Device And Process For Detection Of Non-authorized Objects Or Substances Carried By An Individual In A Protected Access Zone
20190113613 ยท 2019-04-18
Inventors
Cpc classification
G01V8/005
PHYSICS
G08B21/182
PHYSICS
G01S13/86
PHYSICS
International classification
G01S13/86
PHYSICS
G01S7/03
PHYSICS
G01S13/88
PHYSICS
Abstract
The invention relates to a device intended for detection of non-authorised objects or substances carried by an individual in a protected access zone, characterized in that it comprises at least two columns (10, 20) together defining a channel (30) by which individuals to be checked can transit, windings (110, 120) distributed in the two columns (10, 20), adapted to emit a magnetic detection field and adapted to detect the perturbations of the magnetic detection field caused when an individual travels via the channel between the two columns, microwave sender/receiver means (210, 220) arranged in the two columns (10, 20), and analysis means (40) adapted to analyse the signals from the receiver windings (110, 120) to detect the presence of a metallic object carried by an individual transiting via said channel formed between the two columns (10, 20), to analyse the signals from microwave receivers (210Rx, 220Rx) corresponding to the signals transmitted from one column into the column opposite and into the signals reflected from one column towards this same column to detect the presence of dielectric material carried by the individual transiting via said channel and to set up the spatial correlations existing between the metallic objects and the dielectric materials detected.
Claims
1. A device intended for detection of non-authorised objects or substances carried by an individual in a protected access zone, characterized in that it comprises: at least two columns together defining a channel by which individuals to be checked can transit, windings distributed in the two columns, adapted to emit a magnetic detection field and adapted to detect the perturbations of the magnetic detection field caused when an individual travels via the channel between the two columns, microwave sender/receiver means arranged in the two columns, and analysis means adapted to analyse the signals from the receiver windings to detect the presence of a metallic object carried by an individual transiting via said channel formed between the two columns, to analyse the signals from microwave receivers corresponding to the microwave signals transmitted from one column into the column opposite and into the microwave signals reflected from one column towards this same column to detect the presence of dielectric material carried by the individual transiting via said channel and to set up the spatial correlations existing between the metallic objects and the dielectric materials detected.
2. The device according to claim 1, characterized in that the analysis means perform analysis of the delay and the amplitude of the microwave signals received relative to a reference.
3. The device according to claim 1, characterized in that the analysis means perform comparison of the microwave signals received on a receiver with reference signals representative of the transmission in the void and/or reflection on a body.
4. The device according to claim 1, characterized in that the analysis means generate an alarm in case of detection of a gap greater than a threshold between the microwave signals received and a reference.
5. The device according to claim 1, characterized in that the microwave sender/receiver means comprise several microwave transducers distributed vertically on each column.
6. The device according to claim 5, characterized in that the vertical gap between two adjacent microwave sender/receivers is between 2 and 10 cm.
7. The device according to claim 1, characterized in that the microwave transducers operate in a range of frequencies between 5 and 90 GHz, advantageously between 10 GHz and 30 GHz and most preferably between 12 and 20 GHz.
8. The device according to claim 1, characterized in that the different microwave transducers located on a column are located respectively coaxially to a transducer located opposite on the opposite column.
9. The device according to claim 1, characterized in that each microwave transducer is adapted to work alternatively as sender or as receiver or as sender and receiver.
10. The device according to claim 1, characterized in that each microwave sender is adapted to emit in the direction of a coaxial microwave receiver on the opposite column, as well as in the direction of transducers adjacent to this coaxial opposite transducer.
11. The device according to claim 1, characterized in that each receiver is adapted to receive from a coaxial sender located on the opposite column, as well as from the transducers adjacent to this opposite coaxial sender transducer.
