Automation of ship hull surface simulation
https://doi.org/10.25206/1813-8225-2023-188-13-21
EDN: VNGVBE
Abstract
The article presents a modified algorithm for automated formation of geometric model of ship hull surface. The use of developed algorithm for construction of NURBS-surfaces allows to decrease labor input in several times in comparison with the use of manual labor when modeling surfaces in standard shipbuilding modeling systems like Sea Solution, Rhino and others. On the basis of this algorithm a software application is created, implemented in HTML5, JavaScript. The application allows to solve problems of creating and displaying three-dimensional models of ship surfaces in a standard the Internet browser. The program allows you to quickly analyze variants of the geometry of the ship hull model by adjusting the initial data, which significantly increases the productivity of the designer. It is possible to export the formed NURBS-surface for use in other design systems, including ship hull construction modeling, stability calculations, hull shell cutting and other tasks.
About the Authors
E. V. PopovRussian Federation
Evgeniy V. Popov - Doctor of Technical Sciences, Professor of Engineering Geometry, Computer Graphics and Computer-Aided Design Department, Nizhny Novgorod State University of Architecture and Civil Engineering (NNGASU).
Nizhny Novgorod
AuthorID (RSCI) 663542
AuthorID (SCOPUS) 56585437200
ResearcherID F-6001-2013
I. N. Shorkina
Russian Federation
Irina N. Shorkina - Graduate Student of Engineering Geometry, Computer Graphics and Computer-Aided Design Department, NNGASU; Associate Professor of Engineering Structures Design Theory Department, Volga State University of Water Transport.
Nizhny Novgorod
AuthorID (RSCI) 826342
ResearcherID IAO-8863-2023
References
1. Dorosinskiy L., Zvereva O. CALS tekhnologii [CALS technologies]. LAP LAMBERT Academic Publishing, 2014. 277 p. ISBN 978-3-659-67118-0. (In Russ.).
2. Aved'yan A. PLM 2.0 v sudostroyenii [PLM 2.0 in shipbuilding]. URL: https://www.informdom.com/metalloobrab/otka/2010/3/plm-20-v-sudostroenii.html (accessed: 02.05.2021). (In Russ.).
3. Kovshov A. N., Nazarov Yu. F., Ibragimov I. M. [et al.]. Informatsionnaya podderzhka zhiznennogo tsikla izdeliy mashinostroyeniya: printsipy, sistemy i tekhnologii CALS/IPI [Information support for the life cycle of engineering products: principles, systems and technologies of CALS/IPI]. Moscow, 2007. 304 p. (In Russ.).
4. Suslov A. N., Odegova O. V. Vnedreniye CALS-tekhnologiy v sudostroyenii. [Implementation of CALS-technologies in shipbuilding]. URL: http://old.cals.ru/conferences/archive/CALS/cals_2001/tez/spgmtu.pdf (accessed: on 02.05.2021). (In Russ.).
5. Voytkunskiy Ya. I., Faddeyev M. I., Fedyayevskiy K. K. Gidromekhanika. [Hydromechanics]. Leningrad, 1982. 472 p. (In Russ.).
6. Gazhiyev A. V., Koshkalda N. V. Sudostroitel'noye chercheniye. [Shipbuilding drafting]. Leningrad, 1979. 184 p. (In Russ.).
7. Aleksanov A. Nekotoryye fakty o modelirovanii sudovoy poverkhnosti, o kotorykh vam ne rasskazhut [Some facts about ship surface modeling that you won't be told]. URL: https://ru.shmexpert.com/feed/archive/2022/11 (accessed: 20.01.2023). (In Russ.).
8. Kosnikov Yu. N. Razvitiye teorii geometricheskogo modelirovaniya prostranstvennykh form i sovershenstvovaniye graficheskikh sistem real'nogo vremeni [Development of the theory of geometric modeling of spatial shapes and improvement of real-time graphic systems]. Penza, 2006. 373 p. (In Russ.).
9. Shorkina I., Novikov S. Development of the skin of the surface of the tunnel part of the ship's hull // CEUR Workshop Proceedings. 31. Ser. «GraphiCon 2021 — Proceedings of the 31st International Conference on Computer Graphics and Vision». 2021. P. 1098-1103. (In Engl.).
10. Popov E. V., Rotkov S. I. The retrieval of NURBS- surface by genetic algorithm on the basis of point cloud // 21st International Conference in Central Europe on Computer Graphics, Visualization and Computer Vision (WSCG) Communication Papers Proceedings. Plzen, Czech, June, 2013. (In Engl.).
11. Popov E. V., Shorkina I. N. Avtomaticheskoye postroyeniye NURBS poverkhnosti korpusa korablya [Automatic construction of the NURBS surface of the ship's hull] // GraphiCon 2022. Moscow, 2022. P. 162-169. DOI: 10.20948/graphicon-2022-162-169. (In Russ.).
12. Sistema trekhmernogo modelirovaniya K3 [Three-dimensional modeling system K3]. URL: http://www.k3info.ru/ (accessed: 30.04.2023). (In Russ.).
13. Khaverbeke Mareyn. Vyrazitel'nyy JavaScript. Sovremennoye veb-programmirovaniye [Expressive JavaScript. Modern Web Programming]. Saint Petersburg, 2022. 480 p. (In Russ.).
14. Verb biblioteka [Verb library]. URL: http://verbnurbs.com/docs/ (accessed: 25.04.2023). (In Russ.).
Review
For citations:
Popov EV, Shorkina IN. Automation of ship hull surface simulation. Omsk Scientific Bulletin. 2023;(4):13-21. (In Russ.) https://doi.org/10.25206/1813-8225-2023-188-13-21. EDN: VNGVBE
JATS XML





















