US2507528A - Antenna - Google Patents

Antenna Download PDF

Info

Publication number
US2507528A
US2507528A US610530A US61053045A US2507528A US 2507528 A US2507528 A US 2507528A US 610530 A US610530 A US 610530A US 61053045 A US61053045 A US 61053045A US 2507528 A US2507528 A US 2507528A
Authority
US
United States
Prior art keywords
slot
antenna
aperture
radiation
axis
Prior art date
Legal status (The legal status 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 status listed.)
Expired - Lifetime
Application number
US610530A
Inventor
Armig G Kandoian
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
STC PLC
Federal Telephone and Radio Corp
Original Assignee
Standard Telephone and Cables PLC
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
Priority to BE472157D priority Critical patent/BE472157A/xx
Application filed by Standard Telephone and Cables PLC filed Critical Standard Telephone and Cables PLC
Priority to US610530A priority patent/US2507528A/en
Priority to FR938846D priority patent/FR938846A/en
Application granted granted Critical
Publication of US2507528A publication Critical patent/US2507528A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q13/00Waveguide horns or mouths; Slot antennas; Leaky-waveguide antennas; Equivalent structures causing radiation along the transmission path of a guided wave
    • H01Q13/10Resonant slot antennas

Definitions

  • This invention relates to antenna structures, and especially to structures of the slot antenna yp
  • One object of the invention is to provide slot antennas less directive than slot antennas heretofore proposed.
  • Another object of the invention is to devise various forms of slot antennae to suit different radiation requirements.
  • a further object is to devise slot antenna structures which are suitable for use on aircraft and which may be embodied in the walls or surfaces of the aircraft without increasing the wind resistance of the craft.
  • Fig. 1 shows a simple type of slot antenna heretofore proposed
  • Figs. 2 and 3 show two forms of slot antenna according to my invention having radiation characteristics substantially the same as a single dipole antenna
  • Fig. 4 shows a slot antenna equivalent to a loop antenna
  • Fig. 5 shows a slot antenna equivalent to a folded dipole antenna
  • Fig. 6 shows an arrangement equivalent to a folded V antenna
  • Fig. 7 shows an arrangement substantially equivalent to two spaced loops excited in outof-phase relation.
  • Figs. 8 and 9 show arrangements substantially equivalent to two in-phase dipole antennae
  • Fig. 10 shows another form of slot antenna in which the shape of the slot is unsymmetrical on opposite sides of the feeding axis
  • FIG. 11 shows still another embodiment of the invention.
  • a known type of slot antenna is illustrated and comprises a conducting plate I having a relatively long and narrow, rectangular slot Ia formed therein, the electrical length of the slot being equal to about one-half the wave length of the operating frequency.
  • the main axis of the slot is along the vertical axis Y and its minor axis is along the axis Z at the plane of the sheet I while the axis normal to the plane of sheet I is shown at X.
  • the antenna is excited by a balanced transmission line consisting of conductors 2 and 3 connected on opposite sides of the slot at its midpoint.
  • the slot acts as a radiating 2 antenna having a directive characteristic. Substantially no radiation takes place along the Y and Z axes or in the plane of the sheet I, and maximum radiation takes place along the X axis which is normal to the plane of sheet I and passes through the center of the slot.
  • a rough analysis of the action of the slot is as follows:
  • the arrows a, b, c and a, b, 0' represent the direction of current flow around the edges of the slot at a particular instant.
  • the fields of currents at and c neutralize each other, and the same is true of the fields of currents at and c.
  • currents b and 1) due to the relatively wide separation of these currents, the fields do not neutralize each other, and effective radiation takes place from the slot in a manner substantially the same as if two in-phase dipole radiators were located at the two ends of the slot with their axes parallel with the Z axis.
  • the disadvantage of the arrangement shown in Fig. l for general application to aircraft installations is that it has too much directivity, and in many applications it is necessary to have radiation along more than one axis.
  • the antenna structures which I have devised are more suitable for general application and do not have the same highly directive characteristic as the arrangement of Fig. 1.
  • a slot type of antenna for producing a radiation characteristic substantially like that of a single dipole antenna having its axis parallel with the Z axis.
  • a substantially round aperture ABC is formed in the sheet I and a narrow gap is formed in the edge of the aperture between the points A and C and therefrom a slot extends down to the point D.
  • the antenna is excited by connection of the balanced lines 2--3 to the points A and C on opposite sides of the gap.
  • the perimeter of aperture ABC is approximately equal to one-half the wave length of the energizing current, and the perimeter of the slot or gap ADC is also approximately equal to one-half the wave length of the energiz ing current.
  • the slot ADC will have a length equal substantially to one-quarter wave length. With this arrangement there will be substantially no radiation from the gap or slot ADC, and the radiation from the aperture ABC will be substantially the same as in the case of a dipole antenna located at the center of the aperture with its axis parallel to the Z axis.v In other words, the much larger aperture ABC at one end of the antenna slot resents a current at B which, while in phase with the current at D is much greater in amplitude. This provides a preponderance of radiation from the loop end, resulting in radiation in the plane common to the axes X and Y, but no radiation along the X axis.
