WO2006062517A1 - Magneto-radar detector and method - Google Patents
Magneto-radar detector and method Download PDFInfo
- Publication number
- WO2006062517A1 WO2006062517A1 PCT/US2004/041042 US2004041042W WO2006062517A1 WO 2006062517 A1 WO2006062517 A1 WO 2006062517A1 US 2004041042 W US2004041042 W US 2004041042W WO 2006062517 A1 WO2006062517 A1 WO 2006062517A1
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- WO
- WIPO (PCT)
- Prior art keywords
- radar
- harmonic
- radar signal
- signal
- magnetic field
- Prior art date
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Classifications
-
- 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
- G01S13/02—Systems using reflection of radio waves, e.g. primary radar systems; Analogous systems
- G01S13/50—Systems of measurement based on relative movement of target
- G01S13/52—Discriminating between fixed and moving objects or between objects moving at different speeds
- G01S13/56—Discriminating between fixed and moving objects or between objects moving at different speeds for presence detection
-
- 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
- G01S13/02—Systems using reflection of radio waves, e.g. primary radar systems; Analogous systems
- G01S13/0209—Systems with very large relative bandwidth, i.e. larger than 10 %, e.g. baseband, pulse, carrier-free, ultrawideband
-
- 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
- G01S13/02—Systems using reflection of radio waves, e.g. primary radar systems; Analogous systems
- G01S13/04—Systems determining presence of a target
-
- 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
- G01S13/86—Combinations of radar systems with non-radar systems, e.g. sonar, direction finder
Definitions
- the present invention provides a system and method capable of detecting objects, such as, ferrous and /or non-ferrous materials capable of having an induced eddy current.
- the present invention can potentially be used to screen patients prior to Magnetic Resonance Imaging (MRI), e.g., detect needles that may have been misplaced during surgical procedures.
- MRI Magnetic Resonance Imaging
- the system can potentially track the location of a catheter inserted within a patient undergoing medical endoscopy, urethrascopy an/ or cystoscopy.
- It may be capable of detecting the perturbation of bio-materials, such as saline along the optic nerve. It may also be implemented as a sensitive metal detector for use in treasure hunting and/or to detect dangerous objects such as mines in a battlefield or conductive explosive materials.
- the present system and method provides a desired portable, cost effective, non-invasive arrangement, capable of detecting objects in a variety of commercial and non-commercial applications.
- FIG. 2B shows an example waveform with a metal object.
- FIG. 3 shows a block diagram of an MIR motion sensor.
- FIG. 4 shows a basic block diagram of an entire Magneto- Radar detection system.
- the present invention is based on magnetically induced mechanical excitation of hidden objects, such as, but not limited to, conductive bio-materials, conductive ceramics, conductive explosives, and/or ferrous and nonferrous materials by transmitting a (e.g., sinusoidal) magnetic field and then sensing such excitation (e.g. a resultant mechanical vibration) by radar.
- Ferrous materials in particular, are readily detected and nonferrous materials are detected due to the eddy currents induced by the magnetic field applied to any conductive material.
- the radar sensor can be a conventional CW Doppler radar, a pulsed Doppler radar, or a UWB radar, such as an impulse radar.
- Any radar capable of detecting small mechanical vibrations may be employed, with pulsed CW, impulse radars and modulated CW radars having the advantage of providing range information.
- An impulse radar is a beneficial embodiment since impulse radar exhibits sensing within a sharply bounded range, i.e., it is range gated.
- Range gated radars reject clutter outside the gated region and are generally preferred over non- gated radar such as CW Doppler.
- range gated radars provide valuable range-to-object information. It is understood that any type of radar capable of detecting motion or vibration induced by magnetic excitation can be used in combination with harmonic processing to detect an object.
- Impulse radar radiates a "video", or a baseband pulse (i.e., frequencies equal to the modulation, or intelligence carrying frequencies) rather than the usual sinusoidal burst found in conventional radar.
- the pulses are just a sequence of impulses; there is no carrier. There is no specific frequency associated with this radar; rather, its frequency spectrum is related by the Fourier transform of the pulse.
