Research Article |
Voltage Differencing Buffered Amplifier (VDBA) Based Grounded Meminductor Emulator
Author(s) : Vikas Singroha1, Bhawna Aggarwal2 and Shireesh Kumar Rai3
Published In : International Journal of Electrical and Electronics Research (IJEER) Volume 10, Issue 3, Special Issue on Recent Advancements in the Electrical & Electronics Engineering
Publisher : FOREX Publication
Published : 10 August 2022
e-ISSN : 2347-470X
Page(s) : 487-491
Abstract
A new meminductor emulator using a capacitor, a memristor and a voltage differencing buffered amplifier (VDBA) is proposed in this paper. This reported realization of meminductor is very simple than proposed in literature as it needs only 1 active block. The proposed emulator has been found suitable for low frequency operations with electrical tunability, and multiplier free topology. The characteristics of the proposed emulator have been verified for a frequency range of 1.8Hz to 4.9Hz using the LTspice simulation tool with 180nm CMOS technology parameters. Pinched hysteresis loops observed in flux versus current plane verifies its meminductive behavior. Moreover, the non-volatility test of the proposed emulator proves its memory behavior. The pinched hysteresis loops obtained through simulations show that the lobe area reduces with increase in frequency.
Keywords: VDBA
, meminductor
, Pinched hysteresis loop
, memristor
Vikas Singroha, Department of ECE, Netaji Subhas University of Technology, New Delhi, India; Email: vikassingroha27@gmail.com
Bhawna Aggarwal, Department of ECE, Netaji Subhas University of Technology, New Delhi, India; Email: kbhawnagarg@yahoo.co.in
Shireesh Kumar Rai, Department of ECE, Netaji Subhas University of Technology, New Delhi, India; Email: shireesh.rai@gmail.com
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[1] Romero, F. J., Escudero, M., Medina-Garcia, A., Morales, D. P., & Rodriguez, N. (2020). Meminductor emulator based on a modified Antoniou’s gyrator circuit. Electronics, 9(9), 1407.[Cross Ref]
-
[2] Taşkıran, Z. G. Ç., Sağbaş, M., Ayten, U. E., & Sedef, H. (2020). A new universal mutator circuit for memcapacitor and meminductor elements. AEU-International Journal of Electronics and Communications, 119, 153180.[Cross Ref]
-
[3] Yuan, F., Jin, Y., & Li, Y. (2020). Self-reproducing chaos and bursting oscillation analysis in a meminductor-based conservative system. Chaos: An Interdisciplinary Journal of Nonlinear Science, 30(5), 053127.[Cross Ref]
-
[4] Sozen, H., & Cam, U. (2020). A novel floating/grounded meminductor emulator. Journal of Circuits, Systems and Computers, 29(15), 2050247.[Cross Ref]
-
[5] Yu, D., Zhao, X., Sun, T., Iu, H. H., & Fernando, T. (2019). A simple floating mutator for emulating memristor, memcapacitor, and meminductor. IEEE Transactions on Circuits and Systems II: Express Briefs, 67(7), 1334-1338.[Cross Ref]
-
[6] Zhao, Q., Wang, C., & Zhang, X. (2019). A universal emulator for memristor, memcapacitor, and meminductor and its chaotic circuit. Chaos: An Interdisciplinary Journal of Nonlinear Science, 29(1), 013141.[Cross Ref]
-
[7] Yuan, F., & Li, Y. (2019). A chaotic circuit constructed by a memristor, a memcapacitor and a meminductor. Chaos: An Interdisciplinary Journal of Nonlinear Science, 29(10), 101101.[Cross Ref]
-
[8] Vista, J., & Ranjan, A. (2019). High frequency meminductor emulator employing VDTA and its application. IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems, 39(10), 2020-2028.[Cross Ref]
-
[9] Yu, D. S., Liang, Y., Iu, H. H., & Hu, Y. H. (2014). Mutator for transferring a memristor emulator into meminductive and memcapacitive circuits. Chinese Physics B, 23(7), 070702.[Cross Ref]
-
[10] Yu, D., Liang, Y., Iu, H. H., & Chua, L. O. (2014). A universal mutator for transformations among memristor, memcapacitor, and meminductor. IEEE Transactions on Circuits and Systems II: Express Briefs, 61(10), 758-762.[Cross Ref]
