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Intelligent Design Tolerance Allocation for Optimum Adaptability to Manufacturing Using a Monte Carlo Approach

机译:智能设计公差分配,用于使用蒙特卡罗方法制造的最佳适应性

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The quality of a product is affected by the uncertainties associated with the manufacturing processes according to its design specifications including their nominal values and the corresponding tolerances. The allocation of dimensional tolerances of components in a mechanical assembly is a major concern during the design phase of a product due to importance on its functional behavior, cost implication and manufacturing complexity. This task will be more challenging in today’s intelligent manufacturing systems, when the desire is to maximize the adaptabilities in various product life cycle processes to maximize the product quality with a minimum cost. Manufacturing process have shown that the lower manufacturing uncertainty to achieve tighter specified tolerance range, the higher is its cost - generally at an exponential basis. The adequate equilibrium between the desired function characteristics and the manufacturing cost is a fundamental aspect at the design stage of a product, in order to assure its competitiveness - or even its feasibility - in the market. This work intends to present a proposal to increase adaptability of the design specifications with the detected manufacturing uncertainties by developing an intelligent tolerance allocation process. This allows manufacturing cost reduction, easiness of both assembly process and parts, without compromise of the specified mandatory functional features. The proposed methodology use a Monte Carlo simulation for the detected models of the associated manufacturing uncertainties. A implied case study is used to illustrate the effectiveness of the method.
机译:产品的质量受到根据其设计规范的制造过程相关的不确定性的影响,包括其标称值和相应的公差。由于对其功能行为,成本含义和制造复杂性的重要性,机械组件中部件的尺寸公差的分配是产品的设计阶段期间的主要问题。这项任务在当今的智能制造系统中将更具挑战性,当我们的愿望是最大化各种产品生命周期过程中的适应性,以最小的成本最大化产品质量。制造过程表明,制造不确定度较低以实现更严格的特定公差范围,其成本越高 - 一般是指数基础。所需功能特性与制造成本之间的充分平衡是产品的设计阶段的基本方面,以确保其竞争力 - 甚至其可行性 - 在市场上。这项工作旨在提出提出通过开发智能公差分配过程的检测到的制造不确定性来提高设计规范的适应性。这允许制造成本降低,装配过程和零件的容易,而不会妥协指定的强制功能特征。所提出的方法使用Monte Carlo模拟用于检测到的相关制造不确定性的模型。隐含案例研究用于说明该方法的有效性。

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