12. The device according to claim 1, characterized in that the analysis means are adapted to perform at least one of the following functions: measuring the delay and the amplitude of a direct transmission of microwaves between each pair of coaxial senders and receivers located on the two opposite columns, measuring the delay and the amplitude of an oblique transmission of microwaves between each sender located on a column and the receivers which frame the receiver located on the opposite column coaxial of the sender, measuring the delay and the amplitude of the microwave waves emitted by each sender transducer and reflected towards the same transducer forming a receiver or towards the receivers framing the latter, by the body of an individual or by a fraudulent substance carried by this individual, detection of the presence of a double echo of microwave waves reflected by a fraudulent substance and by the body of an individual, comparison of the microwave waves transmitted directly with a transmission reference value in the void and transmission of an alarm in case of detection of delay greater than a threshold and with an amplitude corresponding to a range of substances which delays and attenuates the microwaves, comparison of the microwave waves transmitted directly with microwaves transmitted on adjacent transducers and generation of an alarm in case of a gap greater than a threshold detected between the different signals, comparison of the oblique microwave waves with a reference value in the void and generation of an alarm in case of detection of delay greater than a threshold and with an amplitude corresponding to a predetermined range representative of substances which delay and attenuate the microwaves, comparison of the microwave waves transmitted obliquely with the adjacent microwave waves transmitted directly and generation of an alarm in case of a gap greater than a threshold detected between the different signals, comparison of a double echo detected with transmission values in the void and generation of an alarm in case of detection of a delay greater than a threshold between the peaks of the two echoes with an amplitude greater than a threshold analysis of the evolution chronology of the signals on the same receiver transducer, the dissymmetries between the signals received on receiver transducers front and rear respectively, as well as dissymmetries between the signals received on receiver transducers right and left respectively.
13. The device according to claim 1, characterized in that the analysis means are adapted to perform at least one of the following functions: measuring the height of the body of an individual travelling in the channel which corresponds to a reflection of microwave wave, preferably in the region of each column, determining the position of an individual travelling in the channel, between the input and the output of the channel, by analysis of the signals from the transducers microwave receivers, measuring the modifications of inductive fields due to metallic substances carried by an individual travelling in the channel, displaying the height and of the right or left side of the channel on which a metallic object and a dielectric object are detected in correlation, displaying the silhouette front and rear type of the individual travelling in the channel, dimensioned in size on the basis of a measurement made by detection of reflection of microwave beams with positioning and indication of the nature of the metallic objects and non-metallic dielectric objects detected.
14. The device according to claim 1, characterized in that the windings distributed in the two columns, adapted to emit a magnetic detection field and adapted to detect the perturbations of the magnetic detection field caused when an individual travels via the channel between the two columns generate inductive fields in the range of frequencies between 70 Hz and 30 kHz.
15. The device according to claim 1, characterized in that the height of the columns is between 150 and 200 cm, advantageously between 150 and 180 cm.
16. The device according to claim 1, characterized in that it comprises a vertical series of microwave transducers superposed vertically on each column.
17. The device according to claim 1, characterized in that it comprises two vertical series of microwave transducers superposed vertically on each column.
18. The device according to claim 17, characterized in that the horizontal distance between two transducers located in the same column is between 10 and 30 cm.
19. A process for detection of non-authorised objects or substances carried by an individual in a protected access zone, characterized in that it comprises the steps of analysing the signals from the receiver windings to detect the presence of a metallic object carried by an individual transiting via said channel formed between the two columns, analysing of the signals from microwave receivers corresponding to the signals transmitted from one column into the column opposite and into the signals reflected from one column towards this same column to detect the presence of dielectric material carried by the individual transiting via said channel and to set up the spatial correlations existing between the metallic objects and the dielectric materials detected.
20. The process according to claim 19, characterized in that it performs at least one of the following steps and preferably a combination of the following steps: measuring the delay and the amplitude of direct transmission of microwaves between each pair of coaxial senders and receivers located on the two opposite columns, measuring the delay and the amplitude of oblique transmission of microwaves between each sender located on a column and the receivers which frame the receiver located on the opposite column coaxial of the sender, measuring the delay and the amplitude of the microwave waves emitted by each sender transducer and reflected towards the same transducer forming a receiver or towards the receivers framing the latter, by the body of an individual or by a fraudulent substance carried by this individual, detection of the presence of a double echo of microwave waves reflected by a fraudulent substance and by the body of an individual, comparison of the microwave waves transmitted directly with a transmission reference value in the void and transmission of an alarm in case of detection of delay greater than a threshold and with an amplitude corresponding to a range of substances which delays and attenuates the microwaves, comparison of the microwave waves