WO2022011089A1 - Cross-talk compensation for gradiometer probes - Google Patents
Cross-talk compensation for gradiometer probes Download PDFInfo
- Publication number
- WO2022011089A1 WO2022011089A1 PCT/US2021/040805 US2021040805W WO2022011089A1 WO 2022011089 A1 WO2022011089 A1 WO 2022011089A1 US 2021040805 W US2021040805 W US 2021040805W WO 2022011089 A1 WO2022011089 A1 WO 2022011089A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- antennas
- antenna
- relative
- adjustment
- coils
- 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.)
- Ceased
Links
Classifications
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B5/00—Near-field transmission systems, e.g. inductive or capacitive transmission systems
- H04B5/20—Near-field transmission systems, e.g. inductive or capacitive transmission systems characterised by the transmission technique; characterised by the transmission medium
- H04B5/24—Inductive coupling
- H04B5/26—Inductive coupling using coils
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
- G01S7/00—Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
- G01S7/02—Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S13/00
- G01S7/023—Interference mitigation, e.g. reducing or avoiding non-intentional interference with other HF-transmitters, base station transmitters for mobile communication or other radar systems, e.g. using electro-magnetic interference [EMI] reduction techniques
- G01S7/0236—Avoidance by space multiplex
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/20—Arrangements or instruments for measuring magnetic variables involving magnetic resonance
- G01R33/28—Details of apparatus provided for in groups G01R33/44 - G01R33/64
- G01R33/32—Excitation or detection systems, e.g. using radio frequency signals
- G01R33/36—Electrical details, e.g. matching or coupling of the coil to the receiver
- G01R33/3642—Mutual coupling or decoupling of multiple coils, e.g. decoupling of a receive coil from a transmission coil, or intentional coupling of RF coils, e.g. for RF magnetic field amplification
- G01R33/3657—Decoupling of multiple RF coils wherein the multiple RF coils do not have the same function in MR, e.g. decoupling of a transmission coil from a receive coil
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/20—Arrangements or instruments for measuring magnetic variables involving magnetic resonance
- G01R33/44—Arrangements or instruments for measuring magnetic variables involving magnetic resonance using nuclear magnetic resonance [NMR]
- G01R33/441—Nuclear Quadrupole Resonance [NQR] Spectroscopy and Imaging
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/36—Structural form of radiating elements, e.g. cone, spiral, umbrella; Particular materials used therewith
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q1/00—Details of, or arrangements associated with, antennas
- H01Q1/52—Means for reducing coupling between antennas; Means for reducing coupling between an antenna and another structure
- H01Q1/521—Means for reducing coupling between antennas; Means for reducing coupling between an antenna and another structure reducing the coupling between adjacent antennas
- H01Q1/525—Means for reducing coupling between antennas; Means for reducing coupling between an antenna and another structure reducing the coupling between adjacent antennas between emitting and receiving antennas
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q7/00—Loop 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
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B5/00—Near-field transmission systems, e.g. inductive or capacitive transmission systems
- H04B5/40—Near-field transmission systems, e.g. inductive or capacitive transmission systems characterised by components specially adapted for near-field transmission
- H04B5/43—Antennas
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B5/00—Near-field transmission systems, e.g. inductive or capacitive transmission systems
- H04B5/70—Near-field transmission systems, e.g. inductive or capacitive transmission systems specially adapted for specific purposes
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N24/00—Investigating or analyzing materials by the use of nuclear magnetic resonance, electron paramagnetic resonance or other spin effects
- G01N24/08—Investigating or analyzing materials by the use of nuclear magnetic resonance, electron paramagnetic resonance or other spin effects by using nuclear magnetic resonance
- G01N24/084—Detection of potentially hazardous samples, e.g. toxic samples, explosives, drugs, firearms, weapons
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/20—Arrangements or instruments for measuring magnetic variables involving magnetic resonance
- G01R33/28—Details of apparatus provided for in groups G01R33/44 - G01R33/64
- G01R33/32—Excitation or detection systems, e.g. using radio frequency signals
- G01R33/34—Constructional details, e.g. resonators, specially adapted to MR
- G01R33/34007—Manufacture of RF coils, e.g. using printed circuit board technology; additional hardware for providing mechanical support to the RF coil assembly or to part thereof, e.g. a support for moving the coil assembly relative to the remainder of the MR system
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
- G01S13/00—Systems using the reflection or reradiation of radio waves, e.g. radar systems; Analogous systems using reflection or reradiation of waves whose nature or wavelength is irrelevant or unspecified
- G01S13/88—Radar or analogous systems specially adapted for specific applications
- G01S13/887—Radar or analogous systems specially adapted for specific applications for detection of concealed objects, e.g. contraband or weapons
Definitions
- the present disclosure relates generally to RF circuits, probe structures, antenna systems, and related techniques and methods to improve undesirable far- field suppression and intra-probe isolation in part or all of these devices, as well as systems, methods, and devices for improving near-field sensing applications, like RFID and explosive detection systems.
- At least some known radio-frequency identification (RFID) and some explosive detection systems use loop-type radiators for interrogator antennas, for example, an antenna consisting of a figure-eight shaped conductor to effect a reduction in the creation or reception of energy in their far-field regions. That is, loop antenna systems can be designed such that the coupling between the antenna and its nearby surroundings is relatively high, whereas the coupling between the antenna and its distant surroundings is minimized.
- RFID radio-frequency identification
- explosive detection systems use loop-type radiators for interrogator antennas, for example, an antenna consisting of a figure-eight shaped conductor to effect a reduction in the creation or reception of energy in their far-field regions. That is, loop antenna systems can be designed such that the coupling between the antenna and its nearby surroundings is relatively high, whereas the coupling between the antenna and its distant surroundings is minimized.
- the magnitude of the current within the loops and the direction of the currents generated fields work to cancel each other out in the far-field region (that is, the sum of the fields created from each of the antenna loops is close to zero.)
- Antennas that cancel signals in the far-field region may be referred to as "gradiometer antennas,” “near field probes,” or “differential antennas.” All of these terms are used herein interchangeably, with similar meaning intended.
- NQR Nuclear Quadrupole Resonance
- RF radio frequency
- the NQR response signal provides a unique signature of the material of interest, where the detected electrical signal indicates the presence of quadrupolar nuclei.
- Exemplary uses for NQR include (but are not limited to), screening of airline baggage, parcel screening, detection of drugs/narcotics, and detection of explosives, such as detection of buried Improvised Explosives Devices (IED), and/or landmine detection.
