F. Fan, Z. Yan, and J. Jiang National Laboratory of Antennas and Microwave Technology Xidian University Xi an, Shaanxi , China

Similar documents
A COMPACT DUAL-BAND POWER DIVIDER USING PLANAR ARTIFICIAL TRANSMISSION LINES FOR GSM/DCS APPLICATIONS

Progress In Electromagnetics Research C, Vol. 12, , 2010

X. Wu Department of Information and Electronic Engineering Zhejiang University Hangzhou , China

DESIGN OF SEVERAL POWER DIVIDERS USING CPW- TO-MICROSTRIP TRANSITION

A NOVEL COUPLING METHOD TO DESIGN A MI- CROSTRIP BANDPASS FILER WITH A WIDE REJEC- TION BAND

A BROADBAND QUADRATURE HYBRID USING IM- PROVED WIDEBAND SCHIFFMAN PHASE SHIFTER

NEW WILKINSON POWER DIVIDERS BASED ON COM- PACT STEPPED-IMPEDANCE TRANSMISSION LINES AND SHUNT OPEN STUBS

A 10:1 UNEQUAL GYSEL POWER DIVIDER USING A CAPACITIVE LOADED TRANSMISSION LINE

COMPACT BRANCH-LINE COUPLER FOR HARMONIC SUPPRESSION

Progress In Electromagnetics Research C, Vol. 32, 43 52, 2012

A Modified Gysel Power Divider With Arbitrary Power Dividing Ratio

Compact Microstrip Dual-Band Quadrature Hybrid Coupler for Mobile Bands

A Folded SIR Cross Coupled WLAN Dual-Band Filter

A 6 : 1 UNEQUAL WILKINSON POWER DIVIDER WITH EBG CPW

Novel Compact Tri-Band Bandpass Filter Using Multi-Stub-Loaded Resonator

MICROSTRIP PHASE INVERTER USING INTERDIGI- TAL STRIP LINES AND DEFECTED GROUND

Research Article Compact and Wideband Parallel-Strip 180 Hybrid Coupler with Arbitrary Power Division Ratios

H.-W. Wu Department of Computer and Communication Kun Shan University No. 949, Dawan Road, Yongkang City, Tainan County 710, Taiwan

ANALYSIS AND APPLICATION OF SHUNT OPEN STUBS BASED ON ASYMMETRIC HALF-WAVELENGTH RESONATORS STRUCTURE

NEW DUAL-BAND BANDPASS FILTER WITH COM- PACT SIR STRUCTURE

Design of a Compact and High Selectivity Tri-Band Bandpass Filter Using Asymmetric Stepped-impedance Resonators (SIRs)

BROADBAND ASYMMETRICAL MULTI-SECTION COU- PLED LINE WILKINSON POWER DIVIDER WITH UN- EQUAL POWER DIVIDING RATIO

DESIGN OF COMPACT COUPLED LINE WIDE BAND POWER DIVIDER WITH OPEN STUB

A MINIATURIZED UWB BPF BASED ON NOVEL SCRLH TRANSMISSION LINE STRUCTURE

Study on Transmission Characteristic of Split-ring Resonator Defected Ground Structure

A Dual-Band Two Order Filtering Antenna

A Compact Miniaturized Frequency Selective Surface with Stable Resonant Frequency

S. Jovanovic Institute IMTEL Blvd. Mihaila Pupina 165B, Belgrade, Serbia and Montenegro

Design of Multi-Stage Power Divider Based on the Theory of Small Reflections

A COMPACT MULTIBAND MONOPOLE ANTENNA FOR WLAN/WIMAX APPLICATIONS

A Simple Bandpass Filter with Independently Tunable Center Frequency and Bandwidth

Compact Planar Quad-Band Bandpass Filter for Application in GPS, WLAN, WiMAX and 5G WiFi

Bandpass-Response Power Divider with High Isolation

Compact Microstrip UWB Power Divider with Dual Notched Bands Using Dual-Mode Resonator

REALIZATION OF A COMPACT BRANCH-LINE COU- PLER USING QUASI-FRACTAL LOADED COUPLED TRANSMISSION-LINES

A Broadband High-Efficiency Rectifier Based on Two-Level Impedance Match Network

Progress In Electromagnetics Research Letters, Vol. 19, 49 55, 2010

Miniaturization of Harmonics-suppressed Filter with Folded Loop Structure

Progress In Electromagnetics Research, Vol. 107, , 2010

DESIGN OF A NOVEL WIDEBAND LOOP ANTENNA WITH PARASITIC RESONATORS. Microwaves, Xidian University, Xi an, Shaanxi, China

