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Recent Advances and Future Challenges in Automated Manufacturing Planning

机译:自动化制造计划的最新进展和未来挑战

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摘要

The effective planning of a product's manufacture is critical to both its cost and delivery time. Recognition of this importance has motivated over 30 years of research into automated planning systems and generated a large literature covering many different manufacturing technologies. But complete automation has proved difficult in most manufacturing domains. However, as manufacturing hardware has evolved to become more automated and computer aided design software has been developed to support the creation of complex geometries; planning the physical fabrication of a virtual model is still a task that occupies thousands of engineers around the world, every day. We intend for this paper to be useful to newcomers in this field, who are interested in placing the current state-of-the-art in context and identifying open research problems across a range of manufacturing processes. This paper discusses the capabilities, limitations and challenges of automated planning for four manufacturing technologies: machining, sheet metal bending, injection molding, and mechanical assembly. Rather than presenting an exhaustive survey of research in these areas, we focus on identifying the characteristics of the planning task in different domains, current research directions, and open problems in each area. Our key observations are as following. First, the incorporation of AI techniques, geometric modeling, computational geometry, optimization, and physics-based modeling has led to significant advances in the automated planning area. Second, commercial tools are available to aid the manufacturing planning process in most manufacturing domains. Third, manufacturing planning is computationally challenging and still requires significant human input in most manufacturing domains. Fourth, advancement in several emerging areas has the potential to create, in the near future, a step-change in the capabilities of automated planning systems. Finally, we believe that deploying fully automated planning systems can lead to significant productivity benefits.
机译:产品制造的有效计划对于其成本和交货时间都至关重要。对这种重要性的认识促使人们对自动化计划系统进行了30多年的研究,并产生了涵盖许多不同制造技术的大量文献。但是事实证明,在大多数制造领域,完全自动化是困难的。但是,随着制造硬件的发展变得更加自动化,并且开发了计算机辅助设计软件来支持复杂几何图形的创建。计划虚拟模型的物理制造仍然是一项每天要花费全球数千名工程师的任务。我们希望本文对本领域的新​​手有用,他们有兴趣将当前的最新技术与背景联系起来,并确定各种制造过程中的开放研究问题。本文讨论了四种制造技术的自动化计划的功能,局限性和挑战:机加工,钣金弯曲,注塑成型和机械装配。我们没有对这些领域的研究进行详尽的调查,而是着眼于确定不同领域的规划任务的特征,当前的研究方向以及每个领域的开放性问题。我们的主要观察结果如下。首先,人工智能技术,几何建模,计算几何,优化和基于物理的建模的结合已导致自动化计划领域的重大进步。其次,可使用商业工具来协助大多数制造领域的制造计划过程。第三,制造计划在计算上具有挑战性,并且在大多数制造领域仍然需要大量的人力投入。第四,在几个新兴领域的进步有可能在不久的将来创造自动计划系统功能的逐步变化。最后,我们认为部署全自动计划系统可以带来显着的生产力收益。

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  • 来源
    《Journal of Computing and Information Science in Engineering 》 |2011年第2期| p.021006.1-021006.10| 共10页
  • 作者单位

    Robotics Institute, Carnegie Mellon University, Pittsburgh, PA 15213;

    Department of Design, Manufacture and Engineering Management, University of Strathclyde, Glasgow, G11XJ, United Kingdom;

    Department of Mechanical Engineering and Institute for Systems Research, University of Maryland, College Park, MD 20742;

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