  • the point of connection of the lines 2 and 3 to the narrow slot or gap should be at the point of highest impedance, or the point of connection may be selected so that the impedance presented i by the slot will match the impedance of the feeder line. This may be accomplished by shifting the point of connection of the lines 2 and 3 along the slot to the desired point, such as shown in Fig. 3.
  • Fig. 3 The arrangement illustrated in Fig. 3 is substantially the same as shown in Fig. 2 except for the shape of the aperture ABC.
  • the aperture has a rectangular shape but the perimeter of the aperture is approximately equal to one-half wave length, and the perimeter of the slot ADC is also approximately equal to one-half wave length.
  • the radiation characteristic of Fig. 3 is substantially like that of Fig. 2.
  • Fig. 4 I have illustrated an antenna having a radiation characteristic substantially like that of a loop antenna. This arrangement is substan tially the same as that of Fig. 2 except for the dimensions of the aperture ABC and the slot ADC.
  • the substantially circular aperture ABC has a perimeter substantially less than one-half wave length, and preferably not more than a quarter of a wave length.
  • the slot ADC has a total perimeter greater than one-half wave length, and the feeder conductors 2 and 3 are connected to a point of maximum impedance. In this case substantially no radiation takes place from the slot ADC, and the radiation from the aperture ABC is maximum in the plane of the sheet I and is substantially the same as in the case of a loop antenna with its plane located in the plane of sheet I. Further, the longer the slot is, the greater is its radiation resistance, thereby lowering its highest impedance points and raising its lowest impedance points.
  • Fig. 5 produces a radiation substantially equivalent to a folded dipole antenna.
  • an elongated aperture ABCDE is formed in plate I, and a narrow slot AFE is formed in one side of the ape ture at the center thereof and extends at right angles to the aperture.
  • the aperture ABCDE With a length approximately equal to one-half wave length, and with the perimeter of the slot AFE also equal to approximately one-half wave length, the radiation produced from the aperture will be substantially the same as that of a folded dipole antenna.
  • the arrows indicate the direction of current flow for a given instant.
  • Fig. 6 The arrangement of Fig. 6 is equivalent to a folded V type of antenna.
  • the aperture ABCDE is formed with two equal arms located at right angles to each other, and the narrow slot AFE is formed at the outer corner of the arms along an axis which bisects the angle between the arms.
  • Fig. 7 I have shown a doublet of the arrangement shown in Fig. 4 which produces a radiation characteristic equivalent to two spaced loops excited in out-of-phase relation.
  • two circu ar apertures ABC and DEF are formed in plate I with a common feeding slot, and both apertures are formed with a perimeter substantially less than one-half wave length as in the case of Fig. 4.
  • the periphery of each half, above and below the connections 2, 3 is equal to approximately one-half wave length.
  • the two apertures are excited by currents flowing in opposite directions, and the radiations from the two apertures will therefore be 180 out of phase with each other.
  • Fig. 8 I have shown a doublet arrangement of the antenna shown in Fig. 2.
  • two circular apertures ABC and DEF are provided with a common feeder slot, and the two apertures are formed so that the total distance from the point of connection of conductor 2 around the perimeter of each aperture to the point of connection of the conductor 3 is equal substantially to one-half wave length.
  • the radiation from the two apertures is substantially the same as from two spaced dipoles excited in the same phase relation.
  • the overall length of this aperture is thus considerably under one-half wave length.
  • the length as well as the shape of the aperture tend to soften the directivity thereof.
  • Fig. 9 produces substantially the same radiation pattern as that shown in Fig. 8.
  • the two apertures are of triangular shape and they merge into each other at the points A-C which constitutes a common gap for the two apertures across which the feeding conductors 2 and 3 are connected. Since parts B and D in Figs. 8 and 9 are spaced a distance less than half a wave length, total cancellation is prevented.
  • Fig. 10 shows a modified slot type of antenna for producing a radiation along the Y axis.
  • This arrangement is the same as that shown in Fig. 1 except that the upper half of the slot is formed with a tapered shape so that the upper end-edge of the slot is shorter than the lower end-edge.
  • the fields due to the currents flowing around the upper and lower halves of the aperture or slot will be unsymmetrical and will therefore not completely cancel each other along the Y axis.
  • This result is secured by the fact that the slot or aperture is unsymmetrical on opposite sides of the feeding axis containing the points of connections of the feeding conductors 2 and 3. This same function exists except in a greater degree in the forms shown in Figs. 2 to 5, for example.
  • I show a form of slot substantially as indicated in Fig. 1 but here I distort the slot by bending the sheet Ia containing it. Where the slot is one-half a wave length in length, this distortion shortens the distance between the ends B and D. Thus, while the currents at B and D are in phase, their amplitudes difier so that there is not complete cancellation. If desired, the distortion may be such as to dispose the portions B and D at right angles. The two dipole polarizations will then be in quadrature and will not cancel.
  • An antenna structure comprising a sheet of conducting material having an aperture formed therein, said aperture having a slot extending therefrom and a pair of feeding conductors connected to points located on opposite sides of said slot, said aperture and slot forming an unsymmetrical Shape on opposite sides of the axis passing through said connection points and having unsymmetrical currents in the end portions on opposite sides of said axis.

