Not Applicable.
This disclosure relates generally to microwave devices, and, more particularly, to a high power microwave combiner device.
It is desirable for a high power radio-frequency (RF) transmitter operating in a microwave frequency to provide a high power microwave (HPM) signal. In an HPM system based on a high-power RF source, electromagnetic radiation is extracted from the RF source using waveguide.
Efficient extraction of RF power from microwave tube sources is a key element of HPM technology. An azimuthally balanced way to harvest maximal RF energy from a high-power pulsed magnetron RF source is by radial extraction via rectangular waveguide from every other resonator. However, this extraction approach presents the subsequent problem of combining RF power in separate waveguides into a single feed suitable for a directive antenna. Also, pulsed operation of the high-power magnetron introduces a time interval over which plasma oscillations are somewhat incoherent before settling into the stable π mode. During this time interval the frequency varies from the eventual resonant frequency, and it is critical that reflected waves at these spurious frequencies not disrupt formation of the π mode, or else the magnetron will not reliably form a HPM pulse. A second objective of the HPM pulsed magnetron is to be tunable over a finite frequency band. Consequently, robust RF design of the HPM system requires that downstream waveguide elements maintain a low reflection coefficient over an adequately broad frequency band.
The present disclosure teaches an N-port wideband waveguide combiner comprising a waveguide with circular cross-section; and three or more rectangular waveguides, each waveguide morphing to align with a common axis at the cross-section of the circular waveguide.
The N-port wideband waveguide combiner may include one or more of the following features, individually or in combination to include: wherein the three or more rectangular waveguides comprises six waveguides; wherein each one of the three or more rectangular input waveguides gradually transitions from a rectangular cross-section to a cross-section resembling a pie slice of a composite circular cross section; wherein each one of the three or more rectangular input waveguides also bends by 45° to align with the common axis of the circular cross section; wherein converging walls of the three or more rectangular input waveguides merge to form thin septa that abruptly terminate when the composite cross section becomes circular; wherein the circular waveguide comprises an extension section to optimize the circular waveguide output; wherein all surfaces have a continuous first derivative in the direction of wave propagation to minimize reflection; wherein each one of the three or more rectangular input waveguides preserves wave impedance of the rectangular input waveguide throughout the transition to eliminate impedance mismatches that would cause reflection; wherein each one of the waveguide surfaces includes varying spatial transition rates to allow axial length to be optimized to minimize axial length while maintaining propagation performance; or wherein the extension section to optimize the circular waveguide output has a length, for example, selected from one of the lengths of 0.1 wavelength, 0.2 wavelength, 0.3 wavelength, 0.4 wavelength, 0.5 wavelength, 0.75 wavelength and 1.0 wavelength.
The present disclosure also teaches a power combiner for combining a plurality of radio frequency signals into a combined output signal comprising a circular waveguide having a cross-section; and three or more waveguides, each waveguide morphing to align with a common axis at a cross-section of the circular waveguide wherein each one of the three or more rectangular input waveguides gradually transitions from a rectangular cross-section to a cross-section resembling a pie slice of a composite circular cross section.
The power combiner may include one or more of the following features, individually or in combination to include: wherein each one of the three or more rectangular input waveguides also bends by 45° to align with the common axis of the circular cross section; wherein converging walls of the three or more rectangular input waveguides merge to form thin septa that abruptly terminate when the composite cross section becomes circular; wherein all surfaces have a continuous first derivative in the direction of wave propagation to minimize reflection; wherein each one of the three or more rectangular input waveguides preserves wave impedance of the rectangular input waveguide throughout the transition to eliminate impedance mismatches that would cause reflection; wherein the circular waveguide comprises an extension section to optimize the circular waveguide output.
The present disclosure also teaches a power combiner for combining TE10 rectangular mode microwave signals into a combined output TE01 circular mode microwave signal comprising: a circular waveguide having a cross-section to provide the output TE01 mode microwave signal; and three or more rectangular input waveguides, each rectangular input waveguide adapted to propagate a TE10 rectangular mode microwave signal, each rectangular input waveguide morphing to align with a common axis at the cross-section of the circular waveguide.
The power combiner may include one or more of the following features, individually or in combination to include: wherein each one of the three or more rectangular input waveguides gradually transitions from a rectangular cross-section to a cross-section resembling a pie slice of a composite circular cross section; wherein converging walls of the three or more rectangular input waveguides merge to form thin septa that abruptly terminate when the composite cross section becomes circular.
