Development of Advanced FEM Simulation Technology for Pre-Operative Surgical Planning

Zhanyue Zhao, Yiwei Jiang, Charles Bales, Yang Wang, Gregory Fischer
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Abstract

Intracorporeal needle-based therapeutic ultrasound (NBTU) offers a minimally invasive approach for the thermal ablation of malignant brain tumors, including both primary and metastatic cancers. NBTU utilizes a high-frequency alternating electric field to excite a piezoelectric transducer, generating acoustic waves that cause localized heating and tumor cell ablation, and it provides a more precise ablation by delivering lower acoustic power doses directly to targeted tumors while sparing surrounding healthy tissue. Building on our previous work, this study introduces a database for optimizing pre-operative surgical planning by simulating ablation effects in varied tissue environments and develops an extended simulation model incorporating various tumor types and sizes to evaluate thermal damage under trans-tissue conditions. A comprehensive database is created from these simulations, detailing critical parameters such as CEM43 isodose maps, temperature changes, thermal dose areas, and maximum ablation distances for four directional probes. This database serves as a valuable resource for future studies, aiding in complex trajectory planning and parameter optimization for NBTU procedures. Moreover, a novel probe selection method is proposed to enhance pre-surgical planning, providing a strategic approach to selecting probes that maximize therapeutic efficiency and minimize ablation time. By avoiding unnecessary thermal propagation and optimizing probe angles, this method has the potential to improve patient outcomes and streamline surgical procedures. Overall, the findings of this study contribute significantly to the field of NBTU, offering a robust framework for enhancing treatment precision and efficacy in clinical settings.
开发用于术前手术规划的先进有限元模拟技术
体腔内针基治疗超声(NBTU)为恶性脑肿瘤(包括原发性和转移性癌症)的热消融提供了一种微创方法。NBTU 利用高频交变电场激发压电换能器,产生声波,导致局部加热和肿瘤细胞消融,并通过将较低的声功率剂量直接输送到目标肿瘤而不损伤周围健康组织,从而提供更精确的消融。在我们之前工作的基础上,本研究通过模拟不同组织环境中的消融效果,引入了一个用于优化术前手术规划的数据库,并开发了一个包含各种肿瘤类型和大小的扩展模拟模型,以评估跨组织条件下的热损伤。通过这些模拟创建了一个综合数据库,详细记录了四个方向探头的关键参数,如 CEM43isodose 地图、温度变化、热剂量区域和最大消融距离。该数据库是未来研究的宝贵资源,有助于复杂的轨迹规划和 NBTU 程序的参数优化。此外,还提出了一种新的探针选择方法来加强手术前规划,提供了一种选择探针的战略方法,从而最大限度地提高治疗效率并缩短消融时间。通过避免不必要的热传播和优化探头角度,这种方法有望改善患者的治疗效果并简化手术过程。总之,这项研究的发现为 NBTU 领域做出了重大贡献,为提高临床治疗的精确性和有效性提供了一个强大的框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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