- Explosive detection systems may use a set of gradiometer antennas and coil transmitters that have to be tuned to required frequency, suppression of noise from faraway radio frequency (RF) sources as well as to a state where transmit/receive (Tx/Rx) cross-talk are minimized.
- RF radio frequency
- Tx/Rx transmit/receive
- TNT tri-nitro-toluene
- AM amplitude modulation
- a system/device has overlapping transmit and receive antennas, which can be adjusted (moved) relative to one another, such as in a direction parallel to a plane of the antenna(s), to reduce cross talk between the antennas.
- a device includes: a transmitter antenna; and a receiver antenna that at least partially overlaps the transmitter antenna, configured to reduce cross talk.
- At least one of the antennas is a differential antenna.
- the antennas are adjustable by movement of one of the antennas relative to the other of the antennas in a direction of adjustment that is parallel to or in a plane of one or both of the antennas.
- system/device has non-axial adjustment of cross-talk between gradiometer and loop antennas.
- localized area of antenna perimeter may be used for cross-talk tuning.
- a system/device has the ability to use adjustment mechanism for structural stiffening.
- a device includes a pair of overlapping receiver antenna and transmitter antenna, configured to reduce cross talk.
- the antennas have different shapes.
- one of the antennas is circular.
- one of the antennas is oval.
- the antennas are adjustable by movement of one relative to the other.
- a direction of adjustment is parallel or in a plane of one or both of the antennas.
- the antennas are non-axisymmetric.
- the antennas are adjusted by movement in a non-axial direction.
- the device includes an adjustment mechanism.
- the adjustment mechanism provides structural stiffening.
- the device further includes a cross-talk tuner.
- the device is a handheld device.
- the device is a table top device.
- the device is a gradiometer.
- the device is an explosive detection device.
- the device is part of an explosive detection system.
- the device includes one or more spacers to maintain spacing between the antennas.
- the device includes a loOck or locking mechanism.
- the antennas are coils.
- the device is used in a method of cross-talk adjustment.
- the device is used in a method of detection.
- a method of reducing cross talk in an antenna system includes: adjusting relatively positioning of a transmit antenna and a receive antenna, with the adjusting includes relative movement of the antennas in a direction of adjustment that is parallel to or in a plane of one or both of the antennas; and monitoring energy coupling between the antennas at multiple relative positions between the antennas.
- the antennas are planar, and planes of the antenna are maintained at a fixed distance from each other.
- the antennas are locked in place relative to one another at a position of minimum energy coupling.
- Fig. 1 A shows a plan view of a conventional antenna system.
- Fig. 1 B shows a side view of the conventional antenna system of Fig. 1 A.
- Fig. 2A shows a plan view of an antenna arrangement according to an embodiment.
- Fig. 2B shows a side view of the arrangement of Fig. 2A.
- Fig. 3 shows a side view of the antenna arrangement of Fig. 2A, with additional components of the device shown.
- Fig. 4 shows an oblique view of a holder that may be part of the device of Fig. 3.
- Fig. 5 is a block diagram illustrating calibration of a device, according to an embodiment.
- Fig. 6 is a plan view of another embodiment antenna arrangement.
- Fig. 7 is another plan view of the antenna arrangement of Fig. 6.
- Fig. 8 is a high-level flow chart of a method, according to an embodiment.
- a system/device such as a gradiometer probe for detecting RF signals, or for example for explosive detection, has the shape of the coils in its adjustment mechanism that minimizes the cross-talk between the receiver probe (Rx) and the transmitting antenna (Tx) in such a way as to minimize (or reduce) the areas where the distance between the coils during the adjustment is the smallest.
- Moving coils along the plain of the coils is one mechanism of achieving it.
- Having the coils of different shapes, e.g., circular receiver and oval transmitter coils, is another. Many shapes are possible, including circular, oval, elliptical, and polygonal, to give a few examples. In some embodiments both of these methods/approaches are combined in a single device.
- a non-axial system/device is configured such that the cross-talk adjustment is achieved by movement of Tx and Rx antennas with respect to each other in the plane parallel to the planes of the antenna coils.
- One advantage of the proposed configuration is that it strongly localizes the areas of the coils which control the cross-talk and, thus, requires stabilization of very small areas of the coils. It decreases sensitivity to minor variation of coil geometry. In addition, the sensitivity to relative motion in-plane is lower than the same for out-of-plane; thus, the adjustment is more robust with respect to shake, rattle, and roll.
- Non-asymmetric systems have been harder to design and model, so axisymmetric systems predominate.
- FIGs. 1 A and 1 B show an example of a conventional axisymmetric antenna system 1 , in which there is a large region that is sensitive to cross-talk between antennas 2 and 3, in which the antennas 2 and 3 have position adjustment by moving them in a direction 4, toward or away from one another. It turns out cross-talk in axisymmetric system is unstable with respect to small deviations from ideal geometry, for example in the cross-talk sensitive areas 6. This realization is not-trivial, not widely understood, to the extent that it is known at all.
- Figs. 2A and 2B shows an embodiment of the present system/device 10, with a configuration that reduces cross-talk-sensitive areas between a transmit antenna 12 and a receive antenna 14.
- the adjustment motion may be in a direction 16 that is parallel to the two antennas 12 and 14.
- the cross-sensitive areas 18 and 19 in this arrangement are much smaller than those of the system 1 (Fig. 1 ), and therefore cross-talk may be easier to control.
- Fig. 3 shows further details of the device/system 10, including an adjustment mechanism (or adjuster) 22 that may be used to accomplish the relative adjustment between the antennas 12 and 14, in the adjustment direction 16, a locking system (or lock) 24 that may be used as part system/device 10, and spacers 26 and 28 that may be used to hold the antennas 12 and 14 apart.
- adjustment mechanism or adjuster
- locking system or lock
- the antennas 12 and 14 may be made of a suitable electrically-conductive material, such as metal, and may be held in separate structures, which may be made of suitable non-conductive material, such as suitable plastics. The structures may be moved relative to one another using the adjustment mechanism.
- the adjustment mechanism (or adjuster) 22 may include any of a wide variety of electrical and/or mechanical parts for moving the antennas 12 and 14 relative to each other. Non limiting examples of components for the adjuster 22 include gears, motors, threaded shafts, and cams, arranged so as to effect translation in the direction 16.
