Computer-Aided Supporting Models of Customized Crack Propagation Sensors for Analysis and Prototyping.

IF 3.5 3区 综合性期刊 Q2 CHEMISTRY, ANALYTICAL Sensors Pub Date : 2025-01-19 DOI:10.3390/s25020566
Paulina Kurnyta-Mazurek, Rafał Wrąbel, Artur Kurnyta
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Abstract

The range of sensor technologies for structural health monitoring (SHM) systems is expanding as the need for ongoing structural monitoring increases. In such a case, damage to the monitored structure elements is detected using an integrated network of sensors operating in real-time or periodically in frequent time stamps. This paper briefly introduces a new type of sensor, called a Customized Crack Propagation Sensor (CCPS), which is an alternative for crack gauges, but with enhanced functional features and customizability. Due to those characteristics, it is necessary to develop a family of computer-aided supporting models for rapid prototyping and analysis of the new designs of sensors of various shapes and configurations, which this paper presents by use of simulation tools. For a prototyping of the sensor lay out, an algorithm is elaborated, based on an application created in LabVIEW 2022 software, which generates two spreadsheets formatted by the requirements of Autodesk Inventor 2014 and COMSOL Multiphysics 5.6 software, based on data entered by the user. As a result, a tailored-in-shape CCPS layout is prepared. A parametric model of the sensor is prepared in Autodesk Inventor software, which automatically changes its geometric dimensions after changing data in an MS Excel spreadsheet. Then, the generated layout is analyzed to obtain electromechanical characteristics for defined CCPS geometry and materials used in the COMSOL Multiphysics software. Another application is devoted to purely mechanical analysis. The graphical user interface (GUI) add-on based on the Abaqus 2018 software engine is prepared for advanced mechanical analysis simulations of sensor materials in selected loading scenarios. The GUI is used for entering material libraries and the selection of loading conditions and a type of specimen, while the results of the numerical analysis are delivered through Abaqus. The main advantage of the developed GUI is the capacity for personnel inexperienced in using the Abaqus environment to perform analysis. Some results of simulation tests carried out in both COMSOL Multiphysics as well as Abaqus software are delivered in this paper, using a predefined parametric sensor model. For example, using a rigid epoxy resin for an insulating layer shows a negligible difference in the level of strain compared to the structure during a simulated tensile test, specifically in the tested layer thickness range of up to 0.3 mm. However, during bending tests, an approx. 17% change in principal strain level can be observed through the top to bottom edge of the epoxy resin layer. The adopted methodology for carrying out simulation studies assumes the parallel use of a set of various computer-aided tools. This approach allows for taking advantage of individual software environments, which allows for expanding the scope of analyses and using the developed models and applications in further research activities.

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定制裂纹扩展传感器的计算机辅助支撑模型分析与原型设计。
随着结构监测需求的增加,用于结构健康监测(SHM)系统的传感器技术范围也在不断扩大。在这种情况下,使用实时或定期在频繁时间戳中运行的传感器集成网络来检测被监测结构元件的损坏。本文简要介绍了一种新型传感器,称为定制裂纹扩展传感器(CCPS),它是裂纹测量仪的一种替代方案,但具有增强的功能特征和可定制性。由于这些特点,有必要开发一套计算机辅助支持模型,用于快速成型和分析各种形状和配置的传感器的新设计,本文利用仿真工具提出了这些模型。对于传感器布局的原型设计,基于LabVIEW 2022软件创建的应用程序阐述了一种算法,该算法根据用户输入的数据生成两个符合Autodesk Inventor 2014和COMSOL Multiphysics 5.6要求格式的电子表格。因此,一个量身定制的形状的CCPS布局准备。传感器的参数化模型在Autodesk Inventor软件中准备,该软件在更改MS Excel电子表格中的数据后自动更改其几何尺寸。然后,对生成的布局进行分析,以获得COMSOL Multiphysics软件中定义的CCPS几何形状和材料的机电特性。另一个应用是纯力学分析。基于Abaqus 2018软件引擎的图形用户界面(GUI)插件是为选定加载场景下传感器材料的高级力学分析模拟而准备的。GUI用于进入材料库,选择加载条件和试样类型,而数值分析结果通过Abaqus传递。开发的GUI的主要优点是,没有经验的人员可以使用Abaqus环境执行分析。本文给出了在COMSOL Multiphysics和Abaqus软件中使用预定义的参数化传感器模型进行仿真测试的一些结果。例如,在模拟拉伸测试期间,使用刚性环氧树脂作为绝缘层,与结构相比,应变水平的差异可以忽略不计,特别是在测试层厚度范围高达0.3 mm的情况下。然而,在弯曲试验中,一个近似。通过环氧树脂层的上下边缘可以观察到主应变水平变化17%。所采用的进行模拟研究的方法假定同时使用一套不同的计算机辅助工具。这种方法允许利用单个软件环境,它允许扩展分析的范围,并在进一步的研究活动中使用开发的模型和应用程序。
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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来源期刊
Sensors
Sensors 工程技术-电化学
CiteScore
7.30
自引率
12.80%
发文量
8430
审稿时长
1.7 months
期刊介绍: Sensors (ISSN 1424-8220) provides an advanced forum for the science and technology of sensors and biosensors. It publishes reviews (including comprehensive reviews on the complete sensors products), regular research papers and short notes. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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