Academic literature on the topic 'Voltage Divider Circuit'

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Journal articles on the topic "Voltage Divider Circuit"

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Selvam, K. C., and S. Latha. "A Novel Voltage Divider Circuit." Engineering, Technology & Applied Science Research 2, no. 5 (2012): 278–80. http://dx.doi.org/10.48084/etasr.239.

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A novel analog divider is described in this paper. The circuit enables the division of a dc voltage with another dc voltage. The constant of the division is dependent upon a third dc voltage and a pair of resistors. Employing a precision source for the third dc voltage and matched resistors, an acceptable level of accuracy can be obtained.
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Jetsdaporn, Satansup, and Tangsrirat Worapong. "1.5-V CMOS Current Multiplier/Divider." International Journal of Electrical and Computer Engineering (IJECE) 8, no. 3 (2018): 1478–87. https://doi.org/10.11591/ijece.v8i3.pp1478-1487.

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A circuit technique for designing a compact low-voltage current-mode multiplier/divider circuit in CMOS technology is presented. It is based on the use of a compact current quadratic cell able to operate at low supply voltage. The proposed circuit is designed and simulated for implementing in TSMC 0.25-m CMOS technology with a single supply voltage of 1.5 V. Simulation results using PSPICE, accurately agreement with theoretical ones, have been provided, and also demonstrate a maximum linearity error of 1.5%, a THD less than 2% at 100 MHz, a total power consumption of 508 W, and -3dB small-si
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Bordyug, Alexander Sergeevich. "Developing model of transient processes in transformer under capacitive load." Vestnik of Astrakhan State Technical University. Series: Marine engineering and technologies 2022, no. 2 (2022): 80–84. http://dx.doi.org/10.24143/2073-1574-2022-2-80-84.

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Voltage transformers with capacitive loading during transients can cause significant distortion of the secondary voltage of the ship's network. For the analysis, a well-known nonlinear model of a single-phase two-winding transformer is used, in which the magnetic flux is divided into “working” and leakage fluxes coupled to individual windings that close outside the core. For practical purposes, when using such transformers, it is important to know both the conditions for the occurrence of autoparametric oscillations and the dynamics of the transient process. It is convenient to carry out a com
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Pant, Pragya, Nihal Shrivastava, Muskan Arora, and Ruchi Paliwal. "Wilkinson Power Divider." International Journal for Research in Applied Science and Engineering Technology 11, no. 5 (2023): 163–69. http://dx.doi.org/10.22214/ijraset.2023.51432.

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Abstract: The basic design of a power divider with two symmetrical quarter-wavelength branches that provide matching conditions at all of its ports is the focus of the research. Fr4 was chosen as the design's substrate, and 2.9 GHz is the operating frequency for the circuit. The structure of the power divider rules, which were derived from a circuit-theoretic analysis of AC power-flow expressions, reflects the topology and voltage profile of the network. We show how the power divider laws can be used to analyse power networks. The Wilkinson Power Divider has several uses, including feeding cir
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Asl, S. N., M. Tarkhan, and M. S. Nia. "A Gain Programmable Analog Divider Circuit Based on a Data Converter." Engineering, Technology & Applied Science Research 7, no. 6 (2017): 2251–55. https://doi.org/10.5281/zenodo.1118350.

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Analog dividers are widely used in analog systems. Analog realization of such circuits suffer from limited dynamic range and non-linearity issues, therefore, extra circuitry should be required to compensate these types of shortcomings. In this paper a gain controllable, analog divider is proposed based on data converters. Our circuit can be implemented both in current and voltage mode by selecting proper architectures. The resolution, power consumption and operation speed can be controlled by proper selecting of components. Another advantage of our circuit is its gain programmability. Moreover
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Satansup, Jetsdaporn, and Worapong Tangsrirat. "1.5-V CMOS Current Multiplier/Divider." International Journal of Electrical and Computer Engineering (IJECE) 8, no. 3 (2018): 1478. http://dx.doi.org/10.11591/ijece.v8i3.pp1478-1487.