- a cam coupled to a holder for one of the antennas 12 and 14 may be turned to engage a slot in a holder for the other of the antennas 12 and 14, accomplishing relative translation between the antennas 12 and 14. It will be appreciated that many other suitable translation mechanisms are known.
- the locking system (or lock) 24 may be used to secure the antennas 12 and 14 (and their respective holders) in place once suitable adjustment has been made.
- suitable locks include clamps and set screws.
- the spacers 26 and 28 may maintain the distance between the antennas 12 and 14.
- the spacers 26 and 28 may maintain a constant distance between the respective planes of the antennas 12 and 14.
- the spacers 26 and 28 may be made of electrically-nonconductive material, such as plastic.
- the spacers 26 and 28 may be parts of one or both of the respective holders which are used to mount the antennas 12 and 14.
- At least one of the antennas 12 and 14 may be a differential antenna (or gradient probe).
- the receive antenna may be configured to receive a much weaker signal than is transmitted by the transmit antenna, and therefore it may be advantageous for the receiver antenna to be a differential antenna.
- the transmit energy may be on the order of kilowatts and the received energy may be on the order of microwatts.
- Fig. 4 shows a holder 40 which may be used for securing a receive antenna or antennas in grooves 42 and 44.
- the holder 40 may be a 3D printable structure that may be part of the systems described herein, for example made of plastic, which may engage a corresponding holder for holding a transmit antenna, which may for example overlap an outer ring 46 of the holder 40.
- Fig. 5 shows a functional block diagram of a system 100, for example including a handheld device 110, and its interaction with other devices.
- the device 110 may be similar in many respects with the device 10 (Fig. 3) described above.
- the system 100 may be used to calibrate the device 10, to reduce or minimize cross talk for example.
- a user interface (Ul) computer 112 such as a standard laptop or other computer, is coupled to an analyzer 114 that has two functions: detection and tuning. In detection mode the analyzer 114 detects NQR signals. In tuning mode the analyzer 114 provides information that is required to adjust the geometry of the Tx and Rx antennas.
- the analyzer performs a function similar to a vector network analyzer (VNA), in order to calibrate the device 110 to reduce cross talk.
- the analyzer 114 may include a spectrometer 116 and a power amplifier (PA) 118.
- the spectrometer 116 produces an RF signal for use in calibrating the device 110, and the PA 118 amplifies that signal.
- the amplified signal passes through a tune matching block 122, to provide a transmit probe signal to a transmit antenna, one of the overlapping antennas shown at 126.
- the tune match 122 is a narrow band transformation device to transform the RF signal to an impedance that can be effectively used in the antennas of the device 110.
- a cross talk tuner 130 may be used to adjust the relative position of the antennas, for example using the adjuster (or adjustment mechanism) 22 (Fig. 3) described above.
- a receive probe signal is sent by a receive antenna, through a tuning match 132 and a low-noise amplifier (LNA) 134, back to the spectrometer 116. The output is provided to the user through the interface 112.
- LNA low-noise amplifier
- a goal in the calibration/adjustment is to minimize the energy coupling (cross talk) between the transmit antenna and the receive antenna. Adjustment using the tuner 130 may be performed until the cross-talk is minimized, or reduced to an acceptable level. The adjustment process may be manually performed by a user, or alternatively may be a partially- or fully-automated process.
- the cross-talk tuner 130 may be (or may include) circuits embodied in hardware and/or software to accomplish the adjustment of the relative position of the antennas at 126. For example, the return signal from the receive antenna may be examined at various relative positions between the antennas, for a minimum return signal indicating a position where cross talk is at a minimum.
- the turner 130 may operate a positioning mechanism such as motors and/or mechanical adjusters, such as gearing or screw- driven mechanical adjusters, to adjust relative position of the antennas.
- a positioning mechanism such as motors and/or mechanical adjusters, such as gearing or screw- driven mechanical adjusters, to adjust relative position of the antennas.
- a threaded bolt or worm gear may engage with internal threads on a nut coupled to one of the antennas, such that turning the bolt or worm gear moves the nut (and thus the antenna coupled to the nut) along the bolt/gear shaft.
- It may be desired to achieve at least 20dB of isolation from cross talk.
- the antennas may be locked into place relative to one another, for example using device(s) such as the lock 24 (Fig. 3) described above.
- the calibration may be a one-time event, or alternatively may be repeated and changed for different operating conditions, such as when a change in the frequency of operation is desired.
- the devices described herein may have any of a variety of suitable uses.
- One is in explosive detection devices/systems (EDS’s), where a signal is transmitted that produces a detectable response from nearby explosives, for example explosives in bulk in the vicinity of the detector device.
- EDS explosive detection devices/systems
- Such explosive detection devices may be used to detect explosives in shipping containers, in vehicles, or at transportation sites such as airports, to give a few non-limiting examples.
- EDS such as a table-top EDS or a handheld EDS.
- Such devices may be used to scan an entire pallet of items at once, and/or may be used to scan/inspect individual items.
- Such systems advantageously may be RF systems.
- EDS may be used for and/or incorporated into larger ‘systems’ such as Border Protection system, highway tolling/inspection, military force/base protection and for embassy security.
- a suitable amplifier may be from E&l Amplifiers, and a suitable spectrometer circuit board may be made by Spincore Technologies.
- Scanners could be used/sold commercially for checkpoint scanning during commercial venues such as sports arenas, conventions, hotels, casinos, malls or embassies. And entry way requiring rapid, non-intrusive bag scanning for threat and/or narcotics.
- RFID radio frequency identification
- RFID systems widely use far field suppression to comply with Federal Communication Commission (FCC) requirements.
- Near field detectors similar to such systems may use this approach with the same results.
- Figs. 6 and 7 illustrate an alternative arrangement 210 of antennas 212 and 214, with the antennas 212 and 214 having a polygonal shape.
- the figures show the antennas 212 and 214 in different relative locations.
- the receive antenna 214 has move rightward relative to the transmit 212, compared to the positioning shown in Fig. 6.
- the receive antenna 214 is a differential antenna with multiple connected together in series. This may make for a better signal strength in trying to detect a weak (low energy signal).
- Fig. 8 shows a high-level flow chart of a method 300 for compensating for cross talk, such as in an explosive probe.
- step 302 overlapping transmit and receive antennas are adjusted in position relative to one another.
- step 304 this is continued while cross-talk is monitored, searching for a position of minimum cross talk (minimum energy coupling) between the transmit and receive antennas.
