WO1993003387A1 - Broadband antennas and electromagnetic field simulators - Google Patents

Broadband antennas and electromagnetic field simulators Download PDF

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Publication number
WO1993003387A1
WO1993003387A1 PCT/CA1992/000323 CA9200323W WO9303387A1 WO 1993003387 A1 WO1993003387 A1 WO 1993003387A1 CA 9200323 W CA9200323 W CA 9200323W WO 9303387 A1 WO9303387 A1 WO 9303387A1
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WO
WIPO (PCT)
Prior art keywords
horn
plate section
septum
ground plane
simulator
Prior art date
Application number
PCT/CA1992/000323
Other languages
French (fr)
Inventor
Andrew S. Podgorski
Gary A. Gibson
Original Assignee
National Research Council Of Canada
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by National Research Council Of Canada filed Critical National Research Council Of Canada
Priority to US08/185,916 priority Critical patent/US5440316A/en
Priority to JP50313393A priority patent/JP3312251B2/en
Priority to EP92916269A priority patent/EP0621952B1/en
Priority to DE69232189T priority patent/DE69232189D1/en
Publication of WO1993003387A1 publication Critical patent/WO1993003387A1/en

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R29/00Arrangements for measuring or indicating electric quantities not covered by groups G01R19/00 - G01R27/00
    • G01R29/08Measuring electromagnetic field characteristics
    • G01R29/0807Measuring electromagnetic field characteristics characterised by the application
    • G01R29/0814Field measurements related to measuring influence on or from apparatus, components or humans, e.g. in ESD, EMI, EMC, EMP testing, measuring radiation leakage; detecting presence of micro- or radiowave emitters; dosimetry; testing shielding; measurements related to lightning
    • G01R29/0821Field measurements related to measuring influence on or from apparatus, components or humans, e.g. in ESD, EMI, EMC, EMP testing, measuring radiation leakage; detecting presence of micro- or radiowave emitters; dosimetry; testing shielding; measurements related to lightning rooms and test sites therefor, e.g. anechoic chambers, open field sites or TEM cells
    • G01R29/0828TEM-cells