Description

y 6, 1950 A. G. KANDOIAN 2,507,528
ANTENNA Filed Aug. 13, 1945 2 Sheets-Sheet 1 ATTORIYE r y 6, 950 A. G. KANDOIAN 2,507,528
ANTENNA Filed Aug 13, 1945 2 Sheets-Sheet 2 @13 6. I Qfh' d? INVEN TOR-.- nm/a e. AA/VOO/AN AT T ORZE Y Patented May 16, 1950 ANTENNA Armig G. Kandoian, New York, N. Y., assignor to Federal Telephone and Radio Corporation, New York, N. Y., a corporation of Delaware Application August 13, 1945, Serial No. 610,530
3Claims.
This invention relates to antenna structures, and especially to structures of the slot antenna yp One object of the invention is to provide slot antennas less directive than slot antennas heretofore proposed.
Another object of the invention is to devise various forms of slot antennae to suit different radiation requirements.
A further object is to devise slot antenna structures which are suitable for use on aircraft and which may be embodied in the walls or surfaces of the aircraft without increasing the wind resistance of the craft.
Various forms of my invention are illustrated in the accompanying drawings in which:
Fig. 1 shows a simple type of slot antenna heretofore proposed; I
Figs. 2 and 3 show two forms of slot antenna according to my invention having radiation characteristics substantially the same as a single dipole antenna;
Fig. 4 shows a slot antenna equivalent to a loop antenna;
Fig. 5 shows a slot antenna equivalent to a folded dipole antenna;
Fig. 6 shows an arrangement equivalent to a folded V antenna; I I
Fig. 7 shows an arrangement substantially equivalent to two spaced loops excited in outof-phase relation.
Figs. 8 and 9 show arrangements substantially equivalent to two in-phase dipole antennae;
Fig. 10 shows another form of slot antenna in which the shape of the slot is unsymmetrical on opposite sides of the feeding axis; and
Fig. 11 shows still another embodiment of the invention. v
Referring to Fig. 1, a known type of slot antenna is illustrated and comprises a conducting plate I having a relatively long and narrow, rectangular slot Ia formed therein, the electrical length of the slot being equal to about one-half the wave length of the operating frequency. The main axis of the slot is along the vertical axis Y and its minor axis is along the axis Z at the plane of the sheet I while the axis normal to the plane of sheet I is shown at X. The antenna is excited by a balanced transmission line consisting of conductors 2 and 3 connected on opposite sides of the slot at its midpoint. Where the slot has a width which is small by comparison with the wave length being transmitted, and the length of the slot is substantially equal to one-half wave length, the slot acts as a radiating 2 antenna having a directive characteristic. Substantially no radiation takes place along the Y and Z axes or in the plane of the sheet I, and maximum radiation takes place along the X axis which is normal to the plane of sheet I and passes through the center of the slot.
A rough analysis of the action of the slot is as follows: The arrows a, b, c and a, b, 0' represent the direction of current flow around the edges of the slot at a particular instant. In the case of a very narrow slot, the fields of currents at and c neutralize each other, and the same is true of the fields of currents at and c. In the case of currents b and 1), due to the relatively wide separation of these currents, the fields do not neutralize each other, and effective radiation takes place from the slot in a manner substantially the same as if two in-phase dipole radiators were located at the two ends of the slot with their axes parallel with the Z axis.
The disadvantage of the arrangement shown in Fig. l for general application to aircraft installations is that it has too much directivity, and in many applications it is necessary to have radiation along more than one axis. The antenna structures which I have devised are more suitable for general application and do not have the same highly directive characteristic as the arrangement of Fig. 1.
In Fig. 2, I have shown a slot type of antenna according to my invention for producing a radiation characteristic substantially like that of a single dipole antenna having its axis parallel with the Z axis. In this arrangement a substantially round aperture ABC is formed in the sheet I and a narrow gap is formed in the edge of the aperture between the points A and C and therefrom a slot extends down to the point D. The antenna is excited by connection of the balanced lines 2--3 to the points A and C on opposite sides of the gap. The perimeter of aperture ABC is approximately equal to one-half the wave length of the energizing current, and the perimeter of the slot or gap ADC is also approximately equal to one-half the wave length of the energiz ing current. The slot ADC will have a length equal substantially to one-quarter wave length. With this arrangement there will be substantially no radiation from the gap or slot ADC, and the radiation from the aperture ABC will be substantially the same as in the case of a dipole antenna located at the center of the aperture with its axis parallel to the Z axis.v In other words, the much larger aperture ABC at one end of the antenna slot resents a current at B which, while in phase with the current at D is much greater in amplitude. This provides a preponderance of radiation from the loop end, resulting in radiation in the plane common to the axes X and Y, but no radiation along the X axis.
The point of connection of the lines 2 and 3 to the narrow slot or gap should be at the point of highest impedance, or the point of connection may be selected so that the impedance presented i by the slot will match the impedance of the feeder line. This may be accomplished by shifting the point of connection of the lines 2 and 3 along the slot to the desired point, such as shown in Fig. 3.
The arrangement illustrated in Fig. 3 is substantially the same as shown in Fig. 2 except for the shape of the aperture ABC. In this case the aperture has a rectangular shape but the perimeter of the aperture is approximately equal to one-half wave length, and the perimeter of the slot ADC is also approximately equal to one-half wave length. The radiation characteristic of Fig. 3 is substantially like that of Fig. 2.
In Fig. 4, I have illustrated an antenna having a radiation characteristic substantially like that of a loop antenna. This arrangement is substan tially the same as that of Fig. 2 except for the dimensions of the aperture ABC and the slot ADC.