- step 306 the antennas are locked (or fixed or maintained) in a desired position, such as to minimize cross talk.
Landscapes
- Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Radar, Positioning & Navigation (AREA)
- Remote Sensing (AREA)
- Computer Networks & Wireless Communication (AREA)
- General Physics & Mathematics (AREA)
- Signal Processing (AREA)
- Condensed Matter Physics & Semiconductors (AREA)
- Electromagnetism (AREA)
- Spectroscopy & Molecular Physics (AREA)
- High Energy & Nuclear Physics (AREA)
- Geophysics And Detection Of Objects (AREA)
- Support Of Aerials (AREA)
Abstract
A system/device, such as a gradiometer probe for detecting RF signals, or for example for explosive detection, has the shape of the coils in its adjustment mechanism that minimizes the cross-talk between the receiver probe (Rx) and the transmitting antenna (Tx) in such a way as to minimize (or reduce) the areas where the distance between the coils during the adjustment is the smallest. Moving coils along the plain of the coils is one mechanism of achieving it. Having the coils of different shapes, e.g., circular receiver and oval transmitter coils, is another. Many shapes are possible, including circular, oval, elliptical, and polygonal, to give a few examples. In some embodiments both of these methods/approaches are combined in a single device.
Description
CROSS-TALK COMPENSATION FOR G RADIOMETER PROBES
RELATED APPLICATION
[0001] This application claims priority from US Provisional Application 63/048,878, filed July 7, 2020, which is incorporated by reference in its entirety.
FIELD
[0002] The present disclosure relates generally to RF circuits, probe structures, antenna systems, and related techniques and methods to improve undesirable far- field suppression and intra-probe isolation in part or all of these devices, as well as systems, methods, and devices for improving near-field sensing applications, like RFID and explosive detection systems.
BACKGROUND
[0003] At least some known radio-frequency identification (RFID) and some explosive detection systems use loop-type radiators for interrogator antennas, for example, an antenna consisting of a figure-eight shaped conductor to effect a reduction in the creation or reception of energy in their far-field regions. That is, loop antenna systems can be designed such that the coupling between the antenna and its nearby surroundings is relatively high, whereas the coupling between the antenna and its distant surroundings is minimized. By using two or more loops in combination, where the loops have a specific size and geometry, the magnitude of the current within the loops and the direction of the currents generated fields work to cancel each other out in the far-field region (that is, the sum of the fields created from each of the antenna loops is close to zero.) Antennas that cancel signals in the far-field region may be referred to as "gradiometer antennas," "near field probes," or "differential antennas." All of these terms are used herein interchangeably, with similar meaning intended.
[0004] One application for near field probes (including those using loop-type radiators) is in a detection system used to exploit a material's Nuclear Quadrupole Resonance (NQR), where NQR is a radio frequency (RF) magnetic spectroscopic technique that has been used to create a system to detect and identify a wide range
of materials based on detection of the resonances associated with their quadrupolar nuclei. The NQR response signal provides a unique signature of the material of interest, where the detected electrical signal indicates the presence of quadrupolar nuclei. Exemplary uses for NQR include (but are not limited to), screening of airline baggage, parcel screening, detection of drugs/narcotics, and detection of explosives, such as detection of buried Improvised Explosives Devices (IED), and/or landmine detection.
[0005] Explosive detection systems (EDS’s) may use a set of gradiometer antennas and coil transmitters that have to be tuned to required frequency, suppression of noise from faraway radio frequency (RF) sources as well as to a state where transmit/receive (Tx/Rx) cross-talk are minimized. Up to now, these antennas have been generally axially symmetric. Use of axisymmetric geometry for smaller sensors, especially for non-stationary devices such as hand-held, mine-sweeper, etc., making them very unstable with respect to physical deformation.
SUMMARY
[0006] Systems that use near-field probes and related technologies, especially for detection and screening of explosives, may benefit from suppression of RF interference (RFI). Suppression of RFI is particularly relevant for NQR systems, which rely on detection of a relatively weak or small signal (NQR signals inherently can be very weak). Detection of NQR signals, using near-field probe (antenna) systems such as loop antennas, can be difficult in the presence of strong far field noise sources/signals, such as AM radio transmitters, and nearby noise sources/signals, such as automobile ignitions, computers, mobile phones, and other electronics. While the region outside of the very near vicinity of the near-field probe embodiments discussed herein is still technically part of the near-field, for at least some embodiments disclosed further herein it is outside of the most sensitive region of at least some of the antenna systems/probes described herein. Therefore these “technically” near field signals are effectively, in some embodiments described further herein, suppressed, though not as fully suppressed as are the signals that are emanating from the far-field region.
[0007] The presence of strong far field noise sources/signals presents a difficulty that arises at least in part because these kinds of noise sources can create substantial coherent and non-coherent geographically distributed noise that can be within the detection frequency ranges of interest. For example, detection of land mine explosives such as tri-nitro-toluene (TNT) can be affected by amplitude modulation (AM) radio signals sourced in the far field, because the characteristic detectable frequencies associated with TNT (used in NQR detection systems) are below 1 MHz, which is within in the standard AM radio band.
[0008] In addition, field-hardening of the sensor is a problem that needs a solution.
[0009] Previously, mechanical strengthening of out-of-plane coils was attempted. In-plane flexible elements that change coil geometry was used also. Both of these approaches suffer from the same draw-back: the cross-talk depends heavily on the minor relative variations in the coils geometry with respect to each other. The latter is very hard to control in the bumpy environments of non-stationary sensors.
[0010] According to an aspect of the disclosure, a system/device has overlapping transmit and receive antennas, which can be adjusted (moved) relative to one another, such as in a direction parallel to a plane of the antenna(s), to reduce cross talk between the antennas.
[0011] According to an aspect of the disclosure, a device includes: a transmitter antenna; and a receiver antenna that at least partially overlaps the transmitter antenna, configured to reduce cross talk. At least one of the antennas is a differential antenna. The antennas are adjustable by movement of one of the antennas relative to the other of the antennas in a direction of adjustment that is parallel to or in a plane of one or both of the antennas.
[0012] According to an aspect of the disclosure, system/device has non-axial adjustment of cross-talk between gradiometer and loop antennas.
[0013] According to another aspect of the disclosure, localized area of antenna perimeter may be used for cross-talk tuning.
[0014] According to still another aspect of the disclosure, a system/device has the ability to use adjustment mechanism for structural stiffening.