- the free-space radiated radar pulse typically resembles a Gaussian-shaped impulse having a pulse-width of about 5 ns or less, often about 1 ns or less, and more often about 200 picoseconds wide. It is beneficial that impulse radar has a spectrum located as close to DC as possible, where materials attenuation is the lowest.
- sample motion of the mechanically vibrating material is capable of being detected.
- the magnetic excitation varies sinusoidally at a frequency F
- the resulting vibration of an object responding to such an excitation occurs at a harmonic frequency, such as, but not limited to, 2F, to provide a unique motion signature that is detected by the present invention using UWB or other radar techniques.
- the second harmonic is generally the dominant frequency of interest, but other detectable harmonics can arise from system nonlinearities.
- harmonic rich excitation source i.e., a non- sinusoidal source
- harmonics will naturally appear at the output of the apparatus, with a strong emphasis on the even harmonics due to the unsigned magnitude response of the object's vibration to the bipolar magnetic excitation.
- Harmonic analysis of the output from the radar sensor may be employed to provide information about the object, particularly its size.
- the excitation source may operate at several simultaneous frequencies at once, e.g., from between about 10 and about 60Hz, with detectable harmonics at about 20 and about 120Hz. Intermodulation distortion due to system nonlinearities will generate new frequencies, including, for example, about 100 and about 140Hz. These new frequencies may be filtered for various purposes such as classifying materials or screening out false detection positives from certain materials or electric/magnetic interference.
- the excitation frequency may be swept with the system processor responsive to detected harmonic magnitude. Peaks in harmonic magnitude can be used to determine resonances in the object, wherein the resonant frequencies and quality (Q) factors can provide information about the size, shape and composition of an object or the material the object is embedded in.
- pulsed magnetic excitation may be used with suitable post detection processing. For either swept frequency or pulsed magnetic excitation, suitable processing well-known in the art can be applied to provide an analysis of the characteristics of the magnetically excited, vibrating object.
- the magnetic excitation source is generally an electromagnet but may also be a moving magnet.
- the detected radar output is the result of the interaction of mechanical vibrations and electromagnetic waves, which are generally sinusoidal, i.e., not linear, nonlinear distortion can occur in the shape of the detected radar output signal. Distortion and detection nulls can be mitigated using quadrature radar, such as discussed, for example, in the aforementioned U.S. patent No. 6,492,933.
- Various radar modes may be employed to detect the magnetically induced vibrations: CW-Doppler, pulsed CW, UWB pulse- echo, FMCW, etc. While each mode may offer a particular set of advantages, most applications will benefit from a range gated radar, which provides range-to-object information while screening out clutter from objects outside its range gated region.
- the MIR detection process utilizes a repeated Pulse Rate Interval (PRI) of between about 10 MHz and about 10 KHz, more often a PRF of about 1 MHz.
- PRI Pulse Rate Interval
- the system and method is capable of averaging two or more pulses, more often, however, between about 1,000 and about 10, 000 pulses are capable of being averaged.
- a PRF of about 1 MHz such a system and method as disclosed in the present invention allows about 10,000 received pulses to be averaged to reproduce the harmonic signature frequency, e.g. twice the excitation source's frequency, of the mechanically excited object hidden or otherwise prior to driving ancillary equipment, such as, but not limited to, a signal display or an alarm.
- the high level of averaging reduces the random noise accompanying the sampled signal to such an extent that extremely low amplitude signals can be detected.
- FIG. 1 illustrates a basic configuration of a system of the present invention and is designated generally by the reference numeral 1.
- System 1 includes, at least one electromagnet 4 or a source, such as, a moveable permanent magnet, capable of generating a time varying magnetic field, and a radar sensor 26, such as described in, for example, U.S.
- Antenna 10 radiates energy from radar sensor 26 to object 8 and receives reflected modulated energy back from object 8.
- Radar sensor 26 often a radar sensor known to those skilled in the art, such as CW radar and/or pulsed radar capable of detecting motion within the design parameters of the present invention, but more often MIR radar, couples the received reflected energy for detection of the modulation induced by vibrating object 8.
- object 8 such as, a ferrous rod
- container 12 filled with water as shown in FIG. 1, which simulates a material, such as, a metal object within a human body.
