High isolation mixer

United States Patent 6,947,717

Electrical — Communications & RFGranted 200520 claims12 figuresCPC H03D9/00
Drawing figure from US Patent 6,947,717, High isolation mixer
Drawing figure from US 6,947,717
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What this patent covers

A mixer with better isolation between the RF and local oscillator signals, built with a pair of cores mounted on a substrate and windings wound onto them.

US 6,947,717 is a utility patent titled “High isolation mixer”, invented by Ji Daxion.

The application was filed on October 7, 2002 and granted on September 20, 2005, 2 years, 11 months later. The patent issued with 20 claims, 3 of them independent. The specification refers to 12 drawing figures. The U.S. Patent Office classifies it under CPC H03D9/00 — demodulation or transference of modulation of modulated electromagnetic waves (demodulating light, transferring modulation in light waves g02f2/00).

It is one of the patents our firm has obtained in the Electrical — Communications & RF area.

Key dates and patent term

Application filedOctober 7, 2002
Patent grantedSeptember 20, 20052 years, 11 months in prosecution at the U.S. Patent Office
Utility term expires (nominal)October 7, 202220 years from the earliest U.S. non-provisional filing date.

The expiration date is calculated from the grant and filing dates on the face of the patent. The actual date may vary based on patent-term adjustment (patent office delay), terminal disclaimer (agreeing to a shorter term), or failing to pay a maintenance fee (due before years 4, 8, and 12). This website is for information purposes only and is not legal advice.

What the classification means

Patent offices file every granted patent under the Cooperative Patent Classification (CPC) scheme. These are the technology areas US 6,947,717 was placed in — a good shortcut to what the invention is considered to be, and to the prior art an examiner would have searched.

  • H03D9/00 Primary classification
    Demodulation or transference of modulation of modulated electromagnetic waves (demodulating light, transferring modulation in light waves G02F2/00)
  • H03D
    Demodulation or transference of modulation from one carrier to another (masers, lasers H01S; circuits capable of acting both as modulator and demodulator H03C…

Bibliographic details

Patent numberUS 6,947,717
TitleHigh isolation mixer
InventorsJi Daxion
AssigneeIndividual
Filing dateOctober 7, 2002
Grant dateSeptember 20, 2005
CategoryElectrical — Communications & RF

Full text as published by the U.S. Patent Office

The sections below reproduce the official text of US 6,947,717 for reference. Open a section to read it.

Abstract

A mixer with improved isolation between the RF and local oscillator frequency signals. The mixer has a substrate. A pair of cores are mounted to the substrate. Windings are wound on the cores to from a pair of baluns. A diode ring is connected between the baluns. The windings are formed from a first and second twisted pair of wires on one core and a third and fourth twisted pair of wires on another core. Some of the wires are wound on the cores but not twisted together. This winding configuration achieves superior balance between the baluns and good isolation.