[0015] According to an aspect of the disclosure, a device includes a pair of overlapping receiver antenna and transmitter antenna, configured to reduce cross talk.
[0016] According to an embodiment of any paragraph(s) of this summary, the antennas have different shapes.
[0017] According to an embodiment of any paragraph(s) of this summary, one of the antennas is circular.
[0018] According to an embodiment of any paragraph(s) of this summary, one of the antennas is oval.
[0019] According to an embodiment of any paragraph(s) of this summary, the antennas are adjustable by movement of one relative to the other.
[0020] According to an embodiment of any paragraph(s) of this summary, a direction of adjustment is parallel or in a plane of one or both of the antennas.
[0021] According to an embodiment of any paragraph(s) of this summary, the antennas are non-axisymmetric.
[0022] According to an embodiment of any paragraph(s) of this summary, the antennas are adjusted by movement in a non-axial direction.
[0023] According to an embodiment of any paragraph(s) of this summary, the device includes an adjustment mechanism.
[0024] According to an embodiment of any paragraph(s) of this summary, the adjustment mechanism provides structural stiffening.
[0025] According to an embodiment of any paragraph(s) of this summary, the device further includes a cross-talk tuner.
[0026] According to an embodiment of any paragraph(s) of this summary, the device is a handheld device.
[0027] According to an embodiment of any paragraph(s) of this summary, the device is a table top device.
[0028] According to an embodiment of any paragraph(s) of this summary, the device is a gradiometer.
[0029] According to an embodiment of any paragraph(s) of this summary, the device is an explosive detection device.
[0030] According to an embodiment of any paragraph(s) of this summary, the device is part of an explosive detection system.
[0031] According to an embodiment of any paragraph(s) of this summary, the device includes one or more spacers to maintain spacing between the antennas. [0032] According to an embodiment of any paragraph(s) of this summary, the device includes a loOck or locking mechanism.
[0033] According to an embodiment of any paragraph(s) of this summary, the antennas are coils.
[0034] According to an embodiment of any paragraph(s) of this summary, the device is used in a method of cross-talk adjustment.
[0035] According to an embodiment of any paragraph(s) of this summary, the device is used in a method of detection.
[0036] According to another aspect of the disclosure, a method of reducing cross talk in an antenna system includes: adjusting relatively positioning of a transmit antenna and a receive antenna, with the adjusting includes relative movement of the antennas in a direction of adjustment that is parallel to or in a plane of one or both of the antennas; and monitoring energy coupling between the antennas at multiple relative positions between the antennas.
[0037] According to an embodiment of any paragraph(s) of this summary, the antennas are planar, and planes of the antenna are maintained at a fixed distance from each other.
[0038] According to an embodiment of any paragraph(s) of this summary, the antennas are locked in place relative to one another at a position of minimum energy coupling.
[0039] While a number of features are described herein with respect to embodiments of the disclosure; features described with respect to a given embodiment also may be employed in connection with other embodiments. The following description and the annexed drawings set forth certain illustrative embodiments of the disclosure. These embodiments are indicative, however, of but a few of the various ways in which the principles of the disclosure may be employed. Other objects, advantages, and novel features according to aspects of the disclosure
will become apparent from the following detailed description when considered in conjunction with the drawings.
BRIEF DESCRIPTION OF THE DRAWINGS [0040] The annexed drawings, which are not necessarily to scale, show various aspects of the disclosure in which similar reference numerals are used to indicate the same or similar parts in the various views.
[0041] Fig. 1 A shows a plan view of a conventional antenna system.
[0042] Fig. 1 B shows a side view of the conventional antenna system of Fig. 1 A.
[0043] Fig. 2A shows a plan view of an antenna arrangement according to an embodiment.
[0044] Fig. 2B shows a side view of the arrangement of Fig. 2A.
[0045] Fig. 3 shows a side view of the antenna arrangement of Fig. 2A, with additional components of the device shown.
[0046] Fig. 4 shows an oblique view of a holder that may be part of the device of Fig. 3.
[0047] Fig. 5 is a block diagram illustrating calibration of a device, according to an embodiment.
[0048] Fig. 6 is a plan view of another embodiment antenna arrangement.
[0049] Fig. 7 is another plan view of the antenna arrangement of Fig. 6.
[0050] Fig. 8 is a high-level flow chart of a method, according to an embodiment.
DETAILED DESCRIPTION
[0051] A system/device, such as a gradiometer probe for detecting RF signals, or for example for explosive detection, has the shape of the coils in its adjustment mechanism that minimizes the cross-talk between the receiver probe (Rx) and the transmitting antenna (Tx) in such a way as to minimize (or reduce) the areas where the distance between the coils during the adjustment is the smallest. Moving coils along the plain of the coils is one mechanism of achieving it. Having the coils of different shapes, e.g., circular receiver and oval transmitter coils, is another. Many shapes are possible, including circular, oval, elliptical, and polygonal, to give a few
examples. In some embodiments both of these methods/approaches are combined in a single device.
[0052] A non-axial system/device is configured such that the cross-talk adjustment is achieved by movement of Tx and Rx antennas with respect to each other in the plane parallel to the planes of the antenna coils.
[0053] One advantage of the proposed configuration is that it strongly localizes the areas of the coils which control the cross-talk and, thus, requires stabilization of very small areas of the coils. It decreases sensitivity to minor variation of coil geometry. In addition, the sensitivity to relative motion in-plane is lower than the same for out-of-plane; thus, the adjustment is more robust with respect to shake, rattle, and roll.
[0054] The in-plane adjustment makes it is easier to fix structure to make it very robust.
[0055] Non-asymmetric systems have been harder to design and model, so axisymmetric systems predominate.
[0056] Present systems tend to be axisymmetric. Figs. 1 A and 1 B show an example of a conventional axisymmetric antenna system 1 , in which there is a large region that is sensitive to cross-talk between antennas 2 and 3, in which the antennas 2 and 3 have position adjustment by moving them in a direction 4, toward or away from one another. It turns out cross-talk in axisymmetric system is unstable with respect to small deviations from ideal geometry, for example in the cross-talk sensitive areas 6. This realization is not-trivial, not widely understood, to the extent that it is known at all.