- Electromagnet 4 such as, for example, a bulk tape eraser, is electrically driven sinusoidally in this example at 60 Hz, at a predetermined voltage and current, which results in a slight 120Hz vibration of object 8. The vibration is about the same amplitude whether object 8 is in or out of container 12 filled with water.
- Radar sensor 26, such as an MIR radar sensor as disclosed in U.S. Pat. No. 5, 361, 070 and/or U. S. Patent No.
- FIG. 2B shows MIR radar sensor 26 output with object 8 inserted into container 12.
- FIG. 2B thus produces a 120 Hz sinewave, denoted as B, which is a result of the presence of object 8, which is superimposed on the 60 Hz output, as shown in FIG.2A.
- Sinewave B which is a second harmonic of sinewave output A, as shown in FIG.
- FIG. 3 illustrates an exemplary radar motion sensor 26, as described in,
- U. S. Patent No. 5,361,070 titled, "Ultra-Wideband Radar Motion Sensor.”
- PRF generator 20 generates a radar pulse repetition frequency (PRF).
- a noise generator 22 is connected to PRF generator 20 to introduce a random variation to the PRF, for purposes as described in U.S. Pat. No. 5,361,070.
- the output of PRF generator 20 drives two delay means, a fixed reference delay 24 in the transmit path 26, and an adjustable delay 28 in the receiver (gating pulse) path 30. Adjustable delay 28 is adjusted by a range adjustment means 32.
- both simple wire dipoles and broader band "bow- tie" dipoles are used.
- a step input applied to the transmit antenna results in the radiation of the derivative of the step, i.e., an impulse.
- a receive antenna 38 is connected to a UWB detector (receiver or sampler) 40.
- Sampler 40 is gated or strobed by the output of adjustable delay 28 through impulse (or step) generator 42, thus causing sampler 40 to sample a point in space corresponding to the two-way echo time to an object.
- UWB detector 40 averages detected pulses across multiple PRF's.
- the output of the UWB detector 40 is averaged in an integrator 46 with a time constant that is typically longer than the PRI of the radar. This average value represents the sum of the radar reflections and other radar clutter, such as direct antenna to antenna coupling. If the radar reflectivity changes at the range being sampled, the average will change and this change is sensed by a differentiator 48 and output, as denoted by a comparator circuit 50, to operationally coupled circuitry (not shown).
- FIG. 4 is an illustrative example of a complete detection system, generally designated by the reference numeral 100.
- System 100 includes a generator 104 to provide modulation to a current coil driver 112, collectively capable of delivering a predetermined voltage and current, of a given frequency, or range of frequencies, denoted as F, e.g. 60 Hz, to a magnetic field excitation source, such as, for example, electromagnet 116.
- Electromagnet 116 thereby provides a varying (e.g.
- Antenna 125 radiates energy from radar sensor radar sensor 126, often an MIR radar sensor, such as described in U.S. Pat. No. 5, 361, 070 and/or U.S. Pat. No.
- detector 126 is synchronously rectified at rectifying circuit 130, with a frequency doubled output of source 104, denoted as 2F, as produced by a doubler circuit 150.
- a band-pass filter 154 shown as a dashed square, may additionally be implemented to insure frequency discrimination prior to rectification by rectifying circuit 130.
- synchronous rectifier 130 may be replaced with a simple non-synchronous diode rectifier, eliminating the need for frequency doubler 150.
- Frequency doubler 150 may also be replaced with a frequency source that produces other frequencies used to determine correlations with the output spectra of radar sensor 26.
- Rectifying circuit 130 such as, for example, a lock-in amplifier is capable of accurately extracting wave functions having predetermined frequency components. The extracted wave functions are compared with a reference signal, e.g., the doubled output of source 108, to detect a phase difference and amplitude, which serve as predetermined parameters corresponding to these wave functions.
- Such a rectifying circuit can precisely select and detect only a component having the same frequency as and a predetermined phase relationship with a reference signal from a small repeated signal mixed in noise.
- the weak input signal is amplified within a narrow band, and the amplified signal is multiplied with the reference signal or synchronously rectified (also called phase sensitive detection), and an integration value, i.e., an output value that can be approximately DC, thereof is output.
