Design and Analysis of Solid Rocket Composite Motor Case Connector Using Finite Element Method
Abstract
:1. Introduction
2. Experimental Analysis
3. Structural Design
4. RS05A Lay-Up Mode
5. Finite Element Model
5.1. Lay-Up Information Table
5.2. Loading and Constraints
6. Results and Discussion
6.1. Analysis Results of the RS05A Front Connector
6.2. Experimental Results
7. Conclusions
- In this study, finite element analysis of the SRMC connector was performed. The lay-up and optimum structure designs of the connector were investigated. An experimental design was established, and the FEM simulation value was calculated. Loading and constrains were implemented in the FEM model. The actual experimental measurements were studied for a comparison. A blasting experiment was conducted to verify the simulation results.
- The maximum shear stress in the XY-direction was 2.57 MPa, the maximal tensile and compressive stress calculated using FEM was 492 MPa and −537 MPa, respectively, and the Von Mises stress of the AL insert was 332.4 MPa. The stress–strain values obtained from the simulations were all within the permissible limits obtained from the experiments.
- The accuracy of the modeling method was verified by analyzing the displacement and blasting pressure of the finite element simulation results. The comparison results showed that the FME result of blasting was 15 MPa, while the actual blasting was 33 MPa, suggesting that the simulated shell could meet the internal pressure in working conditions.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Property Items | Lamina Property | Resin | AL7075-T6 | |
---|---|---|---|---|
Tensile strength (MPa) | 0° | 665 | 70 | 570 |
90° | 552 | |||
Tensile modulus (GPa) | 0° | 55.7 | 3.6 | 72 |
90° | 56.3 | |||
Compression strength (MPa) | 0° | 500 | ||
90° | 500 | |||
Compression modulus (GPa) | 0° | 55.7 | ||
90° | 56.3 |
Serial Number | Lay Up | Thickness (mm) | Angle (°) | Layer Number |
---|---|---|---|---|
1 | Twill weaves of carbon fiber T300 | 0.225 | 0/90 | 1001 |
2 | Twill weaves of carbon fiber T300 | 0.225 | 45/−45 | 1002 |
3 | Twill weaves of carbon fiber T300 | 0.225 | 0/90 | 1003 |
4 | Twill weaves of carbon fiber T300 | 0.225 | 45/−45 | 1004 |
5 | Twill weaves of carbon fiber T300 | 0.225 | 0/90 | 1005 |
6 | Twill weaves of carbon fiber T300 | 0.225 | 45/−45 | 1006 |
… | … | … | … | … |
163 | Twill weaves of carbon fiber T300 | 0.225 | 0/90 | 1163 |
164 | Twill weaves of carbon fiber T300 | 0.225 | 45/−45 | 1164 |
165 | Prepreg of carbon fiber T300 | 0.145 | 0 | 2001 |
166 | Prepreg of carbon fiber T300 | 0.145 | 45 | 2002 |
167 | Prepreg of carbon fiber T300 | 0.145 | −45 | 2003 |
168 | Prepreg of carbon fiber T300 | 0.145 | 90 | 2004 |
169 | Prepreg of carbon fiber T300 | 0.145 | 0 | 2005 |
170 | Prepreg of carbon fiber T300 | 0.145 | 45 | 2006 |
171 | Prepreg of carbon fiber T300 | 0.145 | −45 | 2007 |
172 | Prepreg of carbon fiber T300 | 0.145 | 90 | 2008 |
… | … | … | … | … |
285 | Prepreg of carbon fiber T300 | 0.145 | 0 | 2021 |
286 | Prepreg of carbon fiber T300 | 0.145 | 45 | 2122 |
287 | Prepreg of carbon fiber T300 | 0.145 | −45 | 2123 |
288 | Prepreg of carbon fiber T300 | 0.145 | 90 | 2124 |
289 | Prepreg of carbon fiber T300 | 0.145 | 0 | 2125 |
Total thickness | 55.025 mm |
Location | AL Front Connector Scheme | The Initial Configuration | Optimized Scheme | Experimental Measurements |
---|---|---|---|---|
Front connector weight (kg) | 0.68 | 0.41 | 0.408 | 0.411 |
AL insert weight (kg) | - | 0.056 | 0.0613 | 0.0613 |
Total weight (kg) | 0.68 | 0.466 | 0.469 | 0.472 |
Percentage weight loss (%) | - | 31.4% | 31.0% | 30.6% |
Final Preferred Solution | Experimental Measurements | |||
---|---|---|---|---|
Allowable Value [23,24] | Calculated Value | Safety Factor | Experimental Value | |
Front connector deformation (mm) | - | 1.92 | - | 1.98 |
Tensile stress in X-direction (MPa) | 500 | 492.0 | 1.24 | 496.4 |
Compressive stress in X-direction (MPa) | −665 | −158.9 | 1.02 | −172.8 |
Tensile stress in Y-direction (MPa) | 552 | 450.2 | 1.23 | 463.6 |
Compressive stress in Y-direction (MPa) | −500 | −212.6 | 3.16 | −235.8 |
Shear stress in XY-plane (MPa) | 118 | 2.574 | 45.91 | 6.431 |
Von Mises stress of AL inserts (MPa) | 505 | 332.4 | 1.52 | 362.3 |
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Zhu, L.; Wang, J.; Shen, W.; Chen, L.; Zhu, C. Design and Analysis of Solid Rocket Composite Motor Case Connector Using Finite Element Method. Polymers 2022, 14, 2596. https://doi.org/10.3390/polym14132596
Zhu L, Wang J, Shen W, Chen L, Zhu C. Design and Analysis of Solid Rocket Composite Motor Case Connector Using Finite Element Method. Polymers. 2022; 14(13):2596. https://doi.org/10.3390/polym14132596
Chicago/Turabian StyleZhu, Lvtao, Jiayi Wang, Wei Shen, Lifeng Chen, and Chengyan Zhu. 2022. "Design and Analysis of Solid Rocket Composite Motor Case Connector Using Finite Element Method" Polymers 14, no. 13: 2596. https://doi.org/10.3390/polym14132596
APA StyleZhu, L., Wang, J., Shen, W., Chen, L., & Zhu, C. (2022). Design and Analysis of Solid Rocket Composite Motor Case Connector Using Finite Element Method. Polymers, 14(13), 2596. https://doi.org/10.3390/polym14132596