Power absorption and temperature control of multi-filament palladium - nickel thermoseeds for interstitial hyperthermia
- 1 November 1996
- journal article
- Published by IOP Publishing in Physics in Medicine & Biology
- Vol. 41 (11) , 2367-2380
- https://doi.org/10.1088/0031-9155/41/11/009
Abstract
In interstitial hyperthermia using ferromagnetic seeds, multi-filament seeds have gained interest because of a more effective power absorption than solid seeds. Palladium - nickel (PdNi) seeds composed of filaments with diameters in the range from 0.1 to 1.0 mm (maximally 90 filaments) have been investigated to find the conditions for optimal power absorption and temperature control. Magnetic and calorimetric experiments have shown that a decreasing filament radius results in a more effective power absorption. The power absorption approaches a common asymptote for high field intensities at all filament diameters. This asymptotic behaviour can be understood as a consequence of the approach of saturation magnetization of PdNi. The sharpness of the transition at the Curie temperature, which is a measure for the quality of temperature control, improves as the magnetic field strength increases, but it is limited by the asymptote of the power absorption. When the asymptote has been reached the quality of temperature regulation of a seed can only be improved by increasing the amount of PdNi, e.g. by increasing the number of filaments. Calculations of the power absorption, using the generally applied theory based on a linear relation between the magnetization of PdNi and the magnetic field strength, do not correspond quantitatively with experimental results for seeds having an induction number smaller than the `optimal value' of 2.5. For these seeds the measured heat production is larger than the calculated one.Keywords
This publication has 10 references indexed in Scilit:
- The development of PdNi thermoseeds for interstitial hyperthermiaMedical Physics, 1995
- Effect of thermal treatment on heating characteristics of Ni-Cu alloy for hyperthermia: Preliminary studiesJournal of Applied Biomaterials, 1993
- Use of thermocouples in the intense fields of ferromagnetic implant hyperthermiaInternational Journal of Hyperthermia, 1993
- Treatment of malignant gliomas with interstitial irradiation and hyperthermiaInternational Journal of Radiation Oncology*Biology*Physics, 1992
- Power absorption in ferromagnetic implants from radiofrequency magnetic fields and the problem of optimizationIEEE Transactions on Microwave Theory and Techniques, 1991
- Development of Ni‐4 wt.% Si thermoseeds for hyperthermia cancer treatmentJournal of Biomedical Materials Research, 1988
- Magnetic induction hyperthermia for brain tumor using ferromagnetic implant with low Curie temperatureJournal of Neuro-Oncology, 1986
- Temperature distributions in tumor models heated by self-regulating nickel-copper alloy thermoseedsMedical Physics, 1984
- Usable Frequencies in Hyperthermia with Thermal SeedsIEEE Transactions on Biomedical Engineering, 1984
- The RF Thermoseed-A Thermally Self-Regulating Implant for the Production of Brain LesionsIEEE Transactions on Biomedical Engineering, 1971