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  1. NTU Theses and Dissertations Repository
  2. 工學院
  3. 醫學工程學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/71179
完整後設資料紀錄
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dc.contributor.advisor林文澧(Win-Li Lin)
dc.contributor.authorHsiao-Ling Linen
dc.contributor.author林筱玲zh_TW
dc.date.accessioned2021-06-17T04:57:10Z-
dc.date.available2028-12-31
dc.date.copyright2018-08-07
dc.date.issued2018
dc.date.submitted2018-07-27
dc.identifier.citation[1] R. Chen et al., ‘Prostate Cancer in Asia: A Collaborative Report’, Asian Journal of Urology, vol. 1, no. 1, pp. 15–29, Oct. 2014.
[2] 統計處, ‘106年國人死因統計結果’, 統計處, 15-Jun-2018. [Online]. Available: https://www.mohw.gov.tw/cp-3795-41794-1.html. [Accessed: 03-Jul-2018].
[3] ‘Gallery’, Terese Winslow LLC, Medical and Scientific Illustration. [Online]. Available: https://www.teresewinslow.com/. [Accessed: 03-Jul-2018].
[4] ‘American Cancer Society’. [Online]. Available: https://www.cancer.org/cancer/prostate-cancer/about/key-statistics.html. [Accessed: 03-Jul-2018].
[5] M. S. Litwin and H.-J. Tan, ‘The Diagnosis and Treatment of Prostate Cancer: A Review’, JAMA, vol. 317, no. 24, pp. 2532–2542, Jun. 2017.
[6] A. Heidenreich et al., ‘EAU Guidelines on Prostate Cancer. Part 1: Screening, Diagnosis, and Treatment of Clinically Localised Disease’, European Urology, vol. 59, no. 1, pp. 61–71, Jan. 2011.
[7] S. B. Edge and C. C. Compton, ‘The American Joint Committee on Cancer: the 7th Edition of the AJCC Cancer Staging Manual and the Future of TNM’, Ann Surg Oncol, vol. 17, no. 6, pp. 1471–1474, Jun. 2010.
[8] A. W. Partin et al., ‘The Use of Prostate Specific Antigen, Clinical Stage and Gleason Score to Predict Pathological Stage in Men with Localized Prostate Cancer’, The Journal of Urology, vol. 150, no. 1, pp. 110–114, Jul. 1993.
[9] A. W. Partin, L. A. Mangold, D. M. Lamm, P. C. Walsh, J. I. Epstein, and J. D. Pearson, ‘Contemporary update of prostate cancer staging nomograms (Partin Tables) for the new millennium’, Urology, vol. 58, no. 6, pp. 843–848, Dec. 2001.
[10] R. E. Peschel and J. W. Colberg, ‘Surgery, brachytherapy, and external-beam radiotherapy for early prostate cancer’, The Lancet Oncology, vol. 4, no. 4, pp. 233–241, Apr. 2003.
[11] G. Sommer, D. Bouley, H. Gill, B. Daniel, K. B. Pauly, and C. Diederich, ‘Focal Ablation of Prostate Cancer: Four Roles for Magnetic Resonance Imaging Guidance’, Can J Urol, vol. 20, no. 2, pp. 6672–6681, Apr. 2013.
[12] S. A. Sapareto and W. C. Dewey, ‘Thermal dose determination in cancer therapy’, International Journal of Radiation Oncology*Biology*Physics, vol. 10, no. 6, pp. 787–800, Apr. 1984.
[13] A. N. Guthkelch et al., ‘Treatment of malignant brain tumors with focused ultrasound hyperthermia and radiation: results of a phase I trial’, J Neuro-Oncol, vol. 10, no. 3, pp. 271–284, Jun. 1991.
[14] M. Alkhorayef, M. Z. Mahmoud, K. S. Alzimami, A. Sulieman, and M. A. Fagiri, ‘High-Intensity Focused Ultrasound (HIFU) in Localized Prostate Cancer Treatment’, Pol J Radiol, vol. 80, pp. 131–141, Mar. 2015.
[15] R. Illing and M. Emberton, ‘Sonablate®-500: transrectal high-intensity focused ultrasound for the treatment of prostate cancer’, Expert Review of Medical Devices, vol. 3, no. 6, pp. 717–729, Nov. 2006.
[16] U. Lindner, J. Trachtenberg, and N. Lawrentschuk, ‘Focal Therapy in Prostate Cancer: Modalities, Findings and Future Considerations’, Nat Rev Urol, vol. 7, no. 10, pp. 562–571, Oct. 2010.
