensitivity studies and workflow benchmarking.Methods.The SMUPhantom consists of three modules representing inflow, exchange, and outflow regions. Polyoxymethylene beads, soft wax, and acrylonitrile-butadiene-styrene inserts were used to create healthy, penumbra-mimicking, and infarct-core-mimicking pathways, and a detachable bypass-flow pathway was added for flow-routing experiments. Two experimental series were performed on a NeuViz Epoch Elite CT scanner: contrast volume and injection rate were varied separately, each with and without bypass flow. Time-density curves and workstation-derived cerebral blood flow, cerebral blood volume (CBV), mean transit time (MTT), and time to peak (TTP) were evaluated. Five repeat measurements per condition assessed intra-scanner repeatability.Results.The three compartments showed separable dynamic responses, with the healthy pathway exhibiting earlier and higher enhancement and the infarct-core-mimicking pathway showing lower and delayed responses. Increasing contrast volume broadened the bolus response and raised peak enhancement from 220.8 to 454.2 HU in the healthy pathway and from 149.4 to 354.4 HU in the infarct-core-mimicking pathway, whereas increasing injection rate shortened TTP from 22-25 s to 12-15 s and MTT from 18-21 s to 10-14 s. Opening bypass flow modified the compartment curves and map appearance, particularly in the infarct-core-mimicking pathway, while preserving interpretable trends across repeated scans. Repeatability analysis showed stable peak enhancement and CBV measurements, with CVs not exceeding 3.54% and 2.81%, respectively.Conclusion.SMUPhantom provides a 3D-printable and quantitatively characterized platform for CTP protocol sensitivity studies, repeatability assessment, and workflow benchmarking under controlled flow-routing conditions.
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