- Any reference signal can be used if it is synchronized with the input signal to be measured, such as, for example, the output frequency of MIR detector 126.
- the output of rectifying circuit 130 is then capable of being low- pass filtered by filtering circuit 138 to eliminate any residual harmonic components to provide a steady DC level that indicates the strength of the doubled harmonic signature.
- a 2F frequency e.g., 60 Hz
- a normalization circuit 134 i.e., a zero-offset adjust circuit, with an adjustment input shown by the letter Z and an accompanying arrow, can be added in situations where object(s) 120 are examined in a sampling obscuring medium 118.
- the final output signal can be delivered by low- pass filter 138 to signal processing means, such as, but limited to, a comparator circuit 146 that outputs its signal to an alarm, or an analog indicator 142, that indicates visually the strength of the harmonic mechanical movement produced by a detected excited object 120.
- signal processing means such as, but limited to, a comparator circuit 146 that outputs its signal to an alarm, or an analog indicator 142, that indicates visually the strength of the harmonic mechanical movement produced by a detected excited object 120.
- output from radar sensor 126 may be coupled to one or more processor apparatus (not shown) for spectral processing or other signal processing means known to those skilled in the art.
- the trace as shown in FIG.2B is taken with an MIR detection bandwidth of about 3KHz.
- the synchronous rectifier scheme as shown in FIG.
- the sensitivity of the MIR sensor itself can be increased by about 25dB by optimizing radar parameters over the radar used for the laboratory tests of FIG.2B.
- the magnetic excitation can be increased by about 3OdB with a stronger electromagnet and by arranging north and south pole pieces such that a uniform field is capable of being produced, e.g., by placing a second electromagnet on the opposite side of region 118.
- lowering the frequency of excitation from about 60Hz down to about 10Hz results in a larger vibration amplitude on, for example, a ferrous material for the same magnetic field strength, providing about 15db more signal.
- about 105db increased sensitivity can be obtained, so a much smaller metal target of down to about lmm in diameter is capable of being detected.
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Abstract
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Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
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PCT/US2004/041042 WO2006062517A1 (en) | 2004-12-06 | 2004-12-06 | Magneto-radar detector and method |
CA002552745A CA2552745A1 (en) | 2004-12-06 | 2004-12-06 | Magneto-radar detector and method |
EP04813368A EP1820044A1 (en) | 2004-12-06 | 2004-12-06 | Magneto-radar detector and method |
Applications Claiming Priority (1)
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PCT/US2004/041042 WO2006062517A1 (en) | 2004-12-06 | 2004-12-06 | Magneto-radar detector and method |
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WO2006062517A1 true WO2006062517A1 (en) | 2006-06-15 |
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PCT/US2004/041042 WO2006062517A1 (en) | 2004-12-06 | 2004-12-06 | Magneto-radar detector and method |
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EP (1) | EP1820044A1 (en) |
CA (1) | CA2552745A1 (en) |
WO (1) | WO2006062517A1 (en) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2010102073A3 (en) * | 2009-03-04 | 2010-12-02 | Raytheon Company | System and method for occupancy detection |
Citations (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6492933B1 (en) * | 1999-09-02 | 2002-12-10 | Mcewan Technologies, Llc | SSB pulse Doppler sensor and active reflector system |
-
2004
- 2004-12-06 EP EP04813368A patent/EP1820044A1/en not_active Withdrawn
- 2004-12-06 WO PCT/US2004/041042 patent/WO2006062517A1/en active Search and Examination
- 2004-12-06 CA CA002552745A patent/CA2552745A1/en not_active Abandoned
Patent Citations (1)
Publication number | Priority date | Publication date | Assignee | Title |
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US6492933B1 (en) * | 1999-09-02 | 2002-12-10 | Mcewan Technologies, Llc | SSB pulse Doppler sensor and active reflector system |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2010102073A3 (en) * | 2009-03-04 | 2010-12-02 | Raytheon Company | System and method for occupancy detection |
US8654197B2 (en) | 2009-03-04 | 2014-02-18 | Raytheon Company | System and method for occupancy detection |
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Publication number | Publication date |
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CA2552745A1 (en) | 2006-06-15 |
EP1820044A1 (en) | 2007-08-22 |
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