The substantially circular aperture ABC has a perimeter substantially less than one-half wave length, and preferably not more than a quarter of a wave length. On the other hand, the slot ADC has a total perimeter greater than one-half wave length, and the feeder conductors 2 and 3 are connected to a point of maximum impedance. In this case substantially no radiation takes place from the slot ADC, and the radiation from the aperture ABC is maximum in the plane of the sheet I and is substantially the same as in the case of a loop antenna with its plane located in the plane of sheet I. Further, the longer the slot is, the greater is its radiation resistance, thereby lowering its highest impedance points and raising its lowest impedance points.
The arrangement of Fig. 5 produces a radiation substantially equivalent to a folded dipole antenna. Here an elongated aperture ABCDE is formed in plate I, and a narrow slot AFE is formed in one side of the ape ture at the center thereof and extends at right angles to the aperture. By forming the aperture ABCDE with a length approximately equal to one-half wave length, and with the perimeter of the slot AFE also equal to approximately one-half wave length, the radiation produced from the aperture will be substantially the same as that of a folded dipole antenna. The arrows indicate the direction of current flow for a given instant.
The arrangement of Fig. 6 is equivalent to a folded V type of antenna. In this arrangement the aperture ABCDE is formed with two equal arms located at right angles to each other, and the narrow slot AFE is formed at the outer corner of the arms along an axis which bisects the angle between the arms. By forming the aperture such that the total length of the two arms ABC and CDE is substantially one-half wave length, the relative current directions will be as shown in Fig. 6 and the radiation will be that corresponding to a folded V antenna. It will be noted that the form in Fig. 6 is the form in Fig. 5 folded 90.
In Fig. 7, I have shown a doublet of the arrangement shown in Fig. 4 which produces a radiation characteristic equivalent to two spaced loops excited in out-of-phase relation. In this arrangement two circu ar apertures ABC and DEF are formed in plate I with a common feeding slot, and both apertures are formed with a perimeter substantially less than one-half wave length as in the case of Fig. 4. The periphery of each half, above and below the connections 2, 3 is equal to approximately one-half wave length. As shown by the arrows in Fig. 7, the two apertures are excited by currents flowing in opposite directions, and the radiations from the two apertures will therefore be 180 out of phase with each other.
In Fig. 8, I have shown a doublet arrangement of the antenna shown in Fig. 2. In this case two circular apertures ABC and DEF are provided with a common feeder slot, and the two apertures are formed so that the total distance from the point of connection of conductor 2 around the perimeter of each aperture to the point of connection of the conductor 3 is equal substantially to one-half wave length. In this case the radiation from the two apertures is substantially the same as from two spaced dipoles excited in the same phase relation. The overall length of this aperture is thus considerably under one-half wave length. Thus, the length as well as the shape of the aperture tend to soften the directivity thereof.
The arrangement illustrated in Fig. 9 produces substantially the same radiation pattern as that shown in Fig. 8. In this case, however, the two apertures are of triangular shape and they merge into each other at the points A-C which constitutes a common gap for the two apertures across which the feeding conductors 2 and 3 are connected. Since parts B and D in Figs. 8 and 9 are spaced a distance less than half a wave length, total cancellation is prevented.
Fig. 10 shows a modified slot type of antenna for producing a radiation along the Y axis. This arrangement is the same as that shown in Fig. 1 except that the upper half of the slot is formed with a tapered shape so that the upper end-edge of the slot is shorter than the lower end-edge. With this arrangement, the fields due to the currents flowing around the upper and lower halves of the aperture or slot will be unsymmetrical and will therefore not completely cancel each other along the Y axis. This result is secured by the fact that the slot or aperture is unsymmetrical on opposite sides of the feeding axis containing the points of connections of the feeding conductors 2 and 3. This same function exists except in a greater degree in the forms shown in Figs. 2 to 5, for example.
In Fig. 11, I show a form of slot substantially as indicated in Fig. 1 but here I distort the slot by bending the sheet Ia containing it. Where the slot is one-half a wave length in length, this distortion shortens the distance between the ends B and D. Thus, while the currents at B and D are in phase, their amplitudes difier so that there is not complete cancellation. If desired, the distortion may be such as to dispose the portions B and D at right angles. The two dipole polarizations will then be in quadrature and will not cancel.
From the foregoing it will be seen that I have devised various antenna arrangements having different radiation patterns from the arrangement shown in Fig. 1. It will be obvious how these arrangements may be embodied in the wall structures of aircraft to produce radiation in one or more desired directions. While my antenna structures are especially suited for use on aircraft, they are not limited to this use but are capable of general application.
While for the purpose of explanation I have described the antenna structures as being excited by a feeder line, it will be understood that the structures are not limited in use for transmitting purposes but are equally useful as receiving antennae. Accordingly, the term exciting currents and equivalent terms as used herein are to be interpreted broadly as applying to either a transmitting antenna or a receiving antenna.
I claim:
1. An antenna structure comprising a sheet of conducting material having an aperture formed therein, said aperture having a slot extending therefrom and a pair of feeding conductors connected to points located on opposite sides of said slot, said aperture and slot forming an unsymmetrical Shape on opposite sides of the axis passing through said connection points and having unsymmetrical currents in the end portions on opposite sides of said axis.
2. An antenna structure according to claim 1 wherein said slot has a width dimension greater than the maximum width dimension of the aperture portion on the other side of said axis.
3. An antenna structure according to claim 1 wherein the end portions furthest from said axis are less than a half wave length apart.
ARMIG G. KANDOIAN.
REFERENCES CITED The following references are of record in the file of this vpatent:
UNITED STATES PATENTS
US610530A 1945-08-13 1945-08-13 Antenna Expired - Lifetime US2507528A (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
BE472157D BE472157A (en) 1945-08-13
US610530A US2507528A (en) 1945-08-13 1945-08-13 Antenna
FR938846D FR938846A (en) 1945-08-13 1946-11-27 Antennas

