Now showing 1 - 10 of 14
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    A simple CMOS-based algorithmic ADC
    (2007-12-01)
    Kaewpoonsuk, Anucha
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    This paper presents a one-bit cell of reverse Gray-code algorithmic analog-to-digital converter. The proposed converter comprises of full-wave rectifier, current mirrors, and current comparator. The realization method is simple, small in size, and suitable for integrated circuit form. The design strategy is based on the MOS biased at the edge of conduction to provide a low accumulated error and a low distortion in the transfer characteristic. An N-bit resolution can be achieved by cascading of the N proposed one-bit cells. PSPICE simulation results supporting the characteristics of proposed circuit are agreed with the expected values. © ICROS.
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    A simple amplitude detector-based demodulator for resolver converters
    (2010-12-01)
    Kaewpoonsuk, Anucha
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    Katman, Ratchanoo
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    Kamsri, Thawatchai
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    This paper presents a simple method based on sinusoidal-amplitude detector for realizing the resolver-signal demodulator. The proposed demodulator consists of two full-wave rectifiers, two ±unity-gain amplifiers, and two sinusoidal-amplitude detectors with control switches. Two output voltages are proportional to sine and cosine envelopes of resolver-shaft angle without low-pass filter. Experimental results demonstrating characteristic of the proposed circuit are included. ©ICROS.
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    Enhanced sinusoidal amplitude detector for fast response applications
    (2013-03-28)
    Kaewpoonsuk, Anucha
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    Poonart, Krerkkit
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    In this paper, an enhanced sinusoidal-amplitude detector suitable for fast response applications is proposed. Implementation method based on commercially available devices employs a novel control signal generator to improve operation speed of previously reported sinusoidal amplitude detector. The control signal generator used consists of a time-delay circuit, AND logic gate, and three comparators. The enhanced amplitude detector provides faster amplitude detection as well as smaller operation error for amplitude input changes. Experimental results verify a good agreement with theoretical expectation. © 2013 ICIC International.
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    An amplitude detector for variable frequency sinusoidal signals
    (2006-12-01)
    Raksachat, Pariwat
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    Chaikla, Amphawan
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    Kaewpoonsuk, Anucha
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    Julsereewong, Prasit
    In this paper, a JK-flip-flop-based logic circuit is described. Using two output signals of this designed logic circuit to control a buffered peak detector followed by a simple sample-and-hold circuit in sequential operation, a sinusoidal amplitude detector is proposed. The proposed detector allows the frequency of input signals to be varied over a wide range. Experimental results verifying the performances of the proposed circuit are in close agreement with the expected values. © 2006 ICASE.
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    Simple resistance-to-period converter for resistive sensors
    (2012-12-01)
    Tongpakpanang, Jaturon
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    Kaewpoonsuk, Anucha
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    A method for realization of resistance-to-period converter is introduced in this article. The principle of converter utilizes the behavior of designed astable multivibrator, which is implemented using commercial available and low cost devices. The operation of proposed converter circuit is in current mode. Therefore, the resistance is linearly converted to period and also converted to frequency with invert proportional relationship. The conversion gain of the proposed converter can be adjusted by electronic means. The configuration of the proposed converter is simple and small in size. Experimental results verifying the proposed converter performance are included in detail. The relative error of about 0.8 % is observed. © 2012 ICROS.
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    A novel resolver-to-DC converter based on OTA-based inverse-sine function circuit
    A new technique for realizing the resolver-to-DC converter using the OTA-based inverse-sine function circuit is presented. The proposed converter comprises the demodulator, absolute detector, minimum detector, ± unity-gain amplifier, controlled signal logic circuit, and OTA-based inverse-sine function circuit. The output voltage is linearly proportional to the resolver angle with maximum absolute error of about 0.195%, which is less than the error from the conventional resolver-to-DC converter based on the similar OTA-based inverse-sine function circuit. PSPICE simulation and experimental results verifying the performances of the proposed circuit are in close agreement with the expected values. © 2008 SICE.
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    Item type:Publication,
    A simple resolver-to-DC converter
    (2006-12-01)
    Kaewpoonsuk, Anucha
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    Kamsri, Thawatchai
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    In this paper, a simple resolver-to-dc converter is presented. The realization method is based on the proposed OTA-based sin<sup>-1</sup> function circuit. The proposed converter provides a simple configuration and produces an output signal, which is linearity proportional to the shaft angle. Performances of the proposed circuit are discussed in detail and confirmed by the experimental results. © 2006 ICASE.
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    Item type:Publication,
    Resolver-signal demodulator for variable frequency excitation signals
    (2014-02-04)
    Kaewpoonsuk, Anucha
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    ;
    An alternative approach to implement the resolver-signal demodulator is presented in this paper. The realization technique utilizes the phase shift behavior of an all-pass filter connected with a designed logic circuit to generate the control signals for sub-circuits. The proposed demodulator produces two output signal voltages, which are the sine and cosine envelopes of resolver-shaft angle without low-pass filter circuit. Experimental results verifying the performance of the proposed circuit are closely agreed with the expected values. © 2014 ISSN 1881-803X.
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    Item type:Publication,
    High frequency CMOS precision full-wave rectifier circuit
    (1999-12-01)
    Guntapong, Rojanakorn
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    Fongsamut, Chalermpan
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    Kaewpoonsuk, Anucha
    A CMOS integrable circuit technique for the realization of full-wave precision rectifier circuit, which operates throughout in the current domain, is presented. The circuit achieves a wide dynamic range and a wide-band capability. The rectifying characteristic of the circuit exhibits a low distortion in the output signal at low level input signal, Simulation results demonstrating the circuit performance are included.
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    Item type:Publication,
    A full-range-360° resolver-to-DC converter
    (2007-12-01)
    Kaewpoonsuk, Anucha
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    Kamsri, Thawatchai
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    In this paper, a triangular-to-sawtooth waveform converter and a control logic circuit have been described. Using two designed circuits connected with OTA-based sine-to-triangular wave converter and demodulator, a resolver-to-DC converter is proposed. The converter linearly produces output signal proportional to the shaft angle in full range of 360°. Experimental results verifying the performances of the proposed converter circuit agree well with the theoretical prediction. ©ICROS.