Claims (20)
  1. 1. A mixer for mixing an RF input signal with a local oscillator signal to provide an intermediate frequency signal, comprising:a) a first balun transformer having a first winding, a second winding and a third winding, the first winding coupled to the second and third windings, the first winding connected between a local oscillator terminal and ground, the second winding connected between ground and a first node, the third winding connected between ground and a second node, the first balun transformer further having a first core and a first, a second and a third wire, the first wire and the second wire twisted together and partially wound on the first core, the first wire and the third wire twisted together and partially wound on the first core;b) a second balun transformer having a fourth winding, a fifth winding and a sixth winding, the fourth winding coupled to the fifth and sixth windings, the fourth winding connected between an RF terminal and ground, the fifth winding connected between an intermediate frequency terminal and a third node, the sixth winding connected between the intermediate frequency terminal and a fourth node; andc) four diodes, one diode being connected between each of the first, second, third and fourth nodes.
  2. 2. The mixer according to claim 1 , wherein a cathode of each diode is series connected to an anode of another diode.
  3. 3. The mixer according to claim 2 , wherein the diodes are located in a semiconductor die.
  4. 4. The mixer according to claim 3 , wherein the semiconductor die is mounted to a substrate.
  5. 5. The mixer according to claim 1 , wherein the second balun transformer further comprises:a) a second core;b) a fourth, a fifth and a sixth wire;c) the fourth wire and the fifth wire twisted together and partially wound on the second core; andd) the fourth wire and the sixth wire twisted together and partially wound on the second core.
  6. 6. The mixer according to claim 5 , wherein the second core is mounted to a substrate.
  7. 7. The mixer according to claim 5 , wherein the fourth, fifth and sixth wires have at least two turns wound on the core.
  8. 8. The mixer according to claim 1 , wherein the first core is mounted to a substrate.
  9. 9. The mixer according to claim 1 , wherein the first, second and third wires have at least two turns wound on the core.
  10. 10. A mixer comprising:a) a substrate;b) a first and second balun transformer mounted to the substrate, the first transformer having a first core and the second transformer having a second core;c) a first twisted pair of wires wound on the first core, the first twisted pair of wires having a first and second wire;d) a second twisted pair of wires wound on the first core, the second twisted pair of wires having the first wire and a third wire;e) a third twisted pair of wires wound on the second core, the third twisted pair of wires having a fourth and fifth wire;f) a fourth twisted pair of wires wound on the second core, the fourth twisted pair of wires having the fourth wire and a sixth wire; andg) a plurality of diodes mounted to the substrate in a ring configuration, the diodes electrically connected to the balun transformers.
  11. 11. The mixer according to claim 10 , wherein the first wire is connected between a local oscillator terminal and ground.
  12. 12. The mixer according to claim 10 , wherein the second wire is connected between ground and two of the diodes.
  13. 13. The mixer according to claim 10 , wherein the third wire is connected between ground and two of the diodes.
  14. 14. The mixer according to claim 10 , wherein the fourth wire is connected between an RF terminal and ground.
  15. 15. The mixer according to claim 10 , wherein the fifth wire is connected between an intermediate frequency terminal and two of the diodes.
  16. 16. The mixer according to claim 10 , wherein the sixth wire is connected between the intermediate frequency terminal and two of the diodes.
  17. 17. The mixer according to claim 10 , wherein there are four diodes and a cathode of each diode is series connected to an anode of another diode.
  18. 18. A mixer comprising:a) a local oscillator balun transformer having a local oscillator terminal for receiving a local oscillator signal;b) a second balun transformer having an intermediate frequency terminal for providing an intermediate frequency signal and an RF terminal for receiving an RF signal;c) a diode ring connected between the local oscillator balun and the second balun, the diodes mixing the local oscillator signal with the RE signal to provide the intermediate frequency signal, the diode ring having a first node, a second node, a third node and a fourth node;d) the local oscillator balun transformer having a first winding, a second winding and a third winding, the first winding connected between the local oscillator terminal and ground, the second winding connected between ground and the first node, the third winding connected between ground and the second node, the local oscillator balun transformer having a first core, the first, second and third windings wound on the first core wherein, a portion of the first winding and the second winding are twisted together on the first core and a portion of the first winding and the third winding are twisted together on the first core; ande) the second balun transformer having a fourth winding, a fifth winding and a sixth winding, the fourth winding connected between the RF terminal and ground, the fifth winding connected between the intermediate frequency terminal and the third node, the sixth winding connected between the intermediate frequency terminal and the fourth node, the second balun transformer having a second core, the fourth, fifth and sixth windings wound on the second core wherein, a portion of the fourth winding and the fifth winding are twisted together on the second core and a portion of the fourth winding and the sixth winding are twisted together on the second core.
  19. 19. The mixer according to claim 18 , wherein the first winding is a primary winding and the second and third windings are secondary windings, the first winding electro-magnetically coupled to the second and third windings.
  20. 20. The mixer according to claim 19 , wherein the fourth winding is a primary winding and the fifth and sixth windings are secondary windings, the fourth winding electro-magnetically coupled to the fifth and sixth windings.
Description

This application claims the benefit of Provisional Application Ser. No. 60/386,684, filed Jun. 7, 2002.

Background

1. Field of the Invention

This invention relates to mixers in general and more particularly to a mixer that has high local oscillator to RF (L-R) isolation, low conversion loss and good VSWR at a low cost.

2. Description of Related Art

A mixer circuit converts a radio frequency (RF) signal to an intermediate frequency (IF) signal which is the difference of the RF and a local oscillator (LO) signal. The IF frequency is obtained by multiplying the RF signal with the local oscillator (LO) signal. The difference or IF frequency is a result of the non-linearity of the mixer. Along with the IF frequency, the mixer typically generates inter-modulation products due to the non-linearity response.

FIG. 1 shows a schematic drawing of a prior art mixer. Mixer 20 has a local oscillator input terminal LO for receiving a local oscillator signal, an RF input terminal RF for receiving an RF signal and an intermediate frequency output terminal IF for providing an intermediate frequency output signal.

