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首页> 外文期刊>Journal of Manufacturing and Materials Processing >Automated Unsupervised 3D Tool-Path Generation Using Stacked 2D Image Processing Technique
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Automated Unsupervised 3D Tool-Path Generation Using Stacked 2D Image Processing Technique

机译:使用堆叠式2D图像处理技术自动生成无监督3D工具路径

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Tool-path, feed-rate, and depth-of-cut of a tool determine the machining time, tool wear, power consumption, and realization costs. Before the commissioning and production, a preliminary phase of failure-mode identification and effect analysis allows for selecting the optimal machining parameters for cutting, which, in turn, reduces machinery faults, production errors and, ultimately, decreases costs. For this, scalable high-precision path generation algorithms requiring a low amount of computation might be advisable. The present work provides such a simplified scalable computationally low-intensive technique for tool-path generation. From a three dimensional (3D) digital model, the presented algorithm extracts multiple two dimensional (2D) layers. Depending on the required resolution, each layer is converted to a spatial image, and an algebraic analytic closed-form solution provides a geometrical tool path in Cartesian coordinates. The produced tool paths are stacked after processing all object layers. Finally, the generated tool path is translated into a machine code using a G-code generator algorithm. The introduced technique was implemented and simulated using MATLAB? pseudocode with a G-code interpreter and a simulator. The results showed that the proposed technique produced an automated unsupervised reliable tool-path-generator algorithm and reduced tool wear and costs, by allowing the selection of the tool depth-of-cut as an input.
机译:刀具的刀具路径,进给速率和切削深度决定了加工时间,刀具磨损,功耗和实现成本。在调试和生产之前,故障模式识别和效果分析的初步阶段可以选择最佳的切削加工参数,从而减少机械故障,生产错误,并最终降低成本。为此,可能需要低计算量的可伸缩高精度路径生成算法。本工作为工具路径生成提供了这样一种简化的可扩展的计算量低的技术。该算法从三维(3D)数字模型中提取多个二维(2D)层。根据所需的分辨率,每一层都将转换为空间图像,并且代数解析闭合形式解决方案提供了笛卡尔坐标中的几何刀具路径。处理完所有对象层后,将堆叠产生的刀具路径。最后,使用G代码生成器算法将生成的刀具路径转换为机器代码。引入的技术是使用MATLAB实现和仿真的?具有G代码解释器和模拟器的伪代码。结果表明,通过允许选择切削深度作为输入,所提出的技术产生了一种自动化的无监督可靠的刀具路径生成器算法,并降低了刀具磨损和成本。

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