National Research University of Electronic Technology, MIET, Moscow, Russia.
*Corresponding Author: Afonin Sergey Mikhailovich, National Research University of Electronic Technology, MIET, 124498, Moscow, Russia.
Citation: Afonin SM. (2021) Precision engine for nanobiomedical research. Biomedical Research and Clinical Reviews. 3(4); DOI:10.31579/2692-9406/051
Copyright: © 2021 Afonin SM, This is an open-access article distributed under the terms of the Creative Commons Attribution License, which
permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
Received: 08 February 2021 | Accepted: 01 March 2021 | Published: 12 March 2021
Keywords: precision engine; electromagnetoelastic engine; transfer function; structural model and diagram; nanobiomedical research; piezo engine; deformation; transfer coefficient
Abstract
The transfer function and the transfer coefficient of a precision electromagnetoelastic engine for nanobiomedical research are obtained. The structural diagram of an electromagnetoelastic engine has a difference in the visibility of energy conversion from Cady and Mason electrical equivalent circuits of a piezo vibrator. The structural diagram of an electromagnetoelastic engine is founded. The structural diagram of the piezo engine for nanobiomedical research is written. The transfer functions of the piezo engine or are obtained.
Transfer function
The structural diagram of a precision engine for nanobiomedical research is changed from Cady and Mason electrical equivalent circuits [4-8]. For a precision engine the equation of electromagnetoelasticity [2-14] has the form of the equation of the reverse effect
Conclusions
The transfer function and the transfer coefficient of a precision electromagnetoelastic engine are received. The structural diagram of a precision engine for nanobiomedical research is obtained. The structural diagram of an electromagnetoelastic engine for nanobiomedical research is distinguished by the clarity of energy conversion from Cady and Mason electrical equivalent circuits of a piezo vibrator.
The electromagnetoelasticity equation and the differential equation are used to construct the structural diagram of an electro magnetoelastic engine. The structural diagram of an electromagnetoelastic engine is found from its electromagnetoelasticity and differential equations. The structural diagram of the piezo engine is received using the reverse and direct piezoelectric effects. The back electromotive force for the piezo engine is founded from the direct piezoelectric effect. The characteristics of a precision engine for nanobiomedical research are obtained.
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