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A circuit technique for designing a compact low-voltage current-mode multiplier/divider circuit in CMOS technology is presented. It is based on the use of a compact current quadratic cell able to operate at low supply voltage. The proposed circuit is designed and simulated for implementing in TSMC 0.25-m CMOS technology with a single supply voltage of 1.5 V. Simulation results using PSPICE, accurately agreement with theoretical ones, have been provided, and also demonstrate a maximum linearity error of 1.5%, a THD less than 2% at 100 MHz, a total power consumption of 508 W, and -3dB small-si
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Siddaiah, Premananda Belegehalli, Sahithi Narsepalli, Sanya Mittal, and Abdur Rehman. "Area and power efficient divide-by-32/33 dual-modulus pre-scaler using split-path TSPC with AVLS for frequency divider." Journal of Electrical Engineering 74, no. 5 (2023): 403–12. http://dx.doi.org/10.2478/jee-2023-0048.

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Abstract Pre-scalers are electronic circuits used in phase-locked loops to multiply frequencies. This is achieved by dividing the high-frequency signals generated from a voltage-controlled oscillator. The high-frequency operation of pre-scaler circuits leads to significantly higher power consumption. To address this, D flip-flops (D-FF) realized using true-single phase clocking (TSPC) logic. The work suggests incorporating the Adaptive Voltage Level Source (AVLS) circuit with the Dual Modulus Pre-Scaler (DMPS) circuit to reduce power consumption. In addition to the incorporation of the AVLS ci
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Cao, Bao Feng, Jiang Bing Fan, Li Jun Song, et al. "Design of a Two Levels Self-Integrating Capacitive Divider." Applied Mechanics and Materials 599-601 (August 2014): 882–86. http://dx.doi.org/10.4028/www.scientific.net/amm.599-601.882.

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A ims . A kind of two levels self-integrating capacitive voltage divider is designed to online measure high voltage nanosecond pulse. Methods. The circuit principle of capacitive divider is analyzed, and the theoretical voltage ratio is calculated. The calibration is carried out by using a low voltage pulse source. The divider with a primary voltage divide ratio 601 has been tested to frequency response exceed 1GHz. The second voltage divide ratio can be set flexibly using different ratio attenuators according to the different voltage level of the source. Result. Finally, this divider is used
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Gyawali, Yadu Prasad, and Mohit Angurala. "Design of Frequency Divider (FD/2 and FD 2/3) Circuits for a Phase Locked Loop." International Journal on Future Revolution in Computer Science & Communication Engineering 8, no. 1 (2022): 27–31. http://dx.doi.org/10.17762/ijfrcsce.v8i1.2103.

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This paper reports on three design of Frequency Divider (FD/2) and Frequency Divider (FD 2/3) circuits. Tanner EDA tool developed on 130nm CMOS technology with a voltage supply of 1.3 V is used to build, model, and compare all circuits. For the FD/2 circuit, E-TSPC Pass Transistor logic uses 1.77 µW, whereas TSPC logic consumes 5.57 µW for the FD 2/3 circuit. It implies that the TSPC logic is the best solution since it meets the speed and power consumption requirements.
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Volodymyr, Brzhezitsky, Trotsenko Yevgeniy, and Haran Yaroslav. "OPTIMIZATION OF AMPLITUDE-FREQUENCY CHARACTERISTIC OF BROADBAND VOLTAGE DIVIDER INTENDED FOR MEASUREMENT OF POWER QUALITY PARAMETERS." TECHNOLOGY AUDIT AND PRODUCTION RESERVES 3, no. 1(53) (2020): 35–39. https://doi.org/10.15587/2706-5448.2020.205132.

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<em>The object of research is the circuit diagram of a broadband capacitive-resistive voltage divider with a series-parallel connection of its resistive and capacitive components. For many years, the use of voltage dividers was limited to measuring various voltages in high-voltage laboratories. However, voltage dividers, compared to voltage transformers, are characterized by a wider bandwidth, therefore they began to be considered as one of the main means of measuring voltages in high-voltage electric networks. One of the catalysts for the implementation of this solution may be the intensive d
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Dissertations / Theses on the topic "Voltage Divider Circuit"

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Bucossi, William Louis. "Process voltage temperature compensated on-chip CMOS active inductors for Wilkinson power dividing applications." Thesis, Montana State University, 2008. http://etd.lib.montana.edu/etd/2008/bucossi/BucossiW0508.pdf.

