Needle biopsy is a routine medical procedure for examining tissue or biofluids for the presence of disease using standard methods of pathology. The finite element analysis (FEA) methodology can provide guidance for optimizing the geometric parameters. The needle biopsy is simulated and analyzed while varying the needle angle, the aperture size and the slice-push ratio k. The results indicate that tissue reaction force in the axial direction of needle gradually decreases, and the stress and strain are more concentrated at the tip of needle with the increases of tip angle; the tissue reaction force decreases, and the torque increases while the slice-push ratio increases; and higher slice–push ratio can increase the peak stress concentration on the cutting edge and deformation of tissue; in the process of core needle cutting, increasing slice–push ratio can reduce the tissue reaction force significantly. While the aperture on distal wall of outer cannula becomes wider, the tissue reaction force increases significantly, and the cutting process will be more unstable. The results have the potential to provide important insight for improving the needle biopsy design process.
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March 2019
Technical Briefs
Using Simulation to Help Specify Design Parameters for Vacuum-Assisted Needle Biopsy Systems
Xuelian Gu,
Xuelian Gu
School of Medical Instrument
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
e-mail: guxuelian@usst.edu.cn
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
e-mail: guxuelian@usst.edu.cn
Search for other works by this author on:
Fangqiu Hu,
Fangqiu Hu
School of Medical Instrument
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
Search for other works by this author on:
Chi-Lun Lin,
Chi-Lun Lin
Department of Mechanical Engineering,
National Cheng Kung University,
No. 1 University Road, East District,
Tainan City 701, Taiwan
National Cheng Kung University,
No. 1 University Road, East District,
Tainan City 701, Taiwan
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Arthur Erdman,
Arthur Erdman
Department of Mechanical Engineering,
University of Minnesota,
111 Church St SE #1100,
Minneapolis, MN 55455
e-mail: agerdman@umn.edu
University of Minnesota,
111 Church St SE #1100,
Minneapolis, MN 55455
e-mail: agerdman@umn.edu
Search for other works by this author on:
Licheng Lu
Licheng Lu
School of Medical Instrument
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
Search for other works by this author on:
Xuelian Gu
School of Medical Instrument
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
e-mail: guxuelian@usst.edu.cn
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
e-mail: guxuelian@usst.edu.cn
Fangqiu Hu
School of Medical Instrument
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
Chi-Lun Lin
Department of Mechanical Engineering,
National Cheng Kung University,
No. 1 University Road, East District,
Tainan City 701, Taiwan
National Cheng Kung University,
No. 1 University Road, East District,
Tainan City 701, Taiwan
Arthur Erdman
Department of Mechanical Engineering,
University of Minnesota,
111 Church St SE #1100,
Minneapolis, MN 55455
e-mail: agerdman@umn.edu
University of Minnesota,
111 Church St SE #1100,
Minneapolis, MN 55455
e-mail: agerdman@umn.edu
Licheng Lu
School of Medical Instrument
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
and Food Engineering,
Shanghai Institute for Minimally Invasive Therapy,
University of Shanghai for Science and Technology,
516 Jungong Road,
Shanghai 200093, China
1Corresponding authors.
2F. Hu contributed equally to this work.
Manuscript received February 26, 2018; final manuscript received September 12, 2018; published online November 19, 2018. Assoc. Editor: Rafael V. Davalos.
J. Med. Devices. Mar 2019, 13(1): 014502 (7 pages)
Published Online: November 19, 2018
Article history
Received:
February 26, 2018
Revised:
September 12, 2018
Citation
Gu, X., Hu, F., Lin, C., Erdman, A., and Lu, L. (November 19, 2018). "Using Simulation to Help Specify Design Parameters for Vacuum-Assisted Needle Biopsy Systems." ASME. J. Med. Devices. March 2019; 13(1): 014502. https://doi.org/10.1115/1.4041487
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