A diode ring QD 1 has four diodes D 1 , D 2 , D 3 , and D 4 . The diodes are connected in a ring configuration. The cathode of each diode is connected to the anode of the adjacent diode. Node 22 is connected between diodes D 1 and D 2 . Node 23 is connected between diodes D 2 and D 3 . Node 24 is connected between diodes D 3 and D 4 . Node 25 is connected between diodes D 1 and D 4 .

Mixer 20 has a local oscillator port LO that is connected to local oscillator balun transformer T 1 . Transformer T 1 has windings T 1 a and T 1 b that are wound on a core C 1 . Windings T 1 a and T 1 b are magnetically coupled. Winding T 1 a has one end connected to port LO and the other end connected to ground G. Winding T 1 b has one end connected to node 22 and the other end connected to node 24 . The midpoint of winding T 1 b is connected to ground. Transformer T 2 has windings T 2 a and T 2 b that are wound on a core C 2 . Windings T 2 a and T 2 b are magnetically coupled. Winding T 2 a has one end connected to port RF and the other end connected to ground G. Winding T 2 b has one end connected to node 23 and the other end connected to node 25 . The midpoint of winding T 2 b is connected to port IF.

The turns ratio of balun transformers T 1 and T 2 determine the VSWR at the local oscillator (LO) and RF terminals. The amplitude unbalance and phase unbalance of balun transformers T 1 and T 2 determine the L-R isolation. The insertion loss and matching of diode ring QD 1 to balun transformers T 1 and T 2 determines the conversion loss of the mixer. Due to parasitic capacitance between the primary and secondary windings, the amplitude unbalance of balun transformers T 1 and T 2 becomes worse at high frequency. The VSWR and insertion loss of balun transformers T 1 and T 2 becomes worse at high frequency.

While various mixers have been used, they have suffered from not having high local oscillator to RF (L-R) isolation, low conversion loss and good VSWR at a low cost.

A current unmet need exists for a mixer that has high L-R isolation, low conversion loss, good VSWR and that can be assembled at low cost.

Summary

It is a feature of the invention to provide a mixer for mixing an RF input signal with a local oscillator signal to provide at an output an intermediate frequency signal that is easily assembled at low cost.

Another feature of the invention to provide a mixer that has improved isolation between the RF signal and the local oscillator signal.

Another feature of the invention to provide a mixer that has improved VSWR and conversion loss.

Another feature of the invention is to provide a mixer that mixes an RF input signal with a local oscillator signal to provide an intermediate frequency signal. The mixer includes a first balun transformer that has a first winding, a second winding and a third winding. The first winding is coupled to the second and third windings. The first winding is connected between a local oscillator terminal and ground. The second winding is connected between ground and a first node. The third winding is connected between ground and a second node. A second balun transformer has a fourth winding, a fifth winding and a sixth winding. The fourth winding is coupled to the fifth and sixth windings. The fourth winding is connected between an RF terminal and ground. The fifth winding is connected between an intermediate frequency terminal and a third node. The sixth winding is connected between the intermediate frequency terminal and a fourth node. The mixer has four diodes. One diode is connected between each of the first, second, third and fourth nodes.

Brief Description of the Drawings

FIG. 1 is a schematic drawing of a prior art double balanced mixer.

FIG. 2 is a schematic drawing of a double balanced mixer in accordance with the present invention.

FIG. 3 is a diagrammatic view of the layout of the windings of FIG. 2 .

FIG. 4 is a top view of a physical package layout of the mixer of FIG. 2 .

FIG. 5 is a left side cross-sectional view of FIG. 4 .

FIG. 6 is a right side cross-sectional view of FIG. 4 .

FIG. 7 is a graph of conversion loss versus RF frequency for the mixer of FIG. 2 .

FIG. 7A is a graph of conversion loss versus RF frequency for a prior art mixer.

FIG. 8 is a graph of L-R isolation versus frequency for the mixer of FIG. 2 .

FIG. 8A is a graph of L-R isolation versus frequency for a prior art mixer.

FIG. 9 is a graph of L-I isolation versus frequency for the mixer of FIG. 2 .

FIG. 9A is a graph of L-I isolation versus frequency for a prior art mixer.

FIG. 10 is a graph of VSWR at the RF terminal for the mixer of FIG. 2 .

FIG. 10A is a graph of VSWR at the RF terminal for a prior art mixer.

FIG. 11 is a graph of VSWR at the LO terminal for the mixer of FIG. 2 .

FIG. 11A is a graph of VSWR at the LO terminal for a prior art mixer.

FIG. 12 is a graph of VSWR at the IF terminal for the mixer of FIG. 2 .

