IP Library › Granted Patent US 10,551,519
Granted Patent B2
US 10,551,519 · App. 14/572,001 · Granted Feb 4, 2020

Techniques for co-siting a metal detector with another detector

Inventors: Julian Nolan Gannaway (Romsey, GB); Richard Alexander Meyers (Romsey, GB)
Assignee: Roke Manor Research Limited
G01V3/107G01N24/084G01R33/4808
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Quick Facts
Patent No.
US 10,551,519
App. No.
14/572,001
Granted
Feb 4, 2020
Kind
B2
Abstract

In a first technique one or more tuned circuits (“traps”) are placed in series in the metal detector coil, tuned to the operating frequency of the other sensor. In another technique a single turn coil of wire, or a small number of turns coil, is used as the metal detector coil, in combination with a step up transformer at the coil feed, to increase the EMF of the coil. In a further technique, the metal detector coil is formed in a plane that has regard to the sensing field of the other sensor. In another technique, the feed for the metal detector coil comprises a twisted pair of wires, which are routed along an axis in order to try to minimize and equalize the effect of the metal detector feed on the operation of the other antenna.

Claims (32)

1. A metal detector sensing coil, comprising:

multiple turns of wire overlapping each other; and

a tuned circuit in series with the multiple turns of wire, the tuned circuit being arranged such that its resonant frequency is a frequency of operation of another sensor antenna co-sited with the metal detector sensing coil,

wherein the tuned circuit comprises:

a helically wound tubular conductive sheath encasing a portion of a length of the multiple turns of wire; wherein a portion of each turn of the multiple turns of wire is encased in a single turn of the helically wound tubular conductive sheath; and

a capacitor connected in parallel with the tubular conductive sheath.

2. The metal detector sensing coil according to claim 1 , wherein the multiple turns of the wire experience substantially zero net magnetic flux from a magnetic field of the another sensor antenna.

3. The metal detector sensing coil according to claim 1 , wherein the coil is fed via a feed that extends along an axis of the another sensor antenna.

4. An object detector system, comprising:

the metal detector sensing coil according to claim 1 ; and

the other sensor antenna co-sited with the metal detector sensing coil;

wherein the metal detector sensing coil and the other sensor antenna are located with respect to each other as to co-inhabit each other's zones of detection.

5. The object detector system according to claim 4 , and further comprising:

i) metal detector discriminating electronics arranged to receive signals from the metal detector sensing coil and discriminate object detection related signals therein; and

ii) other sensor discriminating electronics arranged to receive signals from the other sensor antenna and discriminate object detection related signals therein.

6. The metal detector sensing coil according to claim 1 , further comprising one or more additional tuned circuits arranged over different portions of the length of the one or more turns of wire and arranged having different resonant frequencies.

7. A metal detector sensing coil comprising:

one or more turns of wire; and

a tuned circuit in series with the one or more turns of wire, the tuned circuit being arranged such that its resonant frequency is a frequency of operation of another sensor antenna co-sited with the metal detector sensing coil,

wherein the tuned circuit comprises:

a helically wound tubular conductive sheath encasing a portion of a length of the one or more turns of wire; wherein a portion of each turn of the one or more turns of wire is encased in a single turn of the helically wound tubular conductive sheath; and

a capacitor connected in parallel with the tubular conductive sheath;

wherein the metal detector sensing coil further comprises one or more additional tuned circuits arranged over different portions of the length of the one or more turns of wire and arranged having different resonant frequencies.

8. A metal detector sensing coil comprising:

multiple turns of wire overlapping each other, arranged such that the multiple turns of wire experience substantially zero net magnetic flux from a magnetic field of another sensor antenna co-sited with the metal detector sensing coil;

a helically wound tubular conductive sheath encasing a portion of a length of the multiple turns of wire; wherein a portion of each turn of the multiple turns of wire is encased in a single turn of the helically wound tubular conductive sheath; and

a capacitor connected in parallel with the tubular conductive sheath so as to form a circuit tuned to a frequency of operation of the other sensor antenna.

9. The metal detector sensing coil according to claim 8 , wherein the multiple turns of wire are arranged substantially on a curve formed along magnetic field lines of the other sensor, and wherein the multiple turns of wire are substantially parallel to flux lines of the other sensor.

10. An object detector system, comprising:

the metal detector sensing coil according to claim 8 ; and

the other sensor antenna co-sited with the metal detector sensing coil;

wherein the metal detector sensing coil and the other sensor antenna are so located with respect to each other as to co-inhabit each other's zones of detection.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 28, 2015
From: GANNAWAY, JULIAN NOLAN; MEYERS, RICHARD ALEXANDER
To: ROKE MANOR RESEARCH LIMITED
Reel/Frame 035515/0590 →
Priority Claims (1)
GB 1322423.3 · Dec 18, 2013 · national
Continuity (1)
Related Publication 20150168458A1 · Jun 18, 2015