WO1993021668A1 - Coil construction - Google Patents

Coil construction Download PDF

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Publication number
WO1993021668A1
WO1993021668A1 PCT/GB1993/000481 GB9300481W WO9321668A1 WO 1993021668 A1 WO1993021668 A1 WO 1993021668A1 GB 9300481 W GB9300481 W GB 9300481W WO 9321668 A1 WO9321668 A1 WO 9321668A1
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WO
WIPO (PCT)
Prior art keywords
coil
winding
windings
heating element
construction according
Prior art date
Application number
PCT/GB1993/000481
Other languages
French (fr)
Inventor
Jerzy Jacek Kropielnicki
Keith Jeremy Twort
Brian Easter
Original Assignee
Glass Antennas Technology Limited
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
Family has litigation
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Application filed by Glass Antennas Technology Limited filed Critical Glass Antennas Technology Limited
Priority to JP51807393A priority Critical patent/JP3580813B2/en
Priority to DE69319724T priority patent/DE69319724T2/en
Priority to EP93905538A priority patent/EP0635165B1/en
Priority to KR1019940703572A priority patent/KR100235574B1/en
Priority to BR9306211A priority patent/BR9306211A/en
Priority to CA002133747A priority patent/CA2133747C/en
Publication of WO1993021668A1 publication Critical patent/WO1993021668A1/en

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Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/12Supports; Mounting means
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q7/00Loop antennas with a substantially uniform current distribution around the loop and having a directional radiation pattern in a plane perpendicular to the plane of the loop
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/12Supports; Mounting means
    • H01Q1/1271Supports; Mounting means for mounting on windscreens
    • H01Q1/1278Supports; Mounting means for mounting on windscreens in association with heating wires or layers