Definitions

  • An electromagnetic simulator is a type of test equipment used for checking the behaviour of equipment in the presence of strong electromagnetic fields.
  • Continuous Wave (cw) measurement of electromagnetic 10 susceptibility and radiated interference can be carried out using multiple antennas whose electromagnetic properties must be well known in the near field or using TEM cells whose volume and/or frequency limits make them unsuitable for broadband testing of large (few metres in height) 15 electronic sub-systems.
  • Pulse measurements of electromagnetic susceptibility are currently conducted using parallel line simulators, G- TEM cells or distributed load conical simulators.
  • the parallel line simulators suffer from high frequency 20 limitations.
  • the use of G-TEM cells limits the volume of the tested object and the conical simulator suffers from frequency limitations.
  • U.S. Patent No. 4,546,358 issued October 8, 1985 to Edlin et al. discloses a test cell formed in the space 25 between a parallel plate conductor and ground plane which together form a transmission line.
  • the parallel plate conductor is fed by a tapered line section from a coaxial feed, in order to maintain a constant impedance, and the parallel plate conductor terminates in a fluted edge to 30 avoid reflections.
  • HEE HEE ⁇ total height of the wave guide from the top surface. This defines a test volume between the intermediate plate and the wave guide lower surface. Uniform field strength in the test volume is achieved by a complex termination arrangement consisting of a curved wall of high frequency energy absorbing material coupled to the intermediate plate by a number of terminal resistors.
  • the impedance of the line formed by the intermediate plate and the ground plane can be slightly varied, if required for fine tuning, by altering the spacing of the intermediate plate from the upper surface of the wave guide.
  • Such equipment is unsuitable for the testing of large pieces of electronic equipment.
  • the apparatus described in the present application can be expanded to accommodate larger objects without degradation of the bandwidth.
  • the simulator described in this application launches an electromagnetic wave from a high frequency coaxial feed line into an expanding rectangular horn containing a plate conductor forming an asymmetrical parallel line within the horn.
  • the parallel line extends beyond the horn by means of a forwardly extending conducting plate section which functions as a radiating element and establishes a test volume in the space between itself and a ground plane extending forwardly from the lower surface of the horn.
  • the forwardly extending plate section is connected to the parallel line either directly or through a network of parallel inductance and capacitance. Two modes of propagation occur in the horn giving a complete coverage of the relevant frequency spectrum.
  • the invention relates to a broadband electromagnetic field simulator comprising: an open horn waveguide and a ground plane conductor formed as a forward extension of the lower surface of the horn.
  • a source of r.f. energy is coupled to the apex of the horn and a relatively narrow conducting plate positioned to form a septum between the upper and lower surfaces of the horn.
  • a plate section of similar configuration to the septum is coupled thereto and extends forwardly from the mouth of the horn. The plate section extends initially substantially parallel to the ground plane and then curves downwardly to terminate adjacent to it. The space between the forwardly extending plate section and the ground plane defines the required test volume.
  • the plate section extends upwardly, initially with an exponential configuration and then forwardly to terminate at a vertical, grounded wall faced with anechoic material.
  • the structure provides an extremely wide band response due in part to greatly reduced internal reflections.
  • one form of the invention relates to an antenna comprising: an open horn waveguide with a ground plane conductor forming a forward extension of the lower surface of the horn; the apex of the horn being adapted to receive a detector or r.f.
  • a relatively narrow conducting plate positioned to form a septum between the upper and lower surfaces of the horn; and a conducting plate section of similar configuration to the septum and coupled thereto and extending forwardly from the mouth of the horn, said plate section extending initially substantially parallel to the ground plane and then curving downwardly to terminate adjacent to it; whereby the forwardly extending plate section functions as a radiating element.
  • Another form of antenna in accordance with the invention consists of an open horn waveguide with a ground plane conductor forming a forward extension of the lower surface of the horn; a pair of closely spaced conducting plates positioned to form an upper and lower septum, respectively, between the upper and lower surfaces of the horn; a forwardly extending conducting section spaced from and in front of the horn; and a plurality of laterally spaced conductors connecting the septums to the rear edge of the conducting section; whereby the conducting section functions as a radiating element.
  • the conductors extending between the front edge of the upper septum and the conducting section each contain a resistive termination.
  • This structure can also function as an electromagnetic simulator.
  • Figure 1 is a schematic view of one embodiment of a simulator in accordance with the invention
  • Figure 2 shows the coupling between the septum within the horn and the forwardly extending plate section
  • Figure 3 shows use of the simulator within an anechoic chamber
  • Figure 4 shows use of the simulator in free space
  • Figure 5 shows a further embodiment of a simulator in accordance with the invention.
  • Figures 6 to 9 are embodiments of antennas in accordance with the invention.
  • Figure 10 is a modification of the simulator shown in Figure 3;
  • Figure 11 is a further embodiment of a structure in accordance with the invention, which can be used as a simulator or as an antenna. DESCRIPTION OF PREFERRED EMBODIMENTS
  • FIG. 1 shows broadband electromagnetic field simulator in accordance with this invention having an r.f. signal, either pulse or continuous wave, supplied from a generator 6 through a coaxial line 5 to a transition coupling 7 connected to the input of a TEM line formed by horn 10.