transmitted directly with microwaves transmitted on adjacent transducers and generation of an alarm in case of a gap greater than a threshold detected between the different signals, comparison of the oblique microwave waves with a reference value in the void and generation of an alarm in case of detection of delay greater than a threshold and with an amplitude corresponding to a range predetermined representative of substances which delay and attenuate the microwaves, comparison of the microwave waves transmitted obliquely with the adjacent microwave waves transmitted directly and generation of an alarm in case of a gap greater than a threshold detected between the different signals, comparison of a double echo detected with transmission values in the void and generation of an alarm in case of detection of a delay greater than a threshold between the peaks of the two echoes with an amplitude greater than a threshold, analysis of the evolution chronology of the signals on the same receiver transducer, dissymmetries between the signals received on receiver transducers front and rear respectively, as well as dissymmetries between the signals received on receiver transducers right and left respectively, measuring the height of the body of an individual travelling in the channel which corresponds to reflection of microwave wave, preferably in the region of each column, determining the position of an individual travelling in the channel, between the input and the output of the channel, by analysis of the signals from the transducers microwave receivers, measuring the modifications of inductive fields due to metallic substances carried by an individual travelling in the channel, displaying the height and of the right or left side of the channel on which a metallic object and a dielectric object are detected in correlation, displaying the silhouette front and rear type of the individual travelling in the channel, dimensioned in size on the basis of a measurement made by detection of reflection of microwave beams with positioning and indication of the nature of the metallic objects and non-metallic dielectric objects detected.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0024] Other characteristics, aims and advantages of the present invention emerge more clearly from the following detailed description and with respect to the appended drawings given by way of non-limiting examples in which:
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DETAILED DESCRIPTION OF AN EMBODIMENT
[0043] The attached figures, especially
[0044] By way of non-limiting example, the height of the columns 10, 20 can be between 150 and 200 cm, advantageously between 150 and 180 cm and the gap between the two columns is advantageously between 70 and 100 cm.
[0045] As indicated previously the device according to the present invention comprises windings 110 120 distributed in the two columns. These windings 110, 120 are adapted to emit a magnetic detection field and are adapted to detect the perturbations of the magnetic detection field caused when an individual travels via the channel between the two columns.
[0046] Such windings 110, 120 are illustrated especially in
[0047] The device according to the present invention also comprises analysis means 40 adapted to analyse the signals from the receiver windings 110Rx and 120Rx to detect the presence of a metallic object carried by an individual I transiting via said channel 30 formed between the two columns 10, 20.
[0048] The windings 110, 120 can form the object of many known embodiments, such as used currently in classic walk-through metal detectors. Their operation as such is also classic.
[0049] The structure and the operation of the windings 110, 120 will therefore not be described in detail below.
[0050] It is evident however that preferably each winding 110, 120 provided respectively on the columns 10 and 20 can be formed by several separate turns whereof the distribution relates to the height of the columns 10 and 20 is adapted to optimize detection and is controlled by the analysis means to emit alternative inductive fields over a range of frequencies and respectively receive all these alternative inductive fields over said range of frequencies.
[0051] These arrangements are also known per se and will therefore not be described in detail below.
[0052] Preferably, the inductive fields of metal detectors generated by the windings 110, 120 are in the range of frequencies between 70 Hz and 30 kHz,
[0053] As also indicated previously, the device according to the present invention also comprises means 210, 220 forming microwave sender/receiver transducers arranged respectively in the two columns 10, 20.
[0054] Hereinbelow, these transducers 210, 220 will be accompanied by the index Tx when they will be senders and Rx when they will be receivers.
[0055] Preferably, each transducer 201, 220 can successively and alternatively be sender and/or receiver.
[0056] Also the analysis means 40 are adapted to analyse the signals from microwave receivers 210Rx and 220Rx.
[0057] More precisely, as indicated previously the analysis means 40 of the device according to the present invention are adapted to analyse the signals from microwave receivers 210Rx and 220Rx corresponding to the microwave signals transmitted from one column into the column opposite and into the microwave signals reflected from one column towards this same column to detect the presence of dielectric material carried the individual I transiting via said channel and to set up the spatial correlations existing between the metallic objects and the dielectric materials detected.
[0058] Set up the spatial correlations between the metallic objects and the dielectric materials detected means that the analysis means 40 are adapted to search if the signals from microwave receivers 210Rx and 220Rx result in detecting any fraudulent object on a part of the body of the individual I which correspond also in space to detection of metal from processing of signals taken from the receiver windings 110 and 120.
[0059]
[0060] The steps 300 and 304 correspond respectively to detection of a metallic object by means of the windings 110, 120 and a dielectric object by means of the microwave transducers 210, 220. These steps 300 and 304 loop back on themselves provided no detection is performed. If needed, the steps 300 and 304 can be followed by respective steps of display during detection of a metallic object by means of the windings 110, 120, or respectively a dielectric object by means of the microwave transducers 210, 220.