Miniaturized Wilkinson Power Divider with nth Harmonic Suppression using Front Coupled Tapered CMRC

A TUNABLE GHz BANDPASS FILTER BASED ON SINGLE MODE

Compact Wideband Quadrature Hybrid based on Microstrip Technique

QUADRI-FOLDED SUBSTRATE INTEGRATED WAVEG- UIDE CAVITY AND ITS MINIATURIZED BANDPASS FILTER APPLICATIONS

IMPROVEMENT THE CHARACTERISTICS OF THE MICROSTRIP PARALLEL COUPLED LINE COUPLER BY MEANS OF GROOVED SUBSTRATE

X.-T. Fang, X.-C. Zhang, and C.-M. Tong Missile Institute of Air Force Engineering University Sanyuan, Shanxi , China

Progress In Electromagnetics Research Letters, Vol. 23, , 2011

Research Article Wideband Microstrip 90 Hybrid Coupler Using High Pass Network

Miniaturization of Branch-Line Coupler Using Composite Right/Left-Handed Transmission Lines with Novel Meander-shaped-slots CSSRR

S. Fallahzadeh and M. Tayarani Department of Electrical Engineering Iran University of Science and Technology (IUST) Tehran, Iran

UWB ANTENNA WITH DUAL BAND REJECTION FOR WLAN/WIMAX BANDS USING CSRRs

SIZE REDUCTION AND HARMONIC SUPPRESSION OF RAT-RACE HYBRID COUPLER USING DEFECTED MICROSTRIP STRUCTURE

A Compact Dual Band-Notched Ultrawideband Antenna with λ/4 Stub and Open Slots

Compact Triple-Band Monopole Antenna with Inverted-L Slots and SRR for WLAN/WiMAX Applications

A NOVEL DUAL-BAND BANDPASS FILTER USING GENERALIZED TRISECTION STEPPED IMPEDANCE RESONATOR WITH IMPROVED OUT-OF-BAND PER- FORMANCE

DESIGN OF COMPACT MICROSTRIP LOW-PASS FIL- TER WITH ULTRA-WIDE STOPBAND USING SIRS

Unbalanced-to-Balanced Power Divider With Arbitrary Power Division

Miniaturization of Three-Section Branch-Line Coupler Using Diamond-Series Stubs Microstrip Line

NOVEL IN-LINE MICROSTRIP COUPLED-LINE BAND- STOP FILTER WITH SHARP SKIRT SELECTIVITY

A New UWB Antenna with Band-Notched Characteristic

Progress In Electromagnetics Research C, Vol. 20, 67 81, 2011

X. Li, L. Yang, S.-X. Gong, and Y.-J. Yang National Key Laboratory of Antennas and Microwave Technology Xidian University Xi an, Shaanxi, China

A HIGH-POWER LOW-LOSS MULTIPORT RADIAL WAVEGUIDE POWER DIVIDER

MODIFIED BROADBAND SCHIFFMAN PHASE SHIFTER USING DENTATE MICROSTRIP AND PATTERNED GROUND PLANE

A Coupled-Fed Reconfigurable Antenna for Internal LTE Mobile Phone Applications

TRIPLE-BAND OMNI-DIRECTIONAL ANTENNA FOR WLAN APPLICATION

PUSH-PUSH DIELECTRIC RESONATOR OSCILLATOR USING SUBSTRATE INTEGRATED WAVEGUIDE POW- ER COMBINER

A NOVEL MICROSTRIP LC RECONFIGURABLE BAND- PASS FILTER

Design and Analysis of Novel Compact Inductor Resonator Filter

DUAL-WIDEBAND BANDPASS FILTERS WITH EX- TENDED STOPBAND BASED ON COUPLED-LINE AND COUPLED THREE-LINE RESONATORS

Progress In Electromagnetics Research Letters, Vol. 9, , 2009

RCS Reduction of Patch Array Antenna by Complementary Split-Ring Resonators Structure

Performance analysis of Wilkinson power divider and Miniaturized Wilkinson Power Divider at centre Frequency 2.14 GHz