  • the aperture of horn 10 is open and a ground plane 3 extends forwardly to form the base of the test volume.
  • a conducting plate or septum 9 is positioned spaced from the upper surface of the horn and with a high voltage dielectric lining 8 therebetween.
  • a forwardly extending plate section 1 is provided to function as the radiating element in the test apparatus.
  • This plate can be connected either directly to conducting plate 9 or by means of the coupling network shown in Figure 2.
  • Plate 1 extends forwardly from the horn to a support structure 19 and then curves downwardly towards ground plane 3, being coupled to the ground plane through a terminating resistor 2.
  • Apparatus to be tested is located on the ground plane under the forwardly extending radiating element.
  • FIG. 5 An alternative embodiment, shown in Figure 5 has plate 1 extending upwardly, initially at an exponential rate, towards a higher support structure 19' and then extending forwardly to terminate at a vertical ground plane 3' via terminating resistor 2.
  • the side of the vertical ground plane is covered with anechoic material. This permits the testing of objects 4 of larger dimensions.
  • a preferred manner of coupling the forwardly extending element to the septum in the horn is shown in Figure 2.
  • the septum shown at 16 forms a capacitor with the radiating element 1 having a dielectric formed by strip 12.
  • An inductance is provided by line 17 extending from the radiating element back to the conductive plate.
  • the edges of the septum are connected to the side walls of the radiating horn through terminating inductances 15 and high voltage terminating resistors 14.
  • test apparatus can be used in an anechoic chamber 32 as shown in Figure 3 provided with absorbers 31 or in a shielded room having only side walls lined with anechoic material.
  • Other reference numerals in Figure 3 correspond to those already shown in Figure 1.
  • the test apparatus can be used in an unbounded electromagnetic field configuration as shown in Figure 4. Again the same reference numerals are used in Figure 1.
  • a modification of the simulator uses two building, each of the type shown in Figure 4, facing one another with an open space between in which is located the support 19.
  • the terminating portion of the forwardly extending plate as well as the transmitting section are thus under cover.
  • a further modification of the simulator shown in Figures 1 and 5 uses shielded side walls to reduce any electromagnetic leakage to acceptable levels.
  • any radiating structure can also function as an antenna.
  • the structure of Figure 1 can also act as a sensitive wide band antenna.
  • Figure 6 is such a modification of the simulator of Figure 5 adapted to function as an antenna.
  • the vertical ground plane and anechoic material are removed for antenna operation and terminating resistors 33 are connected from about the mid-line of plate 1 to the metal upper edge of the horn.
  • the lower surface of the horn is positioned on a ground plane 39.
  • High voltage insulation 38 separates the septum and plate 1 from the horn itself.
  • the function of resistors 33 is to reduce unwanted reflections. ...._ ...
  • Figure 7 shows a similar, but more symmetrical arrangement, omitting the ground plane thus avoiding limiting the antenna to signals guided by ground.
  • a pair of forwardly extending plates 1 and 1 ' define a radiating arrangement with plate 1 connected in a similar fashion as shown in Figure 6 but plate 1' connected to the lower front edge of the horn.
  • Figure 8 shows a similar but completely symmetrical arrangement in which a pair of structures of the type shown in Figure 1 are provided with radiating horns connected along one edge and forwardly extending plates 1 and 1' are joined at their free ends by terminating resistors 34. The horns require separate feeds 6 and 6'.
  • Figure 9 shows a still further modified antenna which uses a reflector 36 fed by a pair of symmetrically arranged horns having forwardly extending conductive plates 35 conforming in shape to the curvature of reflector 36 and connected to the reflector by terminating resistors 37.
  • Such double horn antennas can also be used in a modification of the electromagnetic simulator of Figure 3, shown in Figure 10.
  • the simulator shown in Figure 10 has two plates or septums extending from the antennas into the anechoic chamber and terminating at the end of the side walls of the anechoic chambers.
  • the simulator projects into the anechoic chamber at an angle in respect to the ground.
  • Such design is advantageous for an anechoic chamber with a ground plane, since it can simulate the effects of ground reflection.
  • the simulator of Figure 10 can be arranged parallel to the ground, simulating a perfectly horizontal polarization.
  • the use of such double-horn simulators permits the simulation of horizontal polarization, providing broadband simulation for both vertical and horizontal polarizations.
  • FIG 11 shows a further form of structure useful both as an antenna or a simulator employing similar concepts as in the previously discussed embodiments.
  • a horn 40 located on a ground plate 48, is provided with a pair of septums 41 and 42 separated by an insulating member 43. As a result septums 41 and 42 are capacitively coupled.
  • a forwardly located conductive plate with sections 44 and 45 is connected to the upper and lower septum edges by wires 47. The wires from the upper septum have resistors 46 along their length and the wires from the lower septum edge are continuous. Plate sections 44 and 45 may be formed from wire mesh and act as radiators when used as an antenna. Resistors 46 provide appropriate matching to avoid reflections.
  • the antenna can be used with a reflector as discussed in relation to Figure 9.
  • broadband antennas and broadband gigahertz field simulators capable of generating high power values of field distributed uniformly across a test volume.
  • the simulator has the following advantages:
  • Provision of a wide-band simulator that can be used in both open field and shielded environments.
  • the structure has been shown to be useful as a broadband high power radiator and a broadband sensitive listening device for electronic warfare applications.

