Study of the features of permanent and usual reverse-engineering methods of details of complex shapes

Kateryna Maiorova, Oleksandra Kapinus, Oleksandr Skyba
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Abstract

The subject of the study is sustainable reverse engineering and conventional reverse engineering of aviation equipment (AE) samples. The object of the study is the geometric accuracy of the extracted portrait of a part of a complex shape in comparison with the constructed analytical standard (AS). The work is aimed at researching the methods of sustainable reverse engineering and conventional reverse engineering on the example of the digitization of the box of the AE steering machine, chosen as a part of a complex shape. For this, a portrait of the "*.stl" and AS format file was created and compared by performing a control operation with the determination of the time spent. A structural and technological analysis of the box of the AE steering machine was carried out, which showed that the box has through holes of various diameters (from 10 to 41.6 mm) and shapes (square, trapezoidal, round); thin walls between holes (up to 1.6 mm); right angles and their rounding radii (up to 1–4 mm); the thickness of the body walls is 2.4 mm, etc. 3D scanner – ARTEC SPACE SPIDER (Luxembourg) was selected and scanning was performed. According to the analysis of research methods of reverse engineering, it was established that the use of permanent and conventional reverse engineering allows, in the first case, to quickly manufacture a part by 3D printing or milling on CNC machines, and in the second case, to create its AS with the provision of the specified geometric accuracy. The difference in time between permanent and normal reverse engineering was 8 hours in favor of the former. Control of the ideal portrait according to the AS of the AE steering machine body showed the maximum deviations from –0.30 mm to +0.23 mm and the minimum deviations from –0.04 mm to +0.08 mm. The smallest indicators were observed on vertical and horizontal planes, and the largest - in cities with plane slopes, corners and small radii. This made it possible to establish that the existing capabilities of the Geomagic Design X software for correcting the received portrait of the "*.stl" format file currently do not guarantee the provision of geometric accuracy requirements (up to ±0.5 mm) for the manufacture of an experimental part of a complex shape – the AE steering machine body with 3D printing. The resulting ideal portrait can be used to manufacture a part by milling on CNC machines, taking into account deviations at the stage of process model formation, which can become the topic of further research.
研究复杂形状细节的永久性特征和常用逆向工程方法
研究主题是航空设备 (AE) 样品的可持续逆向工程和传统逆向工程。研究对象是将提取的复杂形状部件肖像的几何精度与构建的分析标准(AS)进行比较。这项工作旨在研究可持续逆向工程和传统逆向工程的方法,以 AE 转向器箱体的数字化为例,该箱体被选为复杂形状的一部分。为此,创建了 "*.stl "和 AS 格式文件的肖像,并通过确定所花费时间的控制操作进行比较。对 AE 转向机箱体进行的结构和技术分析表明,箱体上有不同直径(从 10 毫米到 41.6 毫米)和形状(方形、梯形、圆形)的通孔;孔与孔之间的薄壁(最大 1.6 毫米);直角及其圆角半径(最大 1-4 毫米);箱体壁厚为 2.4 毫米等。选择了三维扫描仪 - ARTEC SPACE SPIDER(卢森堡)并进行了扫描。根据对逆向工程研究方法的分析,可以确定,在第一种情况下,使用永久逆向工程和常规逆向工程可以通过三维打印或在数控机床上铣削快速制造零件,在第二种情况下,可以在规定的几何精度下创建其 AS。永久性逆向工程与普通逆向工程的时间差为 8 小时,前者更胜一筹。根据 AE 转向机机身的 AS 对理想肖像的控制显示,最大偏差为 -0.30 毫米至 +0.23 毫米,最小偏差为 -0.04 毫米至 +0.08 毫米。在垂直和水平面观察到的指标最小,而在有平面斜坡、拐角和小半径的城市观察到的指标最大。由此可以确定,Geomagic Design X 软件现有的校正接收到的 "*.stl "格式文件肖像的功能,目前还不能保证为制造复杂形状的实验部件--3D 打印 AE 转向机体--提供几何精度要求(最多±0.5 毫米)。所生成的理想肖像可用于在数控机床上铣削制造零件,同时考虑到工艺模型形成阶段的偏差,这可能成为进一步研究的主题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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