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Few academic or industry feasibility studies have been published on the implementation of Active Inductors in a standard CMOS IC process as an alternative to the physically large and typically quite lossy spiral inductors. Development efforts at the simulation level have achieved only limited success in creating an Active Inductor topology that exhibits the quality and inductive tolerance necessary for the large-scale, high-volume production common to most IC components. This thesis focuses on manufacturing and characterizing the basic component circuitry necessary for the implementation of a
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Wang, Shen. "Design and Analysis of a Low-Power Low-Voltage Quadrature LO Generation Circuit for Wireless Applications." Diss., Virginia Tech, 2012. http://hdl.handle.net/10919/39301.

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The competitive market of wireless communication devices demands low power and low cost RF solutions. A quadrature local oscillator (LO) is an essential building block for most transceivers. As the CMOS technology scales deeper into the nanometer regime, design of a low-power low-voltage quadrature LO still poses a challenge for RF designers. This dissertation investigates a new quadrature LO topology featuring a transformer-based voltage controlled oscillator (VCO) stacked with a divide-by-two for low-power low-voltage wireless applications. The transformer-based VCO core adopts the Armstrong
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Ke, Po-Yu, and 柯博喻. "High speed injection divider and Multi-Band Using Switched Resonator Voltage Control Oscillator circuit design and fabrication." Thesis, 2009. http://ndltd.ncl.edu.tw/handle/81683614501669722382.

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碩士<br>長庚大學<br>電子工程學研究所<br>97<br>In this thesis, proposes three designs of Voltage Controled Oscillator (VCO) relate circuits and they are designed, implemented and measure. In WIN Semiconductor pseudomorphic High Electron Mobility Transistor (pHEMT) technology is presented. First component a low noise X-band differential Colpitts VCO, these circuit are fabricated in 0.15μm GaAs pHEMT technology . Second component a 0.5 μm ED-Mode pHEMT multiple frequency VCO, the multiple frequencies are achieved using a switched resonator topology in LC cross-coupled VCO. Third component a Ku-band divide
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Dai, Wei-you, and 戴瑋佑. "CMOS Voltage Controlled Oscillator with Magnetically Coupled Transformer Switch for Dual-band Application and 5 GHz VCO and Divider Integrated Circuit." Thesis, 2015. http://ndltd.ncl.edu.tw/handle/ugjhk8.

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碩士<br>國立中央大學<br>電機工程學系<br>103<br>As more increasing demands for low-cost in wireless communication system, multi-standards circuits are proposed to support the requirements. Therefore, RF transceivers become more complex and consume more power to satisfy the different wireless systems, which means that various kinds of local sources are needed meanwhile. Since voltage controlled oscillator (VCO) is an important sub-circuit in phase locked loop (PLL), this thesis includes five parts, which are motivation, two VCOs for dual-band application, integrated circuits for 5GHz and future work. Chapter
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Carr, John. "A 26 GHz Phase-Locked Loop Frequency Multiplier in 0.18-um CMOS." Thesis, 2009. http://hdl.handle.net/1974/1796.

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This thesis presents the analysis, design and characterization of an integrated high-frequency phase-locked loop (PLL) frequency multiplier. The frequency multiplier is novel in its use of a low multiplication factor of 4 and a fully differential topology for rejection of common mode interference signals. The PLL is composed of a voltage controlled oscillator (VCO), injection-locked frequency divider (ILFD) for the first divide-by-two stage, a static master-slave flip-flop (MSFF) divider for the second divide-by-two stage and a Gilbert cell mixer phase detector (PD). The circuit has bee
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Huang, Chen-Wei, and 黃辰瑋. "Low-Voltage Miller Divide-by-three Circuit for UWB RF Synthesizers." Thesis, 2008. http://ndltd.ncl.edu.tw/handle/37527044521765850264.

