DocumentCode
1224565
Title
A Thermal Monitoring Sheet With Low Influence From Adjacent Waterbolus for Tissue Surface Thermometry During Clinical Hyperthermia
Author
Arunachalam, Kavitha ; Maccarini, Paolo F. ; Stauffer, Paul R.
Author_Institution
Med. Center, Dept. of Radiat. Oncology, Duke Univ., Durham, NC
Volume
55
Issue
10
fYear
2008
Firstpage
2397
Lastpage
2406
Abstract
This paper presents a complete thermal analysis of a novel conformal surface thermometer design with directional sensitivity for real-time temperature monitoring during hyperthermia treatments of large superficial cancer. The thermal monitoring sheet (TMS) discussed in this paper consists of a 2-D array of fiberoptic sensors embedded between two layers of flexible, low-loss, and thermally conductive printed circuit board (PCB) film. Heat transfer across all interfaces from the tissue surface through multiple layers of insulating dielectrics surrounding the small buried temperature sensor and into an adjacent temperature-regulated water coupling bolus was studied using 3-D thermal simulation software. Theoretical analyses were carried out to identify the most effective differential TMS probe configuration possible with commercially available flexible PCB materials and to compare their thermal responses with omnidirectional probes commonly used in clinical hyperthermia. A TMS sensor design that employs 0.0508-mm Kapton MTB and 0.2032-mm Kapton HN flexible polyimide films is proposed for tissue surface thermometry with low influence from the adjacent waterbolus. Comparison of the thermal simulations with clinical probes indicates the new differential TMS probe design to outperform in terms of both transient response and steady-state accuracy in selectively reading the tissue surface temperature, while decreasing the overall thermal barrier of the probe between the coupling waterbolus and tissue surface.
Keywords
cancer; fibre optic sensors; heat transfer; hyperthermia; polymer films; radiation therapy; temperature distribution; temperature sensors; thermal analysis; thermometers; tumours; 3D thermal simulation software; clinical microwave hyperthermia; conformal surface thermometer design; directional sensitivity; fiberoptic sensors; heat transfer; large superficial cancer; omnidirectional probes; polyimide films; real-time temperature monitoring; temperature distribution measurement; temperature sensor; temperature-regulated water coupling bolus; thermal analysis; thermal monitoring sheet; thermally conductive printed circuit board film; tissue surface thermometry; waterbolus; Cancer; Hyperthermia; Monitoring; Probes; Sensor arrays; Surface treatment; Temperature measurement; Temperature sensors; Thermal conductivity; Thermal sensors; Heat transfer; Hyperthermia; hyperthermia; noninvasive thermometry; surface temperature distribution measurement; surface thermal modeling; temperature distribution measurement; thermal monitoring sheet; Diathermy; Energy Transfer; Equipment Design; Equipment Failure Analysis; Feedback; Hot Temperature; Humans; Psoriasis; Resins, Synthetic; Sensitivity and Specificity; Skin Temperature; Soft Tissue Neoplasms; Subcutaneous Tissue; Thermal Conductivity; Thermometers; Transducers; Water;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2008.925693
Filename
4524999
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