[go: up one dir, main page]

skip to main content
10.1145/3274856.3274887acmotherconferencesArticle/Chapter ViewAbstractPublication PagesicaitConference Proceedingsconference-collections
short-paper

Development of a Containerized System to Build Geometric Models and Perform Their Strength Analysis

Published: 01 November 2018 Publication History

Abstract

Strength analysis problems are those engineering tasks that aim to calculate strength properties of structures. The modelling in this sphere is of such complexity that it is often difficult to integrate a geometric model (CAD) and the analysis of physical impact exerted on it (FEM).
This paper describes a prototype of an open-source system that integrates CAD and FEM. The strength analysis task is used to illustrate the integration. The system is deployed by means of the Docker platform and uses Jupyter Notebook for strength analysis.

References

[1]
Y.-M. Deng, G.A. Britton, Y.C. Lam, S.B. Tor, and Y.S. Ma. 2002. Feature-based CAD-CAE integration model for injection-moulded product design. International Journal of Production Research 40, 15 SPEC. (2002), 3737--3750.
[2]
G.P. Gujarathi and Y.-S. Ma. 2010. Generative CAD and CAE integration using common data model. 2010 IEEE International Conference on Automation Science and Engineering, CASE 2010 (2010), 586--591.
[3]
O. Iakushkin. 2016. Cloud Middleware Combining the Functionalities of Message Passing and Scaling Control. EPJ Web of Conferences 108 (2016).
[4]
O. Iakushkin, A. Kondratiuk, O. Sedova, and V. Grishkin. 2016. Jupyter extension for Creating CAD designs and their subsequent analysis by the finite element method. CEUR Workshop Proceedings 1787 (2016), 530--534.
[5]
O. Iakushkin, D. Malevanniy, A. Bogdanov, and O. Sedova. 2017. Adaptation and deployment of PanDA task management system for a private cloud infrastructure. Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics) 10408 LNCS (2017), 438--447.
[6]
O.O. Iakushkin and O.S. Sedova. 2018. Creating CAD designs and performing their subsequent analysis using opensource solutions in Python. AIP Conference Proceedings 1922 (2018).
[7]
P. Kuna, A. Hašková, M. Palaj, M. Skačan, and J. Záhorec. 2018. Innovation of CAD/CAE System Teaching at Upper Secondary Education. Advances in Intelligent Systems and Computing 715 (2018), 507--515.
[8]
J.-C. Léon and G. Foucault. 2009. Prospective analysis for CAD-FEM integration and other product views. Proceedings - 2009 11th IEEE International Conference on Computer-Aided Design and Computer Graphics, CAD/Graphics 2009 (2009), 33--40.
[9]
B. Louhichi, G.N. Abenhaim, and A.S. Tahan. 2014. CAD/CAE integration: updating the CAD model after a FEM analysis. International Journal of Advanced Manufacturing Technology 76, 1-4 (2014), 391--400.
[10]
S. Saltiel, M. Giannakidis, and N. Toulas. 2013. Bridging the gap between CAD and CAE in composite structures development process for the automotive industry. Lecture Notes in Electrical Engineering 195 LNEE, VOL. 7 (2013), 229--240.
[11]
S. Saltiel, M. Giannakidis, and N. Toulas. 2013. Bridging the gap between CAD and CAE in composite structures development process for the automotive industry. Lecture Notes in Electrical Engineering 195 LNEE, VOL. 7 (2013), 229--240.
[12]
O.S. Sedova. 2014. Stress distribution in the neighborhood of a corrosion pit on the outer surface of an elastic spherical shell. 2014 2nd International Conference on Emission Electronics, ICEE 2014 Joined with 10th International Vacuum Electron Sources Conference, IVESC 2014, International Conference on Computer Technologies in Physical and Engineering Applications, ICCTPEA 2014, 20th International Workshop on Beam Dynamics and Optimization, BDO 2014 - Proceedings (2014).
[13]
D. Veisz, E.Z. Namouz, S. Joshi, and J.D. Summers. 2012. Computer-aided design versus sketching: An exploratory case study. Artificial Intelligence for Engineering Design, Analysis and Manufacturing: AIEDAM 26, 3 (2012), 317--335.
[14]
S. Vinodh. 2011. Environmental conscious product design using CAD and CAE. Clean Technologies and Environmental Policy 13, 2 (2011), 359--367.

Recommendations

Comments

Information & Contributors

Information

Published In

cover image ACM Other conferences
ICAIT'2018: Proceedings of the 3rd International Conference on Applications in Information Technology
November 2018
171 pages
ISBN:9781450365161
DOI:10.1145/3274856
© 2018 Association for Computing Machinery. ACM acknowledges that this contribution was authored or co-authored by an employee, contractor or affiliate of a national government. As such, the Government retains a nonexclusive, royalty-free right to publish or reproduce this article, or to allow others to do so, for Government purposes only.

In-Cooperation

  • University of Aizu: University of Aizu

Publisher

Association for Computing Machinery

New York, NY, United States

Publication History

Published: 01 November 2018

Permissions

Request permissions for this article.

Check for updates

Author Tags

  1. CAD
  2. CAE
  3. FEM
  4. Jupyter
  5. Strength analysis

Qualifiers

  • Short-paper
  • Research
  • Refereed limited

Funding Sources

Conference

ICAIT'2018

Acceptance Rates

ICAIT'2018 Paper Acceptance Rate 33 of 56 submissions, 59%;
Overall Acceptance Rate 122 of 207 submissions, 59%

Contributors

Other Metrics

Bibliometrics & Citations

Bibliometrics

Article Metrics

  • 0
    Total Citations
  • 60
    Total Downloads
  • Downloads (Last 12 months)2
  • Downloads (Last 6 weeks)0
Reflects downloads up to 01 Nov 2024

Other Metrics

Citations

View Options

Get Access

Login options

View options

PDF

View or Download as a PDF file.

PDF

eReader

View online with eReader.

eReader

Media

Figures

Other

Tables

Share

Share

Share this Publication link

Share on social media