Method and apparatus for inspecting target articles
A sensing device with a distributed configuration of electromagnetic radiation beams addresses scattering and interference issues, enabling efficient detection of small bone or cartilage fragments in chicken meat through controlled activation sequences for high-resolution imaging.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-09-02
- Publication Date
- 2026-03-13
AI Technical Summary
Existing X-ray imaging systems and near-infrared (NIR) laser-based methods struggle to efficiently detect small bone or cartilage fragments in meats like chicken due to scattering issues and interference, leading to inadequate spatial resolution and high operational risks.
A sensing device with a distributed configuration of electromagnetic radiation beams, using multiple beam trajectories arranged in groups with controlled activation sequences to minimize interference, allowing for dense arrays that collect sufficient data for visual imaging.
The device effectively detects small bone or cartilage fragments in chicken meat by minimizing beam interference, enabling high-resolution visual imaging with improved spatial resolution and safety.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a method and apparatus for detecting components or defects in materials such as food, ceramics, and composite materials.
Background Art
[0002] Sensing devices for investigating the internal structure of target articles are widely known and have many different applications. One application is, in particular, to check whether there are bones or cartilage in meat processed for consumption. Such meat products are required to be free of small pieces that may pose a risk to the end consumer and to meet all kinds of legal regulations. Since edible meat is processed at an industrial scale and at high speed, there is a need for a sensing device that can efficiently and quickly detect the presence of small pieces of bone or cartilage.
[0003] X-ray imaging systems have been used to investigate the internal structure and characteristics of various objects, including food and the human body. In particular, X-ray imaging systems have been used in the past to detect the presence of small pieces of bone or cartilage in meat processed for consumption. However, this approach is only effective for detecting materials of a certain density. In raw foods such as beef or pork, the bones or cartilage of the donor animal are sufficiently developed and reach the level of density that can be detected by an X-ray imaging system, so this is not a problem. However, for meats such as chicken or other poultry, the bones and cartilage of the donor animal are usually not very developed and thus do not have a sufficient density for the small pieces to be easily detected, so X-ray imaging systems are not effective.
[0004] X-ray imaging systems also have other problems, such as being potentially dangerous to the operator, large in size, and expensive in reality.
[0005] GAN et al., US2009 / 0279773, proposes the use of electromagnetic radiation beams, rather than ionizing radiation, to investigate the internal structure of an object. In particular, one version uses a near-infrared (NIR) laser. The NIR source beam is transmitted through the object to a detector, which detects the portion of the source beam it reaches and generates a detector signal accordingly. The controller then generates a difference value corresponding to the difference between the amplitude of the detector signal and the amplitude of a reference signal, which is the same as the drive signal of the source beam. The difference value can be used in any suitable way to detect the presence of a particular material. GAN also discloses the use of an array of NIR detectors in a linear or planar configuration so that the object can be inspected simultaneously at multiple spatially separated locations. Theoretically, such a configuration can generate an image of the object if an imaging function is configured to display a visual image on a display screen, which includes pixels with visual characteristics generated based on the difference value, and the detector signal is digitized.
[0006] However, when attempting to investigate the internal structure of something like chicken meat, this proved to be practically impossible. This is because the NIR light source beam scatters excessively as it passes through the material, interfering with adjacent detectors. In particular, an NIR light source laser beam passing through an average piece of chicken meat processed for consumption scatters over an area with a diameter of approximately 40 mm or more. Therefore, linear arrays of NIR light source beams must be at least 40 mm apart from each other to avoid interference, which is too far to collect sufficient data. To collect enough data to generate a readable image of the internal structure of the object in question, arrays of NIR light source beams need to pass through it at intervals of approximately 2.5 mm.
