• Title/Summary/Keyword: Feedforward Amplifier

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A Study on the Design of a New Type Feedforward Linearizer Using Delay Line to Control Correction Amplifier (Correction증폭기 제어용 Delay Line을 이용한 새로운 형의 Feedforward 선형화기 설계에 관한 연구)

  • Gang, Won-Tae;Jang, Ik-Ju;Nam, Sang-Dae
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.37 no.2
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    • pp.75-82
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    • 2000
  • In this Paper, a new type of feedforward linearizer using a delay line which controls the phase characteristics of the correction amplifier block is proposed. The extra delay line provides the control-ability of IM signals so that the IM rejection is accomplished without the conventional pilot tone. The error signal loop consists of several key components such as phase shifter and attenuator, subtractor. These key components are replaced by new designs in order to obtain better linearization characteristics without the pilot tone generator which is indispensable in the conventional linearizer designs. The proposed linearizer was designed at Korean PCS band and combined with 35W HPA manufactured by KMW inc., and tested with two-tone signals separated 0.6MHz apart at the center frequency of 1855MHz. The experimental results show C/l improvement by 16.9 ~ 24.6 dB over 15 dB dynamic range(30 ~45 dBm) which gave IMD of 58.5~63.2 dBc for the designed LPA.

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Design & Fabrication of a Feedforward Power Amplifier for 900 MHz Band RFID Readers (900 MHz 대역 RFID 리더기용 Feedforward형 선형 전력 증폭기 설계 및 제작)

  • Jung, Byoung-Hee;Chae, Gyu-Sung;Kim, Chang-Woo
    • Journal of Advanced Navigation Technology
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    • v.8 no.2
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    • pp.184-190
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    • 2004
  • A feedforward linear power amplifier (FLPA) has been developed for UHF-band RFID reader applications. The main and error amplifiers are composed of a 2 stage so that linearity of the FLPA can be improved. The FLPA has been implemented on an FR-4 substrate (Er=4.7 and thickness=0.8 mm) with 3-dB and 10-dB hybrid couplers for input/output power divider and combiner. For 2-tone measurement (input level=-11 dBm at $f_1$=915 MHz and $f_2$=916 MHz), the FLPA exhibits a -18.52 dBm of $IMD_3$, which indicates that $IMD_3$ cancellation with feedforward loop is more than 27 dB. From 890 to 960 MHz, 1-dB gain compression output power and power gain of the FLPA are higher than 30 dBm and 40 dB, respectively.

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The Design and Implementation of MCPA for IMT-2000 using Feedforward Linearization (Feedforward 선형화 기법을 이용한 IMT-2000용 MCPA의 설계 및 제작)

  • 노상연;정성찬;정종한;박명석;박천석
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.12 no.1
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    • pp.99-106
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    • 2001
  • In this paper, an 1-Watt amplifier for IMT-2000 was designed and fabricated using feedfarward method which has the highest linearity and wide bandwidth. Since feedforward is sensitive to surroundings for example heat, input power level, time and so on, adaptive controller using micro controller is adopted. We fabricated a HPA with 35 dB gain, 40 dBm of 1-dB compression point, and utilized variable attenuator and variable phase shifter using reflection type to cancel loop signal. From the measured results, the fo11owing facts were obtained, in signal loop, main carrier over 35 dB was suppressed and error signal over 30 dB is cancelled in error loop, IMD characteristics above 60 dBc were obtained.

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An active-RC analog channel selection filter for IEEE 802.11a wireless LAN (IEEE 801.11a 무선랜을 위한 Active-RC 아날로그 채널 선택 필터)

  • Hwang, Jin-Hong;Yoo, Chang-Sik
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.43 no.11 s.353
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    • pp.77-82
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    • 2006
  • Analog channel selection filter is described which is designed for a direct-conversion receiver of a IEEE 802.11a wireless LAN. The channel selection filter is an active-RC fifth-order Chebyshev filter with 10MHz cut-off frequency. Two-stage operational amplifier of the filter employs a current re-using feedforward frequency compensation scheme to minimize the power consumption. The filter has been implemented in a 0.18mm CMOS technology and the experimental results show 20mW power consumption with 1.8V supply voltage and 19dB out-of-band iIP3.

Automatic Velocity Ripple Compensation Algorithm by Feedforward Control (피드포워드를 이용한 속도리플 자동 보상 알고리즘)

  • Han, Ji Hee;Kim, Jung Han
    • Journal of the Korean Society for Precision Engineering
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    • v.30 no.9
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    • pp.951-959
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    • 2013
  • In order to improve the speed performance of the direct drive mechanical systems, a comprehensive analysis of the velocity ripples of blushless DC motors should be required. Every motor has a certain level of torque ripples when it generates power, and the generated torque ripple also makes the velocity ripples in the final output stage in speed control system. In this paper, a novel algorithm for reducing velocity ripples is proposed based on the modeling of torque ripples for BLDC motors. Various algorithms have been made for torque ripples, but usually they should be installed inside the amplifier logic, result in the difficulties of flexibility for various kinds of torque ripples. The proposed algorithm was developed for being ported in the controller not the amplifier, and it has the capability of the automatic compensation adjustment. The performance of the proposed algorithm was verified by effective simulations and experiments.