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US610530A US2507528A (en) 1945-08-13 1945-08-13 Antenna

Publications (1)

Publication Number Publication Date
US2507528A true US2507528A (en) 1950-05-16

Family

ID=24445385

Family Applications (1)

Application Number Title Priority Date Filing Date
US610530A Expired - Lifetime US2507528A (en) 1945-08-13 1945-08-13 Antenna

Country Status (3)

Country Link
US (1) US2507528A (en)
BE (1) BE472157A (en)
FR (1) FR938846A (en)

Cited By (40)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2660674A (en) * 1948-10-14 1953-11-24 Rca Corp Slotted antenna system
US2679590A (en) * 1945-09-18 1954-05-25 Us Navy Circular polarization antenna
US2687475A (en) * 1950-04-11 1954-08-24 Andrew Corp Low-frequency antenna
US2751589A (en) * 1951-06-20 1956-06-19 Nat Res Dev Folded slot antennae
US2755465A (en) * 1949-10-07 1956-07-17 Marconi Wireless Telegraph Co Aerials
US2781512A (en) * 1951-12-05 1957-02-12 Jr Ralph O Robinson Cylindrical notch antenna
US2820220A (en) * 1953-12-09 1958-01-14 Emi Ltd Slot aerials
US2831188A (en) * 1955-04-08 1958-04-15 Sherla L Stutz System for keying or modulating the radiation field of an antenna
US2908000A (en) * 1949-04-08 1959-10-06 John S Lacey Notch antenna
US2935747A (en) * 1956-03-05 1960-05-03 Rca Corp Broadband antenna system
US2949606A (en) * 1958-07-31 1960-08-16 Dorne And Margolin Inc Slotted airfoil ultra high frequency antenna
US2983919A (en) * 1957-10-16 1961-05-09 Rca Corp Tuning means for slot radiator
US3022505A (en) * 1960-03-29 1962-02-20 Glenn A Scharp Loaded double-folded slot antenna
US3066293A (en) * 1956-03-16 1962-11-27 Ross A Davis Antenna system with output means in parallel with resonating means
US3113305A (en) * 1951-05-04 1963-12-03 Edmund P Trounson Semi-active proximity fuze
US3127609A (en) * 1960-03-30 1964-03-31 Frederick L Wentworth Antenna having ring waveguide two wavelengths long for feeding two slots in diametrically opposed portions thereof
US3500421A (en) * 1966-12-15 1970-03-10 Dynalectron Corp Electrically-short constant impedance antenna
US4498085A (en) * 1982-09-30 1985-02-05 Rca Corporation Folded dipole radiating element
US4509053A (en) * 1982-07-26 1985-04-02 Sensor Systems, Inc. Blade antenna with shaped dielectric
US4513292A (en) * 1982-09-30 1985-04-23 Rca Corporation Dipole radiating element
US4644343A (en) * 1985-09-30 1987-02-17 The Boeing Company Y-slot waveguide antenna element
EP0429754A1 (en) * 1989-11-23 1991-06-05 Robert Bosch Gmbh Vehicle antenna
US5465098A (en) * 1991-11-05 1995-11-07 Seiko Epson Corporation Antenna apparatus for transceiver
US5589840A (en) * 1991-11-05 1996-12-31 Seiko Epson Corporation Wrist-type wireless instrument and antenna apparatus
WO1998027609A1 (en) * 1996-12-18 1998-06-25 Raytheon Company Small omni-directional, slot antenna
US5946610A (en) * 1994-10-04 1999-08-31 Seiko Epson Corporation Portable radio apparatus having a slot antenna
