Determining Simulation Parameters of Prototype Door Hinge for Correlation between Simulation and Experimental Results in United Nations Economic Commission for Europe Regulation No: 11 Tests
Abstract
:1. Introduction
1.1. Commercial Door Hinge
1.2. United Nations Economic Commission for Europe (UNECE R11)
1.2.1. Aim and Scope of Regulation
1.2.2. Regulation Procedure and Acceptance Criteria
1.2.3. Static Test Apparatus
1.3. Literature Study
1.4. Motivation and Objective
2. Materials and Methods
2.1. Dummy Model Design and Production
2.2. Material Data
2.3. Finite Element Model (FEM)
2.3.1. Simulation Parameters for Evaluation
Geometrical Difference
Friction Coefficient
Bush Material Effect
2.3.2. Mesh
2.3.3. Contact Definition
2.3.4. Boundary Conditions
2.4. Experimental Tests
3. Results and Discussion
3.1. Phase-1
Friction Coefficient and Bush Material Effects for Z-Direction Loading
3.2. Phase-2
Friction Coefficient and Bush Material Effects for Z-Direction Loading
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Material Name | FEA Material Models | Elasticity Modulus (MPa) | Yield Stress (MPa) | Rupture Stress (MPa) | Elongation (%) |
---|---|---|---|---|---|
Steel | Isotropic Linear | 200,000 | No Plasticity | No Limit | No Limit |
F-0000-10 | Isotropic Non-linear | 96,500 | 89.6 | 124 | 0.02 |
S355MC | Isotropic Non-Linear | 194,300 | 434.95 | 611.07 | 0.14 |
20MnB4 | Isotropic Non-Linear | 200,000 | 403.05 | 636.04 | 0.1486 |
Simulation No | UNECE R11 Acceptance Criteria | Simulation Parameters | Results (mm) | Error (%) | |||
---|---|---|---|---|---|---|---|
Geometry | Friction Coefficient | Bush Material | Simulation | Experimental | |||
1 | No Separation at Hinge Leaves Under Required Effort | Perfect Geometrical Data | 0.2 | Linear Steel | 12.959 (No Separation) | 11.589 (No Separation) | 10.57 |
2 | Perfect Geometrical Data | 0.1 | Linear Steel | 16.5 (No Separation) | 29.76 | ||
3 | Perfect Geometrical Data | 0.05 | Linear Steel | 17.1 (No Separation) | 32.22 | ||
4 | Perfect Geometrical Data | 0.2 | F-0000-10 | 10.85 (No Separation) | 6.81 | ||
5 | 3D Scan | 0.2 | Linear Steel | 8.31 (No Separation) | 8.31 | ||
6 | 3D Scan | 0.1 | Linear Steel | 22.74 (No Separation) | 22.74 | ||
7 | 3D Scan | 0.05 | Linear Steel | 25.23 (No Separation) | 25.23 | ||
8 | 3D Scan | 0.2 | F-0000-10 | 6.24 (No Separation) | 6.24 |
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Erol, O.; Güler Özgül, H. Determining Simulation Parameters of Prototype Door Hinge for Correlation between Simulation and Experimental Results in United Nations Economic Commission for Europe Regulation No: 11 Tests. Designs 2019, 3, 17. https://doi.org/10.3390/designs3010017
Erol O, Güler Özgül H. Determining Simulation Parameters of Prototype Door Hinge for Correlation between Simulation and Experimental Results in United Nations Economic Commission for Europe Regulation No: 11 Tests. Designs. 2019; 3(1):17. https://doi.org/10.3390/designs3010017
Chicago/Turabian StyleErol, Onur, and Hande Güler Özgül. 2019. "Determining Simulation Parameters of Prototype Door Hinge for Correlation between Simulation and Experimental Results in United Nations Economic Commission for Europe Regulation No: 11 Tests" Designs 3, no. 1: 17. https://doi.org/10.3390/designs3010017
APA StyleErol, O., & Güler Özgül, H. (2019). Determining Simulation Parameters of Prototype Door Hinge for Correlation between Simulation and Experimental Results in United Nations Economic Commission for Europe Regulation No: 11 Tests. Designs, 3(1), 17. https://doi.org/10.3390/designs3010017