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Analysis of buckling phenomena - SolidWorks FEA AIM:- For this project, the main objective is to carry out a buckling analysis on a Cyclonic separator stand. After the initial analysis, a metallic stiffener will be sketched and added to the stand and another buckling analysis will be simulated to find the change in the…
Anup Deshmukh
updated on 22 Jun 2020
AIM:-
For this project, the main objective is to carry out a buckling analysis on a Cyclonic separator stand. After the initial analysis, a metallic stiffener will be sketched and added to the stand and another buckling analysis will be simulated to find the change in the buckling Factor of Safety. Finally, a design study will be conducted to find the optimum position of the stiffener.
INTRODUCTION:-
Buckling is the failure mode of a structural member experiencing high compressive stresses that cause a sudden sideways deflection. Columns are usually subjected to buckling checks because compressive or axial forces are responsible for buckling and these are common in columns rather than beams, this is shown below in Figure 1.
Figure 1: an example of buckling
In many design projects, engineers must calculate the factor of safety (FOS) to ensure the design will withstand the expected loadings. this is a difficult task since the calculations require the exact values and mechanisms of failure. This is why engineers use an FEA technique known as Buckling analysis.
To begin the project, a Cyclonic Separator Stand was provided, Figure 2 shows the provided model.
Figure 2: The provided model of the stand
Since we are only analysing the stand, the cyclonic separator will be suppressed.
Procedure 1:-
ANALYSIS:-
Procedure 1:
A metallic stiffener was added to the stand.
Analysis:-
The mesh parameters were set to finest.
The fixtures were placed below the legs for support and a load of 135,000N was placed on the stand as shown in Figure 3.
Figure 3: Loads and Fixtures are added to the new model
After adding the fixtures and loads, the stand will undergo a mesh.
Figure 4: The meshed model of the new stand
After meshing the model, the study was run and the results are shown below.
Figure 5: The final results for the second study
The buckling Factor of Safety is 12.463
DESIGN STUDY:
A design study was conducted to determine the optimum position of the stiffener in the stand. The studies were optimized to get the best results possible, to perform optimization the design variables must be defined. table 1 shows the defined variables.
Table 1: Variables of the design study
Name |
Type |
Values |
offset distance |
Range with Step |
Min: 150mm,Max:1750mm,Step:125mm |
The next step for the design study is to define the constraints so that we can specify the conditions that your design must satisfy. The constraints can be driven by global variables or sensors for mass properties, dimensions, and simulation data. table 2 shows the defined constraints
Table 2: Constraints of the designed study
Name` | Type | Value |
Buckling Factor of Safety | is greater than | Min: 22.000000 |
The last step for specifying the parameters is to define the goals. Defining goals helps to specify your objective functions for the Optimization Design Study.
Table 3: Goals of the designed study
Name | Goal |
Buckling Factor of Safety 4 | Maximize |
After defining all the parameters, the number of scenarios (iterations) came out to be 14.
RESULTS:-
The optimized design and values are shown below in figure 6.
Figure 6: optimized design
CONCLUSION:-
The buckling FOS of the stand without the stiffener is 12.463, this is approximately 1.8 times lower than the FOS value of the stand with the stiffener which is 23.183, this means that the stiffener added additional strength and rigidity to the stand making it more reliable to be used in the industry.
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