[0061] When a metallic object is detected at step 300 and a dielectric object is detected at step 304, the search step 308 of spatial correlation between the metallic object and the dielectric object is performed by the analysis means 40. That is, the analysis means search whether the metallic object and the dielectric object are detected on the same part of the body of the individual who is travelling via the channel 30.
[0062] In case of detection of such a correlation a corresponding alarm and a display are operated at step 312.
[0063] The process is repeated originally after the display step 312.
[0064] The process is similarly repeated originally if the search step 308 of spatial correlation reveals no correlation.
[0065] In the same way, a display can be provided, adapted to the step 310 during the detection separately of a metallic object and a dielectric object, without spatial correlation between these two objects.
[0066] Such correlation between dielectric material and metal helps the personnel who controls access by the device to specify diagnosis on the nature of the fraudulent object carried by the individual and consequently adapts the nature of operations to engage in.
[0067] The device according to the present invention comprises also display means adapted to display the detected alarms.
[0068] These display means are preferably adapted to display the height and the right or left side of the channel on which a metallic object and a dielectric object are detected in correlation.
[0069] More precisely still, the display means according to the present invention are preferably adapted to display a silhouette of front and rear type of the individual travelling in the channel, dimensioned in size on the basis of a measurement made by detection of reflection of microwave beams, with positioning and indication of the nature of the metallic objects and the non-metallic dielectric objects detected.
[0070] The microwave sender/receiver transducers 210, 220 preferably comprise several microwave transducers distributed vertically on each column 10, 20. As shown in
[0071] Preferably, each microwave transducer 210, 220 is associated with a focus cone adapted to control the angular opening of the emission cone of each transducer such that all the transducers 210, 220 constitute a vertical continuous curtain or at least continuous curtain. Preferably, the vertical distribution of the transducers 210, 220 and their emission and reception lobe are determined such that the microwave beams constitute a continuous curtain at least in the longitudinal median plane of the channel 30.
[0072] The transducers 210, 220 preferably operate in a range of frequencies between 5 and 90 GHz, advantageously between 10 and 30 GHz and most preferably between 12 and 20 GHz.
[0073] The different transducers 210, 220 located on a column 10 or 20, for example the fifteen transducers distributed vertically, are located respectively coaxially to a transducer 220, 210 located opposite on the opposite column 20, 10.
[0074] Under the control of the analysis means 40 each transducer 210, 220 can work alternatively as sender (or 210Tx, 220Tx) or as receiver (or 210Tx, 220Tx) or as sender and receiver.
[0075] As illustrated in
[0076] Similarly, as illustrated also in
[0077] As is seen in
[0078] But as illustrated in
[0079] The horizontal distance between two transducers 210, 220 located in the same column is typically between 10 and 30 cm.
[0080] As is seen in
[0081] But as seen in
[0082] More precisely as seen in
[0083] Via exploitation of detected reflections, the device according to the present invention determines the size in height of an individual I who is transiting via the channel 30.
[0084]
[0085] In this case the microwave beam emitted by a sender transducer 220Tx in the direction of an opposite receiver transducer 210 Rx is transmitted to the opposite receiver 210 Rx located on the opposite column with a delay and attenuation due to the substance X, when the object X intercepts the microwave beam as seen in
[0086] In these
[0087] But as is similar to
[0088] When the individual I continues to move forward in the corridor 30, his body will reflect the microwave beam in the direction of the sender transducer as described previously opposite
[0089] Then, when the individual reaches them, the pairs of transducers 210, 220 located at output of the channel 30 will undertake the same detections as the pairs of transducers 210, 220 located at input of the channel 30 operated when the individual enters the channel 30.
[0090]
[0091] In this case in a first time the microwave beams emitted by the transducers 210, 220 located at the input of the channel 30 are hidden by the body of the individual when the latter intercepts the beams (situation comparable to
[0092] Then the beam microwave emitted by a sender transducer 220Tx in the direction of an opposite receiver transducer 210 Rx is transmitted to the opposite receiver 210 Rx located on the opposite column with a delay and attenuation due to the substance X, when the object X intercepts the microwave beam as is seen in
[0093] Simultaneously, if the longitudinal gap between the two series of transducers 210 and respectively 220 is small, his body will reflect the microwave beam in the direction of the sender transducer located at output of the channel 30 as described previously opposite
[0094] But similarly to
[0095] When the individual I continues to move forward in the corridor 30, the pairs of transducers 210, 220 located at output of the channel 30 will operate, when the individual reaches them, the same detections as the pairs of transducers 210, 220 located at input of the channel 30 have operated when the individual is entre in the channel 30.