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碩士<br>國立成功大學<br>電機工程學系碩博士班<br>96<br>The paper mainly presents the design of a quadrature divide-by-3 structure which can apply to UWB radio frequency synthesizer. We embrace three block in this circuit:(1). 1.584 GHz QVCO, (2). Low-voltage quadrature mixer, and(3). Divide-by-2 circuit. The above 3 blocks will construct a divide-by-3 circuit by Miller type. In this Miller divider, considering the convenience while measurement, we integrate a QVCO into this divider. By using the signal generated by QVCO apply to Mixer; And then, in order to reduce power consumption and peak the wanted frequency-
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Nataraj, V. "Binary Inductive Voltage Divider Based Auto Balancing A C Bridge For Precise Measurements." Thesis, 1996. https://etd.iisc.ac.in/handle/2005/1709.

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Nataraj, V. "Binary Inductive Voltage Divider Based Auto Balancing A C Bridge For Precise Measurements." Thesis, 1996. http://etd.iisc.ernet.in/handle/2005/1709.

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Tsai, Ming-hsuan, and 蔡旻軒. "A Low-voltage/Low-power Miller Divide-by-three Circuit for UWB RF Frequency Synthesizers." Thesis, 2009. http://ndltd.ncl.edu.tw/handle/94439123105943320810.

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碩士<br>國立成功大學<br>電機工程學系碩博士班<br>97<br>The main part of this thesis is concerns the design of a Miller divide-by-three circuit with low supply voltage and low power consumption. The circuit consists of three function blocks such as a quadrature voltage-controlled oscillator (QVCO), a single-sideband (SSB) mixer and a digital divide-by-two circuit with current mode logic (CML) technique. According to the references, we can construct a Miller divide-by-three circuit by connecting the above three function blocks in a feedback loop.   Since the purpose of this Miller divide-by-three circuit is applie
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Books on the topic "Voltage Divider Circuit"

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Wright, A. G. Voltage dividers. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.003.0013.

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Voltage dividers provide accelerating voltages to generate multiplier gain. Dynode voltages must remain constant and independent of the light input to maintain stable gain. The standard resistive divider never quite satisfies this requirement, although acceptable performance can be achieved by careful design. The inclusion of zener diodes improves performance but field-effect transistor (FET) circuits can provide gain stability at high mean anode currents, regardless of whether the application is pulsed or analogue. Design procedures for active and semi-active voltage dividers are presented. D
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Understandable electric circuits. Institution of Engineering and Technology, 2010.

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Wright, A. G. The Photomultiplier Handbook. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.001.0001.

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This handbook is aimed at helping users of PMTs who are faced with the challenge of designing sensitive light detectors for scientific and industrial purposes. The raison d’être for photomultipliers (PMTs) stems from four intrinsic attributes: large detection area, high, and noiseless gain, and wide bandwidth. Detection involves a conversion process from photons to photoelectrons at the photocathode. Photoelectrons are subsequently collected and increased in number by the action of an incorporated electron multiplier. Photon detection, charge multiplication, and many PMT applications are stati
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Book chapters on the topic "Voltage Divider Circuit"

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Yadav, Swati, and Bhawna Aggarwal. "Low-Voltage Squarer–Divider Circuit Using Level Shifted Flipped Voltage Follower." In Lecture Notes in Mechanical Engineering. Springer Singapore, 2021. http://dx.doi.org/10.1007/978-981-15-8542-5_100.

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Zeng, Gengsheng Lawrence, and Megan Zeng. "Voltage Divider and Current Divider." In Electric Circuits. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-60515-5_7.

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Lee, Jri. "Voltage-Controlled Oscillators and Frequency Dividers." In Series on Integrated Circuits and Systems. Springer US, 2008. http://dx.doi.org/10.1007/978-0-387-76561-7_5.

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Mesbah, Fatima, Karim El Khadiri, Mohammed Ouazzani Jamil, et al. "Switching Power Supply Boost Converter Using 180 nm CMOS Technology." In Advances in Computational Intelligence and Robotics. IGI Global, 2024. http://dx.doi.org/10.4018/979-8-3693-3775-2.ch015.

