Abstract
Circuit solution and primary transducer of combined capacitive pressure and proximity sensor are described. Principle of operation of the developed interface circuit is shown; its principal electrical circuitry is explained. Design and structure of a primary capacitive transducer is considered for further use within the combined sensor. The dependence of the output signal from the force, applied to the prototype sensor, is empirically obtained and shows linear pattern in the working range of the sensor from 0 to 2.6 kg, whereas the sensitivity to the applied pressure was 2252 value/kg in output values of ADC. Graphical dependences of output signal are obtained from the distance between the sensor and the things being observed and consisting of different types of stuff. Mean value of interface circuit sensitivity to approaching object is 6.7 value/mm on the decreasing span of the characteristic curve in the range between 0 and 10 mm. The presented sensor can be employed in manipulators to control object grip, as well in feet of humanoid robot for zero moment point calculation and detection of approach to bearing surface.
Access this chapter
Tax calculation will be finalised at checkout
Purchases are for personal use only
Similar content being viewed by others
References
Kovalev, A., Pavliuk, N., Krestovnikov, K., Saveliev, A.: Generation of walking patterns for biped robots based on dynamics of 3D linear inverted pendulum. In: International Conference on Interactive Collaborative Robotics, pp. 170–181 (2019)
Gorobtsov, A.S., et al.: Features of solving the inverse dynamic method equations for the synthesis of stable walking robots controlled motion. SPIIRAS Proc. 18, 85–122 (2019)
Soldatenko, S.A., Yusupov, R.M., Colman, R.: Cybernetic approach to problem of interaction between nature and human sosiety in context of unprecedented climate change. SPIIRAS Proc. 19, 5–42 (2020)
Pavliuk, N., Cherskikh, E., Pshchelko, N., Shabanova, A.: Circuit schematics of a capacitive proximity sensor. In: 2019 1st International Conference on Control Systems, Mathematical Modelling, Automation and Energy Efficiency (SUMMA), pp. 486–490 (2019)
Zhang, B., et al.: Dual functional transparent film for proximity and pressure sensing. Nano Res. 7(10), 1488–1496 (2014)
Strohmeier, P., Knibbe, J., Boring, S., Hornbæk, K.: zPatch: Hybrid resistive/capacitive etextile input. In: Proceedings of the Twelfth International Conference on Tangible, Embedded, and Embodied Interaction, pp. 188–198 (2018)
Fattori, M. et al.: Flexible pressure and proximity sensor surfaces manufactured with organic materials. In: 2017 7th IEEE International Workshop on Advances in Sensors and Interfaces (IWASI), pp. 53–58 (2017)
Hasegawa, H. et al.: Development of intelligent robot hand using proximity, contact and slip sensing. In: 2010 IEEE International Conference on Robotics and Automation, pp. 777–784 (2010)
Cannata, G., Maggiali, M., Metta, G., Sandini, G.: An embedded artificial skin for humanoid robots. In: 2008 IEEE International Conference on Multisensor Fusion and Integration for Intelligent Systems, pp. 434–438 (2008)
Nguyen, T.D., et al.: Highly sensitive flexible proximity tactile array sensor by using carbon micro coils. Sens. Actuators A 266, 166–177 (2017)
Rocha, R. et al.: Soft-matter sensor for proximity, tactile and pressure detection. In: 2017 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS), pp. 3734–3738 (2017)
Lai, Y.C., et al.: Actively perceiving and responsive soft robots enabled by self-powered, highly extensible, and highly sensitive triboelectric proximity-and pressure-sensing skins. Adv. Mater. 30(28), 1801114 (2018)
Cheng, Y., Wang, R., Zhai, H., Sun, J.: Stretchable electronic skin based on silver nanowire composite fiber electrodes for sensing pressure, proximity, and multidirectional strain. Nanoscale 9(11), 3834–3842 (2017)
Acknowledgements
This research is supported by RSF project No 16-19-00044P.
Author information
Authors and Affiliations
Corresponding author
Editor information
Editors and Affiliations
Rights and permissions
Copyright information
© 2021 The Editor(s) (if applicable) and The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd.
About this paper
Cite this paper
Krestovnikov, K., Cherskikh, E., Zimuldinov, E. (2021). Combined Capacitive Pressure and Proximity Sensor for Using in Robotic Systems. In: Ronzhin, A., Shishlakov, V. (eds) Proceedings of 15th International Conference on Electromechanics and Robotics "Zavalishin's Readings". Smart Innovation, Systems and Technologies, vol 187. Springer, Singapore. https://doi.org/10.1007/978-981-15-5580-0_42
Download citation
DOI: https://doi.org/10.1007/978-981-15-5580-0_42
Published:
Publisher Name: Springer, Singapore
Print ISBN: 978-981-15-5579-4
Online ISBN: 978-981-15-5580-0
eBook Packages: Intelligent Technologies and RoboticsIntelligent Technologies and Robotics (R0)