Published June 2017 | Version v1
Journal article

Evaluation of 3D printing materials for fabrication of a novel multi-functional 3D thyroid phantom for medical dosimetry and image quality

  • 1. Advanced Medical and Dental Institute, Universiti Sains Malaysia, 13200 Kepala Batas, Pinang (Malaysia)
  • 2. School of Physics, Universiti Sains Malaysia, 11800 Pulau Pinang (Malaysia)

Description

Recently, the three-dimensional printer has started to be utilized strongly in medical industries. In the human body, many parts or organs can be printed from 3D images to meet accurate organ geometries. In this study, five common 3D printing materials were evaluated in terms of their elementary composition and the mass attenuation coefficients. The online version of XCOM photon cross-section database was used to obtain the attenuation values of each material. The results were compared with the attenuation values of the thyroid listed in the International Commission on Radiation Units and Measurements - ICRU 44. Two original thyroid models (hollow-inside and solid-inside) were designed from scratch to be used in nuclear medicine, diagnostic radiology and radiotherapy for dosimetry and image quality purposes. Both designs have three holes for installation of radiation dosimeters. The hollow-inside model has more two holes in the top for injection the radioactive materials. The attenuation properties of the Polylactic Acid (PLA) material showed a very good match with the thyroid tissue, which it was selected to 3D print the phantom using open source RepRap, Prusa i3 3D printer. The scintigraphy images show that the phantom simulates a real healthy thyroid gland and thus it can be used for image quality purposes. The measured CT numbers of the PA material after the 3D printing show a close match with the human thyroid CT numbers. Furthermore, the phantom shows a good accommodation of the TLD dosimeters inside the holes. The 3D fabricated thyroid phantom simulates the real shape of the human thyroid gland with a changeable geometrical shape-size feature to fit different age groups. By using 3D printing technology, the time required to fabricate the 3D phantom was considerably shortened compared to the longer conventional methods, where it took only 30 min to print out the model. The 3D printing material used in this study is commercially available and cost-effective compared to current commercial tissue-equivalent materials. - Highlights: • A 3D printing material was verified as a tissue equivalent of thyroid gland. • Two 3D thyroid models were designed for dosimetry and image quality purposes. • The 3D phantom mimic 95% of real thyroid gland with adjustable geometrical feature. • The fabrication time is considerably shortened compared to conventional methods.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.radphyschem.2017.02.009

Additional details

Identifiers

DOI
10.1016/j.radphyschem.2017.02.009;
PII
S0969-806X(16)30370-X;

Publishing Information

Journal Title
Radiation Physics and Chemistry (1993)
Journal Volume
135
Journal Page Range
p. 106-112
ISSN
0969-806X
CODEN
RPCHDM

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
49037643
Subject category
S07: ISOTOPES AND RADIATION SOURCES;
Descriptors DEI
CROSS SECTIONS; DESIGN; DOSIMETRY; FABRICATION; IMAGES; PHANTOMS; RADIOACTIVE MATERIALS; THYROID; TISSUE-EQUIVALENT MATERIALS
Descriptors DEC
BODY; ENDOCRINE GLANDS; GLANDS; MATERIALS; MOCKUP; ORGANS; STRUCTURAL MODELS

Optional Information

Copyright
Copyright (c) 2017 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.