Definitions

  • This invention relates to a bifilar coil construction.
  • British patents GB 1520030 and GB 1600987 describe signal separating devices which act to isolate the d.c. power supply circuit for the heating element of an electrically heated motor vehicle window from the antenna circuit of a radio receiver or transmitter connected to the heating element, so that the heating element can be used simultaneously for heating purposes and as a radio transmitting or receiving antenna.
  • the described devices use a bifilar coil for signal separation purposes.
  • the two windings of the coil are connected respectively between opposite ends of the heating element and positive and negative terminals of the d.c. power supply circuit, whereby the coil can present a high blocking impedance to radio signals with a low resistance for d.c. currents.
  • Signal separation can therefore be effected in a particularly convenient and efficient manner.
  • bifilar coils are manufactured by machine-winding two side-by-side wires together around a former. This results in two windings which are wound in a common direction, which have a common diameter and axial length, and the turns of which lie axially next to each other.
  • the windings are enclosed within a pot core structure (ferrous ceramic structure) with ends of the windings projecting axially downwardly through openings in the structure for connection purposes.
  • a pot core structure ferrous ceramic structure
  • An axially compact construction is desirable to permit easy mounting at a required position close to the motor vehicle window so as to minimise tuning problems due to lead inductance and capacitance.
  • the projecting connection ends of the windings follow a curved or bent path where they feed into the adjacent end turns and, in the case of axially side-by-side thicker gauge wires this adds considerably to the axial bulk and also can be difficult to achieve or control with conventional winding equipment.
  • An object of the present invention is to provide a bifilar coil construction which can be easily and conveniently manufactured, and with which axial bulk can be minimised, even with thicker gauge wires.
  • a bifilar coil construction comprising first and second windings of common direction characterised in that the windings are separately formed windings disposed bodily alongside each other.
  • the bifilar coil construction is particularly suited to use in a signal separating device for use with a motor vehicle window heating element.
  • a signal separating device for use with a motor vehicle window heating element, said device having a pair of first terminals for connection to the heating element a pair of second terminals for connection with the motor vehicle d.c. power supply for the heating element, an antenna terminal for connection to the antenna circuit of motor vehicle radio transmitting and/or receiving apparatus, and a bifilar coil construction having first and second windings of common direction interposed between the pair of first terminals and the pair of second terminals so as to permit passage of d.c. current from the power supply to the heating element whilst blocking passage of radio signals from the heating element to the d.c. power supply, the antenna terminal being connected between the heating element and the bifilar coil, characterised in that the windings of the bifilar coil construction are separately formed windings disposed bodily alongside each other.
  • the signal separating device may include other components as appropriate for example including capacitors, diodes, chokes, matching circuitry for matching the heating element to the antenna circuit of the radio apparatus, and tuning circuitry to give efficient operation at different frequency bands (am, vhf) .
  • the separate windings of the bifilar coil construction of the invention may comprise two cylindrical (or generally cylindrical) windings which are of slightly different diameters so that the first winding can fit closely within the second winding, the turns of the first winding therefore being spaced radially inwardly of the turns of the second winding.
  • a method of manufacturing the bifilar coil construction- of the first aspect of the invention wherein the first winding is formed as a cylindrical (or generally cylindrical) coil, the second winding is formed as a separate cylindrical (or generally cylindrical) coil having an internal diameter greater than the external diameter of the coil of the first winding, and the first winding is fitted within the second winding.
  • the said internal and external diameters are closely similar so that the outer surface of the first winding contacts or is in close proximity to the inner surface of the second winding for maximum space saving.
  • the windings can be formed easily and conveniently, even with thicker gauge wire, especially because the ends of the windings are fed into the adjacent end turns as single wires whereby bends or curves between the ends and the turns can be readily accommodated. Since the winding turns are radially spaced the axial bulk can be kept to a minimum, and the fact that the said bends or curves of the ends occur in single, rather than twin wires can also assist in this respect.
  • the overall coil structure is of generally cylindrical form and it is possible (and preferred) to use a conventional core having inner and outer cylindrical parts, respectively within and around the coil structure, joined by integral end plates.
  • the core may be a pot core and may be formed in two sections which are clamped together by an axially extending clamping device such as a nut and bolt. Appropriate slots may be provided for the connection ends.
  • each winding has final top and bottom turns which terminate in respective bent ends with straight terminal end portions which project alongside the coil- in the axial direction of the coil.