[0057] Figs. 2A and 2B shows an embodiment of the present system/device 10, with a configuration that reduces cross-talk-sensitive areas between a transmit antenna 12 and a receive antenna 14. The adjustment motion may be in a direction 16 that is parallel to the two antennas 12 and 14. The cross-sensitive areas 18 and 19 in this arrangement are much smaller than those of the system 1 (Fig. 1 ), and therefore cross-talk may be easier to control.
[0058] Fig. 3 shows further details of the device/system 10, including an adjustment mechanism (or adjuster) 22 that may be used to accomplish the relative adjustment between the antennas 12 and 14, in the adjustment direction 16, a
locking system (or lock) 24 that may be used as part system/device 10, and spacers 26 and 28 that may be used to hold the antennas 12 and 14 apart.
[0059] The antennas 12 and 14 may be made of a suitable electrically-conductive material, such as metal, and may be held in separate structures, which may be made of suitable non-conductive material, such as suitable plastics. The structures may be moved relative to one another using the adjustment mechanism. The adjustment mechanism (or adjuster) 22 may include any of a wide variety of electrical and/or mechanical parts for moving the antennas 12 and 14 relative to each other. Non limiting examples of components for the adjuster 22 include gears, motors, threaded shafts, and cams, arranged so as to effect translation in the direction 16. In one example a cam coupled to a holder for one of the antennas 12 and 14 may be turned to engage a slot in a holder for the other of the antennas 12 and 14, accomplishing relative translation between the antennas 12 and 14. It will be appreciated that many other suitable translation mechanisms are known.
[0060] The locking system (or lock) 24 may be used to secure the antennas 12 and 14 (and their respective holders) in place once suitable adjustment has been made. Examples of suitable locks include clamps and set screws.
[0061] The spacers 26 and 28 may maintain the distance between the antennas 12 and 14. For planar antennas 12 and 14 the spacers 26 and 28 may maintain a constant distance between the respective planes of the antennas 12 and 14. The spacers 26 and 28 may be made of electrically-nonconductive material, such as plastic. The spacers 26 and 28 may be parts of one or both of the respective holders which are used to mount the antennas 12 and 14.
[0062] At least one of the antennas 12 and 14 may be a differential antenna (or gradient probe). For example the receive antenna may be configured to receive a much weaker signal than is transmitted by the transmit antenna, and therefore it may be advantageous for the receiver antenna to be a differential antenna. In one example, an explosives detection device, the transmit energy may be on the order of kilowatts and the received energy may be on the order of microwatts.
[0063] Fig. 4 shows a holder 40 which may be used for securing a receive antenna or antennas in grooves 42 and 44. The holder 40 may be a 3D printable structure that may be part of the systems described herein, for example made of
plastic, which may engage a corresponding holder for holding a transmit antenna, which may for example overlap an outer ring 46 of the holder 40.
[0064] Fig. 5 shows a functional block diagram of a system 100, for example including a handheld device 110, and its interaction with other devices. The device 110 may be similar in many respects with the device 10 (Fig. 3) described above.
The system 100 may be used to calibrate the device 10, to reduce or minimize cross talk for example.
[0065] A user interface (Ul) computer 112, such as a standard laptop or other computer, is coupled to an analyzer 114 that has two functions: detection and tuning. In detection mode the analyzer 114 detects NQR signals. In tuning mode the analyzer 114 provides information that is required to adjust the geometry of the Tx and Rx antennas.
[0066] In tuning mode the analyzer performs a function similar to a vector network analyzer (VNA), in order to calibrate the device 110 to reduce cross talk. The analyzer 114 may include a spectrometer 116 and a power amplifier (PA) 118. The spectrometer 116 produces an RF signal for use in calibrating the device 110, and the PA 118 amplifies that signal.
[0067] Within the device 110, which may be a handheld device, the amplified signal passes through a tune matching block 122, to provide a transmit probe signal to a transmit antenna, one of the overlapping antennas shown at 126. The tune match 122 is a narrow band transformation device to transform the RF signal to an impedance that can be effectively used in the antennas of the device 110. A cross talk tuner 130 may be used to adjust the relative position of the antennas, for example using the adjuster (or adjustment mechanism) 22 (Fig. 3) described above. [0068] A receive probe signal is sent by a receive antenna, through a tuning match 132 and a low-noise amplifier (LNA) 134, back to the spectrometer 116. The output is provided to the user through the interface 112.
[0069] A goal in the calibration/adjustment is to minimize the energy coupling (cross talk) between the transmit antenna and the receive antenna. Adjustment using the tuner 130 may be performed until the cross-talk is minimized, or reduced to an acceptable level. The adjustment process may be manually performed by a user, or alternatively may be a partially- or fully-automated process. The cross-talk tuner
130 may be (or may include) circuits embodied in hardware and/or software to accomplish the adjustment of the relative position of the antennas at 126. For example, the return signal from the receive antenna may be examined at various relative positions between the antennas, for a minimum return signal indicating a position where cross talk is at a minimum. The turner 130 may operate a positioning mechanism such as motors and/or mechanical adjusters, such as gearing or screw- driven mechanical adjusters, to adjust relative position of the antennas. To give one non-limiting example, a threaded bolt or worm gear may engage with internal threads on a nut coupled to one of the antennas, such that turning the bolt or worm gear moves the nut (and thus the antenna coupled to the nut) along the bolt/gear shaft. [0070] It may be desired to achieve at least 20dB of isolation from cross talk.
More narrowly, it may be desirable to achieve at least 40dB of isolation.
[0071] After calibration of the device 110 as discussed above, the antennas may be locked into place relative to one another, for example using device(s) such as the lock 24 (Fig. 3) described above. The calibration may be a one-time event, or alternatively may be repeated and changed for different operating conditions, such as when a change in the frequency of operation is desired.
[0072] The devices described herein may have any of a variety of suitable uses. One is in explosive detection devices/systems (EDS’s), where a signal is transmitted that produces a detectable response from nearby explosives, for example explosives in bulk in the vicinity of the detector device. Such explosive detection devices may be used to detect explosives in shipping containers, in vehicles, or at transportation sites such as airports, to give a few non-limiting examples.
[0073] The approaches described above may be used in an EDS, such as a table-top EDS or a handheld EDS. Such devices may be used to scan an entire pallet of items at once, and/or may be used to scan/inspect individual items. Such systems advantageously may be RF systems.
[0074] EDS’s may be used for and/or incorporated into larger ‘systems’ such as Border Protection system, highway tolling/inspection, military force/base protection and for embassy security.
