Design of a Fast Temporary Fastener with the Labor-Saving and Reversible Ability
Abstract
:1. Introduction
2. Innovative Design of Temporary Fastener
2.1. Functional and Structural Innovative Design
2.2. Apply Method of Temporary Fasteners on Aircraft Panel
2.2.1. Preparation Action
2.2.2. Clamping Process
- The first stage is the upward expansion stage. In this stage, the lever is rotated to drive the expanding shaft to lift up. The lifting resistance caused by the expansion of the expansion anchor is small, and it is not enough to overcome the resistance of the spring to compress it, so no clamping force is generated between the two workpieces.
- The second stage is the clamping stage. In the first stage, the expansion anchor is stretched by the expansion shaft until it contacts the workpiece. Therefore, in this stage, the lever mechanism continues to rotate, and the force is transmitted to the chute table through the lateral convex platform of the short part of the lever. Next, the pin shaft is employed as the fulcrum to press down the chute table, so that the spring between the chute table and the adjusting plate is compressed to produce elastic force. Then, the adjust plate cooperates with the expanded anchor to produce clamping force. Finally, the clamping force is the largest at the time when the lever is in the vertical position, and the fastening action is completed. It can be seen from the above that the device has the advantages of simple operation and reliable structure.
2.2.3. Disassembly Process
3. Relationship Analysis of Temporary Fastener
3.1. Analysis of Geometric Relationship
3.2. Analysis of Mechanical Relationship
- The weight of the lever has limited influence on the whole process, so that it is negligible. The follows analyze the force on the lever.
- 2.
- Force analysis of the device:
4. Materials and Methods
4.1. Experimental Procedure
- An experimental platform was set up, as shown in Figure 7.
- 2.
- The pressure gauge and the tension gauge was installed, and the pressure gauge on the experimental platform was fastened with fasteners;
- 3.
- The tension gauge was perpendicular to the lever, and the tension was applied through the tension gauge until the fastener locked the plate parts;
- 4.
- The values displayed by the tension gauge and pressure gauge was recorded;
- 5.
- The tests were repeated 5 times and an average was calculated;
4.2. Main Parameters of Parts
5. Results and Discussion
5.1. Theoretical Calculation
5.2. Data Comparison
5.3. Discussion
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
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Functions | Corresponding Innovative Structure |
---|---|
Labor saving | Based on the lever principle, a new lever mechanism with a movable fulcrum is designed to achieve the purpose of labor saving in the working process. |
Reversible ability | A expansion anchor mechanism with strong elastic materials is designed for this function, which could be recovered to the original shape after the clamping process. |
Consideration of component tolerances | Generally in the pre-joining process of aircraft panels, there is a tolerance for the thickness of workpiece. To solve this problem, an adjustment mechanism is designed by adjusting the pre-compression of the spring to overcome the tolerance in the actual work. |
Unilateral fastening | Most of the existing fastening methods are bilateral fastening with bolt connections, and the production efficiency is not high [19]. In order to solve this problem, an anchor-expanding mechanism is designed; that is, employ the expansion anchors and the moving expansion shafts to cooperate to achieve unilateral fastening. |
Components | Lever | Chute Table | Spring | Adjustment Board | Workpiece |
---|---|---|---|---|---|
Material | aluminum alloy 6061 | 45 steel | 55 SiCr alloy steel | 45 steel | 45 steel |
Related size | total length 133.70 mm | thickness 5.95 mm | outer diameter 18 mm | thickness 5.98 mm | thickness 3.10 mm |
short handle length 19.77 mm | chute radius 80.00 mm | inner diameter 9 mm | center aperture 6.93 mm | center aperture 7.18 mm | |
long handle length 113.93 mm | center aperture 4.94 mm | free length 20.20 mm | |||
compression rate 40% |
Theoretical Value (N) | Actual Value (N) | Error Rate | |
---|---|---|---|
Pressure | 162.13 | 182.26 | 8.9% |
Tension | 10.8 | 14.08 | 7.6% |
Rapid Assembly | Labor-Saving | Reversible Ability |
---|---|---|
Tightening and disassembly can be completed by simply moving the lever. | The lever mechanism is matched with the expansion anchor mechanism to reduce the tightening force and to make a reliable clamping process. | Adopt the elastic expansion anchor and spatial cross track to realize the reversible ability. |
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Tang, W.; Xie, X.; Ye, Y.; Qu, W. Design of a Fast Temporary Fastener with the Labor-Saving and Reversible Ability. Coatings 2021, 11, 1101. https://doi.org/10.3390/coatings11091101
Tang W, Xie X, Ye Y, Qu W. Design of a Fast Temporary Fastener with the Labor-Saving and Reversible Ability. Coatings. 2021; 11(9):1101. https://doi.org/10.3390/coatings11091101
Chicago/Turabian StyleTang, Wei, Xincheng Xie, Yukang Ye, and Weiwei Qu. 2021. "Design of a Fast Temporary Fastener with the Labor-Saving and Reversible Ability" Coatings 11, no. 9: 1101. https://doi.org/10.3390/coatings11091101
APA StyleTang, W., Xie, X., Ye, Y., & Qu, W. (2021). Design of a Fast Temporary Fastener with the Labor-Saving and Reversible Ability. Coatings, 11(9), 1101. https://doi.org/10.3390/coatings11091101