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Design and optimization under uncertainty in sheet metal forming processes constrained with failure analysis.

机译:钣金成形过程中不确定性下的设计和优化受失效分析的约束。

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摘要

In manufacturing environments, uncertainties associated with metal forming processes have presented significant challenges in quality management. To address these challenges, this research aims to establish a framework for robust design of complex engineering systems (e.g., sheet metal forming processes). As demonstrated in this work, uncertainties from process parameters and material properties can make an optimal design determined by a deterministic approach infeasible or too risky. In design under uncertainty, one of bottlenecks is the computational method for estimating system variations. Since most of engineering problems are characterized by mean and variance, a weighted three-point-based method is proposed. This method yields a set of optimal sampling locations and their associated weights for a given type of distributions. Using this method, the average accuracy of prediction was approximately 98% for various functions. It was demonstrated that the computational effort is a fraction of what needed in traditional methods that achieve the same level of accuracy. The method was then integrated with the design and optimization approach for designing sheet metal forming processes. To accomplish this objective, a nonlinear explicit finite element method was used as an important tool for analyzing stress and strain in stamping processes. This research proposes a new effective analytical method for calculating springback of a straight flanging process, and further utilizes the stress-based tearing criterion and energy-based wrinkling criterion to quantify margins of tearing and wrinkling.; Through the integration of these features, the current research establishes a framework for design under uncertainty in sheet metal forming. The robust design model takes into account producibility requirements through failure analysis and uncertainties from forming conditions and material properties. The approach was demonstrated through a demonstration example of a wheelhouse stamping process used in automobile industry. In addition, model validation approaches taking uncertainty into account are demonstrated in a simulation of a sample flanging process. Overall, this research presents the methodology and feasibility of implementing the framework for design and optimization under uncertainty, which can certainly be generalized for other industrial cases.
机译:在制造环境中,与金属成型工艺相关的不确定性在质量管理方面提出了重大挑战。为了应对这些挑战,本研究旨在为复杂工程系统(例如钣金成型工艺)的稳健设计建立一个框架。如这项工作所示,工艺参数和材料特性的不确定性会使采用确定性方法确定的最佳设计不可行或风险太大。在不确定性下的设计中,瓶颈之一是估算系统变化的计算方法。由于大多数工程问题都具有均值和方差特征,因此提出了一种基于三点加权的方法。对于给定的分布类型,此方法产生一组最佳采样位置及其相关权重。使用这种方法,各种功能的平均预测准确率约为98%。结果表明,计算工作量是达到相同精度水平的传统方法所需要的一小部分。然后将该方法与用于设计钣金成形工艺的设计和优化方法集成在一起。为了实现这一目标,非线性显式有限元方法被用作分析冲压过程中应力和应变的重要工具。本研究提出了一种新的有效方法来计算直边翻边过程的回弹,并进一步利用基于应力的撕裂准则和基于能量的起皱准则来量化撕裂和起皱的余量。通过集成这些功能,当前的研究建立了钣金成形不确定性下的设计框架。稳健的设计模型通过故障分析以及成型条件和材料性能的不确定性考虑了可生产性要求。通过汽车工业中使用的驾驶室冲压工艺的演示示例演示了该方法。此外,在样品翻边过程的仿真中演示了考虑到不确定性的模型验证方法。总体而言,这项研究提出了在不确定性下实施设计和优化框架的方法论和可行性,当然可以将其推广到其他工业案例。

著录项

  • 作者

    Buranathiti, Thaweepat.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 219 p.
  • 总页数 219
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

  • 入库时间 2022-08-17 11:42:41

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