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  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • General Physics & Mathematics (AREA)
  • Testing Electric Properties And Detecting Electric Faults (AREA)
  • Aerials With Secondary Devices (AREA)
  • Waveguide Aerials (AREA)

Abstract

A structure for use in an antenna or as a broadband electromagnetic field simulator, having an open horn TEM waveguide coupled to launch energy in a strip line formed between a forwardly extending plate section and a ground plane. When used as a simulator the test volume is located outside the horn between the forwardly extending plate section and the ground plane. The plate section which functions as a radiating element initially extends parallel to the ground plane and then curves downwardly to terminate adjacent it. In alternative embodiments the plate section extends upwardly, initially with an exponential configuration. In a simulator embodiment it may then terminate at a vertical, grounded wall faced with anechoic material. The horn contains a flat conductor plate positioned parallel to and spaced from the top edge defining an asymmetrical transmission line within the horn. This plate conductor can be coupled to the forwardly extending plate section directly, by means of an RLC coupling network or by means of an array of laterally spaced conductors.

Description

BROADBAND ANTENNAS AND ELECTROMAGNETIC FIELD SIMULATORS This application relates to electromagnetic radiating structures suitable for use as antennas or as 5 electromagnetic simulators. An electromagnetic simulator is a type of test equipment used for checking the behaviour of equipment in the presence of strong electromagnetic fields.
Continuous Wave (cw) measurement of electromagnetic 10 susceptibility and radiated interference can be carried out using multiple antennas whose electromagnetic properties must be well known in the near field or using TEM cells whose volume and/or frequency limits make them unsuitable for broadband testing of large (few metres in height) 15 electronic sub-systems.
Pulse measurements of electromagnetic susceptibility are currently conducted using parallel line simulators, G- TEM cells or distributed load conical simulators. The parallel line simulators suffer from high frequency 20 limitations. The use of G-TEM cells limits the volume of the tested object and the conical simulator suffers from frequency limitations.
U.S. Patent No. 4,546,358 issued October 8, 1985 to Edlin et al. discloses a test cell formed in the space 25 between a parallel plate conductor and ground plane which together form a transmission line. The parallel plate conductor is fed by a tapered line section from a coaxial feed, in order to maintain a constant impedance, and the parallel plate conductor terminates in a fluted edge to 30 avoid reflections.
Canadian Patent No. 1,273,060, issued August 21, 1990 to BBC Brown, Boveri & Company, Limited, (U.S. Patent No.
€5 4,837,581) discloses an EMI testing device using a wave guide of pyramidal shape but with added features. The test 35 device disclosed in this patent has an intermediate plate conductor suspended in the wave guide at a distance of about one quarter of the
HEEτ total height of the wave guide from the top surface. This defines a test volume between the intermediate plate and the wave guide lower surface. Uniform field strength in the test volume is achieved by a complex termination arrangement consisting of a curved wall of high frequency energy absorbing material coupled to the intermediate plate by a number of terminal resistors. The impedance of the line formed by the intermediate plate and the ground plane can be slightly varied, if required for fine tuning, by altering the spacing of the intermediate plate from the upper surface of the wave guide.
Such equipment is unsuitable for the testing of large pieces of electronic equipment. The apparatus described in the present application can be expanded to accommodate larger objects without degradation of the bandwidth.
Generally, the simulator described in this application launches an electromagnetic wave from a high frequency coaxial feed line into an expanding rectangular horn containing a plate conductor forming an asymmetrical parallel line within the horn. The parallel line extends beyond the horn by means of a forwardly extending conducting plate section which functions as a radiating element and establishes a test volume in the space between itself and a ground plane extending forwardly from the lower surface of the horn. The forwardly extending plate section is connected to the parallel line either directly or through a network of parallel inductance and capacitance. Two modes of propagation occur in the horn giving a complete coverage of the relevant frequency spectrum.
Specifically, in one aspect the invention relates to a broadband electromagnetic field simulator comprising: an open horn waveguide and a ground plane conductor formed as a forward extension of the lower surface of the horn. A source of r.f. energy is coupled to the apex of the horn and a relatively narrow conducting plate positioned to form a septum between the upper and lower surfaces of the horn. A plate section of similar configuration to the septum is coupled thereto and extends forwardly from the mouth of the horn. The plate section extends initially substantially parallel to the ground plane and then curves downwardly to terminate adjacent to it. The space between the forwardly extending plate section and the ground plane defines the required test volume.
