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Assembly synthesis with subassembly partitioning for optimal in-process dimensional adjustability

机译:具有子装配分区的装配综合功能,可实现最佳的工艺尺寸可调性

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Achieving the dimensional integrity for a complex structural assembly is a demanding task due to the manufacturing variations of parts and the tolerance relationship between them. Although assigning tight tolerances to all parts would solve the problem, an economical solution is taking advantage of small motions that joints allow, such that critical dimensions are adjusted during assembly processes. This paper presents a systematic method that decomposes product geometry at an early stage of design, selects joint types, and generates subassembly partitioning to achieve the adjustment of the critical dimensions during assembly processes. A genetic algorithm generates candidate assemblies based on a joint library specific for an application domain. Each candidate assembly is evaluated by an internal optimization routine that computes the subassembly partitioning for optimal in-process adjustability, by finding a series of minimum cuts on weighted graphs. A case study on a three-dimensional automotive space frame with the accompanying joint library is presented.
机译:由于零件的制造变化及其之间的公差关系,实现复杂的结构组件的尺寸完整性是一项艰巨的任务。尽管为所有零件分配严格的公差将解决该问题,但是一种经济的解决方案是利用接头允许的微小运动,从而在组装过程中调整关键尺寸。本文提出了一种系统的方法,该方法可以在设计的早期阶段分解产品的几何形状,选择接头类型,并生成子装配分区,以实现装配过程中关键尺寸的调整。遗传算法基于特定于应用程序域的联合库生成候选程序集。每个候选组件均由内部优化例程进行评估,该例程会通过在加权图上找到一系列最小削减来计算子组件分区,以实现最佳的过程内可调整性。提出了带有随附联合库的三维汽车空间框架的案例研究。

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