-
[11] Liang, Y., Chen, H., & Yu, D. S. (2014). A practical implementation of a floating memristor-less meminductor emulator. IEEE Transactions on Circuits and Systems II: Express Briefs, 61(5), 299-303.[Cross Ref]
-
[12] Sah, M. P., Budhathoki, R. K., Yang, C., & Kim, H. (2014). Charge controlled meminductor emulator. JSTS: Journal of Semiconductor Technology and Science, 14(6), 750-754.[Cross Ref]
-
[13] Sah, M. P., Budhathoki, R. K., Yang, C., & Kim, H. (2014, June). A mutator-based meminductor emulator circuit. In 2014 IEEE International Symposium on Circuits and Systems (ISCAS) (pp. 2249-2252). IEEE.[Cross Ref]
-
[14] Fouda, M. E., & Radwan, A. G. (2014, December). Memristor-less current-and voltage-controlled meminductor emulators. In 2014 21st IEEE International Conference on Electronics, Circuits and Systems (ICECS) (pp. 279-282). IEEE.[Cross Ref]
-
[15] Fouda, M. E., & Radwan, A. G. (2014). Simple floating voltage-controlled meminductor emulator for analog applications. Radio engineering, 23(3), 944-948.[Cross Ref]
-
[16] Khatib, N., & Biolek, D. (2013, April). New voltage mode universal filter based on promising structure of voltage differencing buffered amplifier. In 2013 23rd International Conference Radioelektronika (RADIOELEKTRONIKA) (pp. 177-181). IEEE.[Cross Ref]
-
[17] Yu, D. S., Chen, H., & Iu, H. H. C. (2013, May). A meminductive circuit based on floating memristive emulator. In 2013 IEEE International Symposium on Circuits and Systems (ISCAS) (pp. 1692-1695). IEEE.[Cross Ref]
-
[18] Kacar, F., Yesil, A., & Noori, A. (2012). New CMOS realization of voltage differencing buffered amplifier and its biquad filter applications. Radio engineering, 21(1), 333-339.[Cross Ref]
-
[19] Pershin, Y. V., & Di Ventra, M. (2010). Emulation of floating memcapacitors and meminductors using current conveyors. arXiv preprint arXiv:1011.4620.[Cross Ref]
-
[20] Biolek, D., & Biolkova, V. (2010). Mutator for transforming memristor into memcapacitor. Electronics letters, 46(21), 1.[Cross Ref]
-
[21] Di Ventra, M., Pershin, Y. V., & Chua, L. O. (2009). Circuit elements with memory: memristors, memcapacitors, and meminductors. Proceedings of the IEEE, 97(10), 1717-1724.[Cross Ref]
-
[22] Pershin, Y. V., & Di Ventra, M. (2009). Memristive circuits simulate memcapacitors and meminductors. arXiv preprint arXiv:0910.1583.[Cross Ref]
-
[23] Biolkova, V., Kolka, Z., & Biolek, D. (2009, August). Fully balanced voltage differencing buffered amplifier and its applications. In 2009 52nd IEEE International Midwest Symposium on Circuits and Systems (pp. 45-48). IEEE.[Cross Ref]
-
[24] Strukov, D. B., Snider, G. S., Stewart, D. R., & Williams, R. S. (2008). The missing memristor found. nature, 453(7191), 80-83.[Cross Ref]
-
[25] Chua, L. (1971). Memristor-the missing circuit element. IEEE Transactions on circuit theory, 18(5), 507-519.[Cross Ref]
-
[26] Prof. Kalyani Kurundkar and Dr. G. A. Vaidya (2021), Application of HFPSO-TOPSIS approach for optimally locating and sizing of reactive power compensating devices for voltage control ancillary service. IJEER 9(3), 16-26. DOI: 10.37391/IJEER.090301.[Cross Ref]
-
[27] Parimalasundar E, Jayakumar S, Ravikumar R, Suresh K (2022), Investigation analysis of open circuit and short circuit fault on cascaded H-bridged multilevel inverter using artificial neural network approach. IJEER 10(2), 320-326. DOI: 10.37391/IJEER.100243.[Cross Ref]
-
[28] Chitra S, Jayakumar J, Venkateshkumar P, Shanty Chacko, Sivabalan (2022), Identification of Power Leakage and Protection of Over Voltage in Residential Buildings. IJEER 10(1), 51-56. DOI: 10.37391/IJEER.100107.[Cross Ref]
Vikas Singroha, Bhawna Aggarwal and Shireesh Kumar Rai (2022), Voltage Differencing Buffered Amplifier (VDBA) Based Grounded Meminductor Emulator. IJEER 10(3), 487-491. DOI: 10.37391/IJEER.100314.