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[0097] In this case in a first time the microwave beams emitted between the transducers 210, 220 located at the input of the channel 30 are hidden by the body of the individual when the latter intercepts these beams (situation comparable to
[0098] However, similarly to
[0099] When the individual I continues to move forward in the corridor 30, the pairs of transducers 210, 220 located at output of the channel 30 will operate, when the individual reaches them, the same detections as the pairs of transducers 210, 220 located at input of the channel 30 have operated when the individual enters the channel 30.
[0100]
[0101] The operation of the device is symmetrical, by a left/right symmetry to that described previously opposite
[0102]
[0103] Here too, the transducers 210, 220 detect successively either a microwave beam substantially without delay and without attenuation when no object or body is interleaved between a sender transducer and a receiver transducer respectively associated, or a reflection with a delay equal to 2*d/c when the body of the individual is interleaved opposite a sender, or two echoes as illustrated in
[0104] Controlling sender/receiver couples 210, 220 and analysis of signals from a receiver Rx therefore detects the presence on an individual of an object X non-permeable to microwaves and gives a diagnosis as to the location of this object on the body of the individual I.
[0105] Generally, according to tests conducted by the inventors the second echo on the body has a greater amplitude than the first echo on the substance X which is only partially reflective.
[0106] The skilled person will understand from reading the preceding description that the invention enables detection of fraudulent non-metallic substances, for example explosives or drugs, carried by an individual by detection of the delay and amplitude of microwave signals transmitted via the substance and/or reflected by the substance, as well as by the body.
[0107] The analysis means 40 carry out comparison of the signals transmitted and/or reflected with transmission values in the air and/or signals reflected on a body devoid of fraudulent object.
[0108] The means 40 are adapted to generate an alarm when a significant gap exceeding a threshold is detected relative to the reference values.
[0109] The skilled person will actually understand that analysis of the sequences of signals received on the microwave transducers 210, 220 controls the progression of an individual in the channel 20, determines if this individual is carrying a dielectric substance delaying microwaves and determines by analysis of the chronology of sequences the carrying site on the individual.
[0110] As indicated previously
[0111] Also,
[0112] In
[0113]
[0114]
[0115] Also, as indicated previously: [0116]
[0119] Examination compares the chronology of the status of the signals between
[0120] The analysis means 40 exploit not only the evolution chronology of the signals on the same receiver transducer 210 or 220, but also the dissymmetries between the signals received on the receiver transducers 210 or 220 front and rear respectively, as well as the dissymmetries between the signals received on the receiver transducers 210 or 220 right and respectively left.
[0121] Of course, the number of sequences taken into account, here 7, is not limiting and must be adapted as a function of the relative dimensions of the channel, the cross-section of the individual and the preferred detection resolution.
[0122] Also, the reference matrices used to detect the presence of the object X must be multiplied to consider all possible positions of the object on the individual (on the front, on the rear or laterally) on the basis of the operating principles (direct transmission, reflection, double echo) described relative to
[0123] In practice several levels of transducers 210, 220 are provided, superposed vertically, for example 15 levels of transducers, and each transducer 210, 220 itself cooperates not only with the transducers of the same level, but also with the transducers of the lower level and the transducers of the upper level. The presence of these different levels of vertically superposed transducers pinpoints the vertical position of any dielectric object detected.
[0124] The analysis means therefore have a large number of matrices of detection signals allowing fine detection of the potential presence of dielectric material delaying microwaves, on an individual, and allowing the location of such material on the body of the individual, that is, both its position in height on the body, but also its position on a horizontal section of the body.