  • the bottom said terminal end portion projects downwardly freely away from the coil, and the top said terminal end portion projects downwardly freely from the coil alongside and spaced from the outersurface thereof.
  • the terminal end portions are spaced circumferentially from each other.
  • At least one of the top and bottom bent ends is stepped sideways so that the top terminal end portions of the two windings are spaced apart from each other, as also are the bottom terminal end portions.
  • the core may have top and bottom radially extending slots through which the top bent ends and the bottom bent ends respectively project.
  • the separate windings may comprise two spiral (or helical) windings disposed one on top of the other. This results in a 'flat', or reduced axial bulk, construction and the ends_ of the windings can be readily separately turned up or down or otherwise bent to form connections without unduly axially displacing the turn structure of the windings.
  • a method of manufacturing the bifilar coil construction of the first aspect of the invention wherein the two windings are formed as spiral or helical coils, and said coils are disposed axially one on top of the other.
  • the coils are of common diameter and are disposed in contact with each other.
  • the resulting coil structure of the fourth aspect of the invention can be provided with a core structure generally of like form to that described above in connection with the third aspect of the present invention, it being understood that the coils have central apertures therein to receive the central part of the core.
  • Fig. 1 is a simplified diagram of one form of a signal separating device including a bifilar coil construction according to one embodiment of the invention
  • Fig. 2 is a sectional view through the bifilar coil construction on the line A-A of Fig. 4;
  • Figs. 3 and 4 are views from below and -above of the construction of Fig. 2;
  • Fig. 5 is a side view of the outer winding of the coil construction.
  • Figs. 6 and 7 are views from above and below of the two windings of the coil construction; and Fig. 8 is a sectional view on the line B-B of
  • the signal separating device shown is for use with a conventional heated rear window of a motor car to enable this to be used as a receiving antenna for a car radio.
  • the device comprises a housed circuit 1 which is fixed close to the heated window 2 e.g. beneath the rear parcel shelf or within the roof lining.
  • the housed circuit 1 has five terminals, 3, 4, 5, 6, 7, two of which 3, 4 are connected to the heating element 2 of the window, another two of which 5, 6 are connected to d.c. positive and earth of the car d.c. power supply via the usual dash board switch, and the other of which 7 is connected by a shielded cable to the car radio antenna input circuit.
  • the housed " circuit 1 includes a bifilar coil 8 having two windings 9, 10 of common direction or hand which are interposed respectively between d.c. positive and earth and the two ends of the heating element 2.
  • the antenna terminal 7 is linked to the heating element 2 between the heating element 2 and the bifilar coil construction 8.
  • Other components for matching, tuning, assistance in isolation, balancing of the signals at the ends of the heating element etc. may be incorporated but are not all shown here.
  • the bifilar coil construction comprises two separate windings 9, 10 each of say 5 turns of a thick gauge copper wire capable of carrying said 30 amps without overheating and without significant voltage loss due to resistance.
  • Each winding coil 9, 10 has a bottom turn which terminates in a downwardly bent end 11, 12 projecting freely away from the coil parallel to its axis.
  • Each coil also has a top turn which terminates in a downwardly bent end 13, 14 projecting freely from the coil alongside and spaced from the outersurface of the coil parallel to its axis.
  • the inner coil 9 has an outer diameter which is very slightly smaller than the inner diameter of the outer coil 10.
  • the end 11 of the inner coil is bent directly downwardly whereas the ends 13, 12, 14 of the inner and outer coil are stepped to one side before being bent downwardly.
  • the inner coil 9 is fitted within, the outer coil 10 so that they are closely in contact with each other.
  • the bottom projecting ends 11, 12 are alongside each other but are spaced apart due to the above mentioned stepping.
  • a similar arrangement applies to the top projecting ends 13, 14.
  • the coils so far described can be readily formed with a conventional winding machine since it is a single wire which is being wound.
  • the ends 11, 12, 13, 14 can be readily bent and fed in to (or fed out of) the associated end turn in a particularly simple and accurate manner, and without requiring undue axial distortion or displacement of the end turn, even with the thick gauge wire.
  • the resulting coil construction 8 has reduced axial bulk due to the radial spacing * of the turns of the two windings 9, 10 and due to the above mentioned reduced displacement of the end turns.
  • the coil construction 8 is accurately shaped and configured and so it can be easily assembled with a conventional pot core, as shown in the drawing.
  • the pot core is formed in two ⁇ halves 15, 16 each consisting of an inner hollow cylinder, 17, an outer hollow cylinder 18 and an end plate 19. These cylinders 17, 18 and the end plate 19 are formed integrally in one piec_e_-from a ferrous ceramic structure.
  • the core halves 15, 16 are assembled top and bottom around the coil construction with the radial slots 20 offset to receive the projecting ends 11, 12, 13, 14.
  • the halves 15, 16 are clamped in position tightly in contact with each other with a bolt 22 passed through the holes 21 and the inner cylinders 17 and engaging a nut 23.