Design of a Wideband Planar Microstrip-Fed Quasi-Yagi Antenna

NOVEL DESIGN OF DUAL-MODE DUAL-BAND BANDPASS FILTER WITH TRIANGULAR RESONATORS

COMPLEMENTARY SPLIT RING RESONATORS WITH DUAL MESH-SHAPED COUPLINGS AND DEFECTED GROUND STRUCTURES FOR WIDE PASS-BAND AND STOP-BAND BPF DESIGN

EXTENDED DOUBLET BANDPASS FILTERS IMPLE- MENTED WITH MICROSTRIP RESONATOR AND FULL-/HALF-MODE SUBSTRATE INTEGRATED CAVI- TIES

Planar Wideband Balun with Novel Slotline T-Junction Transition

Compact Dual-Band MIMO Antenna with High Port Isolation for WLAN Applications

WIDE SCANNING PHASED ARRAY ANTENNA USING PRINTED DIPOLE ANTENNAS WITH PARASITIC ELEMENT

DESIGN OF TRI-BAND PRINTED MONOPOLE ANTENNA FOR WLAN AND WIMAX APPLICATIONS

Miniature Folded Printed Quadrifilar Helical Antenna with Integrated Compact Feeding Network

A broadband 180 hybrid ring coupler using a microstrip-to-slotline inverter Riaan Ferreira and Johan Joubert

A COMPACT CPW-FED MONOPOLE ANTENNA WITH A U-SHAPED STRIP AND A PAIR OF L-SLITS GROUND FOR WLAN AND WIMAX APPLICATIONS

PLANAR MICROSTRIP BANDPASS FILTER WITH WIDE DUAL BANDS USING PARALLEL-COUPLED LINES AND STEPPED IMPEDANCE RESONATORS

A Compact Dual-Band Dual-Polarized Antenna for Base Station Application

Complex Impedance-Transformation Out-of-Phase Power Divider with High Power-Handling Capability

COMPACT RECONFIGURABLE HMSIW BANDPASS FILTER LOADED BY CSRR

A NOVEL G-SHAPED SLOT ULTRA-WIDEBAND BAND- PASS FILTER WITH NARROW NOTCHED BAND

Improved Meandered Gysel Combiner/Divider Design with Stepped-Impedance Load Line for High-Power Applications

A Phase Diversity Printed-Dipole Antenna Element for Patterns Selectivity Array Application

Progress In Electromagnetics Research Letters, Vol. 8, , 2009

A Compact Quad-Band Bandpass Filter Using Multi-Mode Stub-Loaded Resonator

Low-Profile Wideband Circularly Polarized Patch Antenna Using Asymmetric Feeding

HYBRID ARRAY ANTENNA FOR BROADBAND MILLIMETER-WAVE APPLICATIONS

MINIATURIZED SIZE BRANCH LINE COUPLER USING OPEN STUBS WITH HIGH-LOW IMPEDANCES

Size reduction of UWB power divider using double tapered transmission line

NOVEL PLANAR MULTIMODE BANDPASS FILTERS WITH RADIAL-LINE STUBS

K-BAND HARMONIC DIELECTRIC RESONATOR OS- CILLATOR USING PARALLEL FEEDBACK STRUC- TURE

DESIGN OF COMPACT PLANAR RAT-RACE AND BRANCH- LINE HYBRID COUPLERS USING POLAR CURVES

Transcription:

Progress In Electromagnetics Research Letters, Vol. 5, 5 57, 2008 DESIGN OF A NOVEL COMPACT POWER DIVIDER WITH HARMONIC SUPPRESSION F. Fan, Z. Yan, and J. Jiang National Laboratory of Antennas and Microwave Technology Xidian University Xi an, Shaanxi 7007, China Abstract This paper presents a novel compact power divider with third harmonic suppression and also can provide a direct current (dc) path which could simplify the other active circuits in the complicated phased array antenna system. The proposed power divider achieves 20% size reduction compared with the conventional Wilkinson power divider. From the measured results, it can be seen that the simulated results can guide the practical circuit very well.. INTRODUCTION Wilkinson power divider is an essential components for microwave and millimeterwave antenna arrays. It is first introduced by Wilkinson in 960 [] and has completely matched output ports with sufficiently high isolation between them. Recently, many researchers have focused on the miniaturation and harmonic suppression for the power divider [2 9]. In this paper, a power divider with the size reduction and harmonic suppression is introduced. Apart from the above performances, it also provides a dc path for the other active circuits such as power amplifier in T/R module because of the zigzag shortended stub of length L which is shown in Fig.. From the Fig., we also can see two open-ended stubs of length L2 which is used to suppress the third harmonic signals and reduce the size with the stub L. Here the two open-ended stubs L2 is simpler than the T -shaped microstrip lines in [3], and do not use the lumped capacitors like [2] but the two open-ended stubs play the role of them, thus it would not introduce parasitic parameters. A transmission line model is used to calculate the parameters of the zigzag short-ended stub which is to reduce the size of the power divider. The software Ansoft Designer is

