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Thermophotonic radar and thermal coherence tomographies

机译:蒸发雷达和热相干断层凝视

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Energy transport in diffusion-wave fields is gradient driven and therefore diffuse, yielding depth-integrated responses with poor axial resolution. Traditional diffusion-wave techniques, limited by the physics of parabolic diffusion, can only produce depth-integrated planar images as they are unable to generate three-dimensional subsurface imaging. This talk will present two new imaging methods developed in the CADIFT for enabling parabolic thermal-wave fields to exhibit energy localization akin to propagating hyperbolic wave-fields. This approach when used with a mid-IR camera results in depth-selective (or depth-resolved) photothermal imaging which not only improves axial and depth resolution, but also allows for deconvolution of individual responses of superposed axially discrete sources, opening a new field of subsurface Photothermal Coherence Tomography (PCT) using thermal waves. In this talk I will present two novel thermal-wave imaging methodologies: Matched filter binary phase coded (BPC) PCT and truncated-correlation photothermal coherence tomography (TC-PCT). The physical principles of these methodologies and examples of imaging applications to engineering materials and biomaterials will be discussed.
机译:漫射波场中的能量传输是梯度驱动的,因此漫射,产生具有差的轴向分辨率的深度集成响应。传统的扩散波技术,受抛物面扩散物理的限制,只能产生深度集成的平面图像,因为它们不能产生三维地下成像。此谈话将在Cadift中提出两个新的成像方法,以使抛物线热波场能够表现出类似于传播双曲波场的能量定位。当与中红外相机一起使用时这种方法导致深度选择性(或深度分辨)的光热成像,这不仅可以提高轴向和深度分辨率,而且还允许逐个轴向离散源的个体反应的折应,打开一个新场地下光热相干断层扫描(PCT)使用热波。在此谈话中,我将提出两种新的热波成像方法:匹配的滤波器二进制相位编码(BPC)PCT和截断 - 相关光热相干断层扫描(TC-PCT)。将讨论这些方法的物理原理和工程材料和生物材料的成像应用的例子。

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