4.4 Article

Thermal model to investigate the temperature in bone grinding for skull base neurosurgery

Journal

MEDICAL ENGINEERING & PHYSICS
Volume 35, Issue 10, Pages 1391-1398

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.medengphy.2013.03.023

Keywords

Skull base neurosurgery; Grinding; Bone temperature; Modeling

Funding

  1. National Natural Science Foundation of China [51176211]
  2. National Center for Advancing Translational Sciences of the National Institutes of Health [UL1TR000433]

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This study develops a thermal model utilizing the inverse heat transfer method (IHTM) to investigate the bone grinding temperature created by a spherical diamond tool used for skull base neurosurgery. Bone grinding is a critical procedure in the expanded endonasal approach to remove the cranial bone and access to the skull base tumor via nasal corridor. The heat is generated during grinding and could damage the nerve or coagulate the blood in the carotid artery adjacent to the bone. The finite element analysis is adopted to investigate the grinding-induced bone temperature rise. The heat source distribution is defined by the thermal model, and the temperature distribution is solved using the IHTM with experimental inputs. Grinding experiments were conducted on a bovine cortical bone with embedded thermocouples. Results show significant temperature rise in bone grinding. Using 50 degrees C as the threshold, the thermal injury can propagate about 3 mm in the traverse direction, and 3 mm below the ground surface under the dry grinding condition. The presented methodology demonstrated the capability of being a thermal analysis tool for bone grinding study. (C) 2013 IPEM. Published by Elsevier Ltd. All rights reserved.

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