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1

Kursun, Volkan. Multiple supply and threshold voltage CMOS circuits. Chichester, England: John Wiley, 2006.

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2

Mullett, Charles E., and Lou Pechi. Low voltage study: Workshop report. Mendham, N.J: Power Sources Manufacturers Association, 2001.

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3

Instruments, Texas. Power supply circuits data book: Voltage references, voltage regulators, PWM controllers, supervisors, switches, optoisolators, and special functions. [Dallas, Tex.]: Texas Instruments, 1995.

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4

De Smedt, Valentijn, Georges Gielen, and Wim Dehaene. Temperature- and Supply Voltage-Independent Time References for Wireless Sensor Networks. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-09003-0.

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5

Teh-Ming, Chu, Stevens N. John, and United States. National Aeronautics and Space Administration., eds. Conceptual definition of a high voltage power supply test facility: Final technical report. [Washington, DC]: National Aeronautics and Space Administration, 1989.

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6

J, King Roger, Mayer Eric, and United States. National Aeronautics and Space Administration., eds. Study of a high voltage ion engine power supply: NASA grant NAG3-1576. [Washington, DC: National Aeronautics and Space Administration, 1996.

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7

Canada Centre For Mineral and Energy Technology. Administration of the Canada Explosives Act. Constant Current Supply For the Determination of Detonation Velocities and Reference Voltage Source. S.l: s.n, 1985.

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8

Stuart, Thomas A. Study of a high voltage ion engine power supply: NASA grant NAG3-1576. [Washington, DC: National Aeronautics and Space Administration, 1996.

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9

Voltage quality in electrical power systems. London: Institution of Electrical Engineers, 2001.

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10

Sturman, John C. High-voltage, high-power, solid-state remote power controllers for aerospace applications. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1985.

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11

Sturman, John C. High-voltage, high-power, solid-state remote power controllers for aerospace applications. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1985.

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12

Sturman, John C. High-voltage, high-power, solid-state remote power controllers for aerospace applications. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1985.

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13

Massoud, Pedram, and Rabaey Jan M, eds. Power aware design methodologies. Boston: Kluwer Academic, 2002.

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14

Wen, Xiaoqing, Nicola Nicolici, and Girard Patrick. Power-aware testing and test strategies for low power devices. New York: Springer, 2010.

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15

Saibal, Mukhopadhyay, and SpringerLink (Online service), eds. Low-Power Variation-Tolerant Design in Nanometer Silicon. Boston, MA: Springer Science+Business Media, LLC, 2011.

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16

Palani, Rakesh Kumar, and Ramesh Harjani. Inverter-Based Circuit Design Techniques for Low Supply Voltages. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-46628-6.

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17

Zuev, Sergey, Ruslan Maleev, and Aleksandr Chernov. Energy efficiency of electrical equipment systems of autonomous objects. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1740252.

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When considering the main trends in the development of modern autonomous objects (aircraft, combat vehicles, motor vehicles, floating vehicles, agricultural machines, etc.) in recent decades, two key areas can be identified. The first direction is associated with the improvement of traditional designs of autonomous objects (AO) with an internal combustion engine (ICE) or a gas turbine engine (GTD). The second direction is connected with the creation of new types of joint-stock companies, namely electric joint-stock companies( EAO), joint-stock companies with combined power plants (AOKEU). The energy efficiency is largely determined by the power of the generator set and the battery, which is given to the electrical network in various driving modes. Most of the existing methods for calculating power supply systems use the average values of disturbing factors (generator speed, current of electric energy consumers, voltage in the on-board network) when choosing the characteristics of the generator set and the battery. At the same time, it is obvious that when operating a motor vehicle, these parameters change depending on the driving mode. Modern methods of selecting the main parameters and characteristics of the power supply system do not provide for modeling its interaction with the power unit start-up system of a motor vehicle in operation due to the lack of a systematic approach. The choice of a generator set and a battery, as well as the concept of the synthesis of the power supply system is a problem studied in the monograph. For all those interested in electrical engineering and electronics.
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18

G, Oklobdzija Vojin, ed. Digital system clocking: High-performance and low-power aspects. New York: IEEE, 2003.

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19

Handbook of energy-aware and green computing. Boca Raton, FL: Chapman & Hall/CRC, 2012.

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20

Bigelow, Stephen J. Troubleshooting and repairing computer printers. 2nd ed. New York: TAB Books, 1996.

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21

Troubleshooting and repairing computer printers. Blue Ridge Summit, PA: Windcrest/McGraw-Hill, 1992.

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22

Benini, Luca. Dynamic power management: Design techniques and CAD tools. Boston: Kluwer, 1998.