US6259416B1 (en) 1997-04-09 2001-07-10 Superpass Company Inc. Wideband slot-loop antennas for wireless communication systems
US20050190111A1 (en) * 2000-07-18 2005-09-01 King Patrick F. Wireless communication device and method
US20070171139A1 (en) * 2000-07-18 2007-07-26 Mineral Lassen Llc Grounded antenna for a wireless communication device and method
WO2008008050A1 (en) * 2005-06-22 2008-01-17 Northrop Grumman Corporation A hexagonal dual-pol notch array architecture having a triangular grid and concentric phase centers
US7619577B1 (en) * 2008-04-24 2009-11-17 Yi-Tsan Cheng Open-slot antenna
US20100207829A1 (en) * 2009-02-18 2010-08-19 Harris Corporation Planar slot antenna having multi-polarization capability and associated methods
WO2012009131A1 (en) 2010-07-13 2012-01-19 Harris Corporation Radio frequency heating fork
USRE43683E1 (en) 2000-07-18 2012-09-25 Mineral Lassen Llc Wireless communication device and method for discs
DE102011076246A1 (en) * 2011-05-20 2012-11-22 Antonics-Icp Gmbh Multiband capability arrangement for transmitting and receiving high-frequency carrier transmitted radio signals in e.g. vehicle, has transmission and reception unit coupled with signal feedpoints of different carrier frequency bands
US20130249756A1 (en) * 2012-03-23 2013-09-26 Lhc2 Inc Multi-Slot Common Aperture Dual Polarized Omni-Directional Antenna
US20140184459A1 (en) * 2012-12-28 2014-07-03 Realtek Semiconductor Corp. Dual band antenna
EP2808945A1 (en) * 2013-05-30 2014-12-03 EMW Co., Ltd. Antenna
US20150009077A1 (en) * 2013-07-03 2015-01-08 Samsung Electronics Co., Ltd. Cover of a mobile device and mobile device including the same
JP2015043542A (en) * 2013-08-26 2015-03-05 日本ピラー工業株式会社 Slot antenna

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2061498B1 (en) * 1969-02-04 1975-02-21 Thomson Csf
FR2442520A1 (en) * 1978-11-27 1980-06-20 Havot Henri PLATE ANTENNA WITH DOUBLE CIRCULAR LOOPS

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2129852A (en) * 1934-01-03 1938-09-13 Telefunken Gmbh Antenna for an airplane with a metallic body
GB493695A (en) * 1936-03-07 1938-10-13 Otto Bormann Improvements in or pertaining to the transmission and/or reception of electromagnetic waves
US2206923A (en) * 1934-09-12 1940-07-09 American Telephone & Telegraph Short wave radio system
US2226479A (en) * 1937-02-08 1940-12-24 Pintsch Julius Kg Apparatus for mechanically and electrically connecting conductors carrying high frequency currents
US2369808A (en) * 1940-06-08 1945-02-20 American Telephone & Telegraph Short-wave radio transmission
US2407068A (en) * 1942-09-15 1946-09-03 Gen Electric Wave transmitting system
US2412446A (en) * 1942-10-31 1946-12-10 Gen Electric Ultra high frequency system
US2414266A (en) * 1942-06-27 1947-01-14 Rca Corp Antenna
US2438735A (en) * 1944-10-02 1948-03-30 Gen Electric High-frequency wave transmitting apparatus