Landscapes

  • General Induction Heating (AREA)
  • Coils Or Transformers For Communication (AREA)
  • Details Of Aerials (AREA)
  • Fittings On The Vehicle Exterior For Carrying Loads, And Devices For Holding Or Mounting Articles (AREA)

Abstract

A bifilar coil construction is used for isolating radio signals picked up by a motor vehicle window heating element from the power supply circuit for the heating element. The coil construction has two separate windings (9, 10) which are arranged bodily alongside each other. In one embodiment there is an inner cylindrical winding (9) within and in contact with an outer cylindrical winding (10), and a two part pot core (15, 16) is clamped within and around the windings (9, 10).

Description

COIL CONSTRUCTION TECHNICAL FIELD
This invention relates to a bifilar coil construction. BACKGROUND ART
British patents GB 1520030 and GB 1600987 describe signal separating devices which act to isolate the d.c. power supply circuit for the heating element of an electrically heated motor vehicle window from the antenna circuit of a radio receiver or transmitter connected to the heating element, so that the heating element can be used simultaneously for heating purposes and as a radio transmitting or receiving antenna.
The described devices use a bifilar coil for signal separation purposes. The two windings of the coil are connected respectively between opposite ends of the heating element and positive and negative terminals of the d.c. power supply circuit, whereby the coil can present a high blocking impedance to radio signals with a low resistance for d.c. currents. Signal separation can therefore be effected in a particularly convenient and efficient manner.
Conventionally, bifilar coils are manufactured by machine-winding two side-by-side wires together around a former. This results in two windings which are wound in a common direction, which have a common diameter and axial length, and the turns of which lie axially next to each other. For signal separation purposes as mentioned above. the windings are enclosed within a pot core structure (ferrous ceramic structure) with ends of the windings projecting axially downwardly through openings in the structure for connection purposes. Present trends -are towards the use of higher current consumption motor vehicle window heating elements, say 30 amps or more, and there is therefore a requirement for bifilar coils with thicker gauge windings. However, with the above mentioned conventional construction, thicker gauge windings result in increased axial bulk which is undesirable. An axially compact construction is desirable to permit easy mounting at a required position close to the motor vehicle window so as to minimise tuning problems due to lead inductance and capacitance. Also, with the conventional construction, the projecting connection ends of the windings follow a curved or bent path where they feed into the adjacent end turns and, in the case of axially side-by-side thicker gauge wires this adds considerably to the axial bulk and also can be difficult to achieve or control with conventional winding equipment.
An object of the present invention is to provide a bifilar coil construction which can be easily and conveniently manufactured, and with which axial bulk can be minimised, even with thicker gauge wires. DISCLOSURE OF THE INVENTION
According to one aspect of the present invention therefore there is provided a bifilar coil construction comprising first and second windings of common direction characterised in that the windings are separately formed windings disposed bodily alongside each other.
With this arrangement, an axially compact construction can be readily manufactured, even with thicker gauge wires.
The bifilar coil construction is particularly suited to use in a signal separating device for use with a motor vehicle window heating element.
Thus, and in accordance with a second aspect of the present invention there is provided a signal separating device for use with a motor vehicle window heating element, said device having a pair of first terminals for connection to the heating element a pair of second terminals for connection with the motor vehicle d.c. power supply for the heating element, an antenna terminal for connection to the antenna circuit of motor vehicle radio transmitting and/or receiving apparatus, and a bifilar coil construction having first and second windings of common direction interposed between the pair of first terminals and the pair of second terminals so as to permit passage of d.c. current from the power supply to the heating element whilst blocking passage of radio signals from the heating element to the d.c. power supply, the antenna terminal being connected between the heating element and the bifilar coil, characterised in that the windings of the bifilar coil construction are separately formed windings disposed bodily alongside each other.