In an alternative embodiment the plate section extends upwardly, initially with an exponential configuration and then forwardly to terminate at a vertical, grounded wall faced with anechoic material. When used as an antenna, the structure provides an extremely wide band response due in part to greatly reduced internal reflections. In its antenna aspect, one form of the invention relates to an antenna comprising: an open horn waveguide with a ground plane conductor forming a forward extension of the lower surface of the horn; the apex of the horn being adapted to receive a detector or r.f. source; a relatively narrow conducting plate positioned to form a septum between the upper and lower surfaces of the horn; and a conducting plate section of similar configuration to the septum and coupled thereto and extending forwardly from the mouth of the horn, said plate section extending initially substantially parallel to the ground plane and then curving downwardly to terminate adjacent to it; whereby the forwardly extending plate section functions as a radiating element. Another form of antenna in accordance with the invention consists of an open horn waveguide with a ground plane conductor forming a forward extension of the lower surface of the horn; a pair of closely spaced conducting plates positioned to form an upper and lower septum, respectively, between the upper and lower surfaces of the horn; a forwardly extending conducting section spaced from and in front of the horn; and a plurality of laterally spaced conductors connecting the septums to the rear edge of the conducting section; whereby the conducting section functions as a radiating element. Probably the conductors extending between the front edge of the upper septum and the conducting section each contain a resistive termination. This structure can also function as an electromagnetic simulator.
BRIEF DESCRIPTION OF THE DRAWINGS Preferred embodiments will be described in conjunction with the accompanying drawings, in which: Figure 1 is a schematic view of one embodiment of a simulator in accordance with the invention;
Figure 2 shows the coupling between the septum within the horn and the forwardly extending plate section;
Figure 3 shows use of the simulator within an anechoic chamber;
Figure 4 shows use of the simulator in free space;
Figure 5 shows a further embodiment of a simulator in accordance with the invention.
Figures 6 to 9 are embodiments of antennas in accordance with the invention; Figure 10 is a modification of the simulator shown in Figure 3; and
Figure 11 is a further embodiment of a structure in accordance with the invention, which can be used as a simulator or as an antenna. DESCRIPTION OF PREFERRED EMBODIMENTS
Figure 1 shows broadband electromagnetic field simulator in accordance with this invention having an r.f. signal, either pulse or continuous wave, supplied from a generator 6 through a coaxial line 5 to a transition coupling 7 connected to the input of a TEM line formed by horn 10. The aperture of horn 10 is open and a ground plane 3 extends forwardly to form the base of the test volume.
Within the horn a conducting plate or septum 9 is positioned spaced from the upper surface of the horn and with a high voltage dielectric lining 8 therebetween. At the output of the horn a forwardly extending plate section 1 is provided to function as the radiating element in the test apparatus. This plate can be connected either directly to conducting plate 9 or by means of the coupling network shown in Figure 2. Plate 1 extends forwardly from the horn to a support structure 19 and then curves downwardly towards ground plane 3, being coupled to the ground plane through a terminating resistor 2. Apparatus to be tested, indicated schematically at 4, is located on the ground plane under the forwardly extending radiating element.
An alternative embodiment, shown in Figure 5 has plate 1 extending upwardly, initially at an exponential rate, towards a higher support structure 19' and then extending forwardly to terminate at a vertical ground plane 3' via terminating resistor 2. The side of the vertical ground plane is covered with anechoic material. This permits the testing of objects 4 of larger dimensions. A preferred manner of coupling the forwardly extending element to the septum in the horn is shown in Figure 2. The septum shown at 16 forms a capacitor with the radiating element 1 having a dielectric formed by strip 12. An inductance is provided by line 17 extending from the radiating element back to the conductive plate. The edges of the septum are connected to the side walls of the radiating horn through terminating inductances 15 and high voltage terminating resistors 14.
The test apparatus can be used in an anechoic chamber 32 as shown in Figure 3 provided with absorbers 31 or in a shielded room having only side walls lined with anechoic material. Other reference numerals in Figure 3 correspond to those already shown in Figure 1. Alternatively, the test apparatus can be used in an unbounded electromagnetic field configuration as shown in Figure 4. Again the same reference numerals are used in Figure 1.
