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1

J, Watson. Analog and switching circuit design: Using integrated and discrete devices. Bristol: Adam Hilger, 1987.

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2

J, Watson. Analog and switching circuit design: Using integrated and discrete devices. 2nd ed. New York: Wiley, 1989.

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3

J, Watson. Analog and switching circuit design: Using integrated and discrete devices. 2nd ed. Chichester: Wiley, 1991.

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4

Jamieson, David James. The thermal simulation of power electronic switching devices and their associated heatsinks. Salford: University of Salford, 1995.

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5

Nelms, R. M. Design of power electronics for TVC & EMA systems: Final report. [Washington, DC: National Aeronautics and Space Administration, 1994.

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6

W, Flynn B., and Macpherson D. E, eds. Switched mode power supplies: Design and construction. Taunton, England: Research Studies Press, 1992.

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7

Whittington, H. W. Switched mode power supplies: Design and construction. 2nd ed. Taunton, Somerset, England: Research Studies Press, 1997.

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8

Prohorov, Viktor. Semiconductor converters of electrical energy. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1019082.

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The textbook considers the need, principles and methods of mutual conversion of parameters of electric energy at DC and AC for stationary and Autonomous objects. Features of operation of power electronics elements in specific conditions of their continuous high-frequency switching are described. Low-current control systems that provide the necessary logic for the operation of Executive power devices of converters are considered. A large number of specific practical electrical diagrams of electric energy converters are given. It is intended for students studying in the direction of 13.03.02 "electric power and electrical engineering". It can be useful for graduate students and specialists involved in the development and operation of electric power converters.
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9

The Switching Function (Circuits, Devices and Systems) (Circuits, Devices and Systems). Institution of Engineering and Technology, 2006.

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10

Gurevich, Vladimir. Electronic Devices on Discrete Components for Industrial and Power Engineering. Taylor & Francis Group, 2018.

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11

Gurevich, Vladimir. Electronic Devices on Discrete Components for Industrial and Power Engineering. Taylor & Francis Group, 2018.

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Gurevich, Vladimir. Electronic Devices on Discrete Components for Industrial and Power Engineering. Taylor & Francis Group, 2018.

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13

Gurevich, Vladimir. Electronic Devices on Discrete Components for Industrial and Power Engineering. Taylor & Francis Group, 2018.

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Gurevich, Vladimir. Electronic Devices on Discrete Components for Industrial and Power Engineering. CRC, 2008.

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15

Trzynadlowski, Andrzej M. Power Electronic Converters and Systems: Frontiers and Applications. Institution of Engineering & Technology, 2015.

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16

Power Electronic Converters and Systems: Frontiers and Applications. Institution of Engineering & Technology, 2016.

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17

Tiwari, Sandip. Electromechanics and its devices. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198759874.003.0005.

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Electromechanics—coupling of mechanical forces with others—exhibits a continuum-to-discrete spectrum of properties. In this chapter, classical and newer analysis techniques are developed for devices ranging from inertial sensors to scanning probes to quantify limits and sensitivities. Mechanical response, energy storage, transduction and dynamic characteristics of various devices are analyzed. The Lagrangian approach is developed for multidomain analysis and to bring out nonlinearity. The approach is extended to nanoscale fluidic systems where nonlinearities, fluctuation effects and the classical-quantum boundary is quite central. This leads to the study of measurement limits using power spectrum and, correlations with slow and fast forces. After a diversion to acoustic waves and piezoelectric phenomena, nonlinearities are explored in depth: homogeneous and forced conditions of excitation, chaos, bifurcations and other consequences, Melnikov analysis and the classic phase portaiture. The chapter ends with comments on multiphysics such as of nanotube-based systems and electromechanobiological biomotor systems.
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18

Flynn, B. W., D. E. MacPherson, and H. W. Whittington. Switched Mode Power Supplies: Design and Construction (Electronic & Electrical Engineering Research Studies. Electrical Energy Series ; 1). John Wiley & Sons, 1993.

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19

Catapan, Edilson Antonio, ed. Technologies impacts in exact sciences. South Florida Publishing, 2022. http://dx.doi.org/10.47172/sfp2020.ed.0000028.

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The book “Technologies impacts in exact sciences vol.01”, edited and published by South Florida Publishing, brings together six chapters that address topics of relevance in the context of the exact sciences, and the studies will be available in English and Spanish. The book will feature, a study on the response to harmonics of a spring-mass system: Quasi Resonance, an analysis of the response of such a system to harmonics, and, in particular, one in which Quasiresonance is present. Another study that will be discussed is a review of the problems of the analysis of autotransformer discrete alternating voltage regulators. Most often the discrete regulation of AC voltages is achieved by power electronic converters based on a transformer (autotransformer) and switching by the means of controllable semiconductor switches. The third chapter presents an analysis and comparison of the different projects participating in events of invention, innovation, and creativity, based on their characteristics of quality in use, functionality, and usability, through an external metric plan and quality in use. Research on the relationship between Fermat's Last Theorem (FLT) and optical solitons will also be presented. To find such a relationship, the main steps that led to the demonstration of the FLT were examined, starting from the Taniyama-Shimura conjecture, then looking at the contributions of Hellegouarch, Frey, and Ribet and, finally, Wiles' work 6492. Finally, the fifth chapter presents a study on the measurement of air quality in the Patzcuaro lake basin through the use of a perimeter monitoring network. Thus, we thank all authors for their commitment and dedication to their work and we hope to be able to contribute to the scientific community, in the dissemination of knowledge, and the advancement of science.
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20

Anderson, James A. The Past of the Future of Computation. Oxford University Press, 2018. http://dx.doi.org/10.1093/acprof:oso/9780199357789.003.0001.

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Hand axes, language, and computers are tools that increase our ability to deal with the world. Computing is a cognitive tool and comes in several kinds: digital, analog, and brain-like. An analog telephone connects two telephones with a wire. Talking causes a current to flow on the wire. In a digital telephone the voltage is converted into groups of ones or zeros and sent at high speed from one telephone to the other. An analog telephone requires one simple step. A digital telephone requires several million discrete steps per second. Digital telephones work because the hardware has gotten much faster. Yet brains constructed of slow devices and using a few watts of power are competitive for many cognitive tasks. The important question is not why machines are becoming so smart but why humans are still so good. Artificial intelligence is missing something important probably based on hardware differences.
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