• Title/Summary/Keyword: Temperature Compensation Circuit

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Measurement of Compression Temperature in Cylinder by using the Compensation Circuit of Thermocouple (열전대 보상회로에 의한 실린더 내에서의 압축온도 측정)

  • Kwon, Soon-Ik
    • Journal of the Korean Society of Industry Convergence
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    • v.3 no.2
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    • pp.149-154
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    • 2000
  • The purpose of this study is to measure the compression temperature in cylinder by using the fine thermocouple. As for using the thermocouple, it's response time delay should be regarded, even if it is a fine one. So, the output of thermocouple needs some compensation. The compensation circuit, which consists of a differential and an adding circuit is used for the compensate the time lag. And the time constant of the compensation circuit is determined the time between the TDC and the maximum point of the thermocouple output. Using this compensation circuit, the compression temperature is investigated of the cylinder in the diesel engine.

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Thermal Compensation Circuit with Improved Compensation Characteristic for Power Amplifier (개선된 보상특성을 갖는 증폭기용 온도보상회로)

  • Jung, Young-Bae
    • Journal of IKEEE
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    • v.16 no.3
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    • pp.177-181
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    • 2012
  • This paper introduces a thermal compensation circuit with improved compensation characteristic for amplifiers to provide stable output power regardless environmental temperature. The proposed thermal compensation circuit is composed of two branchline couplers having two diodes between them. And, the thermistor whose resistance varies significantly with temperature inversely and a operational amplifiers, so called as OP-amp, control the diodes in the compensations circuit to realize more effective thermal compendation characteristic compared with conventional circuit.

Design of Temperature Compensation Circuit to Compensate Temperature Characteristics of VCO (VCO의 온도 특성 보상을 위한 온도 보상 회로의 설계)

  • Kim, Byung-Chul;Huang, Gui-Hua;Cho, Kyung-Rae;Lee, Jae-Buom
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.21 no.3
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    • pp.223-228
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    • 2010
  • In this paper, temperature compensation circuit for the X-band voltage controlled oscillator(VCO) is presented by using the temperature sensor with the OP-AMP circuit. The frequency drifting by the temperature could be compensated by applying the tuning voltage which include the linearly changing output voltage of the temperature sensor. As a result, the frequency variation is reduced to 6.6~4.4 MHzfrom the 71~73 MHz variation with the compensation circuit over -30~+$60^{\circ}C$ range, when VCO is operated in the frequency range of 9.95~10.05 GHz.

A 2-stage CMOS operational amplifier with temperature compensation function for sensor signal processing (센서 신호 처리를 위한 온도 보상 기능을 가진 2단 CMOS 연산 증폭기)

  • Ha, Sang-Min;Seo, Sang-Ho;Shin, Jang-Kyoo
    • Journal of Sensor Science and Technology
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    • v.18 no.4
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    • pp.280-285
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    • 2009
  • In this paper, we designed a 2-stage CMOS operational amplifier with temperature compensation function using 2-poly 4-metal 0.35 $\mu$m standard CMOS technology. Using two bias circuits, the positive temperature coefficient(PTC) and the negative temperature coefficient(NTC) of the bias circuit are canceled out each other. When reference current circuit is simulated that it has a temperature coefficient of -150 ppm/$^{\circ}C$ with a temperature change from 0 $^{\circ}C$ to 120 $^{\circ}C$. Also the proposed circuit has a temperature coefficient of -0.011 dB/$^{\circ}C$ of DC open loop gain with the same temperature range.

Design of an Embedded RC Oscillator With the Temperature Compensation Circuit (온도 보상기능을 갖는 내장형RC OSCILLATOR 설계)

  • 김성식;조경록
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.40 no.4
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    • pp.42-50
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    • 2003
  • This paper presents an embedded RC oscillator which has temperature compensation circuits. The conventional RC oscillator has frequency deviation about 15%, which is caused by variation of resistors and the reference voltage of schmitt trigger from the temperature condition. In this paper, the proposed circuit use a CMOS bandgap reference having balanced current temperature coefficients as a triggering voltage of schmitt trigger. The constant current sources consist of current mirror circuit with the positive and negative temperature coefficient. The proposed circuit shows less 3% frequency deviation for variation of temperature, supply voltage and process parameters.