A modification of the simulator uses two building, each of the type shown in Figure 4, facing one another with an open space between in which is located the support 19. The terminating portion of the forwardly extending plate as well as the transmitting section are thus under cover. A further modification of the simulator shown in Figures 1 and 5 uses shielded side walls to reduce any electromagnetic leakage to acceptable levels.
As is known, due to reciprocity any radiating structure can also function as an antenna. The structure of Figure 1 can also act as a sensitive wide band antenna. Figure 6 is such a modification of the simulator of Figure 5 adapted to function as an antenna. The vertical ground plane and anechoic material are removed for antenna operation and terminating resistors 33 are connected from about the mid-line of plate 1 to the metal upper edge of the horn. The lower surface of the horn is positioned on a ground plane 39. High voltage insulation 38 separates the septum and plate 1 from the horn itself. The function of resistors 33 is to reduce unwanted reflections. ...._ ... Figure 7 shows a similar, but more symmetrical arrangement, omitting the ground plane thus avoiding limiting the antenna to signals guided by ground. A pair of forwardly extending plates 1 and 1 ' define a radiating arrangement with plate 1 connected in a similar fashion as shown in Figure 6 but plate 1' connected to the lower front edge of the horn. Figure 8 shows a similar but completely symmetrical arrangement in which a pair of structures of the type shown in Figure 1 are provided with radiating horns connected along one edge and forwardly extending plates 1 and 1' are joined at their free ends by terminating resistors 34. The horns require separate feeds 6 and 6'. Figure 9 shows a still further modified antenna which uses a reflector 36 fed by a pair of symmetrically arranged horns having forwardly extending conductive plates 35 conforming in shape to the curvature of reflector 36 and connected to the reflector by terminating resistors 37.
Such double horn antennas can also be used in a modification of the electromagnetic simulator of Figure 3, shown in Figure 10. The simulator shown in Figure 10 has two plates or septums extending from the antennas into the anechoic chamber and terminating at the end of the side walls of the anechoic chambers. The simulator projects into the anechoic chamber at an angle in respect to the ground. Such design is advantageous for an anechoic chamber with a ground plane, since it can simulate the effects of ground reflection. In the case of an anechoic chamber without ground (all six walls covered with absorbing material) , or in the case of an open field simulator, the simulator of Figure 10 can be arranged parallel to the ground, simulating a perfectly horizontal polarization. The use of such double-horn simulators permits the simulation of horizontal polarization, providing broadband simulation for both vertical and horizontal polarizations.
Figure 11 shows a further form of structure useful both as an antenna or a simulator employing similar concepts as in the previously discussed embodiments. A horn 40, located on a ground plate 48, is provided with a pair of septums 41 and 42 separated by an insulating member 43. As a result septums 41 and 42 are capacitively coupled. A forwardly located conductive plate with sections 44 and 45 is connected to the upper and lower septum edges by wires 47. The wires from the upper septum have resistors 46 along their length and the wires from the lower septum edge are continuous. Plate sections 44 and 45 may be formed from wire mesh and act as radiators when used as an antenna. Resistors 46 provide appropriate matching to avoid reflections. The antenna can be used with a reflector as discussed in relation to Figure 9.
When used as a simulator the area under the wires defines a test volume. It is necessary to terminate the simulator with termination resistors and an absorbing wall as shown for the embodiment of Figure 5.
Thus, there has been disclosed broadband antennas and broadband gigahertz field simulators capable of generating high power values of field distributed uniformly across a test volume. The simulator has the following advantages:
Reduced cost of testing by making possible susceptibility and emission testing in one simulator.
Provision of a wide-band simulator that can be used in both open field and shielded environments.
Provision for time (impulse) , frequency (cw) and current injection testing with one simulator by suitably changing source 6. Provision of both testing and calibration facilities in one simulator. Provision of easily accessible large (multi-metre height) testing volume.
Extension of the maximum frequency of operation into microwave (GHz) frequencies for testing of large height (multi-metre) objects. As a result, the low cost, extremely accurate, calibration simulator can be substituted for bulky TEM cells presently used for calibration. The advantage of this simulator, over others presently in use, is that it can be easily incorporated into existing shielded or anechoic enclosures thereby eliminating any environmental concerns by preventing the radiation of high electromagnetic fields into the environment. This is done without reduction of the bandwidth or the size of tested objects.
The structure has been shown to be useful as a broadband high power radiator and a broadband sensitive listening device for electronic warfare applications.