The signal separating device may include other components as appropriate for example including capacitors, diodes, chokes, matching circuitry for matching the heating element to the antenna circuit of the radio apparatus, and tuning circuitry to give efficient operation at different frequency bands (am, vhf) .
The separate windings of the bifilar coil construction of the invention may comprise two cylindrical (or generally cylindrical) windings which are of slightly different diameters so that the first winding can fit closely within the second winding, the turns of the first winding therefore being spaced radially inwardly of the turns of the second winding. Thus, and in accordance with a third aspect of the present invention, there is provided a method of manufacturing the bifilar coil construction- of the first aspect of the invention wherein the first winding is formed as a cylindrical (or generally cylindrical) coil, the second winding is formed as a separate cylindrical (or generally cylindrical) coil having an internal diameter greater than the external diameter of the coil of the first winding, and the first winding is fitted within the second winding.
Preferably the said internal and external diameters are closely similar so that the outer surface of the first winding contacts or is in close proximity to the inner surface of the second winding for maximum space saving.
With this method, the windings can be formed easily and conveniently, even with thicker gauge wire, especially because the ends of the windings are fed into the adjacent end turns as single wires whereby bends or curves between the ends and the turns can be readily accommodated. Since the winding turns are radially spaced the axial bulk can be kept to a minimum, and the fact that the said bends or curves of the ends occur in single, rather than twin wires can also assist in this respect.
With inner and outer windings, the overall coil structure is of generally cylindrical form and it is possible (and preferred) to use a conventional core having inner and outer cylindrical parts, respectively within and around the coil structure, joined by integral end plates. The core may be a pot core and may be formed in two sections which are clamped together by an axially extending clamping device such as a nut and bolt. Appropriate slots may be provided for the connection ends. In one embodiment each winding has final top and bottom turns which terminate in respective bent ends with straight terminal end portions which project alongside the coil- in the axial direction of the coil. Preferably, the bottom said terminal end portion projects downwardly freely away from the coil, and the top said terminal end portion projects downwardly freely from the coil alongside and spaced from the outersurface thereof. Preferably also, the terminal end portions are spaced circumferentially from each other.
In a particularly preferred embodiment, at least one of the top and bottom bent ends is stepped sideways so that the top terminal end portions of the two windings are spaced apart from each other, as also are the bottom terminal end portions.
The core may have top and bottom radially extending slots through which the top bent ends and the bottom bent ends respectively project.
Alternatively, the separate windings may comprise two spiral (or helical) windings disposed one on top of the other. This results in a 'flat', or reduced axial bulk, construction and the ends_ of the windings can be readily separately turned up or down or otherwise bent to form connections without unduly axially displacing the turn structure of the windings.
Thus, and in accordance with a fourth aspect of the present invention there is provided a method of manufacturing the bifilar coil construction of the first aspect of the invention wherein the two windings are formed as spiral or helical coils, and said coils are disposed axially one on top of the other. Preferably the coils are of common diameter and are disposed in contact with each other. The resulting coil structure of the fourth aspect of the invention can be provided with a core structure generally of like form to that described above in connection with the third aspect of the present invention, it being understood that the coils have central apertures therein to receive the central part of the core. BRIEF DESCRIPTION OF THE DRAWINGS
The invention will now be described further by way of example only and with reference to the accompanying drawings in which:
Fig. 1 is a simplified diagram of one form of a signal separating device including a bifilar coil construction according to one embodiment of the invention; Fig. 2 is a sectional view through the bifilar coil construction on the line A-A of Fig. 4; Figs. 3 and 4 are views from below and -above of the construction of Fig. 2; Fig. 5 is a side view of the outer winding of the coil construction.
Figs. 6 and 7 are views from above and below of the two windings of the coil construction; and Fig. 8 is a sectional view on the line B-B of
Fig. 6. BEST MODE OF CARRYING OUT THE INVENTION
The signal separating device shown is for use with a conventional heated rear window of a motor car to enable this to be used as a receiving antenna for a car radio.
The device comprises a housed circuit 1 which is fixed close to the heated window 2 e.g. beneath the rear parcel shelf or within the roof lining.
The housed circuit 1 has five terminals, 3, 4, 5, 6, 7, two of which 3, 4 are connected to the heating element 2 of the window, another two of which 5, 6 are connected to d.c. positive and earth of the car d.c. power supply via the usual dash board switch, and the other of which 7 is connected by a shielded cable to the car radio antenna input circuit.
The housed"circuit 1 includes a bifilar coil 8 having two windings 9, 10 of common direction or hand which are interposed respectively between d.c. positive and earth and the two ends of the heating element 2.
The antenna terminal 7 is linked to the heating element 2 between the heating element 2 and the bifilar coil construction 8. Other components for matching, tuning, assistance in isolation, balancing of the signals at the ends of the heating element etc. may be incorporated but are not all shown here.
The bifilar coil construction comprises two separate windings 9, 10 each of say 5 turns of a thick gauge copper wire capable of carrying said 30 amps without overheating and without significant voltage loss due to resistance. Each winding coil 9, 10 has a bottom turn which terminates in a downwardly bent end 11, 12 projecting freely away from the coil parallel to its axis. Each coil also has a top turn which terminates in a downwardly bent end 13, 14 projecting freely from the coil alongside and spaced from the outersurface of the coil parallel to its axis.
The inner coil 9 has an outer diameter which is very slightly smaller than the inner diameter of the outer coil 10. The end 11 of the inner coil is bent directly downwardly whereas the ends 13, 12, 14 of the inner and outer coil are stepped to one side before being bent downwardly. -
The inner coil 9 is fitted within, the outer coil 10 so that they are closely in contact with each other. The bottom projecting ends 11, 12 are alongside each other but are spaced apart due to the above mentioned stepping. A similar arrangement applies to the top projecting ends 13, 14.
Due to the fact that the end 11 is bent directly downwards whereas the other ends 12-14 are stepped as described, it will be understood that the coil 9 can be quickly and easily inserted into the coil 10 after winding without any further bending or forming of the ends 11-14.
The coils so far described can be readily formed with a conventional winding machine since it is a single wire which is being wound. In particular, the ends 11, 12, 13, 14 can be readily bent and fed in to (or fed out of) the associated end turn in a particularly simple and accurate manner, and without requiring undue axial distortion or displacement of the end turn, even with the thick gauge wire. The resulting coil construction 8 has reduced axial bulk due to the radial spacing* of the turns of the two windings 9, 10 and due to the above mentioned reduced displacement of the end turns.
The coil construction 8 is accurately shaped and configured and so it can be easily assembled with a conventional pot core, as shown in the drawing.
The pot core is formed in two ~halves 15, 16 each consisting of an inner hollow cylinder, 17, an outer hollow cylinder 18 and an end plate 19. These cylinders 17, 18 and the end plate 19 are formed integrally in one piec_e_-from a ferrous ceramic structure.
There is a gap in the outer cylinder 18 and the end plate 19 forming a radial slot 20, and there is a central hole 21 in the end plate 19. The core halves 15, 16 are assembled top and bottom around the coil construction with the radial slots 20 offset to receive the projecting ends 11, 12, 13, 14. The halves 15, 16 are clamped in position tightly in contact with each other with a bolt 22 passed through the holes 21 and the inner cylinders 17 and engaging a nut 23.
It is of course to be understood that the invention is not intended to be restricted to the details of the above embodiment which are described by way of example only.