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2129852A (en) * 1934-01-03 1938-09-13 Telefunken Gmbh Antenna for an airplane with a metallic body
US2206923A (en) * 1934-09-12 1940-07-09 American Telephone & Telegraph Short wave radio system
GB493695A (en) * 1936-03-07 1938-10-13 Otto Bormann Improvements in or pertaining to the transmission and/or reception of electromagnetic waves
US2226479A (en) * 1937-02-08 1940-12-24 Pintsch Julius Kg Apparatus for mechanically and electrically connecting conductors carrying high frequency currents
US2369808A (en) * 1940-06-08 1945-02-20 American Telephone & Telegraph Short-wave radio transmission
US2414266A (en) * 1942-06-27 1947-01-14 Rca Corp Antenna
US2407068A (en) * 1942-09-15 1946-09-03 Gen Electric Wave transmitting system
US2412446A (en) * 1942-10-31 1946-12-10 Gen Electric Ultra high frequency system
US2438735A (en) * 1944-10-02 1948-03-30 Gen Electric High-frequency wave transmitting apparatus

Cited By (53)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2679590A (en) * 1945-09-18 1954-05-25 Us Navy Circular polarization antenna
US2660674A (en) * 1948-10-14 1953-11-24 Rca Corp Slotted antenna system
US2908000A (en) * 1949-04-08 1959-10-06 John S Lacey Notch antenna
US2755465A (en) * 1949-10-07 1956-07-17 Marconi Wireless Telegraph Co Aerials
US2687475A (en) * 1950-04-11 1954-08-24 Andrew Corp Low-frequency antenna
US3113305A (en) * 1951-05-04 1963-12-03 Edmund P Trounson Semi-active proximity fuze
US2751589A (en) * 1951-06-20 1956-06-19 Nat Res Dev Folded slot antennae
US2781512A (en) * 1951-12-05 1957-02-12 Jr Ralph O Robinson Cylindrical notch antenna
US2820220A (en) * 1953-12-09 1958-01-14 Emi Ltd Slot aerials
US2831188A (en) * 1955-04-08 1958-04-15 Sherla L Stutz System for keying or modulating the radiation field of an antenna
US2935747A (en) * 1956-03-05 1960-05-03 Rca Corp Broadband antenna system
US3066293A (en) * 1956-03-16 1962-11-27 Ross A Davis Antenna system with output means in parallel with resonating means
US2983919A (en) * 1957-10-16 1961-05-09 Rca Corp Tuning means for slot radiator
US2949606A (en) * 1958-07-31 1960-08-16 Dorne And Margolin Inc Slotted airfoil ultra high frequency antenna
US3022505A (en) * 1960-03-29 1962-02-20 Glenn A Scharp Loaded double-folded slot antenna
US3127609A (en) * 1960-03-30 1964-03-31 Frederick L Wentworth Antenna having ring waveguide two wavelengths long for feeding two slots in diametrically opposed portions thereof
US3500421A (en) * 1966-12-15 1970-03-10 Dynalectron Corp Electrically-short constant impedance antenna
US4509053A (en) * 1982-07-26 1985-04-02 Sensor Systems, Inc. Blade antenna with shaped dielectric
US4498085A (en) * 1982-09-30 1985-02-05 Rca Corporation Folded dipole radiating element
US4513292A (en) * 1982-09-30 1985-04-23 Rca Corporation Dipole radiating element
US4644343A (en) * 1985-09-30 1987-02-17 The Boeing Company Y-slot waveguide antenna element
EP0429754A1 (en) * 1989-11-23 1991-06-05 Robert Bosch Gmbh Vehicle antenna
US5465098A (en) * 1991-11-05 1995-11-07 Seiko Epson Corporation Antenna apparatus for transceiver
US5589840A (en) * 1991-11-05 1996-12-31 Seiko Epson Corporation Wrist-type wireless instrument and antenna apparatus
US5946610A (en) * 1994-10-04 1999-08-31 Seiko Epson Corporation Portable radio apparatus having a slot antenna
US6052093A (en) * 1996-12-18 2000-04-18 Savi Technology, Inc. Small omni-directional, slot antenna
WO1998027609A1 (en) * 1996-12-18 1998-06-25 Raytheon Company Small omni-directional, slot antenna
US6259416B1 (en) 1997-04-09 2001-07-10 Superpass Company Inc. Wideband slot-loop antennas for wireless communication systems
US7460078B2 (en) 2000-07-18 2008-12-02 Mineral Lassen Llc Wireless communication device and method
US20070001916A1 (en) * 2000-07-18 2007-01-04 Mineral Lassen Llc Wireless communication device and method
