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Decoupling steerability from diameter: Helical dovetail laser patterning for steerable needles
Journal article   Open access

Decoupling steerability from diameter: Helical dovetail laser patterning for steerable needles

M. Rox, M. Emerson, T.E. Ertop, I. Fried, M. Fu, J. Hoelscher, A. Kuntz, J. Granna, J.E. Mitchell, M. Lester, …
IEEE Access, Vol.8, pp.181411-181419
2020

Abstract

Medical devices Medical robotics Steerable needles Surgical robotics Histology Stiffness Tissue Animal muscles Brachytherapy Interventional Laser patterning Radio-frequency Ablation Shaft diameter Steerable needles Tissue properties Needles
The maximum curvature of a steerable needle in soft tissue is highly sensitive to needle shaft stiffness, which has motivated use of small diameter needles in the past. However, desired needle payloads constrain minimum shaft diameters, and shearing along the needle shaft can occur at small diameters and high curvatures. We provide a new way to adjust needle shaft stiffness (thereby enhancing maximum curvature, i.e. ‘‘steerability’’) at diameters selected based on needle payload requirements. We propose helical dovetail laser patterning to increase needle steerability without reducing shaft diameter. Experiments in phantoms and ex vivo animal muscle, brain, liver, and inflated lung tissues demonstrate high steerability in soft tissues. These experiments use needle diameters suitable for various clinical scenarios, and which have been previously limited by steering challenges without helical dovetail patterning. We show that steerable needle targeting remains accurate with established controllers and demonstrate interventional payload delivery (brachytherapy seeds and radiofrequency ablation) through the needle. Helical dovetail patterning decouples steerability from diameter in needle design. It enables diameter to be selected based on clinical requirements rather than being carefully tuned to tissue properties. These results pave the way for new sensors and interventional tools to be integrated into high-curvature steerable needles. © 2020 Institute of Electrical and Electronics Engineers Inc.. All rights reserved.
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https://www.scopus.com/inward/record.uri?eid=2-s2.0-85101152449&doi=10.1109%2fACCESS.2020.3028374&partnerID=40&md5=a44a3aa289c9cbf3852057992e6d5382View
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https://doi.org/10.1109/ACCESS.2020.3028374View
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