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Volume 15, Issue 30 (1-2020)                   Marine Engineering 2020, 15(30): 1-12 | Back to browse issues page


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Marashian S M, Adjami M, aliakbari T. Feasibility and Experimental Analysis of SPM Translational Motion under the Effect of Regular Wave Using the 3D Image Processing System. Marine Engineering 2020; 15 (30) :1-12
URL: http://marine-eng.ir/article-1-726-en.html
1- Shahrood University of Technology
Abstract:   (3971 Views)
Single point mooring terminals are, as the name implies, facilities of small horizontal dimensions, to which large vessels are moored by means of a bow hawser or by any other means which allows the vessel to rotate 360 around the mooring point. Generally, the single point mooring terminal can have two functions. Primarily, it affords a safe mooring to the vessels. Secondly, it can form a link in the chain for the transport of oil. In this study, with the feasibility of 3D image processing, the SPM translational motion is evaluated. This translational motion includes Surge, Sway, and Heave. In order to ensure the results of the analysis of SPM translational motion, verification is carried out. In the following, by constructing SPM and situating it in reaction condition with regular wave, translational motion is obtained. Finally, the results indicate that image processing is acceptable in translational motion assessment of SPM.
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Type of Study: Research Paper | Subject: Offshore Structure
Received: 2019/04/16 | Accepted: 2019/07/27

References
1. Pinkster, J. A., & Remery, G. F. M., (1975), The role of model tests in the design of single point mooring terminals. In Offshore Technology Conference. Offshore Technology Conference.‏ [DOI:10.4043/2212-MS]
2. Van Bruggen, T., (2018), Mooring Line Failure Detection of a Single Point Mooring System: a Model-Based Approach.‏
3. Guerra-Filho, G., (2005), Optical Motion Capture: Theory and Implementation. RITA, 12(2), p. 61-90.‏
4. Kerkeni, S., Dal Santo, X., Doucy, O., Jochmann, P., Haase, A., Metrikin, I., ... & Moslet, P. O., (2014), DYPIC project: Technological and scientific progress opening new perspectives. In OTC Arctic Technology Conference. Offshore Technology Conference.‏ [DOI:10.4043/24652-MS]
5. Moghim, M. N., (2009), Experimental study of hydraulic stability of reshaping berm breakwaters (Doctoral dissertation, PhD thesis, Tarbiat Modares University).‏ (In Persian).
6. Tofa, M. M. B., Maimun, A., Ahmed, Y. M., Jamei, S., & Abyn, H., (2013), Two Degree of Freedom Vortex Induced Vibration Tests of a Riser Model Using Spring Bars. Applied Mechanics and Materials, 465, 1339.‏ [DOI:10.4028/www.scientific.net/AMM.465-466.1339]
7. Yang, Y. S., Yang, C. M., & Huang, C. W., (2015), Thin crack observation in a reinforced concrete bridge pier test using image processing and analysis. Advances in Engineering Software, 83, p. 99-108.‏ [DOI:10.1016/j.advengsoft.2015.02.005]
8. Nocerino, E., Menna, F., & Remondino, F., (2015), Comparison between single and multi-camera view videogrammetry for estimating 6DOF of a rigid body. In Videometrics, Range Imaging, and Applications XIII (Vol. 9528, p. 95280K). International Society for Optics and Photonics.‏ [DOI:10.1117/12.2184977]
9. Zhou, Q., Liu, M., Peng, H., & Qiu, W., (2015), Experimental studies of hydrodynamic interaction of two bodies in waves. In ASME 2015 34th International Conference on Ocean, Offshore and Arctic Engineering (pp. V011T12A011-V011T12A011). American Society of Mechanical Engineers.‏
10. He, F., Leng, J., & Zhao, X., (2017), An experimental investigation into the wave power extraction of a floating box-type breakwater with dual pneumatic chambers. Applied Ocean Research, 67, p. 21-30.‏ [DOI:10.1016/j.apor.2017.06.009]
11. Rodríguez, J. L. R., (2017), Segmentation of molars in noisy pantomograms using digital image processing techniques.‏
12. Payton, C., & Bartlett, R. (Eds.)., (2007), Biomechanical evaluation of movement in sport and exercise: the British Association of Sport and Exercise Sciences guide. Routledge. [DOI:10.4324/9780203935750]
13. Polak, E., Kulasa, J., VencesBrito, A., Castro, M. A., & Fernandes, O., (2016), Motion analysis systems as optimization training tools in combat sports and martial arts. Revista de Artes Marciales Asiáticas, 10(2), p. 105-123.‏ [DOI:10.18002/rama.v10i2.1687]

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