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Design optimization of radiant enclosures.

机译:辐射防护罩的设计优化。

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摘要

Design problems involving radiant enclosures are encountered in many different industrial applications. Examples include the design of annealing furnaces used in materials processing, ovens that bake food or cure coated surfaces, and rapid-thermal-processing chambers used to manufacture semiconductor wafers.; In each of these applications, the objective of the design problems is to find the enclosure geometry and heater settings that produce the desired temperature and heat flux distribution over the product. Traditionally, this has been done using a forward “trial-and-error” design methodology, which is a time-consuming process that results in a solution of limited quality. More recently, inverse design methodologies have been developed that require far less time than the forward methodology, and produce solutions that better satisfy the desired conditions over the product surface. It is difficult to enforce design constraints, however, which often limits the usefulness and applicability of solutions obtained by this approach.; This dissertation describes several optimization methodologies that can be used to solve several types radiant enclosure design problems. In this approach, an objective function is first defined that quantifies the “goodness” of a particular design, in such a way that its minimum corresponds with the ideal design outcome. The objective function is dependent on a set of design parameters that control the enclosure configuration. Once this is done, the optimal set of design parameters is found by minimizing the objective function through nonlinear programming. Far less design time is required compared to the forward methodology, and the final solution is near-optimal. Furthermore, unlike the inverse methodology, it is possible to implement constraints by restricting the domain of the design parameters, which ensures that the solution can be easily implemented in a practical setting. Design methodologies are presented for design the heater settings and geometry of both diffuse-walled enclosures and enclosures containing surfaces with directionally dependent properties, and for solving the heater settings in problems involving transient and multimode heat transfer effects.
机译:在许多不同的工业应用中都会遇到涉及辐射外壳的设计问题。例子包括材料处理中使用的退火炉,烘烤食物或固化涂层表面的烤箱以及用于制造半导体晶片的快速热处理室。在上述每种应用中,设计问题的目的是找到能在产品上产生所需温度和热通量分布的外壳几何形状和加热器设置。传统上,这是使用向前的“试错法”设计方法完成的,这是一个耗时的过程,导致解决方案质量有限。最近,已经开发了逆设计方法,该方法所需的时间比正向方法少得多,并且产生的解决方案可以更好地满足产品表面上的所需条件。但是,很难执行设计约束,这通常会限制通过这种方法获得的解决方案的实用性和适用性。本文介绍了几种可用于解决几种类型的辐射罩设计问题的优化方法。在这种方法中,首先定义一个目标函数,以最小化其与理想设计结果相对应的方式量化特定设计的“优”。目标功能取决于控制机柜配置的一组设计参数。一旦完成,就可以通过非线性编程将目标函数降至最低,从而找到最佳的设计参数集。与正向方法相比,所需的设计时间少得多,并且最终解决方案几乎是最佳的。此外,与逆方法不同,可以通过限制设计参数的范围来实现约束,从而确保可以在实际设置中轻松实现解决方案。提出了设计方法,用于设计扩散壁外壳和包含具有方向相关特性的表面的外壳的加热器设置和几何形状,以及解决涉及瞬态和多模传热效应的加热器设置。

著录项

  • 作者

    Daun, Kyle James.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 279 p.
  • 总页数 279
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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