LONG RANGE COIL AND POWER SOURCE FOR A MAGNETIC FIELD GENERATOR
20190362889 ยท 2019-11-28
Assignee
Inventors
Cpc classification
E21C41/00
FIXED CONSTRUCTIONS
H01F2027/2842
ELECTRICITY
H01F27/42
ELECTRICITY
H01F27/006
ELECTRICITY
F16P3/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02H5/12
ELECTRICITY
H01F27/34
ELECTRICITY
International classification
H01F27/42
ELECTRICITY
Abstract
An improved long range coil and driver assembly for a magnetic field generator wherein the driver and coil generate a large magnetic field is provided. The coil and driver assembly includes a source impedance control network which includes a plurality of pairs of resistors and amorphous noise suppression devices, and a coil that utilizes a unique basket weave winding pattern to reduce the effect of the back EMF from one wire on the adjoining wires, thereby reducing the impedance of the coil. The reduced impedance and improved impedance control increases the current that can flow creating a larger field.
Claims
1. A long range coil and power source for a magnetic field generator comprising: a driver circuit having an input electrically coupled to a controller, said driver circuit generating an electric current in response to electrical signals from the controller; and a coil comprising a core and a conductive wire wound about said core in a basketweave pattern, wherein a first end and a second end of the conductive wire are electrically coupled to an output of said driver circuit for receiving said electrical current to create a magnetic field.
2. The long range coil and power source of claim 1 wherein the core comprises a magnetically permeable cylinder having a hollow center.
3. The long range coil and power source of claim 1 wherein said driver circuit is an H-bridge circuit, said H-bridge circuit further including a source impedance control network.
4. The long range coil and power source of claim 1 further comprising a first end cap formed from a non-conductive material covering a first end of the coil and a second end cap formed from a non-conductive material covering a second end of the coil.
5. The long range coil and power source of claim 4 wherein each end cap is provided with a plurality of anchor points such that the conductive wire is wound about the plurality of anchor points alternating between anchor points on the first end cap and anchor points on the second end cap such that the alternating anchor points are radially offset from one another and the wire is wound about the core in a single direction.
6. The long range coil and power source of claim 5 wherein the conductive wire: engages a first anchor point on the first end cap at a point proximate to a first end of the conductive wire; traverses the length of the coil to a second anchor point on the second end cap which is 200 degrees offset from the first anchor point on the first end cap, traverses the length of the coil to a third anchor point radially adjacent to the first anchor point on the first end cap; traverses the length of the coil repeating the above winding pattern for each additional anchor point on the first and second end caps; and engages the first anchor point on the first end cap at a point proximate to a second end of the conductive wire.
7. A long range coil and power source for a magnetic field generator comprising: a driver circuit having an input electrically coupled to a controller, said driver circuit generating an electric current in response to electrical signals from the controller; and a coil comprising a magnetically permeable cylinder core having a hollow center and a conductive wire wound about said magnetically permeable cylinder core, wherein a first end and a second end of the conductive wire are electrically coupled to an output of said driver circuit for receiving said electrical current to create a magnetic field.
8. The long range coil and power source of claim 7 wherein the conductive wire is wound about said magnetically permeable cylinder core in a basketweave pattern.
9. The long range coil and power source of claim 7 wherein said driver circuit is an H-bridge circuit, said H-bridge circuit further including a source impedance control network.
10. The long range coil and power source of claim 7 further comprising a non-conductive filler material located in said hollow center.
11. The long range coil and power source of claim 7 wherein the magnetically permeable cylinder comprises a plurality of component parts bound together by a binding material.
12. The long range coil and power source of claim 11 wherein the plurality of component parts comprise a plurality of ferrite bars positioned side by side and said binding material comprises a low viscosity epoxy.
13. A long range coil and power source for a magnetic field generator comprising: a driver circuit comprising an H-bridge circuit which includes a source impedance control network, said driver circuit having an input electrically coupled to a controller, said driver circuit generating an electric current in response to electrical signals from the controller; and a coil comprising a core and a conductive wire wound about said core, wherein a first end and a second end of the conductive wire are electrically coupled to an output of said driver circuit for receiving said electrical current to create a magnetic field.
14. The long range coil and power source of claim 13 wherein the conductive wire is wound about said magnetically permeable cylinder core in a basketweave pattern.
15. The long range coil and power source of claim 13 wherein the core comprises a magnetically permeable cylinder having a hollow center.
