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Confocal acoustic holography for noninvasive three-dimensional temperature and composition measurement.

机译:共聚焦声全息术,用于无创三维温度和成分测量。

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摘要

This thesis summarizes my work at the University of Victoria to design and evaluate a proof-of-concept instrument called the Confocal Acoustic Holography Microscope (CAHM). The instrument will be able to measure small changes in temperature and composition in a fluid specimen, which can be indirectly measured via small fluctuations in the speed of sound. The CAHM combines concepts of confocal microscopy, interferometry, and ultrasonic imaging. This recent work in confocal acoustic holography has progressed from our previous research in confocal laser holography.; The prototype CAHM design uses a frequency of 2.25 MHz, and can measure sound speed changes of 16 m/s, temperature changes of 5°C, with a spatial resolution of 660 mum. With future improvements to the CAHM, utilizing the latest technologies such as 2D array detectors, MEMS, and acoustic lenses, we expect resolutions of 1 m/s, 0.5°C, and 150 mum. The design of the CAHM involved the production of a 3D CAD layout of the optomechanical components and ray tracing simulations using Zemax optical design software. Simulated acoustic holograms and fringe shifts were produced and they were found to match up very well with theoretical calculations.; A simplified acoustic holography instrument was built and tested. Speed of sound measurements were made for several test specimens, while keeping temperature constant. Specimens of ethanol, isopropanol, acetic acid, glycerine, and mineral oil were measured. Holograms were collected for acetic acid and mineral oil and were compared to the reference case (distilled water). The fringe spacing and phase shifts measured experimentally matched up well with the Zemax simulations and the theoretical calculations. Hence, the popular Zemax optical software can be effectively used to design acoustic instruments. To our knowledge, this is the first use of Zemax for acoustic designs.; Based on the successful results of the simulations and experiments, the CAHM is expected to have many useful applications, especially in medical diagnostics where it could be used to measure density and temperature within the human body. Phase contrast images could also be used to help identify suspicious lesions, such as those found in prostate or breast tissue. Other applications include non-destructive testing of electronic and mechanical parts, measurements of fluid samples, material science experiments, and microgravity experiments, where non-invasive examination is required.
机译:本文总结了我在维多利亚大学设计和评估概念验证仪器共聚焦声全息显微镜(CAHM)的工作。该仪器将能够测量流体样本中温度和成分的细微变化,而这些变化可以通过声速的细微波动间接测量。 CAHM结合了共聚焦显微镜,干涉仪和超声成像的概念。共聚焦声全息的最新工作是从我们先前对共聚焦激光全息的研究中获得的。 CAHM的原型设计使用2.25 MHz的频率,可以测量16 m / s的声速变化,5°C的温度变化以及660 mum的空间分辨率。随着CAHM未来的改进,利用2D阵列检测器,MEMS和声学透镜等最新技术,我们期望分辨率为1 m / s,0.5°C和150 mum。 CAHM的设计涉及到使用Zemax光学设计软件制作光机械组件的3D CAD布局以及进行射线追踪模拟。产生了模拟的声全息图和条纹位移,发现它们与理论计算非常吻合。简化的声学全息仪器已构建并经过测试。在保持温度恒定的同时,对几个试样进行了声速测量。测量了乙醇,异丙醇,乙酸,甘油和矿物油的样品。收集乙酸和矿物油的全息图,并与参考例(蒸馏水)进行比较。实验测量的条纹间距和相移与Zemax模拟和理论计算非常吻合。因此,流行的Zemax光学软件可以有效地用于设计声学仪器。据我们所知,这是Zemax在声学设计中的首次使用。基于仿真和实验的成功结果,预计CAHM具有许多有用的应用,特别是在医学诊断中,可用于测量人体密度和温度。相衬图像还可用于帮助识别可疑病变,例如在前列腺或乳腺组织中发现的那些。其他应用包括需要进行非侵入性检查的电子和机械零件的无损检测,流体样品的测量,材料科学实验以及微重力实验。

著录项

  • 作者

    Atalick, Stefan.;

  • 作者单位

    University of Victoria (Canada).;

  • 授予单位 University of Victoria (Canada).;
  • 学科 Engineering Mechanical.; Physics Acoustics.
  • 学位 M.A.Sc.
  • 年度 2007
  • 页码 116 p.
  • 总页数 116
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;声学;
  • 关键词

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