FIG. 12A is a graph of VSWR at the IF terminal for a prior art mixer.

It is noted that the drawings of the invention are not to scale. In the drawings, like numbering represents like elements between the drawings.

Detailed Description

Referring to FIG. 2 , a schematic drawing of double balanced mixer 30 in accordance with the present invention is shown. Mixer 30 has a local oscillator port LO that is connected to local oscillator balun transformer T 4 . Transformer T 4 has windings T 4 a , T 4 b and T 4 c that are wound on a core C 1 . Winding T 4 a is a primary winding. Windings T 4 b and T 4 c are secondary windings. Windings T 4 a and T 4 b are magnetically coupled as are windings T 4 a and T 4 c . Winding T 4 a has one end connected to port LO and the other end connected to ground G. Winding T 4 b has one end connected to node 22 and the other end connected to ground G. Winding T 4 c has one end connected to node 24 and the other end connected to ground G. A set of four diodes or diode quad QD 1 is arranged in a ring configuration. Diode quad QD 1 has four diodes D 1 , D 2 , D 3 and D 4 . The diodes are arranged such that the cathode of one diode is connected to the anode of another diode. Diode quad QD 1 has nodes 23 , 23 , 24 and 25 . Transformer T 5 has windings T 5 a , T 5 b and T 5 c that are wound on a core C 2 . Winding T 5 a is a primary winding. Windings T 5 b and T 5 c are secondary windings T 5 a and T 5 b are magnetically coupled as are windings T 5 a and T 5 c . Winding T 5 a has one end connected to port RF and the other end connected to ground G. Winding T 5 b has one end connected to node 23 and the other end connected to port IF. Winding T 5 c has one end connected to node 25 and the other end connected to port IF.

Turning to FIG. 3 , a layout diagram of the windings of balun transformers T 4 and T 5 are shown. Wires 32 , 34 and 36 are wound on core C 1 to form LO balun transformer T 4 . Wire 32 has 3.5 turns, wire 34 has 2.5 turns and wire 36 has 2.5 turns. Wire 32 has ends 32 A and 32 B. Wire 34 has ends 34 A and 34 B. Wire 36 has ends 36 A and 36 B. Wires 32 and 34 are twisted together to form a pair of twisted wires TW 1 for 2 turns. Wires 32 , 34 and 36 are twisted together to form twisted wires TW 2 for 1 turn. Winding T 4 a corresponds to wire 32 . Winding T 4 b corresponds to wire 34 . Winding T 4 c corresponds to wire 36 . This design of transformer T 4 provides a differential LO signal to diode ring QD 1 that has better amplitude unbalance.

Wires 38 , 40 and 42 are wound on core C 2 to form balun transformer T 5 . Wire 38 has 3.5 turns, wire 40 has 2.5 turns and wire 42 has 2.5 turns. Wire 38 has ends 38 A and 38 B. Wire 40 has ends 40 A and 40 B. Wire 42 has ends 42 A and 42 B. Wires 38 and 40 are twisted together to form twisted wires TW 5 for 1 turn. Wires 38 , 40 and 42 are twisted together to form twisted wires TW 4 for 1 turn. Wires 38 and 42 are twisted together to form twisted wires TW 3 for 1 turn. Winding T 5 a corresponds to wire 38 . Winding T 5 b corresponds to wire 40 . Winding T 5 c corresponds to wire 42 .

Referring now to FIGS. 4-6 , mixer 30 is realized in a physical package. Mixer 30 has a carrier 50 . Carrier 50 has a cavity 52 , rim 54 , bottom surface 56 and support 58 . Metal leads 62 are attached to rim 54 . Leads 62 would be soldered to an external printed circuit board (not shown). Diode ring QD 1 is assembled as a chip on board on a ceramic substrate and is attached to support 58 by an epoxy (not shown). Wires 34 B, 36 A, 40 B and 42 A are connected to pads 66 on diode QD 1 .

Ferrite cores C 1 and C 2 are attached to surface 56 with an epoxy 60 . Cores C 1 and C 2 each have apertures 70 through which the windings pass. Core C 1 has legs 72 and 74 . Core C 2 has legs 76 and 78 .

Balun transformer T 4 has core C 1 with legs 72 and 74 . Wires 32 , 34 and 36 are wound on leg 74 . Twisted wires TW 1 and TW 2 are wound on leg 74 . The wire ends 32 A, 34 A, 32 B and 36 B are welded or soldered to leads 62 . Balun transformer T 5 has core C 2 with legs 76 and 78 . Twisted wires TW 3 , TW 4 and TW 5 are wound on leg 74 . The wire ends 38 A, 38 B, 40 A and 42 B are welded or soldered to leads 62 .

