Vibration Propulsion in Untethered Insect-Scale Robots with Piezoelectric Bimorphs and 3D-Printed Legs
Abstract
:1. Introduction
2. Materials and Methods
2.1. Device Design
2.2. Robot Fabrication
3. Results
3.1. Electrical Characterization
3.2. Kinetic Characterization
3.3. Power Consumption, Autonomy, and Cost of Transport
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Component | Dimensions (mm) |
---|---|
Supporting columns | |
Bimorph resonator | |
Leg |
Component | Mass (g) |
---|---|
3D-printed legs and supporting columns | 0.008 |
Wires and welding | 0.026 |
Pin header connectors | 0.076 |
Two bimorph plates | 0.210 |
Electrical contact for battery | 0.596 |
High-voltage piezo drive PCB | 0.916 |
3D-printed supporting platform | 1.121 |
Microcontroller | 1.197 |
Battery | 3.270 |
Total Mass | 7.42 |
Resonant Mode | ||||||
---|---|---|---|---|---|---|
Mode (50) | Mode (60) | |||||
Electrode Layout | Frequency (kHz) | Q-Factor | ΔG (µS) | Frequency (kHz) | Q-Factor | ΔG (µS) |
69.6 | 69 | 76 | 100.6 | 60 | 68 | |
68.8 | 65 | 216 | 99.6 | 58 | 159 | |
68.7 | 67 | 299 | 99.5 | 61 | 245 | |
68.5 | 65 | 327 | 99.2 | 59 | 273 |
Resonant Mode | ||||||
---|---|---|---|---|---|---|
Mode (50) | Mode (60) | |||||
Bimorph | Frequency (kHz) | Q-Factor | ΔG (µS) | Frequency (kHz) | Q-Factor | ΔG (µS) |
1 | 69.7 | 58 | 279 | 99.8 | 56 | 203 |
2 | 69.2 | 54 | 255 | 97.4 | 60 | 239 |
Bimorph 1 | Bimorph 2 | ||||||
---|---|---|---|---|---|---|---|
Mode (50) | Mode (60) | Mode (50) | Mode (60) | ||||
Frequency kHz | Speed mm/s | Frequency kHz | Speed mm/s | Frequency kHz | Speed mm/s | Frequency kHz | Speed mm/s |
69.6 | 5.2 | 100.9 | 23.2 | 67.7 | 31.1 | 98.5 | 37.1 |
Clockwise Rotation | Counterclockwise Rotation | |
---|---|---|
Angular velocity | ||
Positional deviationper rotation | ||
Angle |
Forward | Backward | |
---|---|---|
Speed | ||
Deviation | ||
Distance | 67.4 mm | 74.6 mm |
Complex L-Shaped Trajectory | |
---|---|
Speed | |
Deviation | |
Distance | 323 mm |
Microrobot Description | Size (mm) | Total Mass (g) | Speed (BL/s) | Cost of Transport | Power Consumption (mW) | Autonomy (min) |
---|---|---|---|---|---|---|
This work | 17 | 7.42 | 4.1 | 10 | 50.5 | |
BHMbot [13] | 20 | 1.76 | 17.5 | 304 | 1770 | |
HARM-F [6] | 45 | 2.8 | 3.8 | 84 | 600 | |
DEAnsect [11] | 40 | 1 | 0.3 | 1670 | 188 | |
S²worm [12] | 41 | 4.34 | 6.7 | 52 | 610.5 | |
PVDF robot [14] | 24 | 1.9 | 1.2 | 887 | 397 | |
RoBeetle [7] | 15 | 0.088 | 0.05 | - | - | - |
SEMR UR1 [8] | 20 | 2.2 | 2.1 | - | 638 |
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Ramírez-Palma, M.R.; Ruiz-Díez, V.; Corsino, V.; Sánchez-Rojas, J.L. Vibration Propulsion in Untethered Insect-Scale Robots with Piezoelectric Bimorphs and 3D-Printed Legs. Robotics 2024, 13, 135. https://doi.org/10.3390/robotics13090135
Ramírez-Palma MR, Ruiz-Díez V, Corsino V, Sánchez-Rojas JL. Vibration Propulsion in Untethered Insect-Scale Robots with Piezoelectric Bimorphs and 3D-Printed Legs. Robotics. 2024; 13(9):135. https://doi.org/10.3390/robotics13090135
Chicago/Turabian StyleRamírez-Palma, Mario Rodolfo, Víctor Ruiz-Díez, Víctor Corsino, and José Luis Sánchez-Rojas. 2024. "Vibration Propulsion in Untethered Insect-Scale Robots with Piezoelectric Bimorphs and 3D-Printed Legs" Robotics 13, no. 9: 135. https://doi.org/10.3390/robotics13090135