[0075] Many parts may be suitable for use in such EDS’s. For example a suitable amplifier may be from E&l Amplifiers, and a suitable spectrometer circuit board may be made by Spincore Technologies.
[0076] Scanners could be used/sold commercially for checkpoint scanning during commercial venues such as sports arenas, conventions, hotels, casinos, malls or embassies. And entry way requiring rapid, non-intrusive bag scanning for threat and/or narcotics.
[0077] Another potential use is in radio frequency identification (RFID) systems.
It is observed that RFID systems widely use far field suppression to comply with Federal Communication Commission (FCC) requirements. Near field detectors similar to such systems may use this approach with the same results.
[0078] Figs. 6 and 7 illustrate an alternative arrangement 210 of antennas 212 and 214, with the antennas 212 and 214 having a polygonal shape. The figures show the antennas 212 and 214 in different relative locations. In Fig. 7 the receive antenna 214 has move rightward relative to the transmit 212, compared to the positioning shown in Fig. 6.
[0079] The receive antenna 214 is a differential antenna with multiple connected together in series. This may make for a better signal strength in trying to detect a weak (low energy signal).
[0080] Fig. 8 shows a high-level flow chart of a method 300 for compensating for cross talk, such as in an explosive probe. In step 302 overlapping transmit and receive antennas are adjusted in position relative to one another. In step 304 this is continued while cross-talk is monitored, searching for a position of minimum cross talk (minimum energy coupling) between the transmit and receive antennas. Finally, in step 306 the antennas are locked (or fixed or maintained) in a desired position, such as to minimize cross talk.
[0081] Although the disclosure has been shown and described with respect to a certain embodiment or embodiments, equivalent alterations and modifications will occur to others skilled in the art upon the reading and understanding of this specification and the annexed drawings. In particular regard to the various functions performed by the above described elements (components, assemblies, devices, compositions, etc.), the terms (including a reference to a "means") used to describe
such elements are intended to correspond, unless otherwise indicated, to any element which performs the specified function of the described element (i.e., that is functionally equivalent), even though not structurally equivalent to the disclosed structure which performs the function in the herein illustrated exemplary embodiment or embodiments of the disclosure. In addition, while a particular feature of the disclosure may have been described above with respect to only one or more of several illustrated embodiments, such feature may be combined with one or more other features of the other embodiments, as may be desired and advantageous for any given or particular application.
Claims
1. A device comprising: a transmitter antenna; and a receiver antenna that at least partially overlaps the transmitter antenna, configured to reduce cross talk; wherein at least one of the antennas is a differential antenna; and wherein the antennas are adjustable by movement of one of the antennas relative to the other of the antennas in a direction of adjustment that is parallel to or in a plane of one or both of the antennas.
2. The device of claim 1 , wherein the antennas have different shapes.
3. The device of claim 1 or claim 2, wherein one of the antennas is circular.
4. The device of claim 1 , or any of claims 1 to 3, wherein one of the antennas is oval.
5. The device of claim 1 , or any of claims 1 to 3, wherein the antennas are non-axisymmetric.
6. The device of claim 1 , or any of claims 1 to 5, wherein the device includes an adjuster that is capable of adjusting position of the antennas relative to one another.
7. The device of claim 6, wherein the adjustment mechanism provides structural stiffening.
8. The device of claim 6, wherein the adjuster includes an adjustment mechanism.
9. The device of claim 1 , or any of claims 1 to 8, further comprising a cross talk tuner operatively coupled to at least one of the antennas.
10. The device of claim 1 , or any of claims 1 to 9, wherein the differential antenna is a multi-loop antenna.
11. The device of claim 10, wherein multiple loops of the multi-loop antenna are connected in series.
12. The device of claim 1 , or of any of claims 1 to 11 , wherein the device includes one or more spacers to maintain spacing between the antennas.
13. The device of claim 1 , or any of claims 1 to 12, wherein the device includes a lock for locking the antennas in a positional relationship relative to one another.
14. The device of claim 1, or any of claims 1 to 13, wherein the device is a handheld device.
15. The device of claim 1 , or any of claims 1 to 13, wherein the device is a table top device.
16. The device of claim 1, or any of claims 1 to 15, wherein the device is an explosive detection device.
17. A method of reducing cross talk in an antenna system, the method comprising: adjusting relatively positioning of a transmit antenna and a receive antenna, with the adjusting includes relative movement of the antennas in a direction of adjustment that is parallel to or in a plane of one or both of the antennas; and monitoring energy coupling between the antennas at multiple relative positions between the antennas.
18. The method of claim 17, wherein the antennas are planar, and planes of the antenna are maintained at a fixed distance from each other.
19. The method of claim 17 or claim 18, wherein the antennas are locked in place relative to one another at a position of minimum energy coupling.
