Research into the Strength of an Open Wagon with Double Sidewalls Filled with Aluminium Foam
Abstract
:1. Introduction
2. Analysis of Recent Research and Publications
3. Purpose and Tasks of the Research
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- To design the bearing structure of an open wagon with double sidewalls with filler (e.g., aluminium foam) in the program software;
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- To calculate the dynamic stresses of the open wagon bearing structure with double sidewalls filled with aluminium foam;
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- To calculate the strength of the bearing structure of an open wagon with double sidewalls with filler;
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- To calculate the strength of a weld joint in the contact area between the intermediate post and the cross bearer of an open wagon; and
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- To conduct a modal analysis of the bearing structure of an open wagon with double sidewalls with filler.
4. Presentation of the Main Content of the Article
5. Conclusions
- The research shows the development of the bearing structure of an open wagon with double walls with filler (e.g., aluminium foam) in the program software. This solution will increase the rigidity of the bearing structure of an open wagon in operation and decrease the dynamic stresses and vulnerability under the most unfavourable operational modes.
- The calculation of the dynamic stresses of the bearing structure of the open wagon with double sidewalls filled with filler was carried out. It was found that the maximum acceleration of the open wagon bearing structure at the centre of mass is 34.6 m/s2, which is 3% lower than the accelerations obtained for the structure of round tubes without filler and 6% lower than the accelerations in the standard wagon design.
- By applying aluminium foam as filler for the centre sill, the maximum equivalent stresses in the bearing structure of an open wagon decreased by about 8%, and displacements decreased by 9% in comparison with the similar values for the bearing structure of circular pipes without filler. The mass of the bearing structure of an open wagon increased by 24% in comparison with that of the filler-free structure (at an aluminium foam density of 300 kg/m3).In order to reduce the sprung mass of the wagons, it is advisable to use aluminium foam in the most loaded areas of the supporting structure—namely, the centre beam, end beam, and pinching nodes of vertical struts with cross beams of the frame. At the same time, the bearing structure mass of the wagon will increase by 3.4% in comparison with the structure of pipes without filler. It is important to say that the introduction of round pipes as load-bearing elements of the open wagon provides a 6% reduction in material consumption compared with a prototype wagon. Consequently, taking into account the use of aluminium foam, the mass of the wagon’s load-bearing structure is 2.6% lower than the standard one.
- The research presents the strength calculation of a weld joint in the contact area between the intermediate post and the cross bearer of an open wagon frame. The following deformations in such an assembly were taken into account: tension/compression, bending, and shearing. With Rwd = 150.92 × 10−3 kPa (at Rwf = 215.6 × 10−3 kPa and Rwf = 196 × 10−3 kPa), the strength of the weld joint was provided at these deformations.
- The authors conducted a modal analysis of the bearing structure of an open wagon with double walls with filler and obtained the main forms and the numerical values of the natural oscillation frequencies of the bearing structure of an open wagon. It was found that the natural oscillation frequencies did not exceed the allowable values.The research will be useful for those who are concerned about designing innovative rolling stock units and improving the operational efficiency of railway transport.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Form of Oscillations | Frequency, Hz (Filler-Free Construction) | Frequency, Hz (Filled Construction) |
---|---|---|
1 | 17.012 | 16.047 |
2 | 17.543 | 16.661 |
3 | 28.567 | 27.645 |
4 | 28.678 | 28.958 |
5 | 30.521 | 29.738 |
6 | 38.654 | 38.146 |
7 | 40.121 | 39.094 |
8 | 42.015 | 41.921 |
9 | 47.656 | 46.46 |
10 | 50.651 | 49.573 |
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Fomin, O.; Gorbunov, M.; Gerlici, J.; Vatulia, G.; Lovska, A.; Kravchenko, K. Research into the Strength of an Open Wagon with Double Sidewalls Filled with Aluminium Foam. Materials 2021, 14, 3420. https://doi.org/10.3390/ma14123420
Fomin O, Gorbunov M, Gerlici J, Vatulia G, Lovska A, Kravchenko K. Research into the Strength of an Open Wagon with Double Sidewalls Filled with Aluminium Foam. Materials. 2021; 14(12):3420. https://doi.org/10.3390/ma14123420
Chicago/Turabian StyleFomin, Oleksij, Mykola Gorbunov, Juraj Gerlici, Glib Vatulia, Alyona Lovska, and Kateryna Kravchenko. 2021. "Research into the Strength of an Open Wagon with Double Sidewalls Filled with Aluminium Foam" Materials 14, no. 12: 3420. https://doi.org/10.3390/ma14123420
APA StyleFomin, O., Gorbunov, M., Gerlici, J., Vatulia, G., Lovska, A., & Kravchenko, K. (2021). Research into the Strength of an Open Wagon with Double Sidewalls Filled with Aluminium Foam. Materials, 14(12), 3420. https://doi.org/10.3390/ma14123420