Ultrasound simulation of real-time temperature estimation during radiofrequency ablation using finite element models

被引:11
|
作者
Daniels, M. J. [1 ,2 ]
Jiang, J. [1 ]
Varghese, T. [1 ]
机构
[1] Univ Wisconsin, Dept Med Phys, Madison, WI 53706 USA
[2] Univ Wisconsin, Dept Phys, Madison, WI 53706 USA
关键词
ablation; elastography; elasticity; imaging; radiofrequency ablation; strain; speed of sound; thermal strain; thermal expansion; temperature imaging; thermal imaging; ultrasound; finite element analysis;
D O I
10.1016/j.ultras.2007.10.005
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Radiofrequency ablation is the most common minimally invasive therapy used in the United States to treat hepatocellular carcinoma and liver metastases. The ability to perform real-time temperature imaging while a patient is undergoing ablation therapy may help reduce the high recurrence rates following ablation therapy. Ultrasound echo signals undergo time shifts with increasing temperature due to sound speed and thermal expansion, which are tracked using both 1D cross correlation and 2D block matching based speckle tracking methods. In this paper, we present a quantitative evaluation of the accuracy and precision of temperature estimation using the above algorithms on both simulated and experimental data. A finite element analysis simulation of radiofrequency ablation of hepatic tissue was developed. Finite element analysis provides a method to obtain the exact temperature distribution along with a mapping of the tissue displacement due to thermal expansion. These local displacement maps were combined with the displacement due to speed of sound changes and utilized to generate ultrasound radiofrequency frames at specified time increments over the entire ablation procedure. These echo signals provide an ideal test-bed to evaluate the performance of both speckle tracking methods, since the estimated temperature results can be compared directly to the exact finite element solution. Our results indicate that the 1D cross-correlation (CC) method underestimates the cumulative displacement by 0.20 mm, while the underestimation with 2D block matching (BM) is about 0.14 mm after 360 s of ablation. The 1D method also overestimates the size of the ablated region by 5.4% when compared to 2.4% with the 2D method after 720 s of ablation. Hence 2D block matching provides better tracking of temperature variations when compared to the 1D cross-correlation method over the entire duration of the ablation procedure. In addition, results obtained using 1D cross-correlation diverge from the ideal finite element results after 7 min of ablation and for temperatures greater than 65 degrees C. In a similar manner, experimental results presented using a tissue-mimicking phantom also demonstrate that the maximum percent difference with 2D block matching was 5%, when compared to 31% with the 1D method over the 700 s heating duration on the phantom. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:40 / 55
页数:16
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