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202063048878P | 2020-07-07 | 2020-07-07 | |
| US63/048,878 | 2020-07-07 | ||
| US17/369,280 | 2021-07-07 | ||
| US17/369,280 US12044793B2 (en) | 2020-07-07 | 2021-07-07 | Cross-talk compensation for gradiometer probes |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2022011089A1 true WO2022011089A1 (en) | 2022-01-13 |
Family
ID=79172431
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2021/040805 Ceased WO2022011089A1 (en) | 2020-07-07 | 2021-07-08 | Cross-talk compensation for gradiometer probes |
Country Status (2)
| Country | Link |
|---|---|
| US (1) | US12044793B2 (en) |
| WO (1) | WO2022011089A1 (en) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US12613331B2 (en) * | 2024-07-03 | 2026-04-28 | Quantum Ip, Llc | RF-specific material detection device for an application-specific device |
| WO2026010635A1 (en) | 2024-07-03 | 2026-01-08 | Quantum Ip, Llc | Rf-based material identification systems and methods |
| US12372480B1 (en) | 2024-07-08 | 2025-07-29 | Quantum Ip, Llc | RF-based special material detection system with secure multi-dimensional authentication |
Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20060006874A1 (en) * | 2003-10-01 | 2006-01-12 | Nelson Carl V | Re-configurable induction coil for metal detection |
| US20120049850A1 (en) * | 2009-05-18 | 2012-03-01 | Gerd Reime | Metal detector |
Family Cites Families (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US7714791B2 (en) | 2008-07-02 | 2010-05-11 | Raytheon Company | Antenna with improved illumination efficiency |
| EP2423847B1 (en) | 2010-08-27 | 2013-03-27 | Psion Inc. | System and method for multiple reading interface with a simple RFID antenna |
| US8717242B2 (en) | 2011-02-15 | 2014-05-06 | Raytheon Company | Method for controlling far field radiation from an antenna |
| US9575147B2 (en) | 2012-09-07 | 2017-02-21 | Morpho Detection, Llc | Nuclear quadrupole resonance system and method of using the same to remove interference components from sensor signals |
| US9129200B2 (en) | 2012-10-30 | 2015-09-08 | Raytheon Corporation | Protection system for radio frequency communications |
| US9484632B2 (en) * | 2013-07-08 | 2016-11-01 | Raytheon Company | Diplexing and triplexing of loop antennas |
| US10461582B2 (en) | 2014-03-31 | 2019-10-29 | Qualcomm Incorporated | Systems, apparatus, and methods for wireless power receiver coil configuration |
| US9812790B2 (en) | 2014-06-23 | 2017-11-07 | Raytheon Company | Near-field gradient probe for the suppression of radio interference |
| US10756425B2 (en) * | 2016-11-03 | 2020-08-25 | Tom Lavedas | Adjustment of near-field gradient probe for the suppression of radio frequency interference and intra-probe coupling |
-
2021
- 2021-07-07 US US17/369,280 patent/US12044793B2/en active Active
- 2021-07-08 WO PCT/US2021/040805 patent/WO2022011089A1/en not_active Ceased
Patent Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20060006874A1 (en) * | 2003-10-01 | 2006-01-12 | Nelson Carl V | Re-configurable induction coil for metal detection |
| US20120049850A1 (en) * | 2009-05-18 | 2012-03-01 | Gerd Reime | Metal detector |
Non-Patent Citations (4)
| Title |
|---|
| ADEL ZITOUNI ET AL: "Smart Electromagnetic Sensor for Buried Conductive Targets Identification", IEEE SENSORS JOURNAL, IEEE SERVICE CENTER, NEW YORK, NY, US, vol. 6, no. 6, 1 December 2006 (2006-12-01), pages 1580 - 1591, XP011150514, ISSN: 1530-437X, DOI: 10.1109/JSEN.2006.884175 * |
| AMBRUS DAVORIN ET AL: "A Portable Planar Coil Array for Frequency-Domain Inductive Sensing of Metallic Objects", 2020 IEEE INTERNATIONAL INSTRUMENTATION AND MEASUREMENT TECHNOLOGY CONFERENCE (I2MTC), IEEE, 25 May 2020 (2020-05-25), pages 1 - 5, XP033785741, DOI: 10.1109/I2MTC43012.2020.9128673 * |
| GARROWAY A N ET AL: "REMOTE SENSING BY NUCLEAR QUADRUPOLE RESONANCE", IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, IEEE SERVICE CENTER, PISCATAWAY, NJ, US, vol. 39, no. 6, 1 June 2001 (2001-06-01), pages 1108 - 1118, XP001055240, ISSN: 0196-2892, DOI: 10.1109/36.927420 * |
| SCOTT W R: "Broadband Array of Electromagnetic Induction Sensors for Detecting Buried Landmines", PROCEEDINGS / 2008 IEEE INTERNATIONAL GEOSCIENCE & REMOTE SENSING SYMPOSIUM : JULY 6 - 11, 2008, JOHN B. HYNES VETERANS MEMORIAL CONVENTION CENTER, BOSTON, MASSACHUSETTS, U.S.A, IEEE, PISCATAWAY, NJ, 7 July 2008 (2008-07-07), pages II - 375, XP031422166, ISBN: 978-1-4244-2807-6 * |
Also Published As
| Publication number | Publication date |
|---|---|
| US12044793B2 (en) | 2024-07-23 |
| US20220011401A1 (en) | 2022-01-13 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US12044793B2 (en) | Cross-talk compensation for gradiometer probes | |
| US9812790B2 (en) | Near-field gradient probe for the suppression of radio interference | |
| US6486838B1 (en) | Apparatus for and method of Nuclear Quadrupole Resonance testing a sample | |
| US9575147B2 (en) | Nuclear quadrupole resonance system and method of using the same to remove interference components from sensor signals | |
| US6054856A (en) | Magnetic resonance detection coil that is immune to environmental noise | |
| US11990674B2 (en) | Adjustment of near-field gradient probe for the suppression of radio frequency interference and intra-probe coupling | |
| US7049814B2 (en) | Nuclear quadrupole resonance based inspection system using a highly resonant and compact magnetic structure | |
| US7683619B2 (en) | High impedance differential input preamplifier and antenna for MRI | |
| US11733281B2 (en) | Alternative near-field gradient probe for the suppression of radio frequency interference | |
| WO1991002262A1 (en) | Magnetic resonance rf probe with electromagnetically isolated transmitter and receiver coils | |
| Shajan et al. | Design and evaluation of an RF front‐end for 9.4 T human MRI | |
| Arumugam et al. | Passive magnetoquasistatic position measurement using coupled magnetic resonances | |
| US11946991B2 (en) | Method and device for magnetic resonance imaging by implementing inductive tuning circuit for adjusting operating frequency and using top- hat dipole antenna having length freely adjustable depending on region of interest | |
| Bagheri et al. | Tunable Circularly Polarized Ferrite-Based antennas for Passive Direction Finding | |
| Padilla et al. | Inhomogeneity reduction for near field acquisition in high resolution MRI systems | |
| Yeh et al. | Magnetic resonance imaging receiver coil decoupling using circumferential shielding structures | |
| Sodenaga et al. | A Circularly Polarized Annular Patch Antenna and the Influence of a Conductive Protrusion on its Axis | |
| AU2002301342B9 (en) | Magnetic Resonance | |
| Schantz | Spinning Fields, Narrow Band Impulse Radio (NBIR), and Very Low Frequency (VLF) RF | |
| Perini et al. | Predicting electromagnetic coupling between HF, VHF and UHF antennas using NEC | |
| Prado et al. | False alarm reduction during landmine detection | |
| GB2506753A (en) | A nuclear quadrupole resonance (NQR) sensor assembly with interference removal | |
| Ren et al. | Polarization statistical properties of electromagnetic waves radiated from communication base stations to UHF band radar | |
| Roemer | LMX9838 Placement for RF Performance |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 21751680 Country of ref document: EP Kind code of ref document: A1 |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| 122 | Ep: pct application non-entry in european phase |
Ref document number: 21751680 Country of ref document: EP Kind code of ref document: A1 |