Numerical Investigation of the Collapse of a Steel Truss Roof and a Probable Reason of Failure
Abstract
:1. Introduction
2. Theory and Case Study
2.1. Overview of the Structure and the Case
2.2. Structural Members
3. Analysis
3.1. Global Analysis
3.2. Analysis of the Columns and Supports
3.2.1. Analysis of the Steel-Reinforced Columns
3.2.2. Analysis of the Spherical Support with Steel-Reinforced Columns
4. Results and Discussion
4.1. Analysis of the Steel-Reinforced Columns
4.2. Global Analysis with Only Mechanical Loads
4.3. Analysis of the Spherical Support with Steel-Reinforced Columns
4.4. Global Analysis with Mechanical Loads and Thermal Effects
5. Conclusions
- −
- According to the global analysis, the structure is quite strong and insensitive to the vertical dead loads (rain, snow, etc.) even at some higher values, which are judged to be extreme and unrealistic. The most dangerous region of the space frame system in terms of vertical loads is the corridor with the largest column span in the A, C, and E blocks. However, this region is still safe, and the damage occurred somewhere else.
- −
- Using the results of the global analysis, the most critical support connection was individually investigated and found safe, although it is more sensitive to horizontal forces. However, in the analysis, all the effects that create lateral forces caused by the wind and similar homogeneous distributed loads could not make the structure exceed the safety limits and cause any damage in the locations where the real damage occurred.
- −
- It is judged that the thermal expansion of structural members increases the horizontal forces at the supports and the stresses at the members. The temperature change was assumed to be caused by lightning strikes. To investigate the effects of the temperature change, a simplified analysis with a uniform temperature rise was conducted and produced results that point out critical regions that are the same as the real damaged zones.
- −
- The significant change of temperature of the air surrounding the lightning channel and the electric current that passes through the structure may cause heating of the roof system rapidly and locally. The lightning at the scene may also cause a sudden pressure change that can be amplified by the presence of water on top of the structural surface. In addition to the thermal expansion, it is judged possible that the blast effect may have a significant role in the failure of the structure.
- −
- Testing the idea of temperature change, the damage prediction was found to be consistent with the real failure mode. It was concluded that the bolts and the bolted members attached to the supports in the real damaged regions of the space truss roof system were overloaded and damaged, as it can be seen in Figure 15.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Property | Steel | Concrete |
---|---|---|
Young’s modulus (E) | 210 GPa | 32 GPa |
Poisson’s ratio (ν) | 0.28 | 0.20 |
Thermal expansion coefficient (α) | 13 μm/(m K) | 11.5 μm/(m K) |
Load Description | Value |
---|---|
Weight of the space truss system | 140 N/m2 |
Dead loads | 350 N/m2 |
(240 N/m2 given in design calculations) | |
Snow load | 2000 N/m2 |
(1000 N/m2 given in design calculations.) | |
Vertical wind loads | 960 N/m2 |
Equivalent earthquake vertical load | 950 N/m2 |
Equivalent earthquake horizontal load | 200 N/m2 |
(180 N/m2 given in design calculations) |
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Tüfekci, M.; Tüfekci, E.; Dikicioğlu, A. Numerical Investigation of the Collapse of a Steel Truss Roof and a Probable Reason of Failure. Appl. Sci. 2020, 10, 7769. https://doi.org/10.3390/app10217769
Tüfekci M, Tüfekci E, Dikicioğlu A. Numerical Investigation of the Collapse of a Steel Truss Roof and a Probable Reason of Failure. Applied Sciences. 2020; 10(21):7769. https://doi.org/10.3390/app10217769
Chicago/Turabian StyleTüfekci, Mertol, Ekrem Tüfekci, and Adnan Dikicioğlu. 2020. "Numerical Investigation of the Collapse of a Steel Truss Roof and a Probable Reason of Failure" Applied Sciences 10, no. 21: 7769. https://doi.org/10.3390/app10217769
APA StyleTüfekci, M., Tüfekci, E., & Dikicioğlu, A. (2020). Numerical Investigation of the Collapse of a Steel Truss Roof and a Probable Reason of Failure. Applied Sciences, 10(21), 7769. https://doi.org/10.3390/app10217769