52 Fan, Yan, and Jiang used to optimize the proposed power divider to take account into all the discontinuities after using Agilent ADS2004 to perform the circuit design. 2. THEORY ANALYSIS As shown in Fig., the stubs L, L2 which is shorter than Lboth have an equivalent capacitive parameter C as shown in Fig. 2(b), and the value of C can be obtained from the following well known formula: Z(l) =jz 0 tan βl () where Z 0 is the characteristic impedance of the short-ended stub, l is the length, β is the phase constant, we can conclude the short-ended stub whose length is less than a quarter of the wavelength would be seen as a inductor L, here the length Lis more than a quarter of the wavelength, so has the equivalent effect with a capacitor C. In the same way, the two open-ended stubs have the equivalent capacitors C2. The analysis method is similar with the conventional Wilkinson power divider as given in [], but here there are three equivalent capacitors Cand two C2 for the three open-ended and short-ended Output Input L2 L2 =00 L Figure. Schematic of proposed power divider. Output

Progress In Electromagnetics Research Letters, Vol. 5, 2008 53 (a) C (b) Z c2 Z 2 Yin Z0 c Yin2 Yin3 θ θ θ θ = R 00 Z (c) Z c2 3 Figure 2. Schematic of (a) conventional microstrip line, (b) equivalent microstrip line with open or short stub, (c) the whole equivalent circuit for the power divider. stubs, so the ultimate equivalent circuit is given in Fig. 2(c), the values of C, C2, Z, θ can be determined by the conventional divider analysis method. The voltages at the two outputs should be equal, and for the zero reflection from all ports and infinite isolation between the ports 2 and 3, the resistor R must be equal to 2Z 0 [], that is R = 00. And the Y in can be expressed as follows: Y in = Y c + Y in2 + Y in3 = Y 0 (2) where Y c = jwc = jy short ctg(βl ) The input admittances Y in2 and Y in3 have the following expression: where Y L = Y Y 0 +jy tan θ Y +jy 0 tan θ + Y 2 and Y in2 = Y in3 = Y Y L + jy tan θ Y + jy L tan θ (3) Y 0 =/Z 0, Y =/Z, Y 2 = jwc 2 = jy open tg(βl 2 )

54 Fan, Yan, and Jiang S2&S3[dB] -3.055-3.060-3.065-3.070-3.075-3.080-3.085-3.090-3.095-3.00-3.05 db(s3) 3.0 3. 3.2 3.3 3.4 Freq(GHz) (a) S&S22&S33&S23[dB] -2-22 -23-24 -26-27 -28-29 -3-32 -33-34 db(s) db(s22) db(s33) db(s23) 3.0 3. 3.2 3.3 3.4 Freq(GHz) (b) 0 db(s) -5 S&S2[dB] -0-5 -20-35 2 4 6 8 0 Freq(GHz) (c) Figure 3. Simulated results of the proposed power divider, (a) transmission magnitude of the two outputs, (b) the input and output return loss at three ports and the isolation between the two outputs, (c) the input and output return loss for the third harmonic signal suppression. According to the above formula, the values of C, C2, Z, θ can be obtained and the simulations were carried out in Agilent ADS2004 [], and then validated by another software Ansoft Designer [2]. Fig. 3 is the simulated S parameters for required bandwidth from 3.0 GHz to 3.4 GHz and a much wider bandwidth to see the harmonic suppression phenomenon. We can see the S 2 and S 3 is higher than 3.0 db in Fig. 3(a), and the VSWR for all the ports is less than.5 from the reflection coefficient in Fig. 3(b). The isolation between the two outputs is better than 20 db. The third harmonic at about 9.6 GHz is suppressed by 0 db.