Claims

Claims 1. An antenna comprising: an open horn waveguide with a ground plane conductor forming a forward extension of the lower surface of the horn; a relatively narrow conducting plate positioned to form a septum between the upper and lower surfaces of the horn; and a conducting section of similar configuration to the septum and coupled thereto and extending forwardly from the mouth of the horn, said plate section extending initially substantially parallel to the ground plane and then curving downwardly to terminate adjacent to it; whereby the forwardly extending plate section functions as a radiating element.
2. An antenna comprising: an open horn waveguide with a ground plane conductor forming a forward extension of the lower surface of the horn; a relatively narrow conducting plate positioned to form a septum between the upper and lower surfaces of the horn; a conducting plate section of similar configuration to the septum and coupled thereto and extending forwardly from the mouth of the horn, said plate section extending upwardly away from the ground plane; and resistive means connected between the mid-point of the plate section and the open edge of the horn; whereby the forwardly extending plate section functions as a radiating element.
3. An antenna comprising: an open horn waveguide with a ground plane conductor forming a forward extension of the lower surface of the horn; a pair of closely spaced conducting plates positioned to form an upper and lower septum, respectively, between the upper and lower surfaces of the horn; a forwardly extending conducting section spaced from and in front of the horn; and a plurality of laterally spaced conductors connecting the septums to the rear edge of the conducting section; whereby the conducting section functions as a radiating element.
4. An antenna as set out in claim 3 wherein the conductors extending between the front edge of the upper septum and the conducting section each contain a resistive section.
5. An antenna as set out in claim 1 or claim 2 wherein the coupling between the septum and the forwardly extending plate section consists of a distributed capacitor in parallel with a coupling inductance.
6. An antenna as set out in claim 5 wherein the coupling between the septum and the forwardly extending plate section further includes terminating resistors between the septum and the adjacent side walls of the horn.
7. An antenna as set out in claim 1 wherein the forwardly extending plate section is coupled to the ground plane through a terminating resistor.
8. An antenna as set out in claim 1 further comprising a support for the forwardly extending plate section positioned at the forward edge of the space defining the test volume.
9. A broadband electromagnetic field simulator comprising: an open horn waveguide with a ground plane conductor forming a forward extension of the lower surface of the horn; a source of r.f. energy coupled to the apex of the horn; a relatively narrow conducting plate positioned to form a septum between the upper and lower surfaces of the horn; and a conducting plate section of similar configuration to the septum and coupled thereto and extending forwardly from the mouth of the horn, said plate section extending initially substantially parallel to the ground plane and then curving downwardly to terminate adjacent to it; whereby the forwardly extending plate section functions as a radiating element and the space between it and the ground plane defines a test volume.
10. A simulator as set out in claim 9 wherein the coupling between the septum and the forwardly extending plate section consists of a distributed capacitor in parallel with a coupling inductance.
11. A simulator as set out in claim 10 wherein the coupling between the septum and the forwardly extending plate section further includes terminating resistors between the septum and the adjacent side walls of the horn.
12. A simulator as set out in claim 9 wherein the forwardly extending plate section is coupled to the ground plane through a terminating resistor.
13. A simulator as set out in claim 9 further comprising a support for the forwardly extending plate section positioned at the forward edge of the space defining the test volume.
14. A simulator as set out in claim 9 wherein at least the conducting plate section and ground plane are contained in an anechoic chamber.
15. A broadband electromagnetic field simulator comprising: an open horn waveguide with a ground plane conductor forming a forward extension of the lower surface of the horn; a source of r.f. energy coupled to the apex of the horn; a relatively narrow conducting plate positioned to form a septum between the upper and lower surfaces of the horn; a vertical grounded wall spaced from and facing the mouth of the horn; and a conducting plate section of similar configuration to the septum and coupled thereto and extending forwardly from the mouth of the horn, said plate section extending initially upwardly away from the ground plane and then extending substantially horizontally to terminate at the vertical grounded wall; whereby the forwardly extending plate section functions as a radiating element and the space between it and the ground plane defines a test volume.
16. A simulator as set out in claim 15 wherein the coupling between the septum and the forwardly extending plate section consists of a distributed capacitor in parallel with a coupling inductance.
17. A simulator as set out in claim 16 wherein the coupling between the septum and the forwardly extending plate section further includes terminating resistors between the septum and the adjacent side walls of the horn.
18. A simulator as set out in claim 15 wherein the forwardly extending plate section is coupled to the vertical grounded wall through a terminating resistor.
19. A simulator as set out in claim 15 further comprising a support for the forwardly extending plate section positioned at the transition between its upward curve and its substantially horizontal extension.
20. A simulator as in claim 15 wherein the side of the vertical grounded wall facing the horn is covered with anechoic material.
PCT/CA1992/000323 1991-07-30 1992-07-30 Broadband antennas and electromagnetic field simulators WO1993003387A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
US08/185,916 US5440316A (en) 1991-07-30 1992-07-30 Broadband antennas and electromagnetic field simulators
JP50313393A JP3312251B2 (en) 1991-07-30 1992-07-30 Broadband antenna and electromagnetic field simulator
EP92916269A EP0621952B1 (en) 1991-07-30 1992-07-30 Broadband antennas and electromagnetic field simulators
DE69232189T DE69232189D1 (en) 1991-07-30 1992-07-30 BROADBAND ANTENNAS AND SIMULATORS FOR ELECTROMAGNETIC FIELDS

