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The DTAS Python script automates custom measurements, overcoming software limitations to enable full freedom in modeling! Abstract: Tolerance analysis software, dimension chain calculation, dimensional tolerance analysis, tolerance simulation analysis, dimensional engineering, dimension chain verification——Dituo (Shanghai) Technology Development Co., Ltd. In the previous installment, we conducted an in-depth discussion on using DTAS Python scripts for automated modeling to address the \"two major problems\" in the field of modeling: high repetition and high time consumption. DTAS allows users to write Python scripts freely to develop virtual assembly and virtual measurement solutions for their specific applications, thereby freeing them from the tedious task of repeated modeling. This not only significantly improves modeling efficiency but also enables the reuse of these scripts, truly achieving automation and intelligence in the modeling process. In this issue, we will continue to delve deeper into the custom measurement feature of the DTAS Python script, to see how it provides customized solutions for complex application scenarios. Examples of application scenarios for Python scripts are shown in the figure: 6 horseshoe-shaped parts are attached to the green disk using pins with two holes. How does the diameter of the smallest circle formed by the inner surfaces of these 6 horseshoe-shaped parts change? There is no such type of measurement in the software; the DTAS software can perform measurements in this scenario by writing scripts. Is the software operation ready? Let’s embark on this journey of exploring automated measurement, and together unlock new skills in DTAS3D tolerance simulation analysis! Software Demonstration Click the Link-View Case Demonstration: https://www.bilibili.com/video/BV1tXoVYPEub/data:image/jpeg;base64,/9j/4AAQSkZJRgABAQEAeAB4AAD/2wBDAAoHBwkHBgoJCAkLCwoMDxkQDw4ODx4WFxIZJCAmJSMgIyIoLTkwKCo2K yIjMkQyNjs9QEBAJjBGS0U+Sjk/QD3/2wBDAQsLCw8NDx0QEB09KSMpPT09PT09PT09PT09PT09PT0 9PT09PT09PT09PT09PT09PT09PT09PT09PT09PT09PT3/wAARCAFvArQDASIAAhEBAxEB/8QAHwAAA QUBAQEBAQEAAAAAAAAAAAECAwQFBgcICQoL/8QAtRAAAgEDAwIEAwUFBAQAAAF9AQIDAAQRBRIhMUEGE1FhByJxFDKBkaEII0KxwRVS0fAkM2JyggkKFhcYGRolJicoKSo0NTY3ODk6Q0RFRkdISUpTVFVWV 1hZWmNkZWZnaGlqc3R1dnd4eXqDhIWGh4iJipKTlJWWl5iZmqKjpKWmp6ipqrKztLW2t7i5usLDxMX Gx8jJytLT1NXW19jZ2uHi4+Tl5ufo6erx8vP09fb3+Pn6/8QAHwEAAwEBAQEBAQEBAQAAAAAAAAECAw QFBgcICQoL/8QAtREAAgECBAQDBAcFBAQAAQJ3AAECAxEEBSExBhJBUQdhcRMiMoEIFEKRobHBCSMzUvAVYnLRChYkNOEl8RcYGRomJygpKjU2Nzg5OkNERUZHSElKU1RVVldYWVpjZGVmZ2hpanN0dXZ3eH l6goOEhYaHiImKkpOUlZaXmJmaoqOkpaanqKmqsrO0tba3uLm6wsPExcbHyMnK0tPU1dbX2Nna4uPk 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lnHGVKBVKZ24jUbc9ccUPZRyRtHId6MSxV1DAk9eoqxRQBWS*jDBAEDLtbYijI9OlJJpsEro 8iq7xjajMikqPY4q1RQBXSyjjRUQ7EVt4VVAG716UqWojdnjYq7/eYKMn9KnooAie38xHV5G KuMMMDkflQICGDCRtwG0HAzj06ewqWigCPymLBjK24DAO0Zx+XtRtEMRJfCLySakrP1zSE1rTjavK8XzBwydcjP+NNb6iZeT94gZHyp5BFFZGiaTeaPay2wmikQylkYli2CB19+DRRoGvY/9k= The case script is as follows: # DTAS Soft # zjy 20241104 # Function: Find the maximum circumscribed circle radius and x, y coordinates calculated by 24 points on the xy plane # # Get the coordinate parameters of 24 points p1 = , features, features] p2 = , features, features] p3 = , features, features] p4 = , features, features] p5 = , features, features] p6 = , features, features] p7 = , features, features] p8 = , features, features] p9 = , features, features] p10 = , features, features] p11 = , features, features] p12 = , features, features] p13 = , features, features] p14 = , features, features] p15 = , features, features] p16 = , features, features] p17 = , features, features] p18 = , features, features] p19 = , features, features] p20 = , features, features] p21 = , features, features] p22 = , features, features] p23 = , features, features] p24 = , features, features] # Find the projection points of 24 points on the xy plane facePos1 = facePos2 = facePos3 = p1Pos = PointProjectionOntoThePlane(p1,facePos1,facePos2,facePos3) p2Pos = PointProjectionOntoThePlane(p2,facePos1,facePos2,facePos3) p3Pos = PointProjectionOntoThePlane(p3,facePos1,facePos2,facePos3) p4Pos = PointProjectionOntoThePlane(p4,facePos1,facePos2,facePos3) p5Pos = PointProjectionOntoThePlane(p5,facePos1,facePos2,facePos3) p6Pos = PointProjectionOntoThePlane(p6,facePos1,facePos2,facePos3) p7Pos = PointProjectionOntoThePlane(p7,facePos1,facePos2,facePos3) p8Pos = PointProjectionOntoThePlane(p8,facePos1,facePos2,facePos3) p9Pos = PointProjectionOntoThePlane(p9,facePos1,facePos2,facePos3) p10Pos = PointProjectionOntoThePlane(p10,facePos1,facePos2,facePos3) p11Pos = PointProjectionOntoThePlane(p11,facePos1,facePos2,facePos3) p12Pos = PointProjectionOntoThePlane(p12,facePos1,facePos2,facePos3) p13Pos = PointProjectionOntoThePlane(p13,facePos1,facePos2,facePos3) p14Pos = PointProjectionOntoThePlane(p14,facePos1,facePos2,facePos3) p15Pos = PointProjectionOntoThePlane(p15,facePos1,facePos2,facePos3) p16Pos = PointProjectionOntoThePlane(p16,facePos1,facePos2,facePos3) p17Pos = PointProjectionOntoThePlane(p17,facePos1,facePos2,facePos3) p18Pos = PointProjectionOntoThePlane(p18,facePos1,facePos2,facePos3) p19Pos = PointProjectionOntoThePlane(p19,facePos1,facePos2,facePos3) p20Pos = PointProjectionOntoThePlane(p20,facePos1,facePos2,facePos3) p21Pos = PointProjectionOntoThePlane(p21,facePos1,facePos2,facePos3) p22Pos = PointProjectionOntoThePlane(p22,facePos1,facePos2,facePos3) p23Pos = PointProjectionOntoThePlane(p23,facePos1,facePos2,facePos3) p24Pos = PointProjectionOntoThePlane(p24,facePos1,facePos2,facePos3) # Find the maximum inscribed circle radius and x, y coordinates calculated from 24 points on the xy plane listPos = ,p1Pos,p2Pos,p2Pos,p3Pos,p3Pos,p4Pos,p4Pos,\ p5Pos,p5Pos,p6Pos,p6Pos,p7Pos,p7Pos,p8Pos,p8Pos ,\ p9Pos,p9Pos,p10Pos,p10Pos,p11Pos,p11Pos,p12Pos,p12Pos,\ p13Pos,p13Pos,p14Pos,p14Pos,p15Pos,p15Pos,p16Pos,p16Pos,\ p17Pos,p17Pos,p18Pos,p18Pos,p19Pos,p19Pos,p20Pos,p20Pos,\ p21Pos,p21Pos,p22Pos,p22Pos,p23Pos,p23Pos,p24Pos,p24Pos] # 0: radius; 1: x; 2: y #dtas underlying function FittingMaxCircleIn-maximum inscribed circle res = FittingMaxCircleIn(listPos) SetHolePinCenter('monitor', DTASPoint(res,res, 30),False) SetHolePinDiameter('monitor', 2 * res,False) measureValue = 2 * res # end Summary DTAS creatively introduces CAE script automation technology, secondary development, etc. into the CAT field 1. Opens the underlying API, supports macro recording, and writes Python scripts, liberating users from tedious and repetitive modeling. Using script automation technology can improve modeling efficiency, and scripts can be reused ; 2. It enables users to develop custom tolerance analysis models such as virtual assembly and virtual measurement, thereby greatly enhancing the software’s adaptability to complex application scenarios as well as the flexibility for advanced users, experts, and ordinary users in utilizing the software; 3. It lays the foundation for establishing a software user ecosystem and for automated and intelligent tolerance analysis. Next time, we will introduce the application of the third scenario – stay tuned! >>> Follow the DTAS DiTuo Technology official account or scan the code to contact customer service. Reply with “Schedule a demonstration for the tolerance Python script”, and we will get in touch with you right away!