论文标题

通过有限元分析对激光 - 脑组织相互作用的研究

Research on the laser-brain tissue interaction by finite element analysis

论文作者

Song, Xianlin, Teng, Ao, Wei, Jianshuang, Song, Lingfang

论文摘要

对激光与脑组织之间相互作用的研究对于脑成像具有重要的理论和实际意义。通过使用商业有限元仿真软件COMSOL多物理学,已经开发了一种基于有限元素的脑组织中光和传热传播的二维模拟模型。在这项研究中,该模型由1)大脑表面的一层水组成,2)脑组织和3)短脉冲激光源(波长为840nm)。激光点源位于脑组织上方水层的中间,并照射脑组织。通过求解扩散方程来模拟脑组织中光的传播。灰质和血管的温度变化是通过求解生物传热方程来实现的。仿真结果表明,随着穿透深度的增加,脑组织中的光能呈指数降低。由于与周围的组织相比,脑血管在光中具有更强的吸收,因此大脑皮层中血管的剩余光能量约为周围灰质中剩余的光能的85.8%。在生物传热的过程中,由于血管中的光沉积更多,血管的​​温度比灰质的温度高0.15 k,灰质的温度几乎不会变化。这项研究有助于了解大脑中光及其之间的相互作用的传播,并且具有某些理论指导,以对大脑的光学成像进行指导。

The study of the interaction between laser and brain tissue has important theoretical and practical significance for brain imaging. A two-dimensional simulation model that studies the propagation of light and heat transfer in brain tissue based on finite element has been developed by using the commercial finite element simulation software COMSOL Multiphysics. In this study, the model consists of three parts of 1) a layer of water on the surface of the brain, 2) brain tissue and 3) short pulsed laser source (the wavelength is 840nm). The laser point source is located in the middle of the layer of water above the brain tissue and irradiates the brain tissue. The propagation of light in brain tissue was simulated by solving the diffusion equation. And the temperature changes of gray matter and blood vessels were achieved by solving the biological heat transfer equation. The simulation results show that the light energy in the brain tissue decreases exponentially with the increase of penetration depth. Since the cerebral blood vessels have a stronger absorption on light compared with the surrounding tissues, the remaining light energy of the blood vessels in the cerebral cortex is ~ 85.8% of the remaining light energy in the surrounding gray matter. In the process of biological heat transfer, due to more light deposition in blood vessels, the temperature of blood vessels is 0.15 K higher than that of gray matter, and the temperature of gray matter hardly changes. This research is helpful to understand the propagation of light in the brain and the interaction between them, and has certain theoretical guiding for the optical imaging of the brain.

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