首页> 外文OA文献 >Model za predviđanje bioloških efekata zračenja mobilnih telefona: numerički rezultati apsorbirane energije povezani s realnom strukturom dobivenom metodom MRI
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Model za predviđanje bioloških efekata zračenja mobilnih telefona: numerički rezultati apsorbirane energije povezani s realnom strukturom dobivenom metodom MRI

机译:预测手机辐射的生物效应的模型:通过MRI获得的与真实结构相关的吸收能量的数值结果

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摘要

The nature of an electromagnetic field is not the same outside and inside a biological subject. Numerical bioelectromagnetic simulation methods for penetrating electromagnetic fields facilitate the calculation of field components in biological entities. Calculating energy absorbed from known sources, such as mobile phones when placed near the head, is a prerequisite for studying the biological influence of an electromagnetic field. Such research requires approximate anatomical models which are used to calculate the field components and absorbed energy. In order to explore the biological effects in organs and tissues, it is necessary to establish a relationship between an analogous anatomical model and the real structure. We propose a new approach in exploring biological effects through combining two different techniques: 1) numerical electromagnetic simulation, which is used to calculate the field components in a similar anatomical model and 2) Magnetic Resonance Imaging (MRI), which is used to accurately locate sites with increased absorption. By overlapping images obtained by both methods, we can precisely locate the spots with maximum absorption effects. This way, we can detect the site where the most pronounced biological effects are to be expected. This novel approach successfully overcomes the standard limitations of working with analogous anatomical models.
机译:在生物主体的内部和外部,电磁场的性质是不同的。穿透电磁场的数值生物电磁模拟方法有助于计算生物实体中的场分量。计算从已知来源(如手机)放在头部附近时吸收的能量,是研究电磁场的生物影响的前提。此类研究需要近似的解剖模型,用于计算场分量和吸收的能量。为了探索器官和组织中的生物学作用,有必要在类似的解剖模型和真实结构之间建立关系。我们提出了一种通过结合两种不同技术来探索生物效应的新方法:1)数值电磁模拟,用于计算相似解剖模型中的场分量; 2)磁共振成像(MRI),用于精确定位吸收增加的部位。通过重叠两种方法获得的图像,我们可以精确地定位斑点,从而获得最大的吸收效果。这样,我们可以检测到预期最明显的生物学效应的部位。这种新颖的方法成功克服了使用类似解剖模型的标准限制。

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