The foregoing features may be more fully understood from the following description of the drawings. The drawings aid in explaining and understanding the disclosed technology. Since it is often impractical or impossible to illustrate and describe every possible embodiment, the provided figures depict one or more illustrative embodiments. Accordingly, the figures are not intended to limit the scope of the broad concepts, systems and techniques described herein. Like numbers in the figures denote like elements.
The features and other details of the disclosure will now be more particularly described. It will be understood that any specific embodiments described herein are shown by way of illustration and not as limitations of the concepts, systems and techniques described herein. The principal features of this disclosure can be employed in various embodiments without departing from the scope of the concepts sought to be protected.
Referring now to
A known high power magnetron power source for radio frequency (RF) energy is described in U.S. Pat. No. 9,805,901 B2 issued on Oct. 31, 2017, having the same assignee as the present invention and incorporated herein by reference. As described therein, a magnetron assembly to provide a high power magnetron power source 10 includes a compact magnetic field generator for high-power magnetrons, a high-power magnetron (internal within the magnetron assembly), and multiple output waveguides. One or more wedge shaped output waveguides are coupled to a compact magnetic field generator. Each output waveguide fits between two annular wedge magnets, and each waveguide is mechanically coupled to an RF extraction waveguide or to a termination plate. In the present disclosure, the magnetron assembly includes six extraction waveguides 12.
The Wideband Waveguide Combiner/Mode-Converter 100 includes a plurality of input waveguides 112, here having six input waveguides 112. The Wideband Waveguide combiner comprising a circular waveguide 114 having a cross-section; and three or more waveguides and here being six input waveguides 112, each waveguide morphing to align with a common axis at a cross-section of the circular waveguide 114.
R.F. energy exiting extraction waveguides 12 follows the path defined by the waveguides 14, respectively. Each waveguide 14 branch away from a respective extraction waveguide 12 in an arch shape and connect to a respective input waveguide 112 of the combiner 100. The waveguide 14 with an arch shape is well known in the art and is shaped to accommodate the geometry required to connect to the respective input waveguide 112 as shown. Depending upon the proximity of the input waveguide 112 to the extraction waveguide 12 alternative shapes could be used for connecting the extraction waveguide 12 to the input waveguide 112.
The purpose of this embodiment is to combine an N-fold multiplicity of radially-extracting rectangular waveguides of a pulsed magnetron, all with identical phase and power, into a single waveguide with a well-defined mode of propagation, with very low reflection over a reasonably large frequency band. The particular magnetron for which this disclosure was developed had six extraction ports, but the design principle applies to any number of azimuthally symmetric extractions ports greater than two. The output waveguide mode, the TE01 circular mode, is both a natural synthesis of the combination and is particularly useful as the ideal feed for downstream antenna components disclosed hereinbelow.
RF power is extracted from the magnetron into N separate radial waveguides distributed azimuthally about the magnetron axis, with identical phase and power in all ports, as shown in
Referring now to
As shown in
Design guidelines for the transitioning geometry are 1) all surfaces must have a continuous first derivative (no discontinuities) in the direction of wave propagation to minimize reflection, 2) the waveguide preserves the wave impedance of the rectangular waveguide throughout the transition to eliminate impedance mismatches that would cause reflection, and 3) the geometry-generating computer code generating the waveguide surfaces includes the capability to vary spatial transition rates to allow axial length to be optimized to minimize axial length while maintaining propagation performance. A suite of computer codes generate and visualize the waveguide combiner geometry, write input files for simulating the EM performance of the design by a commercial EM simulation code, mine simulation data files of pertinent EM data to compute figures of merit (FoMs) evaluating design performance, and visualize the results.
All references cited herein are hereby incorporated herein by reference in their entirety.
Having described preferred embodiments, it will now become apparent to one of ordinary skill in the art that other embodiments incorporating their concepts may be used. For example, elements of different embodiments described herein may be combined to form other embodiments not specifically set forth above. Various elements, which are described in the context of a single embodiment, may also be provided separately or in any suitable subcombination. Other embodiments not specifically described herein are also within the scope of the following claims.
It is felt therefore that these embodiments should not be limited to disclosed embodiments, but rather should be limited only by the spirit and scope of the appended claims.
This application claims priority from U.S. Provisional application Ser. No. 62/946,465 filed on Dec. 11, 2019, which is incorporated herein by reference.
Number | Name | Date | Kind |
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3010088 | Kahn | Nov 1961 | A |
20070115077 | Chan | May 2007 | A1 |
Number | Date | Country | |
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62946465 | Dec 2019 | US |