【24h】

Optical-thermal model verification by high-speed optical coherence tomography

机译:高速光学相干层析成像技术对光热模型的验证

获取原文
获取原文并翻译 | 示例

摘要

Optical-thermal models that can accurately predict temperature rise and damage in blood vessels and surrounding tissue may be used to improve the treatment of vascular disorders. Verification of these models has been hampered by the lack of time- and depth-resolved experimental data, in vitro and in vivo studies were performed to visualize laser irradiation of blood in cuvettes or cutaneous (hamster dorsal skin flap) blood vessels. Two optical coherence tomography systems, one operating at 400 a-scans per second and the other at 4-30 frames per second, were used. For the in vitro study, a frequency doubled Nd:YAG laser was used (532 nm, 10 ms pulse duration, 2 mm spot size, 10 J/cm~2 radiant exposure), in vivo, an Argon laser was employed (all lines, 0.1-2.0 s pulse duration, 0.1-1.0 mm spot size, 100-400 mW power. Video microscopy images were obtained before and after in vivo irradiations. Time-resolved optical coherence tomography and still images were compared to predictions of temperature rise and damage using Monte Carlo and finite difference techniques. In general, predicted damage agreed with actual blood, blood vessel, and surrounding tissue coagulation seen in images. However, limitations of current optical-thermal models were identified, such as the inability to model the dynamic changes in blood optical properties and vessel diameters that were seen in the optical coherence tomography images.
机译:可以准确预测血管和周围组织的温度升高和损伤的光学热模型可用于改善血管疾病的治疗。这些模型的验证因缺乏时间和深度解析的实验数据而受阻,进行了体外和体内研究以可视化比色皿或皮肤(仓鼠背部皮肤皮瓣)血管中血液的激光照射。使用了两个光学相干断层扫描系统,一个以每秒400次A扫描的速度运行,另一个以每秒4-30帧的速度运行。在体外研究中,使用了倍频的Nd:YAG激光(532 nm,10 ms脉冲持续时间,2 mm的光斑尺寸,10 J / cm〜2辐射暴露),在体内,使用了Argon激光(所有行,0.1-2.0 s的脉冲持续时间,0.1-1.0 mm的光斑大小,100-400 mW的功率。在体内照射前后获得视频显微镜图像,将时间分辨光学相干断层扫描和静止图像与温度升高和使用蒙特卡洛(Monte Carlo)和有限差分技术进行损伤修复。通常,预测的损伤与图像中的实际血液,血管和周围组织的凝结相吻合,但是,目前的光学热模型存在局限性,例如无法对动态模型进行建模在光学相干断层扫描图像中看到的血液光学特性和血管直径的变化。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号