[17] J.-Y. Chapelon, O. Rouvière, S. Crouzet, and A. Gelet, ‘Prostate Focused Ultrasound Therapy’, in Therapeutic Ultrasound, Springer, Cham, 2016, pp. 21–41.
[18] H. Yin, T. Wang, D. Yang, S. Liu, J. Shao, and Y. Li, ‘A Smart Washer for Bolt Looseness Monitoring Based on Piezoelectric Active Sensing Method’, Applied Sciences, vol. 6, no. 11, p. 320, Oct. 2016.
[19] H. J. Lee, S. Zhang, Y. Bar-Cohen, and S. Sherrit, ‘High Temperature, High Power Piezoelectric Composite Transducers’, Sensors (Basel), vol. 14, no. 8, pp. 14526–14552, Aug. 2014.
[20] K. A. Klicker, J. V. Biggers, and R. E. Newnham, ‘Composites of PZT and Epoxy for Hydrostatic Transducer Applications’, Journal of the American Ceramic Society, vol. 64, no. 1, pp. 5–9.
[21] G. S. Chen, H. C. Liu, Y. C. Lin, and Y. L. Lin, ‘Experimental Analysis of 1-3 Piezocomposites for High-Intensity Focused Ultrasound Transducer Applications’, IEEE Transactions on Biomedical Engineering, vol. 60, no. 1, pp. 128–134, Jan. 2013.
[22] Q. M. Zhang, J. Zhao, K. Uchino, and J. Zheng, ‘Change of the weak-field properties of Pb(ZrTi)O3 piezoceramics with compressive uniaxial stresses and its links to the effect of dopants on the stability of the polarizations in the materials’, Journal of Materials Research, vol. 12, no. 01, pp. 226–234, Jan. 1997.
[23] K. Uchino, ‘High Electromechanical Coupling Piezoelectrics: Relaxor and Normal Ferroelectric Solid Solutions’, Solid State Ionics, vol. 108, no. 1, pp. 43–52, May 1998.
[24] Q. M. Zhang and J. Zhao, ‘Electromechanical Properties of Lead Zirconate Titanate Piezoceramics Under the Influence of Mechanical Stresses’, IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control, vol. 46, no. 6, pp. 1518–1526, Nov. 1999.
[25] D. Berlincourt, ‘Piezoelectric Crystals and Ceramics’, in Ultrasonic Transducer Materials, Springer, Boston, MA, 1971, pp. 63–124.
[26] Lin C. T., ‘Cylindrical Phased-array Ultrasound Transducer with Multifocal Patterns for Breast Tumor Thermal Therapy’, thesis, 2009.
[27] A. . Worthington, J. Trachtenberg, and M. . Sherar, ‘Ultrasound properties of human prostate tissue during heating’, Ultrasound in Medicine & Biology, vol. 28, no. 10, pp. 1311–1318, Oct. 2002.
[28] M. O. Culjat, D. Goldenberg, P. Tewari, and R. S. Singh, ‘A review of tissue substitutes for ultrasound imaging’, Ultrasound Med Biol, vol. 36, no. 6, pp. 861–873, Jun. 2010.
[29] L. Li, J. Joseph, D. R. Rubens, E. M. Messing, L. Liao, and Y. Yu, ‘A real-time prostate cancer detection technique using needle insertion force and patient-specific criteria during percutaneous intervention’, Med Phys, vol. 36, no. 7, pp. 3356–3362, Jul. 2009.
[30] K. L. Wong and L. C. Lee, ‘Multiband Printed Monopole Slot Antenna for WWAN Operation in the Laptop Computer’, IEEE Transactions on Antennas and Propagation, vol. 57, no. 2, pp. 324–330, Feb. 2009.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/71179-
dc.description.abstract超音波具有良好穿透軟組織的能力,藉由高強度聚焦超音波換能器將聲波的能量匯集在聚焦區內,在短時間內使位於焦區內的組織產生急遽的溫度上升,焦區內的高溫使組織產生凝固性壞死,達到熱消融病變組織的療效,屬於非侵入性的治療。本研究之目的為研發攝護腺腫瘤熱消容灣用之高強度聚焦超音波換能器。
本研究設計兩種幾何形狀的聚焦超音波換能器:橢圓形及長方形。使用套裝軟體MATLAB_2017a模擬換能器的聲場及聚焦區域大小,換能器的初步設計參數為中心頻率3.5 MHz、寬為22 mm、長為45 mm、曲率半徑為45 mm。換能器乃由1-3壓電複合材料所組成,主動材料為壓電陶瓷,被動材料為環氧樹脂。換能器特性化測試結果顯示中心頻率3.3 MHz、頻寬為0.9 MHz、轉換效率為12.45%、寬為25 mm、長為50 mm、曲率半徑為45 mm、聚焦區域大小為2x1.6x4.2mm3。已經藉由溫感水膠燒灼實驗驗證換能器的加熱效果及聚焦特性。
zh_TW
dc.description.abstractUltrasound has a good ability to penetrate soft tissue. High-intensity focused ultrasound (HIFU) transducers are capable of concentrating acoustic power to generate a steep temperature elevation in the focal zone, causing thermally coagulative necrosis of tumor. The purpose of this work was to develop HIFU transducers dedicated for the non-invasive treatment of prostate cancer.
