• Title/Summary/Keyword: 3D conversion

Search Result 1,350, Processing Time 0.027 seconds

A Novel Frequency Doubler using Feedforward Structure and DGS Microstrip for Fundamental and High-Order Components Suppression (Feedforward 구조와 DGS를 이용하여 기본 신호와 3차 이상의 고조파 신호를 제거한 2차 주파수 체배기 설계)

  • 황도경;임종식;정용채
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
    • /
    • v.14 no.5
    • /
    • pp.513-520
    • /
    • 2003
  • In this paper, a novel design concept of frequency doubler using feedforward technique and DGS microstrip line is proposed. The feedforward loop plays a role of fundamental frequency suppression and DGS microstrip line suppresses over the 3rd order harmonic components. By using this new concept, the high suppression for the undesired signals could be achieved easily. The proposed technique is experimentally demonstrated in 1.87 GHz-to-3.74 GHz frequency doubler. The output power of -3 dBm at the frequency of 3.74 GHz(2f$\_$0/) is measured with 42.9 dB suppression of the fundamental frequency signal(f$\_$0/), 20.2 dB suppression of the 3rd harmonic signal(3f$\_$0/) and B9.7 dB suppression of the 4th harmonic signal(4f$\_$0/). The conversion loss of -2.34 dB ∼ -5.8 dB at the bandwidth of 100 MHz, the phase noise of -97.51 dB/Hz(@10 kHz) were measured.

Design of X-Band SOM for Doppler Radar (도플러 레이더를 위한 X-Band SOM 설계)

  • Jeong, Sun-Hwa;Hwang, Hee-Yong
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
    • /
    • v.24 no.12
    • /
    • pp.1167-1172
    • /
    • 2013
  • This paper presents a X-band doppler radar with high conversion gain using a self-oscillating-mixer(SOM) that oscillation and frequency mixing is realized at the same time. To improve phase noise of the SOM oscillator, a ${\lambda}/2$ slotted square patch resonator(SSPR) was proposed, which shows high Q-factor of 175.4 and the 50 % reduced circuit area compared to the conventional resonator. To implement the low power system, low biasing voltage of 1.7 V was supplied. To enhance the conversion gain of the SOM, bias circuit is configured near the pinch-off region of transistor, and the conversion gain was optimized. The output power of the proposed SOM was -3.16 dBm at 10.65 GHz. A high conversion gain of 9.48 dB was obtained whereas DC Power consumption is relatively low about 7.65 mW. The phase noise is -90.91 dBc/Hz at 100 kHz offset. The figure-of-merit(FOM) of the proposed SOM was measured as -181.8 dBc/Hz, which is supplier to other SOMs by more than about 7 dB.

Design and Fabrication of the Frequency Doubler for 24GHz Local Oscillator (24GHz 대역 국부발진기용 주파수 체배기 설계 및 제작)

  • Seo, Gon;Kim, Jang-Gu;Han, Sok-Kyun;Park, Chang-Hyun;Choi, Byung-Hai
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
    • /
    • 2003.10a
    • /
    • pp.411-415
    • /
    • 2003
  • In this paper, a reflector type frequency doubler for local oscillator at 24GHz is designed and fabricated with ne71300-N MESFET. Optimum source and load impedances are decided through a multiharmonic load pull simulation technique. A conversion gain ran be improved using the reflector and fundamental and third harmonics are well suppressed with open stub of λ/4 length. Measured results show output power at 0dBm of input power is -3.776dBm, conversion gain 0.736dB, harmonic suppression 41.064dBc, respectively.

  • PDF

Design of the Resistive Mixer MMIC with high linearity and LO-RF isolation (고선형성과 높은 LO-RF 격리도를 갖는 새로운 구조의 저항성 Mixer MMIC 설계)

  • Lee, Kyoung-Hak
    • Journal of Satellite, Information and Communications
    • /
    • v.9 no.2
    • /
    • pp.7-11
    • /
    • 2014
  • In this paper, we designed resistive MMIC mixer using $0.5{\mu}m$ p-HEMT process. This Mixer is designed to have a similar performance in -4 ~ 4 dBm local oscillator signal power level and to maintain a constant conversion loss and linear performance due to the variation of local signal. In order to have such characteristics, we designed new feedback circuit topology by using FET, and minimized performance change for LO signal power level variation, also obtain MMIC mixer characteristics which is able to apply in wideband. In the design result, When the LO signal power is -4 ~ 4 dBm, there was 6 dB conversion loss and it came up with the excellent result that IIP3 got over 30 dBm in 0.5 ~ 2.6GHz frequency band.

The Study of Steam Reforming for Model Bioigas using 3D-IR Matrix Burner Reformer (3D-IR Matrix 버너 개질기를 활용한 모사 바이오가스 수증기 개질 연구)

  • Lim, Mun-Sup;Chun, Young-Nam
    • Transactions of the Korean hydrogen and new energy society
    • /
    • v.22 no.1
    • /
    • pp.100-108
    • /
    • 2011
  • The use of biogas as an energy source reduces the chance of possible emission of two greenhouse gases, $CH_4$ and $CO_2$, into the atmosphere at the same time. Its nature of being a reproducible energy source makes its use even more attractive. This research if for the hydrogen production through the steam reforming of the biogas. The biogas utilized 3D-IR matrix burner in which the surface combustion is applied. The nickel catalyst was used inside a reformer. Parametric screening studies were achieved as Steam/Carbon ratio, biogas component ratio, Space velocity and Reformer temperature. When the condition of Steam/Carbon ratio, $CH_4/CO_2$ ratio, Space velocity and Refomer temperature were 3.25, 60%:40%, 19.32L/$g{\cdot}hr$ and $700^{\circ}C$ respectively, the hydrogen concentration and methane conversion rate were showed maximum values. Under the condition mentioned above, $H_2$ concentration was 73.9% and methane conversion rate was 98.9%.

