Georgia Tech, Atlanta, GA, US
TECHNOLOGY SUMMARY
Patient-specific tissue-mimicking phantoms have a wide range of biomedical applications including validation of computational models and imaging techniques, medical device testing, surgery planning, medical education, doctor-patient interaction, etc. Although 3D printing technologies have demonstrated great potential in fabricating patient-specific phantoms, current 3D printed phantoms are usually only geometrically accurate. Mechanical properties of soft tissues can merely be mimicked at small strain situations, such as ultrasonic induced vibration. Under large deformation, however, the soft tissues and the 3D printed phantoms behave differently. The essential barrier is the inherent difference in the stress-strain curves of soft tissues and 3D printable polymers. Georgia Tech inventors have developed technology that demonstrates the feasibility of mimicking the mechanical strain stiffening behavior of soft tissues using dual-material 3D printed metamaterials with micro-structured reinforcement embedded in soft polymeric matrix. Although the two base materials are strain-softening polymers, both finite element analysis and uniaxial tension tests indicate that two of those dual-material designs are able to exhibit strain-stiffening effects as a metamaterial. Additionally, the design parameters have an effect on the mechanical behavior of the metamaterials. this system can fabricate patient specific tiss. ue-mimicking phantoms with both geometrical and mechanical accuracies with dual-material 3D printed metamaterials.
AREA/MATURITY/AWARDS
Primary Application Area: Biotech, Pharma, Medical Devices
Technology Development Status: Prototype
Technology Readiness Level: TRL 4
SHOWCASE SUMMARY
Organization Type: Academic/Gov Lab
Showcase Booth #: 426
Website: http://www.gatech.edu/
GOVT/EXTERNAL FUNDING SOURCES