[0125] It is evident that, relative to
[0126] Preferably, in terms of the invention, the means 300 are adapted to conduct at least one of the following steps and preferably the combination of all the following steps: [0127] measuring the delay and the amplitude of direct transmission of microwaves between each pair of coaxial senders 210Tx, 220TX and receivers 210Rx, 220Rx located on the two opposite columns 10, 20, [0128] measuring the delay and the amplitude of oblique transmission of microwaves between each sender 210Tx, 220TX located on a column 10, 20 and the receivers 210Rx, 220Rx which frame the receiver located on the opposite column coaxial of the sender, [0129] measuring the delay and the amplitude of the microwave waves emitted by each sender transducer 210Tx, 220TX and reflected towards the same transducer forming receiver 210Rx, 220Rx or towards the receivers 210Rx, 220Rx framing the latter, by the body of an individual or by a fraudulent (non-metallic) substance carried by this individual, [0130] detection of the presence of a double echo of microwave waves reflected by a fraudulent substance and by the body of an individual, [0131] comparison of the microwave waves transmitted directly with a transmission reference value in the void and transmission of an alarm in case of detection of delay greater than a threshold and with an amplitude corresponding to a range of substances which delays and attenuates the microwaves, [0132] comparison of the microwave waves transmitted directly with microwaves transmitted on adjacent transducers and generation of an alarm in case of a gap greater than a threshold detected between the different signals (similar to the presence of a non-metallic substance non-permeable to microwaves), [0133] comparison of the oblique microwave waves with a reference value in the void and generation of an alarm in case of detection of delay greater than a threshold and with an amplitude corresponding to a range predetermined representative of substances which delay and attenuate the microwaves, [0134] comparison of the microwave waves transmitted obliquely with the directly adjacent transmitted microwave waves and generation of an alarm in case of a gap greater than a threshold detected between the different signals (similar to the presence of a non-metallic substance non-permeable to microwaves), [0135] comparison of a double echo detected with transmission values in the void and generation of an alarm in case of detection of a delay greater than a threshold between the peaks of the two echoes with an amplitude greater than a threshold (representative of a substance which reflects part of the wave (first echo) and which delays and attenuates the non-reflected signal (second echo)), [0136] measuring the height of the body of an individual travelling in the channel 30 which corresponds to a reflection of microwave wave, preferably in the region of each column, [0137] determining the position of an individual travelling in the channel, between the input and the output of the channel, by analysis of the signals from the transducers microwave receivers, [0138] measuring the modifications of inductive fields due to metallic substances carried by an individual travelling in the channel, [0139] displaying the height and of the right or left side of the channel on which a metallic object and a dielectric object are detected in correlation, [0140] displaying the silhouette front and rear type of the individual travelling in the channel, dimensioned in size on the basis of a measurement made by detection of reflection of microwave beams with positioning and indication of the nature of the metallic objects and the non-metallic dielectric objects detected, [0141] generation of inductive fields of metal detectors in the range of frequencies between 70 Hz and 30 kHz, [0142] generation of microwave beams in the range between 10 GHz and 90 GHz.
[0143] The device according to the present invention which has just been described can be completed by auxiliary equipment, for example by sampling and analysis means of substances, steam or traces of particles and/or by analysis means of nuclear magnetic resonance type, analysis means of complex impedance and/or detection means of radio-active radiations
[0144] Such means are known per se in their general structure and will therefore will not be described in detail below.
[0145] Of course, the present invention is not limited to the embodiments previously described, but extends to all variants in keeping with its sense.
[0146] By way of detection of spatial correlation existing between the metallic objects and the dielectric materials detected, the present invention in particular allows reliable detection of explosives carried by individuals, for example explosive belts, especially comprising in combination small metallic objects. It also allows reliable detection of the content of briefcases carried by individuals, since the invention allows reliable detection over the full height of the columns, down to the floor.
[0147] The skilled person will understand that in contrast to body scanners which require each person to be checked to be stationary and therefore require static analysis, by using the movement of the person as spatial scanning of its perimeter relative to the columns of the inductive senders and receivers and to microwaves and by performing measuring of the time period and attenuation of the microwave pulse caused by the dielectric mass, the invention results in a measurement which takes place in a very limited and therefore very precise range or window.
[0148] The beams between the sending and receiving antennae are first partially hidden by the dielectric mass. In this phase also a good part of the energy is coupled directly, that is, does not shift to the dielectric but to the air because there are available paths in the air. As soon as the person moves forward, the beam Tx-Rx is progressively hidden to the point of having the sole energy residue transmitted passing through the dielectric, as no other path is possible. This position is the ideal position for measuring the dielectric properties of the material. The space range corresponding to this ideal condition (transition of the individual relative to the microwave beam) is 1 or 2 cm in the displacement of the checked individual.
Continuous monitoring of the microwave signals received is performed with a sampling frequency or repetition frequency of the high reading, typically between 10/second to 100/second. This frequency must be high enough to successfully make at least one measurement in optimal conditions (almost fully obscure beam, with energy residue transmitted by the dielectric mass only).