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Polishing tool and the resulting TIF for three variable machine parameters as input for the removal simulation

机译:抛光工具和由此产生的TIF用于三个可变机器参数作为拆卸仿真的输入

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The trend in the optic industry shows, that it is increasingly important to be able to manufacture complex lens geometries on a high level of precision. Prom a certain limit on the required shape accuracy of optical workpieces, the processing is changed from the two-dimensional to point-shaped processing. It is very important that the process is as stable as possible during the in point-shaped processing. To ensure stability, usually only one process parameter is varied during processing. It is common that this parameter is the feed rate, which corresponds to the dwell time. In the research project ArenA-FOi (Application-oriented analysis of resource-saving and energy-efficient design of industrial facilities for the optical industry), a touching procedure is used in the point-attack, and in this case a close look is made as to whether a change of several process parameters is meaningful during a processing. The ADAPT tool in size R20 from Satisloh AG is used, which is also available for purchase. The behavior of the tool is tested under constant conditions in the MCP 250 CNC by OptoTech GmbH. A series of experiments should enable the TIF (tool influence function) to be determined using three variable parameters. Furthermore, the maximum error frequency that can be processed is calculated as an example for one parameter set and serves as an outlook for further investigations. The test results serve as the basic for the later removal simulation, which must be able to deal with a variable TIF. This topic has already been successfully implemented in another research project of the Institute for Precision Manufacturing and High-Frequency Technology (IPH) and thus this algorithm can be used. The next step is the useful implementation of the collected knowledge. The TIF must be selected on the basis of the measured data. It is important to know the error frequencies to select the optimal TIF. Thus, it is possible to compare the simulated results with real measurement data and to carry out a revision. From this point onwards, it is possible to evaluate the potential of this approach, and in the ideal case it will be further researched and later found in the production.
机译:光学行业的趋势表明,能够在高精度的精度下制造复杂的透镜几何形状越来越重要。 PROM对光学工件所需的形状精度的一定限制,处理从二维到点状处理改变。在点状处理期间,该过程尽可能稳定。为了确保稳定性,通常在处理期间只有一个过程参数。很常见的是,该参数是进料速率,其对应于停留时间。在研究项目竞技场 - FOI(用于光学行业的工业设施的资源节能和节能设计的应用型节能和节能设计),在点攻击中使用了一种触摸程序,在这种情况下,制造了近似的外观关于在处理期间,多个进程参数的变化是否有意义。使用来自SatislOH AG的调整工具R20的尺寸R20,也可供购买。通过Optotech GmbH在MCP 250 CNC中的恒定条件下测试该工具的行为。一系列实验应使得使用三个可变参数来确定TIF(刀具影响功能)。此外,可以将可以处理的最大误差频率计算为一个参数集的示例,并用作进一步调查的前景。测试结果用作后续拆卸仿真的基本,必须能够处理变量TIF。本主题已经成功在精密制造和高频技术(IPH)的另一个研究项目中实施,因此可以使用该算法。下一步是收集知识的有用实施。必须基于测量数据选择TIF。要知道错误频率以选择最佳TIF非常重要。因此,可以将模拟结果与真实测量数据进行比较并进行修订。从这一点开始,可以评估这种方法的潜力,并且在理想情况下,它将进一步研究,后来在生产中找到。

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