Transducers with elliptic or rectangular aperture were designed in this study. Acoustic fields of transducers were calculated based on Rayleigh-Sommerfeld Diffraction Integral and the size of focal zone was analyzed. MATLAB 2017a (The MathWorks, Inc., Natick, MA) was used in the numerical simulation. The initial design of the transducer was 22 mm in width and 45 mm in height, a radius of curvature of 45 mm, and the center frequency of 3.5 MHz. The transducers were made of 1-3 piezoelectric composites, where PZT 8 was the active material and epoxy was the passive material. The center frequency of the transducer prototype was 3.8 MHz with the -6 dB bandwidth of 0.45 MHz. Moreover, the electro-acoustic efficiency and focal zone were measured to be 12.45% and 2x1.6x4.2 mm3. Experimental results of ablating thermo-sensitive phantoms verified the feasibility of the developed transducer.
en
dc.description.provenanceMade available in DSpace on 2021-06-17T04:57:10Z (GMT). No. of bitstreams: 1
ntu-107-R05548053-1.pdf: 12656563 bytes, checksum: 1e2f9959f0bd19b8e745316753ee996f (MD5)
Previous issue date: 2018
en
dc.description.tableofcontents致謝 1
摘要 2
ABSTRACT 3
目錄 4
圖目錄 6
表目錄 9
緒論 10
1.1 攝護腺組織簡介 10
1.2 攝護腺癌 11
1.3 醫用超音波 13
1.4 攝護腺腫瘤治療之超音波 14
1.5 研究目的 17
第二章 聚焦超音波換能器的設計 19
2.1 壓電效應 19
2.2 壓電材料 21
2.3 壓電材料特性參數 24
2.4 換能器聲場模擬 28
2.4.1 聲波物理特性 28
2.4.2 組織聲學特性 29
2.4.3 雷利-薩瑪菲爾德繞射積分式 30
2.4.4 超音波能量在組織中的吸收 31
2.4.5 聲強度及聚焦區域之模擬 32
第三章 聚焦超音波換能器的製作 35
3.1 換能器製程 35
3.2 阻抗匹配電路 44
3.3 曲率測量 45
第四章 聚焦超音波換能器的特性化測試 47
4.1 聚焦區域測量 47
4.2 電聲轉換效率量測 48
4.3 組織仿體實驗 49
第五章 結果與討論 51
5.1 聲強度及聚焦區域之模擬 51
5.2 換能器聚焦區域量測 59
5.3 曲率測量 61
5.4 長方形換能器聚焦深度量測 62
5.5 轉換效率量測 64
5.6 仿體組織燒灼 65
第六章 結論與未來展望 70
參考文獻 71
dc.language.isozh-TW
dc.subject攝護腺治療zh_TW
dc.subject熱消融zh_TW
dc.subject超音波zh_TW
dc.subject聚焦超音波換能器zh_TW
dc.subject壓電複合材料zh_TW
dc.subjecthigh-intensity focused ultrasound transduceren
dc.subjectultrasounden
dc.subjectablationen
dc.subjectprostate treatmenten
dc.subjectpiezocomposite materialen
dc.title研發應用於攝護腺腫瘤熱消融之聚焦超音波換能器zh_TW
dc.titleDevelpoment of Focused Ultrasound Transducer for Prostate Cancer Ablationen
dc.typeThesis
dc.date.schoolyear106-2
dc.description.degree碩士
dc.contributor.coadvisor陳景欣(Gin-Shin Chen)
dc.contributor.oralexamcommittee陳永耀(Yung-Yaw Chen)
dc.subject.keyword攝護腺治療,超音波,熱消融,壓電複合材料,聚焦超音波換能器,zh_TW
dc.subject.keywordprostate treatment,ultrasound,ablation,piezocomposite material,high-intensity focused ultrasound transducer,en
dc.relation.page74
dc.identifier.doi10.6342/NTU201802017
dc.rights.note有償授權
dc.date.accepted2018-07-27
dc.contributor.author-college工學院zh_TW
dc.contributor.author-dept醫學工程學研究所zh_TW
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