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Modeling of the inverse heat-conduction problem with application to laser chemical vapor deposition and bioheat transfer.

机译:逆导热问题的建模及其在激光化学气相沉积和生物热传递中的应用。

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摘要

This dissertation consists of two parts. Part one deals with three-dimensional laser induced chemical vapor deposition (3D-LCVD), whereas part two deals with a Pennes model of a 3D skin structure. LCVD is an important technique in manufacturing complex micro-structures with high aspect ratio. In part one, a numerical model was developed for simulating kinetically-limited growth of an axisymmetric cylindrical rod by pre-specifying the surface temperature distribution required for growing the rod and then by obtaining optimized laser power that gives rise to the pre-specified temperature distribution. The temperature distribution at the surface of the rod was assumed to be at the unsteady state, and a least squares method was implemented to obtain the optimized laser power by minimizing the deviation between the calculated temperature distribution and the pre-specified temperature distribution. Results from this model were compared with results from Chen's[29] model, which assumed that the temperature distribution at the surface of the rod was at steady state. Also, two different mesh sizes were used in these models to measure the effects of mesh size on the final results.; Investigations on instantaneous skin burn are useful for an accurate assessment of burn-evaluation and for establishing thermal protections for various purposes. The Pennes' bioheat model is a widely used model for predicting the degree of skin burn. In part two, a domain decomposition method was developed for solving a 3D Pennes' bioheat transfer equation in a triple-layered skin structure. The Pennes' bioheat transfer equation was discretized by the Crank-Nicholson scheme. A least squares method was incorporated in the model so that one could calculate the required laser power for the skin structure to reach a pre-specified temperature at a pre-specified location after a pre-specified laser exposure time. Numerical results of this model were obtained and discussed.
机译:本文由两部分组成。第一部分处理三维激光诱导化学气相沉积(3D-LCVD),而第二部分处理3D皮肤结构的Pennes模型。 LCVD是制造高纵横比的复杂微结构的重要技术。在第一部分中,开发了一个数值模型,用于模拟轴对称圆柱棒的动力学受限增长,方法是预先指定增长棒所需的表面温度分布,然后获得产生预定温度分布的最佳激光功率。假定棒表面的温度分布处于不稳定状态,并采用最小二乘法通过最小化计算出的温度分布与预定温度分布之间的偏差来获得最佳激光功率。将该模型的结果与Chen's [29] 模型的结果进行比较,后者假定棒表面的温度分布处于稳态。同样,在这些模型中使用了两种不同的网格尺寸来测量网格尺寸对最终结果的影响。对瞬时皮肤烧伤的研究对于准确评估烧伤评估和建立用于各种目的的热防护很有用。 Pennes的生物热模型是一种广泛用于预测皮肤灼伤程度的模型。在第二部分中,开发了一种域分解方法,用于求解三层皮肤结构中的3D Pennes生物传热方程。 Pennes的生物热传递方程通过Crank-Nicholson方案离散化。在模型中采用了最小二乘法,以便可以计算出在预定的激光暴露时间后,皮肤结构在预定位置达到预定温度所需的激光功率。获得并讨论了该模型的数值结果。

著录项

  • 作者

    Zhen, Peng.;

  • 作者单位

    Louisiana Tech University.;

  • 授予单位 Louisiana Tech University.;
  • 学科 Mathematics.; Computer Science.; Biophysics General.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 113 p.
  • 总页数 113
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 数学;自动化技术、计算机技术;生物物理学;
  • 关键词

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