Claims

1. A bifilar coil construction comprising first and second windings of common direction characterised in that the windings are separately formed windings (9, 10) disposed bodily alongside each other.
2. A coil construction according to claim 1 characterised in that the separate windings (9, 10) comprise first and second generally cylindrical windings of different diameters whereby the first winding (9) fits closely within the second winding (10) with the turns of the first winding spaced radially inwardly of the turns of the second winding.
3. A coil construction according to claim 2 characterised in that the outer surface of the first winding (9) contacts the inner surface (10) of the second winding.
4. A coil construction according to claim 1 characterised in that the separate windings comprise two spiral or helical windings disposed one on top of the other.
5. A coil construction according to claim 4 characterised in that the windings are of common diameter and are disposed in contact with each other.
6. A coil construction according to any one of claims 1 to 5 characterised by the provision of a core (15, 16) having inner and outer cylindrical parts (17, 18) respectively within and around the coil structure.
7. A coil construction according to claim 6 characterised in that the cylindrical core parts (17, 18) are joined by integral end plates (19) .
8. A coil construction according to claim 7 characterised in that the core is a pot core formed in two sections (17, 18) which are clamped together by an axially extending clamping device (22) .
9. A coil construction according to claims 2 or 3, or any one of claims 6-8 when dependent thereon characterised in that each winding (9, 10) has final top and bottom turns which terminate in respective bent ends with straight terminal end portions (13, 14 and 11, 12) which project alongside the coil in the axial direction of the coil.
10. A coil construction according to claim 9 characterised in that the bottom said terminal end portion (11 or 12) projects downwardly freely away from the coil, and the top said terminal end portion (13 or 14) projects downwardly freely from the coil alongside and spaced from the outersurface thereof.
11. A coil construction according to claims 9 or 10 characterised in that the terminal end portions (13 or 14, and 11 or 12) are spaced circumferentially from each other.
12. A coil construction according to any one of claims 9-11 characterised in that at least one of the top and bottom bent ends is stepped sideways so that the top terminal end portions (13, 14) of the two windings (9, 10) are spaced apart from each other, as also are the bottom terminal end portions (11, 12) .
13. A coil construction according to any one of claims 9-12 when dependent on any one of claims 6-8 characterised in that the core (15, 16) has top and bottom radially extending slots (20) through which the top bent ends and the bottom bent ends respectively project.
14. A signal separating device for use with a motor vehicle window heating element, said device having a pair of first terminals for connection to the heating element (3, 4), a pair of second terminals (5, 6) for connection with the motor vehicle d.c. power supply for the heating element, an antenna terminal (7) for connection to the antenna circuit of motor vehicle radio transmitting and/or receiving apparatus, and a bifilar coil (8) having first and second windings (9, 10) of common direction interposed between the pair of first terminals (3, 4) and the pair of second terminals (5, 6) so as to permit passage of d.c. current from the power supply to the heating element whilst blocking passage of radio signals from the heating element to the d.c. power supply, the antenna terminal (7) being connected between the heating element and the bifilar coil, characterised in that the bifilar coil (8) is a coil construction according to any one of claims 1 to 8.
15. A method of manufacturing the coil construction of any one of claims 1-3 or 6-8 when dependent thereon wherein the first winding (9) is formed as a generally cylindrical coil, the second winding (10) is formed as a separate generally cylindrical coil having an internal diameter greater than the external diameter of the coil of the first winding (9) , and the first winding (9) is fitted within the second winding (10) .
16. A method of manufacturing the coil construction of claims 4 or 5 or 6-8 when dependent on 4 or 5 wherein the two windings are formed as spiral or helical coils, and said coils are disposed axially one on top of the other.
AM-EMDED CLAIMS
[received by the International Bureau on 13 August 1993 (13.08.93); original claims 1-16 replaced by amended claims 1-7 (3 pages)]
1. A signal separating device for use with a motor vehicle window heating element, said device having a pair of first terminals for connection to the heating element, a pair of second terminals for connection with the motor vehicle d.c. power supply for the heating element, an antenna terminal for connection to the antenna circuit of motor vehicle radio transmitting and/or receiving apparatus, and a double wound coil having first and second windings of common direction interposed between the pair of first terminals and the pair of second terminals so as to permit passage of d.c. current from the power supply to the heating element whilst blocking passage of radio signals from the. heating element to the d.c. power supply, the antenna terminal being connected between the heating element and the'double wound coil, the windings of the double wound coil being separately formed windings disposed bodily alongside each other and a ferrous core being provided having inner and outer parts respectively with and around the coil structure, the separate windings of the double wound coil comprising first and second generally cylindrical windings of different diameters whereby the first winding fits closely within the second winding with the turns of the first winding spaced radially inwardly of the turns of the second winding, said first and second windings having a substantially identical number of turns thereto.
2. A signal separating device according to claim 1 wherein said ferrous core is chosen from one of the following types, IEC type pot core, RM type or E core and each of said windings has final top and bottom turns which terminate in respectively bent ends, one bent end of the first winding being bent directly downwardly, other bent ends of the first and second windings being stepped sideways prior to being bent downwardly.
3. A signal separating device according to claim 1 or claim 2, the axial length of the windings of a double wound coil being reduced by axial deformation of the coil.
4. A method of manufacturing a signal separating device according to any one of claims 1 to 3 including forming the first winding as a generally cylindrical coil from wire having a transverse dimension of greater than 2mm, forming the second winding as a separate generally cylindrical coil from the same wire having an internal diameter greater than the external diameter of the coil of the first winding, fitting the first winding within the second winding and placing the double wound coil so formed within a 30mm IEC type pot core having inner and outer parts respectively with and around the coil structure whereby a current carrying capability of between 25 to 35 amps is possible in said windings. 5. A method of manufacturing a signal separating device according to any one of claims 1 to 3 including forming the first winding as a generally cylindrical coil from wire having a transverse dimension of greater than 2.5mm, forming the second winding as a separate generally cylindrical coil from the same wire having an internal diameter greater than the external diameter of the coil of the first winding, fitting the first winding within the second winding and placing' the double wound coil so formed within a 36mm IEC type pot core having inner and outer parts respectively with and around the coil structure whereby a current carrying capability of between 35 and 45 amps is possible in said windings.
6. A signal separating device according to claims 1, 2, or 3 substantially as hereinbefore described with reference to the accompanying drawings.
7. A method according to claim 4 or claim 5 substantially as hereinbefore described with reference to the accompanying drawings.
PCT/GB1993/000481 1992-04-08 1993-03-08 Coil construction WO1993021668A1 (en)

