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Performance vs. cost analysis: A structured methodology for quantitative design concept selection.

机译:性能与成本分析:一种用于定量设计概念选择的结构化方法。

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摘要

Selection of a design concept is one of the most critical, but the most difficult decision in product development due to the large degrees of uncertainty in the preliminary design phase. Many methodologies attempt to quantitatively identify the most preferred concept; however, the majority are deterministic methodologies that do not analyze uncertainty. Decision Analysis is a probabilistic methodology that model uncertainties relevant to the decision. In product development, Decision Analysis has a significant contribution when setting target requirements and cost of a product that serve as the basis to evaluate design concepts. To integrate Decision Analysis and concept evaluation, the existing quantitative methodologies need modifications.; The author proposes a structured methodology called Performance vs. Cost Analysis (PCA) that integrates the following three steps: (1) Identify customer needs and constraints; (2) Set target requirements and cost using Decision Analysis; (3) Identify the most preferred concept based on target requirements and cost, and the importance of customer needs.; To integrate these steps, the PCA modifies existing tools, and presents new applications using the next generation linear collider currently developed by Stanford Linear Accelerator Center (SLAC) as an illustrative example. In the grouping of customer needs, the PCA compares the groupings by Affinity Diagram and by Subjective Clustering to test if any subjective bias exists in the consensus-based grouping. Decision Analysis identifies the target requirements and the budget that optimize the overall objective of the SLAC that is the realization of the linear collider and its potential for the scientific discovery. For the concept evaluation and selection, first, the PCA decomposes Quality Function Deployment (QFD) for the components of the linear collider and their requirements, and deduces the importance of these components and requirements from the importance of customer needs. Then, the PCA modifies Pugh's rating/weighting method to evaluate design concepts two-dimensionally by their performance relative to the target requirements, and the degrees of satisfying the target cost. This two-dimensional analysis prevents one to accidentally choose a concept with very high performance but unacceptably high cost, or a concept with very low cost but unattractive performance for customers.
机译:设计概念的选择是产品开发中最关键但最困难的决定之一,因为在初步设计阶段存在很大的不确定性。许多方法试图定量地确定最喜欢的概念。但是,大多数是不分析不确定性的确定性方法。决策分析是一种概率方法,可以对与决策相关的不确定性进行建模。在产品开发中,决策分析在设置目标需求和产品成本(作为评估设计概念的基础)时起着重要作用。为了整合决策分析和概念评估,需要对现有的定量方法进行修改。作者提出了一种称为性能与成本分析(PCA)的结构化方法,该方法集成了以下三个步骤:(1)确定客户需求和约束; (2)使用决策分析设定目标需求和成本; (3)根据目标需求和成本以及客户需求的重要性,确定最可取的概念;为了集成这些步骤,PCA修改了现有工具,并以斯坦福线性加速器中心(SLAC)当前开发的下一代线性对撞机为例,介绍了新的应用。在对客户需求进行分组时,PCA将按亲和图和主观聚类比较分组,以测试在基于共识的分组中是否存在任何主观偏见。决策分析确定了优化SLAC总体目标的目标需求和预算,这是线性对撞机的实现及其在科学发现中的潜力。对于概念评估和选择,首先,PCA分解线性对撞机的组件及其需求的质量功能部署(QFD),并从客户需求的重要性推论这些组件和需求的重要性。然后,PCA修改了Pugh的评级/加权方法,以相对于目标要求的性能和满足目标成本的程度对设计概念进行二维评估。这种二维分析可以防止人们意外地选择性能非常高但成本高得不能接受的概念,或者选择成本低但性能不吸引客户的概念。

著录项

  • 作者

    Takai, Shun.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Engineering Mechanical.; Operations Research.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 190 p.
  • 总页数 190
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;运筹学;
  • 关键词

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