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DC-DC (direct current) boost converters are used in a variety of applications, including battery packs for electric vehicles, power sources for white LEDs (light-emitting diode) and portable applications. This study offers a complete circuit design for a DC-DC boost converter using the cadence software for use in portable applications. The control circuits are composed of a bandgap, a voltage divider, a comparator, a ring oscillator, and a buffer. An inductor, Schottky diode, capacitor, and resistor serve as the load in the circuit's boost portion. This work discusses the design, simulation, a
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Magee, Patrick, and Mark Tooley. "Electronics and Biological Signal Processing." In The Physics, Clinical Measurement and Equipment of Anaesthetic Practice for the FRCA. Oxford University Press, 2011. http://dx.doi.org/10.1093/oso/9780199595150.003.0009.

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This chapter continues the discussion of electricity but looks at the effect of connecting components together and briefly looks at the operational amplifier and active circuits (circuits discussed in the previous chapter have been passive ones, which involve no electronic circuits). It will then describe how the circuits can be used to process biological signals. If a resistor, an inductor and a capacitor are joined as in Figure 5.1, the magnitude of the voltage across the resistor (Vout) will vary as the input frequency, Vin, changes, because of the properties of the capacitor and inductor.
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Sherman, Don. "Voltage divider switch adds range to DPM." In Electronic Circuits, Systems and Standards. Elsevier, 1991. http://dx.doi.org/10.1016/b978-0-7506-0068-2.50028-6.

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Gieras, Jacek F. "Operational Aspects." In Linear Induction Drives. Oxford University PressOxford, 1994. http://dx.doi.org/10.1093/oso/9780198593812.003.0006.

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Abstract “The electric circuits of an a.c. machine with m1 primary phase windings and m2 secondary phase windings are described by the following matrix equation: where R is the square diagonal matrix of the resistances of order m1+m2,L is the square diagonal matrix of the inductances of order m1+ m2, v(t) is the column matrix of phase voltages with m1+ m2 rows, and i(t) is the column matrix of phase currents with m1+ m2 rows. The secondary is divided into m2 discrete circuits with uniform current density distribution, similar to that of a solid moving member in electromechanical converters wit
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Quezada-Espinoza, Monica, and Genaro Zavala. "Research-Based Strategies in an Electric Circuits Lab." In Advances in Educational Technologies and Instructional Design. IGI Global, 2017. http://dx.doi.org/10.4018/978-1-5225-2026-9.ch018.

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This study reports the outcomes of comparing three methods to carry out a physics laboratory with active learning strategies: Tutorials in Introductory Physics (Tutorials) and RealTime Physics (RTP). A sample of 476 students was divided into three groups, about one third of the students used Tutorials, another third used RTP, and the last third used RTP with graphing calculators and probes. A multiple choice test was used to find that the three groups had statistically-significant differences on conceptual understanding of current concepts. Additionally, it was found differences in gains among
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Chan, C. C., and K. T. Chau. "Electric propulsion." In Modern Electric Vehicle Technology. Oxford University PressOxford, 2001. http://dx.doi.org/10.1093/oso/9780198504160.003.0005.

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Abstract An electric propulsion system is the heart of EVs. Its functional block diagram is shown in Fig. 5.1. Its job is to interface batteries with vehicle wheels, transferring energy in either direction as required, with high efficiency, under control of the driver at all times. From the functional point of view, an electric propulsion system can be divided into two parts—electrical and mechanical. The electrical part consists of the subsystems of electric motor, power converter, and electronic controller, whereas the mechanical part includes the subsystems of mechanical transmission (optio
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Albini, Angelo. "Of corpses, light and electricity." In Photochemistry. Royal Society of Chemistry, 2023. http://dx.doi.org/10.1039/bk9781837672301-00034.

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What is the essential requirement for the existence of living beings? In the early 19th century, this question was approached in two different ways. The first approach proposed that electricity was responsible for movement in animals, a theory known as animal electricity or Galvani’s theory. However, Volta presented a more materialistic perspective, stating that an electric circuit did not rely on the presence of an animal muscle to function (embodied in Volta’s pile, 1800). The second approach suggested that animal tissues possessed a component beyond their measurable chemical composition, ne
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Conference papers on the topic "Voltage Divider Circuit"

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Ostertak, Dmitriy I., Ekaterina Y. Kovalenko, Valery P. Dragunov, Dmitry M. Kazymov, and Maksim A. Kuznetsov. "The Bennet Doubler Circuit with a Transistor Voltage Divider for Kinetic Energy Harvesters." In 2024 IEEE 3rd International Conference on Problems of Informatics, Electronics and Radio Engineering (PIERE). IEEE, 2024. https://doi.org/10.1109/piere62470.2024.10805056.

