Anatomically realistic ultrasound phantoms using gel wax with 3D printed moulds

被引:53
|
作者
Maneas, Efthymios [1 ,2 ]
Xia, Wenfeng [1 ,2 ]
Nikitichev, Daniil I. [1 ,2 ,3 ]
Daher, Batol [1 ]
Manimaran, Maniragav [1 ]
Wong, Rui Yen J. [1 ]
Chang, Chia-Wei [1 ]
Rahmani, Benyamin [4 ]
Capelli, Claudio [5 ,6 ]
Schievano, Silvia [5 ,6 ]
Burriesci, Gaetano [4 ,7 ]
Ourselin, Sebastien [2 ,3 ]
David, Anna L. [2 ,9 ,10 ]
Finlay, Malcolm C. [1 ,8 ]
West, Simeon J. [11 ]
Vercauteren, Tom [2 ,3 ]
Desjardins, Adrien E. [1 ,2 ]
机构
[1] UCL, Dept Med Phys & Biomed Engn, Gower St, London WC1E 6BT, England
[2] UCL, Wellcome EPSRC Ctr Intervent & Surg Sci, Charles Bell House,67-73 Riding House St, London W1W 7EJ, England
[3] UCL, Dept Med Phys & Biomed Engn, Ctr Med Image Comp, Translat Imaging Grp, Gower St, London WC1E 6BT, England
[4] UCL, UCL Mech Engn, Cardiovasc Engn Lab, Torrington Pl, London WC1E 7JE, England
[5] UCL, Ctr Cardiovasc Imaging, Inst Cardiovasc Sci, London WC1N 3JH, England
[6] Great Ormond St Hosp Sick Children, Cardioresp Unit, London WC1N 3JH, England
[7] Ri MED Fdn, Bioengn Grp, Palermo, Italy
[8] St Bartholomews Hosp, London EC1 7BE, England
[9] UCL, Inst Womens Hlth, 86-96 Chenies Mews, London WC1E 6HX, England
[10] Katholieke Univ Leuven, Dept Dev & Regenerat, Leuven, Belgium
[11] Univ Coll Hosp, Dept Anaesthesia, Podium 3,235 Euston Rd, London NW1 2BU, England
来源
PHYSICS IN MEDICINE AND BIOLOGY | 2018年 / 63卷 / 01期
基金
英国工程与自然科学研究理事会; 欧洲研究理事会; 英国惠康基金;
关键词
ultrasound phantoms; 3D printing; tissue mimicking materials; interventional procedures; MIMICKING MATERIAL; ELASTOGRAPHY; BREAST; FLOW;
D O I
10.1088/1361-6560/aa9e2c
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Here we describe methods for creating tissue-mimicking ultrasound phantoms based on patient anatomy using a soft material called gel wax. To recreate acoustically realistic tissue properties, two additives to gel wax were considered: paraffin wax to increase acoustic attenuation, and solid glass spheres to increase backscattering. The frequency dependence of ultrasound attenuation was well described with a power law over the measured range of 3-10 MHz. With the addition of paraffin wax in concentrations of 0 to 8 w/w%, attenuation varied from 0.72 to 2.91 dB cm(-1) at 3 MHz and from 6.84 to 26.63 dB cm(-1) at 10 MHz. With solid glass sphere concentrations in the range of 0.025-0.9 w/w%, acoustic backscattering consistent with a wide range of ultrasonic appearances was achieved. Native gel wax maintained its integrity during compressive deformations up to 60%; its Young's modulus was 17.4 +/- 1.4 kPa. The gel wax with additives was shaped by melting and pouring it into 3D printed moulds. Three different phantoms were constructed: a nerve and vessel phantom for peripheral nerve blocks, a heart atrium phantom, and a placental phantom for minimally-invasive fetal interventions. In the first, nerves and vessels were represented as hyperechoic and hypoechoic tubular structures, respectively, in a homogeneous background. The second phantom comprised atria derived from an MRI scan of a patient with an intervening septum and adjoining vena cavae. The third comprised the chorionic surface of a placenta with superficial fetal vessels derived from an image of a post-partum human placenta. Gel wax is a material with widely tuneable ultrasound properties and mechanical characteristics that are well suited for creating patient-specific ultrasound phantoms in several clinical disciplines.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] 3D printed calibration micro-phantoms for super-resolution ultrasound imaging validation
    Ommen, Martin Lind
    Schou, Mikkel
    Beers, Christopher
    Jensen, Jorgen Arendt
    Larsen, Niels Bent
    Thomsen, Erik Vilain
    ULTRASONICS, 2021, 114
  • [22] Characterization and Application of 3D Printed Phantoms for Biophotonic Imaging
    Wang, Jianting
    Coburn, James
    Liang, Chia-Pin
    Woolsey, Nicholas
    Le, Du
    Ramella-Roman, Jessica
    Chen, Yu
    Pfefer, Joshua
    SMART BIOMEDICAL AND PHYSIOLOGICAL SENSOR TECHNOLOGY X, 2013, 8719
  • [23] Evaluation of challenges and limitations of mechanical thrombectomy using 3D printed neurovascular phantoms
    Sommer, Kelsey N.
    Bhurwani, Mohammad Mahdi Shiraz
    Mokin, Maxim
    Ionita, Ciprian N.
    MEDICAL IMAGING 2021: IMAGING INFORMATICS FOR HEALTHCARE, RESEARCH, AND APPLICATIONS, 2021, 11601
  • [24] Commissioning of a 3D Scanner for Digitizing and Ordering Electron Cutouts Using 3-D Printed Phantoms
    Malin, M.
    Taneja, S.
    Barbee, D.
    MEDICAL PHYSICS, 2020, 47 (06) : E721 - E721
  • [25] Analysis of Raised Feature Failures on 3D Printed Injection Moulds
    Bagalkot, Anurag
    Pons, Dirk
    Symons, Digby
    Clucas, Don
    POLYMERS, 2021, 13 (10)
  • [26] Fabrication of Rectal and Vaginal Suppositories Using 3D Printed Moulds: The Challenge of Personalized Therapy
    Krezic, Sarah
    Krhan, Esved
    Mandzuka, Emir
    Kovac, Nikolina
    Krajina, Danira
    Maric, Amina
    Komic, Sajra
    Niksic, Azra
    Tucak, Amina
    Sirbubalo, Merima
    Vranic, Edina
    PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON MEDICAL AND BIOLOGICAL ENGINEERING, CMBEBIH 2019, 2020, 73 : 729 - 734
  • [27] Research on Optimum Structure Design of 3D Printed Sand Moulds
    Yang T.
    Guo W.
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2017, 53 (21): : 158 - 166
  • [28] Evaluation of 3D Printed Anatomically Scalable Transfemoral Prosthetic Knee
    Ramakrishnan, Tyagi
    Schlafly, Millicent
    Reed, Kyle B.
    2017 INTERNATIONAL CONFERENCE ON REHABILITATION ROBOTICS (ICORR), 2017, : 1160 - 1164
  • [29] Validation of Image Restoration Methods on 3D-Printed Ultrasound Phantoms
    Fuzesi, Kriszian
    Basarab, Adrian
    Cserey, Gyorgy
    Kouame, Denis
    Gyongy, Miklos
    2017 IEEE INTERNATIONAL ULTRASONICS SYMPOSIUM (IUS), 2017,
  • [30] Validation of Dynamic 3D MRI for Urodynamics Assessment Using an Anatomically Realistic In Vitro Model of the Bladder
    Rice, James
    Bushman, Wade
    Roldan-Alzate, Alejandro
    JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2024, 146 (07):