A Study on Flow Characteristics of a Wells Turbine for Wave Power Conversion Using Numerical Analysis (수치해석을 이용한 파력발전용 웰즈터빈의 유동특성에 관한 연구)

  • ;;;;T.Setoguchi
    • Journal of Advanced Marine Engineering and Technology
    • /
    • v.25 no.1
    • /
    • pp.182-190
    • /
    • 2001
  • The aerodynamics of the Wells turbine has been studied using 3-d, unstructured mesh flow solver for the Reynolds-averaged Navier-Stokes equations. The basic feature of the Wells turbine is that even though the cyclic airflow produces oscillating axial forces on the airfoil blades, the tangential force on the rotor is always in the same direction. Geometry used to define 3-D numerical grid is based upon that of an experimental test rig. The 3-D Wells turbine model, consisting of approximate 220,000 cells is tested of four axial flow rates. In the calculations the angle of attack has been varied between 10˚ and 30˚ of blades, Representative results from each case are presented graphically andy analysed. It is concluded that this technique holds much promise for future development of Wells turbines.

  • PDF

3D Sound Player with various resampled HRTF′s (HRTF(머리전달함수)의 샘플링를 변환에 따른 입체음향 플레이어)

  • 오재경;이동재;임철수;최범석;이원돈
    • Proceedings of the KAIS Fall Conference
    • /
    • 2001.05a
    • /
    • pp.199-202
    • /
    • 2001
  • 본 논문에서는 3D사운드 생성 기술 중 대표적인 방법인 원음에 HRTF(머리전달함수)를 콘볼루션(convolution)하는 방식으로 음상정위 모듈을 구현하였으며 음장감을 부여하기 위하여 잔향(reverberation) 효과를 추가하고 크로스토크 현상을 제거하기 위하여 트랜스오럴 필터를 추가하였다. 본 논문에서는 sampling rate conversion을 사용하여 decimation과 interpolation을 수행하여 44.1KHz의 sampling rate로 된 coefficient를 downsample하거나 upsample한 HRTR(머리전달함수)를 사용하여 콘볼루션(convolution)을 수행했다. 본 논문에서는 3D사운드 생성과정에서 필요한 연산과정을 최소화하여 일반 PC의 computing power로도 sampling rate conversion된 데이터를 처리하여 줄 수 있는 알고리즘을 제시하고 구현하였다.

Research on Fourth Harmonic Mixer at W Band in the Imaging System

  • Xiang, Bo;Dou, Wenbin;He, Minmin;Wang, Zongxin
    • Journal of electromagnetic engineering and science
    • /
    • v.10 no.4
    • /
    • pp.316-321
    • /
    • 2010
  • This paper presents a novel fourth harmonic mixer with new structure. The traditional 3-ports fourth harmonic mixer and the novel fourth harmonic mixer are designed by ADS, HFSS and CST simulator. The mixers have been fabricated and tested. The size of the traditional 3-ports fourth harmonic mixer is $12{\times}15$ mm, and the best conversion loss is 18.7 dB according to the measurement. Since the traditional 3-port mixer size is too large to be ranked, we design a novel fourth harmonic mixer for imaging system. The width of the mixing module in the novel fourth harmonic mixer is only 3.65 mm, and this size is fully capable to meet the mixer unit space which is not greater than 5 mm. The simulation result shows that the mixer has good performance, and the experiment result shows that the best conversion loss of the novel fourth harmonic mixer is 16.3 dB at RF signal of 91.3 GHz.

SAW ID Tag and Receiver System for Passive RFID System Application (수동형 RFID 시스템 적용을 위한 SAW ID 태그 및 수신 시스템 구현)

  • Kim, Jae-Kwon;Park, Joo-Yong;Burm, Jin-Wook
    • Journal of the Institute of Electronics Engineers of Korea SD
    • /
    • v.45 no.4
    • /
    • pp.64-71
    • /
    • 2008
  • SAW (Surface Acoustic Waves) ID (identification) tags have been designed and implemented for RFID (Radio frequency IDentification) systems. With SAW ID tag of pulse position encoding method, the data capacity increased 3 times compared with SAW ID tag of amplitude on/off method. Two different kinds of SAW ID tag receiver systems, heterodyne and homodyne receiver systems, were made. The direct conversion receiver showed better isolation property, 10 dB improvement than the heterodyne receiver to increase wireless interrogation distance.

A Low-Power 2-Step 8-bit 10-MHz CMOS A/D Converter (저전력 2-Step 8-bit 10-MHz CMOS A/D 변환기)

  • 박창선;손주호;김영랄;김동용
    • Proceedings of the IEEK Conference
    • /
    • 2000.06b
    • /
    • pp.201-204
    • /
    • 2000
  • In this paper, an A/D converter is implemented to obtain 8bit resolution at a conversion rate of 10Msample/s. This architecture is proposed using the 2-step architecture for high speed conversion rate. It is consisted of sample/hold circuit, low power comparator, voltage reference circuit and DAC of binary weighted capacitor array. Proposed A/D converter is designed using 0.2$\mu\textrm{m}$ CMOS technology. The SNR is 45.3dB at a sampling rate of 10MHz with 1.95MHz sine input signal. When an 8bit 10Msample/s A/D converter is simulated, the Differential Nonlinearity / Integral Nonlinearity (DNL/ INL) error are ${\pm}$1 / ${\pm}$2 LSB, respectively. The power consumption is 13㎽ at single +2.5V supply voltage.

  • PDF