A Pressing Attachment Approach for a Wall-Climbing Robot Utilizing Passive Suction Cups †
Abstract
:1. Introduction
2. Robot Design
2.1. Design of the Robot Design
2.2. Force Analysis
3. Analysis of the Adopted Suction Cup
3.1. Suction Cup Properties
3.2. Experimental Methodology and Results
4. Guide Rail Design for the Proposed Pressing Method
4.1. Functions Area of the Guide Rail
4.2. Experimental Setup
4.3. Experimental Methodology
4.4. Experimental Results and Discussion
4.4.1. Experimental Results
4.4.2. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
References
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Material | |||||
---|---|---|---|---|---|
12.5 (mm) | 2 (mm) | 25 (mm) | 22.5 (mm) | Silicon | 5.6 (g) |
220 (mm) | 15 (mm) | 55 (mm) | 70 (mm) | 10 (mm) | 4 (mm) |
Length | Width | Height | Weight | Maximum Velocity | Maximum Pulling Force | Actuator |
---|---|---|---|---|---|---|
300 (mm) | 122 (mm) | 290 (mm) | 1.26 (kg) | 18.5 (mm/s) | 84 (N) | DC-motor × 1 |
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Ge, D.; Tang, Y.; Ma, S.; Matsuno, T.; Ren, C. A Pressing Attachment Approach for a Wall-Climbing Robot Utilizing Passive Suction Cups. Robotics 2020, 9, 26. https://doi.org/10.3390/robotics9020026
Ge D, Tang Y, Ma S, Matsuno T, Ren C. A Pressing Attachment Approach for a Wall-Climbing Robot Utilizing Passive Suction Cups. Robotics. 2020; 9(2):26. https://doi.org/10.3390/robotics9020026
Chicago/Turabian StyleGe, Dingxin, Yongchen Tang, Shugen Ma, Takahiro Matsuno, and Chao Ren. 2020. "A Pressing Attachment Approach for a Wall-Climbing Robot Utilizing Passive Suction Cups" Robotics 9, no. 2: 26. https://doi.org/10.3390/robotics9020026
APA StyleGe, D., Tang, Y., Ma, S., Matsuno, T., & Ren, C. (2020). A Pressing Attachment Approach for a Wall-Climbing Robot Utilizing Passive Suction Cups. Robotics, 9(2), 26. https://doi.org/10.3390/robotics9020026