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CA2,047,999 1991-07-30
CA002047999A CA2047999C (en) 1991-07-30 1991-07-30 Broadband electromagnetic field simulator

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WO1993003387A1 true WO1993003387A1 (en) 1993-02-18

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WO1997034158A1 (en) * 1996-03-11 1997-09-18 The University Of Reading Electromagnetic compatibility testing
GB2315558A (en) * 1996-07-23 1998-02-04 Thermo Voltek Europ Bv An electromagnetic compatibility (EMC) test cell
EP0782003A3 (en) * 1995-12-29 1998-04-01 Rohde & Schwarz GmbH & Co. KG Means for EMC-testing electrical appliances
US5982331A (en) * 1996-06-21 1999-11-09 Podgorski; Andrew S. Dual polarization electromagnetic field simulator
US6075495A (en) * 1995-11-07 2000-06-13 Podgorski; Andrew S. Broadband TEM-horn antenna
US6127980A (en) * 1995-09-26 2000-10-03 Podgorski; Andrew S. Dual polarization electromagnetic field simulator
CN110767978A (en) * 2019-09-29 2020-02-07 西北核技术研究院 Ultra-wide spectrum electromagnetic pulse radiation antenna

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EP0614276A1 (en) * 1993-03-05 1994-09-07 Gerac Groupement D'etude Et De Recherche Appliquee A La Compatibilite Simulator for a predominantly magnetic field and its application for testing equipments
FR2702295A1 (en) * 1993-03-05 1994-09-09 Gerac Predominantly magnetic field simulator, and its application to equipment testing.
WO1997012251A1 (en) * 1995-09-26 1997-04-03 Podgorski Andrew S Dual polarization electromagnetic field simulator
US6127980A (en) * 1995-09-26 2000-10-03 Podgorski; Andrew S. Dual polarization electromagnetic field simulator
US6075495A (en) * 1995-11-07 2000-06-13 Podgorski; Andrew S. Broadband TEM-horn antenna
EP0782003A3 (en) * 1995-12-29 1998-04-01 Rohde & Schwarz GmbH & Co. KG Means for EMC-testing electrical appliances
WO1997034158A1 (en) * 1996-03-11 1997-09-18 The University Of Reading Electromagnetic compatibility testing
US5982331A (en) * 1996-06-21 1999-11-09 Podgorski; Andrew S. Dual polarization electromagnetic field simulator
GB2315557A (en) * 1996-07-23 1998-02-04 Thermo Voltek Europ Bv An electromagnetic compatibility (EMC) test cell
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GB2315558A (en) * 1996-07-23 1998-02-04 Thermo Voltek Europ Bv An electromagnetic compatibility (EMC) test cell
GB2315558B (en) * 1996-07-23 2001-01-31 Thermo Voltek Europ Bv An electromagnetic compatibility (EMC) test cell
GB2315557B (en) * 1996-07-23 2001-01-31 Thermo Voltek Europ Bv An electromagnetic compatibility (EMC)test cell
CN110767978A (en) * 2019-09-29 2020-02-07 西北核技术研究院 Ultra-wide spectrum electromagnetic pulse radiation antenna

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JPH07501911A (en) 1995-02-23
US5440316A (en) 1995-08-08
EP0621952B1 (en) 2001-11-07
EP0621952A1 (en) 1994-11-02
CA2047999C (en) 2000-10-31
CA2047999A1 (en) 1993-01-31
DE69232189D1 (en) 2001-12-13
JP3312251B2 (en) 2002-08-05

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