Priority Applications (6)

Application Number Priority Date Filing Date Title
JP51807393A JP3580813B2 (en) 1992-04-08 1993-03-08 Coil structure
DE69319724T DE69319724T2 (en) 1992-04-08 1993-03-08 COIL STRUCTURE
EP93905538A EP0635165B1 (en) 1992-04-08 1993-03-08 Coil construction
KR1019940703572A KR100235574B1 (en) 1992-04-08 1993-03-08 Coil construction
BR9306211A BR9306211A (en) 1992-04-08 1993-03-08 Coil construction
CA002133747A CA2133747C (en) 1992-04-08 1993-03-08 Coil construction

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
GB9207620.7 1992-04-08
GB929207620A GB9207620D0 (en) 1992-04-08 1992-04-08 Coil construction

Related Child Applications (1)

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US08/794,852 Continuation US5835066A (en) 1992-04-08 1997-02-05 Coil construction

Publications (1)

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WO1993021668A1 true WO1993021668A1 (en) 1993-10-28

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PCT/GB1993/000481 WO1993021668A1 (en) 1992-04-08 1993-03-08 Coil construction

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US (1) USRE37835E1 (en)
EP (2) EP0635165B1 (en)
JP (1) JP3580813B2 (en)
KR (1) KR100235574B1 (en)
BR (1) BR9306211A (en)
CA (1) CA2133747C (en)
DE (2) DE69333119T2 (en)
GB (2) GB9207620D0 (en)
SG (1) SG44559A1 (en)
WO (1) WO1993021668A1 (en)

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GB9207620D0 (en) 1992-04-08 1992-05-27 Glass Antennas Tech Ltd Coil construction
DE19825552A1 (en) * 1998-01-14 1999-07-15 Lindenmeier Heinz Wideband vehicle glass antenna using screen demister heater element
US7123206B2 (en) * 2003-10-24 2006-10-17 Medtronic Minimed, Inc. System and method for multiple antennas having a single core
ES2289937B1 (en) 2006-07-17 2008-11-01 Tecnoamyn, S.L. PROCEDURE FOR THE COLLECTION AND TRANSFORMATION OF BLOOD IN A HYDROLYZED PROTEIN FROM BLOOD ANIMALS TO BE OBTAINED HYBRILIZED PROTEIN OF BLOOD (PHS).
WO2015198800A1 (en) 2014-06-24 2015-12-30 旭硝子株式会社 Antenna coil and antenna system
FR3096863B1 (en) * 2019-05-27 2021-04-23 Psa Automobiles Sa Motor vehicle window defrosting device, boot flap and motor vehicle fitted with said defrosting device

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Also Published As

Publication number Publication date
EP0805505B1 (en) 2003-07-23
EP0635165A1 (en) 1995-01-25
DE69319724D1 (en) 1998-08-20
USRE37835E1 (en) 2002-09-10
BR9306211A (en) 1998-06-23
JPH07505747A (en) 1995-06-22
EP0805505A2 (en) 1997-11-05
GB2266193B (en) 1996-09-25
KR950701145A (en) 1995-02-20
GB9304928D0 (en) 1993-04-28
KR100235574B1 (en) 1999-12-15
CA2133747C (en) 2002-12-24
DE69333119D1 (en) 2003-08-28
DE69319724T2 (en) 1999-03-18
SG44559A1 (en) 1997-12-19
DE69333119T2 (en) 2004-05-06
CA2133747A1 (en) 1993-10-28
GB2266193A (en) 1993-10-20
EP0635165B1 (en) 1998-07-15
EP0805505A3 (en) 1997-11-19
JP3580813B2 (en) 2004-10-27
GB9207620D0 (en) 1992-05-27

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