The present invention has several advantages. The mixer has very good L-R isolation over a broad frequency range. The improved isolation is due to configuring the windings of the transformers to achieve superior balance. The turns ratio of transformers T 4 and T 5 were selected to match the impedance presented by diode ring QD 1 . This results in a mixer with low conversion loss, low conversion loss flatness, excellent LO, RF and IF port matching and superior L-R isolation.

A mixer 30 was fabricated and tested for electrical performance as was the prior art mixer 20 . The results are shown graphically in the following figures.

FIG. 7 is a graph of conversion loss versus RF frequency for mixer 30 . The conversion loss is very flat. It is within +/−0.2 dB over the frequency range of 10 to 1000 MHz. This is a vast improvement over prior art mixers.

FIG. 7A is a graph of conversion loss versus RF frequency for prior art mixer 20 . The conversion loss is +/−1.6 dB over the frequency range. Therefore, the conversion loss of the present mixer 30 is much better than that of prior art mixer 20 .

FIG. 8 is a graph of L-R isolation versus frequency for the mixer of FIG. 2 . The isolation starts at 80 dB at 10 MHz, drops to 75 dB at 60 MHz, stays at 75 dB until 300 MHz, drops to 60 dB at 410 MHz and then levels off at 48 dB. This is a 15 to 30 dB improvement over the L-R isolation of the prior art mixer seen in FIG. 8 A.

FIG. 8A is a graph of L-R isolation versus frequency for a prior art mixer.

FIG. 9 is a graph of L-I isolation versus frequency for the mixer of FIG. 2 .

FIG. 9A is a graph of L-I isolation versus frequency for a prior art mixer. The L-I isolation is similar for the new mixer 30 and the prior art mixer.

FIG. 10 is a graph of VSWR at the RF terminal for the mixer of FIG. 2 .

FIG. 10A is a graph of VSWR at the RF terminal for a prior art mixer. The RF port match of mixer 30 (1.1:1 to 1.5:1) is improved over the prior art mixer (1.4:1 to 2.5:1).

FIG. 11 is a graph of VSWR at the LO terminal for the mixer of FIG. 2 .

FIG. 11A is a graph of VSWR at the LO terminal for a prior art mixer. The LO port match of mixer 30 (1.5:1 to 2.0:1) is improved over the prior art mixer (2.5:1 to 3.7:1) for 7 dBm LO power level. The performance is substantially improved at 4 and 10 dBm LO power levels.

FIG. 12 is a graph of VSWR at the IF terminal for the mixer of FIG. 2 .

FIG. 12A is a graph of VSWR at the IF terminal for a prior art mixer. The IF port match of mixer 30 is about the same as the prior art mixer.

High isolation mixer 30 has high L-R isolation, low conversion loss, good VSWR and can be assembled at low cost providing an improvement over previous mixers.

While the invention has been taught with specific reference to these embodiments, someone skilled in the art will recognize that changes can be made in form and detail without departing from the spirit and the scope of the invention. The described embodiments are to be considered in all respects only as illustrative and not restrictive. The scope of the invention is, therefore, indicated by the appended claims rather than by the description. All changes that come within the meaning and range of equivalency of the claims are to be embraced within their scope.

US 6,947,717: questions and answers

What is US Patent 6,947,717 about?

US 6,947,717, “High isolation mixer”, is a utility patent granted by the United States Patent and Trademark Office on September 20, 2005. In brief: A mixer with improved isolation between the RF and local oscillator frequency signals.

Who invented US Patent 6,947,717?

The named inventor is Ji Daxion.

When was US Patent 6,947,717 filed?

The application was filed on October 7, 2002 and the patent granted on September 20, 2005.

When does US Patent 6,947,717 expire?

The nominal expiration date is October 7, 2022. 20 years from the earliest U.S. non-provisional filing date.

How many claims does US Patent 6,947,717 have?

It has 20 claims, of which 3 are independent.

How is US Patent 6,947,717 classified?

Its primary Cooperative Patent Classification symbol is H03D9/00 — demodulation or transference of modulation of modulated electromagnetic waves (demodulating light, transferring modulation in light waves g02f2/00).

Who was the patent attorney for US Patent 6,947,717?

This patent was prosecuted by Feigin & Fridman, LLC, patent attorneys in New York and New Jersey. Contact us to discuss protecting your own invention.

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