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23

Kanekawa, Nobuyasu. Dependability in electronic systems: Mitigation of hardware failures, soft errors, and electro-magnetic disturbances. New York: Springer, 2011.

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24

Babak, Falsafi, and Vijaykumar T. N. 1967-, eds. Power-aware computer systems: Third International Workshop, PACS 2003, San Diego, CA, USA, December 1, 2003 : revised papers. Berlin: Springer, 2004.

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25

International Union for Conservation of Nature and IUCN Environmental Law Centre, eds. Le cadre juridique international du bassin de la Volta. Gland, Suisse: UICN, en collaboration avec le Centre du droit de l'environnement de l'UICN, 2009.

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26

Chan-Ki, Kim, ed. HVDC transmission: Power conversion applications in power systems. Singapore: Wiley, 2009.

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27

Harjani, Ramesh, and Rakesh Kumar Palani. Inverter-Based Circuit Design Techniques for Low Supply Voltages. Springer, 2016.

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28

Harjani, Ramesh, and Rakesh Kumar Palani. Inverter-Based Circuit Design Techniques for Low Supply Voltages. Springer, 2018.

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29

Harjani, Ramesh, and Rakesh Kumar Palani. Inverter-Based Circuit Design Techniques for Low Supply Voltages. Springer, 2016.

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30

Transport, European Commission Directorate-General, ed. HVB: High voltage booster. Luxembourg: Office for Official Publications of the European Communities, 1999.

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31

National Aeronautics and Space Administration (NASA) Staff. Study of a High Voltage Ion Engine Power Supply. Independently Published, 2018.

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32

Zagirnyak, Mykhaylo V. Nonactive Current Components Compensation of Low-Voltage Power Supply Systems. Nova Science Publishers, Incorporated, 2020.

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33

Zagirnyak, Mykhaylo V. Nonactive Current Components Compensation of Low-Voltage Power Supply Systems. Nova Science Publishers, Incorporated, 2020.

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34

Gielen, Georges, Wim Dehaene, and Valentijn De Smedt. Temperature- and Supply Voltage-Independent Time References for Wireless Sensor Networks. Springer International Publishing AG, 2016.

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35

Gielen, Georges, Wim Dehaene, and Valentijn De Smedt. Temperature- and Supply Voltage-Independent Time References for Wireless Sensor Networks. Springer, 2014.

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36

Gielen, Georges, Wim Dehaene, and Valentijn De Smedt. Temperature- and Supply Voltage-Independent Time References for Wireless Sensor Networks. Springer, 2015.

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37

Ahmadi, Rubil. Timing analysis in presence of power supply and ground voltage variations. 2004.

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38

Pande, Manish. Three-phase voltage type AC to DC power supply with improved performance. 1998.

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39

Anderson, Julie. AN3018 MIC47050-Power Supply Rejection Ratio of Low Dropout Linear Voltage Regulators. Microchip Technology Incorporated, 2019.

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40

Ro, Yoonhyuk. Common-Mode and Power Supply Noise Rejection in Low Voltage Analog Circuits. Creative Media Partners, LLC, 2018.

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41

Ro, Yoonhyuk. Common-mode and Power Supply Noise Rejection in Low Voltage Analog Circuits. Dissertation Discovery Company, 2018.

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42

Mondal, Subrata K. Transformerless Multi-Level Medium-voltage Uninterruptable Power Supply System: United States Patent 9985473. Independently Published, 2020.

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43

Anderson, P., J. Schlabbach, D. Blume, T. Stephanblome, and M. Daly. Voltage Quality in Electrical Power Systems. Institution of Engineering & Technology, 2001.

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44

Paschal, John M. Ec & M: Understanding NEC Rules on Medium Voltage Power Systems. 2nd ed. EC&M Books, 2002.

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45

Dasgupta, Anindya, and Parthasarathi Sensarma. Design and Control of Matrix Converters: Regulated 3-Phase Power Supply and Voltage Sag Mitigation for Linear Loads. Springer, 2018.

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46

Dasgupta, Anindya, and Parthasarathi Sensarma. Design and Control of Matrix Converters: Regulated 3-Phase Power Supply and Voltage Sag Mitigation for Linear Loads. Springer, 2017.

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47

Piguet, Christian. Low-Power Processors and Systems on Chips. Taylor & Francis Group, 2006.

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48

Effects on microwave power output of size of load, continuous (intermittent) use, position of load, and variation in mains supply voltage. London: MAFF Publications, 1994.

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49

Pedram, Massoud, and Jan M. Rabaey. Power Aware Design Methodologies. Springer, 2002.

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50

Pedram, Massoud, and Jan M. Rabaey. Power Aware Design Methodologies. Springer London, Limited, 2007.

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