The Strength of Rail Vehicles Transported by a Ferry Considering the Influence of Sea Waves on Its Hull
Abstract
:1. Introduction
2. Review of the Research and Literature
3. The Main Tasks and the Objective of the Research
- Modelling the dynamic load of vehicles when transported by train ferries with consideration of the effect of a sea wave on the ferry body;
- Calculating the basic strength parameters for the main-bearing body structure of an open railway wagon when transported by a train ferry;
- Performing an experimental study of the strength of the open wagon body during its transportation on a railway ferry;
- Offering measures for improvements in the open wagon main-bearing structure to ensure its reliable securing on the train ferry and;
- Studying the containers’ stability on the roll trailer located on the train ferry deck with consideration of the effect of a sea wave on the ferry body.
4. Creating a Computational Model
- A device for measurement of deformation gauges of construction and machine-building structures of VDC—1 (Figure 13); VDC—1 removes and converts the received information into values of physical quantities with subsequent display of information about the measured readings of the object, in this case—deformation. The device has an input polling time of no more than 1 s and one input (channel). The DC supply voltage range is 10.5–30 V. The maximum power consumption of the device is no more than 2 VA. The kit includes removable terminal blocks for easy installation and dismantling of the device. VDC—1 has the ability to receive information from strain gauges with different technical characteristics;
- A universal tester;
- Wire tension resistors with a base of 20 mm and resistance of 124 Ohms;
- A set of mounting wires for connecting the strain gauge;
- A computer for the purpose of storing the data registered during the study (Figure 14).
5. Discussion of the Results of the Research
6. Conclusions
- The presented research focuses on modelling the dynamic loads of railway vehicles during their train ferry transportation with consideration of the effect of sea waves to its body. The maximum acceleration, which occurs at a wave angle regarding the train ferry body of 0°, is calculated at the value of 3.6 m/s2.
- The study presents the determination of the main strength characteristics of the main-bearing structure of the open freight wagon when transported by train ferries. The maximum equivalent stresses in the open freight wagon body are up to the value of 438 MPa and are concentrated in the towing shackle; thus, they exceed the admissible values by 21%. The maximum displacements occur in the sidewall of the open car body, equal to 15 mm. Thus, this scheme to secure the railway wagon on the deck of a train ferry is inadmissible.
- Additionally, the strength analysis of the open wagon body mounted on the railway ferry deck was carried out by means of experimental tests. For these purposes, the method of electric strain measurement was applied. In this case, strain gauges with a base of 25 mm and resistance of 124 Ohms were used. Based on the experimental results obtained, verification was carried out. The experimental tests have revealed that the Fisher’s criterion actual value was Fp = 5.11, which is within reproducibility variance Sy = 6.94 and adequacy variance Sad = 35.42. This value is lower than the value of the criterion Ft = 5.41 introduced in the table. Thereof, the hypothesis of adequacy is not denied. The approximation error was about 2%.
- Based on the performed research, the measures of improving the main-bearing structure of the open freight wagon for providing its secure transport on the train ferry were suggested. Particularly, it includes the mounting of special fastening units on the bolsters of the cars. The results of performed calculations demonstrate that the maximal values of the equivalent stresses are concentrated in the radial lug of the unit and amounted to a value of 304 MPa. Thus, these values have not exceeded the permissible values. At the same time, the achieved values are lower by 30% than those in the standard fastening scheme. Thereof, the strength of the one wagon main-bearing structure is preserved.
- The conducted research was also focused on the investigation of the stability of a container, which is placed on a roll trailer located on the train ferry deck. The impact of a sea wave to the ferry body is considered. It is found that the stability of the investigated container placed on the roll trailer, with consideration of the standard interaction scheme, is ensured at rolling angles up to a value of 20°.
7. Patents
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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θ [°] | Measurement Series | Strain Gauge No. | Average Value | Minimal Value | Maximal Value | Dispersion | Mean Square Deviation |
---|---|---|---|---|---|---|---|
5 | 3 | 1 | 512 | 464 | 514 | 1.2 | 1.1 |
3 | 2 | 920.5 | 844 | 921 | 0.5 | 0.7 | |
7 | 3 | 612 | 585 | 641 | 0.68 | 0.82 |
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Lovska, A.; Gerlici, J.; Dižo, J.; Ishchuk, V. The Strength of Rail Vehicles Transported by a Ferry Considering the Influence of Sea Waves on Its Hull. Sensors 2024, 24, 183. https://doi.org/10.3390/s24010183
Lovska A, Gerlici J, Dižo J, Ishchuk V. The Strength of Rail Vehicles Transported by a Ferry Considering the Influence of Sea Waves on Its Hull. Sensors. 2024; 24(1):183. https://doi.org/10.3390/s24010183
Chicago/Turabian StyleLovska, Alyona, Juraj Gerlici, Ján Dižo, and Vadym Ishchuk. 2024. "The Strength of Rail Vehicles Transported by a Ferry Considering the Influence of Sea Waves on Its Hull" Sensors 24, no. 1: 183. https://doi.org/10.3390/s24010183
APA StyleLovska, A., Gerlici, J., Dižo, J., & Ishchuk, V. (2024). The Strength of Rail Vehicles Transported by a Ferry Considering the Influence of Sea Waves on Its Hull. Sensors, 24(1), 183. https://doi.org/10.3390/s24010183