16. The long range coil and power source of claim 13 wherein the source impedance control network includes a plurality of resistor/amorphous noise suppression devices pairs, each of said pairs including a resistor connected to a corresponding amorphous noise suppression device by a substantially U-shaped conductive wire such that the resistor and the amorphous suppression device are positioned adjacent to one another.
17. The long range coil and power source of claim 16 wherein the orientation of adjacent pairs of resistor/amorphous noise suppression devices alternate so that the resistor of a first resistor/amorphous noise suppression device is positioned adjacent to the amorphous noise suppression device of a second resistor/amorphous noise suppression device.
18. The long range coil and power source of claim 17 wherein each of the pairs of resistor/amorphous noise suppression devices are connected in parallel by a wire that is electrically coupled to the substantially U-shaped wire of each pair of resistor/amorphous noise suppression devices at a position between the resistor and the amorphous noise suppression device.
19. The long range coil and power source of claim 18 wherein a first end of the substantially U-shaped conductive wire of each pair is connected in parallel with the first end of each of the substantially U-shaped conductive wire to each of the other pairs and to the H-bridge circuit; and a second end of the substantially U-shaped conductive wire of each pair is connected in parallel with the second end of each of the substantially U-shaped conductive wire to each of the other pairs and to the H-bridge circuit.
20. The long range coil and power source of claim 13 wherein a pair of impedance control networks are provided as a part of the H-bridge circuit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The present invention can best be understood in connection with the accompanying drawings. It is noted that the invention is not limited to the precise embodiments shown in the drawings, in which:
[0022]
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DETAILED DESCRIPTION OF THE INVENTION
[0031] For purposes of promoting and understanding of the principles of the invention, reference will now be made to the embodiments illustrated in the drawings and specific language will be used to describe the same. It will nevertheless be understood that no limitation of the scope of the invention is thereby intended. The invention includes any alterations and further modifications in the illustrated devices and described methods and further applications of the principles of the invention that would normally occur to one skilled in the art to which the invention relates.
[0032] As best shown in
[0033] The input signals at the edge timing circuit 50 are inverted to produce separate complementary outputs. This is needed because the H-bridge has three valid states. (Off, drive A, drive B) This is to allow the burst mode operation, but also allows PWM of the drive values if that becomes needed. These signals are fed to four identical timing MOSFET circuits. The MOSFET switching signals are then passed to the high voltage gate pre-drivers 60a, 60b. Components of each pre-driver 60a, 60b act as bootstrap power to elevate the high side gate.
[0034] As best shown in
[0035] Energy is stored and recycled in a 500V 1500 uF high current capacitor 76. During each half-cycle of the drive waveform, energy from this capacitor is switched to cause a rising magnetic field from the main coil. Then there is a small dead time where all the power switches are off and energy starts to recycle into the main capacitor through the bypass diodes. After the dead time the switches reverse polarity and the remaining energy in the coil is returned to the capacitor before the magnetic field is expanded in the opposing direction.
[0036] The driver coil according to a preferred embodiment of the invention is shown in
[0037] As shown in
[0038] The conductive wire 89 is then wound about the core around the anchor points 88 as shown in
[0039] The basketweave name refers to the look of the winding when the number of times the winding transverses the coil is more than the number of turns. The effect of the basketweave winding is to greatly reduce the effect of the back EMF from one wire on the adjoining wires. This reduces the impedance of the coil proportion to the increased separation of the wires in the winding. A reduced impedance for the same number of turns increases the current that can flow and this allows the creation of a larger field.
[0040] The driver of the present invention is able to operate at 72 to 400 volts on the H-bridge. Using the coil according to the preferred embodiment shown above, 72 volts will produce about 2 and 400 volts will produce just over 14 the power of prior art coil and driver assemblies while requiring only about 2 the power due to the efficient recirculation of energy as a result of the various features of this design.
[0041] Variations to the dimensions and specifications of the coil 80 can be implemented without departing from the scope of the invention. For example, a longer fifteen (15) inch solid core could be used in place of the twelve (12) inch hollow core 81 shown in
[0042] This detailed description, and particularly the specific details of the exemplary embodiment disclosed, is given primarily for clearness of understanding and no unnecessary limitations are to be understood therefrom, for modifications will become evident to those skilled in the art upon reading this disclosure and may be made without departing from the spirit or scope of the claimed invention.