US20070171139A1 (en) * 2000-07-18 2007-07-26 Mineral Lassen Llc Grounded antenna for a wireless communication device and method
EP1876557A1 (en) * 2000-07-18 2008-01-09 Mineral Lassen LLC Wireless communication device and method
US7397438B2 (en) 2000-07-18 2008-07-08 Mineral Lassen Llc Wireless communication device and method
US7411552B2 (en) 2000-07-18 2008-08-12 Mineral Lassen Llc Grounded antenna for a wireless communication device and method
US20050190111A1 (en) * 2000-07-18 2005-09-01 King Patrick F. Wireless communication device and method
USRE43683E1 (en) 2000-07-18 2012-09-25 Mineral Lassen Llc Wireless communication device and method for discs
WO2008008050A1 (en) * 2005-06-22 2008-01-17 Northrop Grumman Corporation A hexagonal dual-pol notch array architecture having a triangular grid and concentric phase centers
US7619577B1 (en) * 2008-04-24 2009-11-17 Yi-Tsan Cheng Open-slot antenna
US8319688B2 (en) * 2009-02-18 2012-11-27 Harris Corporation Planar slot antenna having multi-polarization capability and associated methods
US20100207829A1 (en) * 2009-02-18 2010-08-19 Harris Corporation Planar slot antenna having multi-polarization capability and associated methods
WO2012009131A1 (en) 2010-07-13 2012-01-19 Harris Corporation Radio frequency heating fork
US8450664B2 (en) 2010-07-13 2013-05-28 Harris Corporation Radio frequency heating fork
DE102011076246A1 (en) * 2011-05-20 2012-11-22 Antonics-Icp Gmbh Multiband capability arrangement for transmitting and receiving high-frequency carrier transmitted radio signals in e.g. vehicle, has transmission and reception unit coupled with signal feedpoints of different carrier frequency bands
DE102011076246B4 (en) * 2011-05-20 2016-05-19 Antonics-Icp Gmbh Multi-band arrangement for radio signals and method for producing an associated exciter structure
US20130249756A1 (en) * 2012-03-23 2013-09-26 Lhc2 Inc Multi-Slot Common Aperture Dual Polarized Omni-Directional Antenna
US9184507B2 (en) * 2012-03-23 2015-11-10 Lhc2 Inc Multi-slot common aperture dual polarized omni-directional antenna
US9425515B2 (en) 2012-03-23 2016-08-23 Lhc2 Inc Multi-slot common aperture dual polarized omni-directional antenna
US20140184459A1 (en) * 2012-12-28 2014-07-03 Realtek Semiconductor Corp. Dual band antenna
EP2808945A1 (en) * 2013-05-30 2014-12-03 EMW Co., Ltd. Antenna
US9391372B2 (en) 2013-05-30 2016-07-12 Emw Co., Ltd. Antenna
US20150009077A1 (en) * 2013-07-03 2015-01-08 Samsung Electronics Co., Ltd. Cover of a mobile device and mobile device including the same
US10461793B2 (en) 2013-07-03 2019-10-29 Samsung Electronics Co., Ltd. Cover of a mobile device and mobile device including the same
JP2015043542A (en) * 2013-08-26 2015-03-05 日本ピラー工業株式会社 Slot antenna

Also Published As

Publication number Publication date
FR938846A (en) 1948-10-26
BE472157A (en)

Similar Documents

Publication Publication Date Title
US2507528A (en) Antenna
US2297202A (en) Transmission and/or the reception of electromagnetic waves
US2283897A (en) Antenna system
US2270314A (en) Corner reflector antenna
US2455403A (en) Antenna
US3656166A (en) Broadband circularly polarized omnidirectional antenna
US3633210A (en) Unbalanced conical spiral antenna
US2480154A (en) Antenna
US2650985A (en) Radio horn
US2539433A (en) Circularly polarized antenna
US2290800A (en) Antenna
US2611867A (en) Slotted winged cylindrical antenna
US1960006A (en) Antenna system
US2972147A (en) Circularly polarized slot antenna
US2281429A (en) Antenna
US3928854A (en) V-type directional antenna
US2511611A (en) Aperiodic directive antenna system
US2465379A (en) Antenna unit
US2224898A (en) Wide band short wave antenna
US2285669A (en) Antenna
US2897496A (en) Corner reflector antenna
US2714659A (en) Broad band unidirectional antenna
US2297427A (en) Ultra-short wave directive antenna
US2174353A (en) Transmission of waves with rotary polarization
US2817085A (en) Broad-band end-fire television antenna