Title :
Modeling of lung´s electrical impedance using fractional calculus for analysis of heat generation during RF-ablation
Author :
Yamazaki, Nozomu ; Kobayashi, Yoshiyuki ; Kikuchi, Hiroaki ; Isobe, Yuzuka ; XiaoWei Lu ; Miyashita, Tadakazu ; Fujie, Masakatsu G.
Author_Institution :
Grad. Schools of Adv. Sci. & Eng., Waseda Univ., Tokyo, Japan
Abstract :
Recently, Radio Frequency Ablation (RFA) is becoming a popular therapy for various cancers such as liver, breast, or lung cancer. RFA is one kinds of thermal therapy. However, it has been often reported about excessive ablation or non-ablation due to difficult control of ablation energy. In order to solve these difficulties, we have been proposed robotized RF-ablation system for precise cancer treatment. We have been tried to control heat energy by control of electromagnetic-wave frequency. In this paper, we reported about relation among electrical impedance of lung, lung´s internal air volumes, and heat energy by use of electromagnetic-wave. In case of RFA for lung cancer, heat energy depends on electrical impedance and lung´s internal air volumes. Electrical impedance has the dependence of electromagnetic-wave frequency and the dependence of lung´s internal air volumes. Therefore, firstly we considered about fractional calculus model between lung´s internal air volumes and electrical impedance. Secondly, we measured electric impedance frequency characteristic of lung with change of lung´s internal air volumes. The measured and modeled results showed that use of fractional calculus realized high accurate model for electrical impedance of lung. And, from the results of numerical analysis of heat energy, it is supposed that control of electromagnetic-wave frequency has a small effectiveness for lung tissue ablation even if lung includes abundant air.
Keywords :
air; bioelectric potentials; biomedical measurement; biothermics; calculus; cancer; electric impedance measurement; frequency control; lung; medical robotics; numerical analysis; physiological models; pneumodynamics; radiation therapy; radiofrequency heating; temperature control; RF ablation system robotization; RFA method; ablation energy control; breast cancer therapy; electric impedance frequency measurement; electromagnetic wave frequency control; excessive ablation; fractional calculus model; heat energy control; heat generation analysis; liver cancer therapy; lung cancer therapy; lung electrical impedance modeling; lung internal air volumes; lung tissue ablation effectiveness; nonablation; numerical analysis; precise cancer treatment; radiofrequency ablation; thermal therapy;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
DOI :
10.1109/EMBC.2014.6944828