一个扩展的多驱动优化可重构自由曲面(e-MORFS)模具的目标可变性能力

Kunlin Yang, Rui Chen, Zeeshan Qaiser, Shane Johnson
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引用次数: 0

摘要

自由曲面的定制制造,如汽车的钣金部件,或飞机的车身面板和复合部件,由于以下因素,对传统的专用制造系统(dms)提出了重大挑战:(1)大规模定制,(2)快速原型,(3)时间和人员成本,以及(4)系统复杂性。通常,柔性制造系统(fms)和可重构制造系统(RMSs)是为设计参数的固定和高可变性而设计的,从而导致系统的高复杂性。这些设计方法有很多机会源于一些限制,包括:(1)缺乏对高可变性产品的特征分析,(2)高系统复杂性,(3)制造高曲率表面的能力降低,和/或(4)低可重复性。扩展的多驱动优化可重构自由曲面(e-MORFS)模具是针对自由曲面的大规模生产的目标应用而开发的,例如定制足矫形器(cfo)。e-MORFS模具旨在实现以下目标:(1)实现具有大量人口的复杂产品的尺寸和形状可变性;(2)考虑产品特性降低系统复杂性;(3)通过适当的边界条件(bc)实现高曲率表面重构,以避免起皱和拉伸。e-MORFS模具仅用6个致动器即可实现整个人口的最大误差范围为0.3-0.5mm。本研究提供了e-MORFS模具和设计算法,有可能用于自由曲面制造的目标应用,例如cfo。这些设计方法可以指导应用中自由曲面制造的设计,例如汽车、航空航天、生物力学和建筑。
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An Extended Multi-Actuated Optimized Reconfigurable Freeform Surface (e-MORFS) Mold With Targeted Variability Capacity
Custom manufacturing of freeform surfaces, such as that of sheet metal components for automobiles, or the body panels and the composite parts of aircraft provides major challenges for traditional dedicated manufacturing systems (DMSs) due to the following factors: (1) mass customization, (2) rapid prototyping, (3) time and personnel cost, and (4) system complexity. Typically, flexible manufacturing systems (FMSs) and reconfigurable manufacturing systems (RMSs) are designed for fixed and high variability in the design parameters resulting in high system complexity. These design methodologies have many opportunities stemming from some limitations including: (1) lacking feature analysis of high variability products, (2) high system complexity, (3) reduced capacity for manufacturing of high curvature surfaces, and/or (4) low repeatability. An extended Multi-actuated Optimized Reconfigurable Freeform Surface (e-MORFS) mold is developed for a targeted application for the mass production of the freeform surfaces, e.g. custom foot orthoses (CFOs). The e-MORFS mold aims at the following goals: (1) to achieve size and shape variability for a complex product with a large population, (2) to reduce system complexity considering product features, and (3) to achieve high curvature surface reconstruction with proper boundary conditions (BCs) to avoid wrinkling and stretching. The e-MORFS mold achieves the maximum error range of 0.3–0.5mm for the whole population with only 6 actuators. This study provides the e-MORFS mold and design algorithm potentially used for targeted application of freeform surface manufacturing, e.g. CFOs. These design methodologies may guide designs of freeform surface manufacturing in applications, e.g. automobile, aerospace, biomechanics, and architecture.
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