Progress In Electromagnetics Research Letters, Vol. 5, 2008 55 Figure 4. Photography of the fabricated power divider. S2 & S3[dB] -3.02-3.04-3.06-3.08-3.0-3.2 3.00E+009 3.0E+009 3.20E+009 3.30E+009 3.40E+009 Frequency[Hz] (a) db(s3) S & S22 & S33 & S23[dB] -9-20 -2-22 -23-24 -26-27 -28-29 -3-32 -33-34 3.00E+009 3.0E+009 3.20E+009 3.30E+009 3.40E+009 Frequency[Hz] (b) db(s) db(s22) db(s33) db(s23) 0-5 db(s) S&S2[dB] -0-5 -20-35 2.00E+009 4.00E+009 6.00E+009 8.00E+009.00E+00 frequency(hz) (c) Figure 5. Measured results, (a) transmission magnitude of the two outputs, (b) the input and output return loss at three ports and the isolation, (c) the input and output return loss for the third harmonic suppression.

56 Fan, Yan, and Jiang 3. EXPERIMENTAL RESULTS Based on the above analysis and simulated results, the proposed power divider is fabricated with Duriod5880 (relative permittivity ε r =2.2, dielectric loss tan δ =0.0009, height h =0.508 mm). The photography of fabricated power divider is shown in Fig. 4. The size is 20 mm 25 mm, while the conventional Wilkinson power divider is 25 mm 25 mm, so 20% size is reduced. Then the measurements were performed by an Vector Network Analyzer Agilent E8363B with a standard Short-Open-Load-Thru (SOLT) calibration procedure. In Fig. 5(a), the average insertion loss is so small that it has been very near to the simulated ones. This is unusual for the formal design [3, 4, 0]. But there is a little amplitude imbalance about 0.06 db, because the assembling area for resistor R is a little more than the size of the real one, thus the amplitude imbalance at the two outputs is introduced, but it is good enough. The VSWR for all the ports is less than.25 from the reflection coefficient in Fig. 5(b). The isolation between the two outputs is more than 23 db which is better than the simulated one. From Fig. 5(c), the third harmonic signal at 9.6 GHz is suppressed and the suppressed level is 26 db which is better than the simulated result because the author has taken into account the frequency deviation in simulation software. 4. CONCLUSION A novel compact power divider with third harmonic suppression and dc path is proposed in this paper. The size is 80% of the conventional one and this can benefit the miniaturation of the feed network for the antenna array. The third harmonic suppression is good to reduce the external interference and the dc path also can save the area for the active circuits application. From the measured results, the simulation is good to guide the practical fabrication. REFERENCES. Wilkinson, E. J., An n-way hybrid power divider, IRE Trans. Microwave Theory Tech., Vol. 8, 6 8, 960. 2. Li, J.-L., S.-W. Qu, and Q. Xue, Capacitively loaded Wilkinson power divider with size reduction and harmonic suppression, Microwave and Optical Technology Letters, Vol. 49, No., 2737 2739, Nov. 2007. 3. Tu, W.-H., Compact Wilkinson power divider with harmonic

Progress In Electromagnetics Research Letters, Vol. 5, 2008 57 suppression, Microwave and Optical Technology Letters, Vol. 49, No., 2825 2827, Nov. 2007. 4. Perrier, A.-L., J.-M. Duchamp, and P. Ferrari, A miniaturized three-port divider/combiner, Microwave and Optical Technology Letters, Vol. 50, No., 72 75, Jan. 2008. 5. Lin, X. Q., Q. Cheng, R. P. Liu, D. Bao, and T. J. Cui, Compact resonator filters and power dividers designed with simplified metastructures, Journal of Electromagnetic Waves and Applications, Vol. 2, No. 2, 663 672, 2007. 6. Zhang, J., B. Cui, J. Z. Gu, and X. W. Sun, A harmonic suppressed Wilkinson power divider using complementary split ring resonators (CSRRs), Journal of Electromagnetic Waves and Applications, Vol. 2, No. 6, 8 89, 2007. 7. Chen, H. and Y. Zhang, A novel compact planar six-way power divider using folded and hybrid-expanded coupled lines, Progress In Electromagnetics Research, PIER 76, 243 252, 2007. 8. Oraizi, H. and M. S. Esfahlan, Miniaturization of Wilkinson power dividers by using defected ground structures, Progress In Electromagnetics Research Letters, Vol. 4, 3 20, 2008. 9. Shamsinejad, S., M. Soleimani, and N. Komjani, Novel miniaturized Wilkinson power divider for 3g mobile receivers, Progress In Electromagnetics Research Letters, Vol. 3, 9 6, 2008. 0. Microstrip circuits, Tinghua University Group.. Advanced Design System (ADS), Version 2004A, Agilent Technologies, California, USA, 2004. 2. Ansoft Designer, Version 3, Ansoft Corporation.