Design of Temperature Compensation Circuit for Satisfying the Intermodulation Specification of Power Amplifier (전력증폭기의 혼변조 규격 만족을 위한 온도보상회로 설계)

  • Park, Won-Woo;Kim, Byung-Chul;Cho, Kyung-Rae;Lee, Jae-Buom
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.14 no.12
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    • pp.2609-2614
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    • 2010
  • Temperature compensation circuit is implemented by using the temperature sensor, and Intermodulation (IM) Specification of Power Amplifier is satisfied in the temperature range of $-30^{\circ}C{\sim}60^{\circ}C$ with this temperature compensation circuit. The output voltage of temperature compensation circuit which vary 170mV with the temperature is applied to the gate of TR in 3W output power Amplifier. As the result, right 3rd IM component is -18.5~-26dBm, left 3rd IM component is -18.5~-35dBm, and the left and right 5th IM component is -24~-26dBm in the temperature range of $-30^{\circ}C{\sim}60^{\circ}C$. It is confirmed that IM specification of power amplifier which is under -17dBm in the whole temperature range is satisfied.

Hardware temperature compensation technique for hot-wire anemometer by using photoconductive cell (광도전성저항을 이용한 열선유속계의 하드웨어적 온도보상에 관한 연구)

  • Lee, Sin-Pyo;Go, Sang-Geun
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.20 no.11
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    • pp.3666-3675
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    • 1996
  • A new hardware temperature compensation method for hot-wire anemometer is investigated and an analog compensating circuit is proposed in this article. A photoconductive cell is introduced here as a variable resistor in the anemometer bridge and the linearized output of a thermistor is used to monitor the input of the photoconductive cell. In contrast with the conventional method, any type of temperature sensor can be used for compensation if once the output of thermometer varies linearly with temperature. So the present technique can diversify the compensating means from a conventional passive compensating resistance to currently available thermometers. Because the resistance of a photoconductive cell can be set precisely by adopting a stabilizing circuit whose operation is based on the integration function of the operational amplifier, the accuracy of compensation can be enhanced. As an example of linearized thermometer, thermistor sensor whose output is linearized by a series resistor was used to monitor the fluid temperature variation. Validation experiment is conducted in the temperature ranged from 30 deg. C to 60 deg. C and the velocity up to 40 m/s. It is found that the present technique can be adopted as a compensating circuit for anemometer and hot-wire type airflow meter.

A Study on the ASIC of Temperature Compensation Circuit for AFCI (AFCI용 온도보상회로의 ASIC화에 관한 연구)

  • Yang, Seung-Kook;Shin, Myoung-Ho
    • Proceedings of the Korean Institute of IIIuminating and Electrical Installation Engineers Conference
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    • 2009.05a
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    • pp.293-296
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    • 2009
  • In order to protect the electrical fire, AFCI(Arc Fault Cirruit Interrupter) was obligated to adopted in United States of America since 2002. AFCI using by line resistor of neutral trace needs to compensate the resistance variation of the line resistor by temperature variation. In this paper, the ASIC including the temperature compensation circuit is implemented. The successful implementation is verified by showing the effectiveness of an electric and a temperature characteristics for ARC signals by simulation results.

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Design of Temperature Compensation Circuit for W-band Radar Receiver (W-band 레이더 수신기용 온도보상회로 설계)

  • Lee, Dongju;Kim, Wansik;Kwon, Jun-Beom;Seo, Mihui;Kim, Sosu
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.20 no.4
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    • pp.129-133
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    • 2020
  • In this paper, a temperature compensation circuit is presented in order to mitigate gain variability due to temperature in the W-band low-noise amplifier (LNA). The proposed cascode temperature compensation bias circuit automatically controls gate bias voltages of the common-source LNA in order to suppress variations of small-signal gain. The designed circuit was realized in a 100-nm GaAs pHEMT process. The simulated voltage gain of W-band LNA including the proposed bias circuit is >20 dB with gain variability less than ±0.8 dB in the range of temperatures between -35 to 71℃. We expect that the proposed circuit contributes to millimeter-wave receivers for stable performances in radar applications.

A study on the development of constant temperature hot wire type air flow meter for automobiles (자동차용 정온도 열선식 공기유량계의 개발에 관한 연구)

  • 조성권;유정열;고상근;김동성
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.16 no.12
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    • pp.2407-2414
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    • 1992
  • Constant temperature hot wire air flow meter for automobiles requires temperature compensation system because hot wire output signal is sensitive to ambient temperature variations as well as fluid velocity. The objectives of the present study are to design an air flow meter circuit which is capable of compensating the hot wire output signal for ambient temperature variations and to investigate the mechanism of such temperature compensation. This circuit is composed of platinum hot wire, platinum resistor, two variable resistors, a constant resistor and a DC-amplifier. In particular, by simply replacing a constant resistor in one of the bridge arms of the conventional circuit with platinum resistor and a variable resistor for the purpose of temperature compensation, the deviation of output signal with respect to ambient temperature variations between 27deg. C 70deg. C could be reduced to less than 2.5% for mass flow rate and to less than 5% for velocity respectively. The mechanism of temperature compensation against ambient temperature variations was explained by means of measuring the heat transfer coefficient with hot wire temperature variations and analyzing and analyzing conventional empirical equations qualitatively.