The present invention pertains to the microwave digitally controlled phase shifter, which can be used in different field of communications, where the change of signal phase is needed. The digital phase shifter is suitable for phased array antennas for beam steering and polarization tilt compensation. The invention can be used also as a phase modulator (BPSK or QPSK).
The present digital phase shifters use as switching component p-i-n diodes and FETs (filed effect transistor) implemented on MESFET (metal semiconductor field effect transistors) or p-HEMT (pseudomorphic high electron mobility transistors) technologies. Discrete phase shifters build with p-i-n diodes despite of their excellent microwave properties has some drawbacks like high power consumption, complicated driving circuitry and relatively large switching time. Application of FETs overcomes those imperfections. Solid-state phase shifter based on FETs is described in U.S. patent US003545239. It is 5 bit device and uses the following phase shifting cells: loaded line, hybrid coupled reflection type, Hi-low pass type and Schiffman type. Utilized GaAs FETs are three terminal devices. Implementation of phase shifters as a microwave monolithic integrated circuit (MMIC) is step forward in their development improving the reliability, frequency band, operating frequency and yields the devices with more compact dimensions. Well-known shortcomings of monolithic phase shifters are the required large initial financial investment, inability for postproduction tuning and high insertion loss compared to discrete counterparts, due to GaAs substrate. Listed drawbacks gives some advantage in utilization of discrete phase shifters for application in units like: engineering models of phased array antennas, polarization control devices, phase modulators and other devices requiring not so large number of phase shifters. Discrete phase shifter using FETs is described in US005128639. It is three bit device utilizing only hybrid coupled reflection type phase shifting cells build with coupled line hybrid circuitry and three terminal FETs. The phase shifter works at 1.6 GHz with 8% bandwidth and ±10° absolute phase error.
It is a general object of presented invention to provide a low cost digital phase shifter with easier manufacturing and tuning, and reliable performance.
In accordance with the above object, there is provided a phase shifter apparatus, comprising series connection of controlled phase shifting bits, each of it inserts certain amount of phase delay of the passing signal, the phase change occur in response to the control signal switching the phase cells and applied to its steering terminal. Typical feature of the digital phase shifter is application of discrete p-HEMT (pseudomorphic high electron mobility transistors) with positive or negative pinch-off voltage.
In one preferred embodiment at least one of the switching cells is from loaded line type and comprises one switching component for phase change, loading network and impedance matching networks, the switching element works as a grounded switch with two sources connected to the common ground, drain connected to loaded impedance network and gate connected to the control terminal through decoupling circuitry.
In this embodiment impedance matching networks is appropriate to be implemented as a quarter wavelength transformer, single open stub Γ-network and through loading of the transmission line with reactance compensating the reactive loading from the switch and loading network.
It is appropriate loading impedances to be implemented as a transmission line sections with length about λ/4 and/or λ/8 having determinate characteristic impedance, and tapered lines for smooth transition toward the switch.
In other version of this embodiment decoupling circuitry comprises two sections of transmission lines and/or resistor.
In other version of this embodiment loading impedance consists of series connection of quarter wavelength transformer, λ/8 transmission line and tapered line.
It is appropriate decoupling networks to be based on cascade connection of high impedance λ/4 transmission line and low impedance λ/4 open stub.
It is also appropriate matching networks to be implemented as a λ/4 transformer, single open stub Γ-network or through loading of the transmission line with capacitive reactance.
In other preferred embodiment digital phase shifter comprises two switching components, impedance matching networks and decoupling networks, connected to the gates of the p-HEMTs, the control terminal is between two decoupling networks.
In this embodiment is appropriate the loading impedances to have the same configuration as loading impedance but quarter wavelength transformers are bended on 0°, 45° and 90°.
It is also appropriate decoupling networks to be the same as decoupling network, but to use radial open stub and high impedance λ/4 transmission line to be bended as well.
In other digital phase shifter embodiment at least one of the phase shifting bits is from hybrid coupled reflection type and consists of two switching components changing the value or reflective loads, they are connected to the transmission line by the hybrid, the drains of switching p-HEMTs are connected to the hybrid through reflective loads, and their gates are connected through decoupling network to the control terminal. The source terminals of p-HEMTs are grounded.
In this version is appropriate the hybrid to be implemented as a branch-line coupler, coupled line directional coupler, Lange coupler, hybrid ring coupler with 90° compensation or theirs discrete elements counterparts.
In other preferred embodiment the phase shifter comprises single-section branch-line coupler, and two reflective loads are equal and consist of series connection of transmission line section with characteristic impedance Zo, tapered transmission line section, transmission line section with characteristic impedance Z1, tapered transmission line section, transmission line section with characteristic impedance Z2 and tapered transmission line section.
In other preferred embodiment the digital phase shifter comprises double-section branch-line coupler, and two reflection loads are equal and consist of series connection of transmission line section with characteristic impedance Zo, tapered transmission line section, transmission line section with characteristic impedance Z1, tapered transmission line section, transmission line section with characteristic impedance Z2 and tapered transmission line section.
The advantage of digital phase shifter according to the innovation are in it construction facilitating manufacturing and tuning, which provide low-cost and high performance of the final device.
a is electrical circuit of loaded line phase shifting bit.
b,
2
c,
2
d is physical layout of loaded line phase shifting bit.
a is electrical circuit of periodically loaded line phase shifting bit.
b is physical layout of periodically loaded line phase shifting bit.
a is electrical circuit of reflection type hybrid coupled phase shifting bit.
b is physical layout of reflection type hybrid coupled phase shifting bit using single-section branch-line coupler implemented on microstrip technology.
c is physical layout of reflection type hybrid coupled phase shifting bit using double-section branch-line coupler implemented on microstrip technology.
a is physical layout of four-bit phase shifter implemented on microstrip technology.
b is physical layout of five-bit phase shifter implemented on microstrip technology.
The apparatus depicted in
Complete embodiment of phase shifter apparatus is shown in
Other Applications
Phase shifter apparatus build with one phase shifting bit with phase delay of 180° can be used to yield binary phase shift keying (BPSK) signals, appropriate in this case is application of reflection type hybrid coupled phase shifting bits depicted in
Number | Date | Country | Kind |
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107771 | Apr 2003 | BG | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/BG04/00008 | 4/30/2004 | WO | 9/12/2006 |