A Study on the IMD Cancellation by Signal combining of Predistorter type (Predistorter 형태의 신호 결합에 의한 혼변조 신호 감쇠에 관한 연구)

  • Park, Ung-Hee;Cho, Han-You;Chang, Ik-Soo
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.38 no.1
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    • pp.20-26
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    • 2001
  • Predistorter linearizer having small size and good efficiency is frequently used in High Power Amplifier linearizer system. In this paper, the amount of IMD signal cancellation according to amplitude and phase of predistorter in predistorter type lincarizer is investigated by new experiment method. In the combining method of predistorter type, IMD signal is combined at the amplifier input port, the magnitude and phase of combining signals cannot be easily expected due to different magnitude and phase of incoming signals. By experiment, it is measured that Predistorter linearizer has lower amount of lMD signal cancellation than thoce of Feedforward linearizer at the same condition (amplitude and phase).

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A Study on the Design of Linear Power Amplifier at Digital Control System (디지털 제어방식의 선형전력증폭기 설계에 관한 연구)

  • 김갑기;조학현;조기량
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.6 no.5
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    • pp.724-730
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    • 2002
  • Digital communication systems are required to cause the minimum interference to adjacent channels, they must therefore employ the linear power amplifiers. In respect to linear power amplifiers, there are many linearization techniques. Feedforward power amplifier represent very wide bandwidth and high linearization capability. In the feedforward systems, overall efficiency is reduced due to the loss of delay line. In this paper, delay filter instead of transmission delay line adapted to get more high efficiency. Experimental results showed that ACLR (Adjacent Channel Leakage Ratio) has improved 17.43(dB), which is added 3.44(dB) by using the delay filter.

A Multi-channel CMOS Feedforward Transimpedance Amplifier Array for LADAR Systems (라이다 시스템용 멀티채널 CMOS 피드포워드 트랜스임피던스 증폭기 어레이)

  • Kim, Seung-Hoon;Park, Sung Min
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.64 no.12
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    • pp.1737-1741
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    • 2015
  • A multi-channel CMOS transimpedance amplifier(TIA) array is realized in a $0.18-{\mu}m$ CMOS technology for the applications of panoramic scan LADAR systems. Each channel consists of a PIN photodiode and a feed-forward TIA that exploits an inverter input stage followed by a feed-forward common-source amplifier so as to achieve lower noise and higher gain than a conventional voltage-mode inverter TIA. Measured results demonstrate that each channel achieves $76-dB{\Omega}$ transimpedance gain, 720-MHz bandwidth, and -20.5-dBm sensitivity for $10^{-9}$ BER. Also, a single channel dissipates the power dissipation of 30 mW from a single 1.8-V supply, and shows less than -33-dB crosstalk between adjacent channels.

Design of Optical Receiver Using Independent-Gate-Mode Double-Gate MOSFETs (Independent-Gate-Mode Double-Gate MOSFET을 이용한 Optical Receiver 설계)

  • Kim, Yu-Jin;Jeong, Na-Rae;Park, Sung-Min;Shin, Hyung-Soon
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.47 no.8
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    • pp.13-22
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    • 2010
  • Independent-Gate-Mode Double-Gate(IGM-DG) MOSFET overcomes the limitation of bulk-MOSFET's channel controllability and enables to control the front and back-gate voltages independently. Therefore, circuit designs utilizing the IGM-DG MOSFETs provide the advantage of setting 4-terminal freely, hence achieving not only the performance improvement but also the larger scale integration. This paper presents a 15Gb/s optical receiver with a 1.0V power supply voltage, which consists of a transimpedance amplifier (TIA), a feedforward limiting amplifier (LA), and an output buffer. HSPICE simulations were conducted to confirm the circuit performance, and also to verify the circuit stability issues which may occur from the variations of process and supply voltage.

A Study on the Design of Power Amplifier for the Repeater using Code Division Multiple Access (CDMA방식 중계기용 전력증폭기의 설계에 관한 연구)

  • Kim, Han-Suk;Kim, Hoon-Yong;Kim, Dae-Jyung;Lee, Jong-Arc
    • Journal of IKEEE
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    • v.3 no.2 s.5
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    • pp.268-275
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    • 1999
  • In this paper, a new type of linearization technique proposed, in which the predistortor was added to the feedforward linearizer. As the input power level is applied to HPA, the gain and phase characteristics of the amplifier are also varied. By using of the predistorter the amplitude imbalance and phase imbalance is kept constant. Experimental results are present for Korea PCS frequency band. The center frequency of the feedforward amplifier is 1.843.75 MHz with 1.23 MHz bandwidth. The 2-tone intermodulation distortion at 37dBm output power is about -50dBc, and spurious emission are -46dBc at $fc{\pm}\;885KHz\;and\;-52dBc\;at\;fc\;{\pm}1.98MHz$, respectively.

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