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Caisaluisa, Oliver, Eduardo Holguín, and Luis Miguel Prócel. "Low-complexity Dual Voltage Level Circuitry For Voltage-Divider-Based Content-Addressable Memory (CAM) Based On Two Supply Voltages." In 2024 IEEE Eighth Ecuador Technical Chapters Meeting (ETCM). IEEE, 2024. http://dx.doi.org/10.1109/etcm63562.2024.10746141.

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Chhabra, Aakriti, Bhawna Aggarwal, and Raj Senani. "Low Voltage Squarer/Divider Circuit based on FGMOS." In 2023 11th International Conference on Internet of Everything, Microwave Engineering, Communication and Networks (IEMECON). IEEE, 2023. http://dx.doi.org/10.1109/iemecon56962.2023.10092333.

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Alif Muslan, Muhammad Izzat, Wan Fazlida Hanim Abdullah, Zurita Zulkifli, and Aimi Bazilah Binti Rosli. "Electrical Conductivity Sensing Circuit Design Using Voltage Divider." In 2022 IEEE 12th Symposium on Computer Applications & Industrial Electronics (ISCAIE). IEEE, 2022. http://dx.doi.org/10.1109/iscaie54458.2022.9794507.

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Chhabra, Aakriti, Bhawna Aggarwal, and Raj Senani. "FGMTL based Low Voltage Current Mode Squarer/Divider Circuit." In 2021 IEEE 18th India Council International Conference (INDICON). IEEE, 2021. http://dx.doi.org/10.1109/indicon52576.2021.9691572.

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Soleimani, Mohammad, and Samad Sheikhaei. "Low-Voltage, Low Power, Low Area CMOS Current-Mode Divider Circuit." In 2020 28th Iranian Conference on Electrical Engineering (ICEE). IEEE, 2020. http://dx.doi.org/10.1109/icee50131.2020.9260610.

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Sato, S. "Approximating RC distributed circuit in simulating 700 kV potential divider for switching impulse voltage." In 11th International Symposium on High-Voltage Engineering (ISH 99). IEE, 1999. http://dx.doi.org/10.1049/cp:19990551.

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Soares Farias Neto, João, Lucas Vinicius Hartmann, Camila Seibel Gehrke, and Fabiano Salvadori. "Design, Development and Analysis of a Voltage Sensor Based on Capacitive Voltage Divider for Smart Grid Applications." In Congresso Brasileiro de Automática - 2020. sbabra, 2020. http://dx.doi.org/10.48011/asba.v2i1.1109.

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With the recent push for renewable energy several former consumers units now have energy generation capabilities. While this approach is beneficial in general, it also poses new challenges for cooperation and grid stability. The new smartgrid now needs bidirectional power flow, data communication, and intelligent controls in order to ensure reliable operation. Voltage sensing plays a key role, capacitive voltage transformers have been demonstrated useful for high- voltage (100kV+), but have not yet been discussed for low (220V) and medium (13kV) voltage. This paper proposes a simplified capaci
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Al-Absi, Munir A. "Low-voltage and low-power CMOS current-mode divider and 1/x circuit." In 2010 International Conference on Electronic Devices, Systems and Applications (ICEDSA). IEEE, 2010. http://dx.doi.org/10.1109/icedsa.2010.5503064.

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Panko, Vaclav, Stanislav Banas, Karel Ptacek, Richard Burton, and Josef Dobes. "An accurate DC and RF modeling of nonlinear spiral polysilicon voltage divider in high voltage MOSFET transistor." In 2012 IEEE 11th International Conference on Solid-State and Integrated Circuit Technology (ICSICT). IEEE, 2012. http://dx.doi.org/10.1109/icsict.2012.6467635.

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