跳转至内容
Merck
CN
  • Evaluation of monoenergetic imaging to reduce metallic instrumentation artifacts in computed tomography of the cervical spine.

Evaluation of monoenergetic imaging to reduce metallic instrumentation artifacts in computed tomography of the cervical spine.

Journal of neurosurgery. Spine (2014-11-08)
Peter Komlosi, Deborah Grady, Justin S Smith, Christopher I Shaffrey, Allen R Goode, Patricia G Judy, Mark Shaffrey, Max Wintermark
摘要

Monoenergetic imaging with dual-energy CT has been proposed to reduce metallic artifacts in comparison with conventional polychromatic CT. The purpose of this study is to systematically evaluate and define the optimal dual-energy CT imaging parameters for specific cervical spinal implant alloy compositions. Spinal fixation rods of cobalt-chromium or titanium alloy inserted into the cervical spine section of an Alderson Rando anthropomorphic phantom were imaged ex vivo with fast-kilovoltage switching CT at 80 and 140 peak kV. The collimation width and field of view were varied between 20 and 40 mm and medium to large, respectively. Extrapolated monoenergetic images were generated at 70, 90, 110, and 130 kiloelectron volts (keV). The standard deviation of voxel intensities along a circular line profile around the spine was used as an index of the magnitude of metallic artifact. The metallic artifact was more conspicuous around the fixation rods made of cobalt-chromium than those of titanium alloy. The magnitude of metallic artifact seen with titanium fixation rods was minimized at monoenergies of 90 keV and higher, using a collimation width of 20 mm and large field of view. The magnitude of metallic artifact with cobalt-chromium fixation rods was minimized at monoenergies of 110 keV and higher; collimation width or field of view had no effect. Optimization of acquisition settings used with monoenergetic CT studies might yield reduced metallic artifacts.

材料
Product Number
品牌
产品描述

钛, mesh, 100x100mm, nominal aperture 0.19mm, wire diameter 0.23mm, 60x60 wires/inch, open area 20%, twill weave
Sigma-Aldrich
钛, wire, diam. 0.25 mm, 99.7% trace metals basis
钛, mesh, 100x100mm, nominal aperture 4.3mm, wire diameter 1.5mm, 4.4x4.4 wires/inch, open area 94%, platinized diamond mesh
Sigma-Aldrich
钛, foil, thickness 2.0 mm, 99.7% trace metals basis
钛, rod, 10mm, diameter 50mm, 99.99+%
钛, rod, 25mm, diameter 50mm, 99.99+%
Sigma-Aldrich
钛, wire, diam. 0.5 mm, 99.99% trace metals basis
钛, wire, straight, 1000mm, diameter 1.0mm, as drawn, 99.6+%
钛, tube, 200mm, outside diameter 2.03mm, inside diameter 1.55mm, wall thickness 0.24mm, annealed, 99.6+%
钛, wire reel, 2m, diameter 1.0mm, as drawn, 99.99+%
钛, rod, 200mm, diameter 2mm, as drawn, 99.99+%
钛, wire reel, 25m, diameter 0.20mm, annealed, 99.6+%
钛, rod, 1000mm, diameter 2mm, annealed, 99.6+%
钛, rod, 1000mm, diameter 1.5mm, annealed, 99.6+%
钛, wire reel, 1m, diameter 0.5mm, as drawn, 99.99+%
钛, wire reel, 0.5m, diameter 0.25mm, as drawn, 99.99+%
钛, rod, 100mm, diameter 30mm, annealed, 99.6+%
钛, tube, 500mm, outside diameter 9.5mm, inside diameter 8.2mm, wall thickness 0.65mm, annealed, 99.6+%
钛, rod, 100mm, diameter 2mm, annealed, 99.6+%
钛, tube, 100mm, outside diameter 3.0mm, inside diameter 1.5mm, wall thickness 0.75mm, annealed, 99.6+%
钛, rod, 500mm, diameter 5mm, annealed, 99.6+%
钛, wire reel, 1m, diameter 0.25mm, as drawn, 99.6+%
钛, tube, 1000mm, outside diameter 10mm, inside diameter 8mm, wall thickness 1.0mm, annealed, 99.6+%
钛, wire reel, 1m, diameter 0.25mm, annealed, 99.6+%
钛, rod, 100mm, diameter 10mm, annealed, 99.6+%
钛, rod, 100mm, diameter 5mm, annealed, 99.6+%
钛, rod, 200mm, diameter 1.5mm, annealed, 99.6+%
钛, tube, 1000mm, outside diameter 10.3mm, inside diameter 8.7mm, wall thickness 0.8mm, annealed, 99.6+%
钛, rod, 200mm, diameter 3.0mm, annealed, 99.6+%
钛, rod, 1000mm, diameter 5mm, annealed, 99.6+%