[0007] The present invention aims to overcome some of the above-mentioned problems. This is achieved by the method of claim 1 and the apparatus of claim 7 suitable for carrying out the method of claim 1, according to the present invention. [Overview of the project]
[0008] The inspection method for the article in claim 1 is: A step of providing a plurality of beam trajectories for a beam of electromagnetic radiation, wherein the plurality of beam trajectories are arranged in a dispersed configuration that can be decomposed into groups of beam trajectories, each of the groups includes at least one beam trajectory, and the distance between the beam trajectories in a group including two or more beam trajectories is greater than or equal to a predetermined value greater than at least one of the distances between the beam trajectories in the plurality of beam trajectories. The steps include: positioning the target article within the plurality of beam trajectories and continuously activating each of the groups to transmit the beam of electromagnetic radiation along the beam trajectory of the group, and sensing the electromagnetic radiation from each of the beams that has passed through or been reflected from the target article; Includes.
[0009] The inspection device for the target article according to claim 7 is: Means for transmitting multiple beams of electromagnetic radiation along multiple beam trajectories, wherein the beam trajectories are arranged in a distributed configuration that can be decomposed into groups of beam trajectories, each of which includes at least one beam trajectory, and the distance between beam trajectories in a group containing two or more beam trajectories is greater than or equal to a predetermined value greater than at least one of the distances between beam trajectories in the multiple beam trajectories, Means for positioning the target article within the plurality of beam trajectories, Means for sensing each electromagnetic radiation of the beam that has passed through or been reflected from the target article, It is equipped with.
[0010] Therefore, according to the present invention, the sensing device has multiple beams corresponding to the beams of multiple beam trajectories. SensingA unit may comprise a sensing unit having an energy source for transmitting a beam of electromagnetic radiation onto a target object along each of the beam trajectories, and a detector for receiving a portion of the beam that has passed through or been reflected from the target object, and a controller, wherein the sensing unit is arranged in a distributed configuration and can be decomposed into groups of beam trajectories, each of which includes at least one beam trajectory, and the distance between beam trajectories in a group containing two or more beam trajectories is greater than or equal to a predetermined value greater than at least one of the distances between beam trajectories in the plurality of beam trajectories, specifically, the sensing unit comprises a first group and a second group, the controller activates the first group by transmitting a first activation signal to the first group at a first time, and activates the second group at another second time by transmitting a second activation signal to the second group, and each beam trajectory of the first group of the sensing unit is spaced apart from the beam trajectories of the first group of the sensing unit by a distance greater than the distance from the nearest beam trajectory of the second group of the sensing unit. According to the present invention, the distance between beam trajectories within the same group is greater than, in particular, the minimum distance between multiple beam trajectories, and preferably greater than the second smallest distance. The beams of electromagnetic radiation remain essentially concentrated around their respective trajectories during free propagation.
[0011] Therefore, in the simplest form of the present invention, the sensing device consists of a first group of sensing units and a second group of sensing units, which are scattered and used at different times. This allows the first group of sensing units to be activated when there is no interference from the second group, and vice versa.
[0012] It will be understood that the sensing unit can be arranged in various two-dimensional or three-dimensional configurations depending on any specific application. For example, the energy source may be a single energy source capable of transmitting a beam of electromagnetic radiation in different directions, for example, through lenses or prisms, to detectors arranged in a two-dimensional or three-dimensional configuration around a single energy source. Alternatively, the sensing device may consist of a reflective arrangement in which the detector is positioned to detect a beam of electromagnetic radiation reflected by the object (or by a reflective element positioned behind the object), and this detector may be located on the same side of the object as the energy source.
[0013] However, in a preferred configuration, each sensing unit may have a separate energy source with a beam transmission direction along its respective beam trajectory, and the sensing units may be arranged in a distributed configuration with beam transmission directions parallel to each other in a spatial region provided for the passage of an object moving across at least a number of beam trajectories. Thus, the sensing device may be configured to sense the internal structure of a three-dimensional object placed within the path of parallel beams of electromagnetic radiation, and each sensing unit may sense the properties of a material placed between its energy source and detector. Sensing The unit works collectively to sense the properties of the material region located between all parallel energy sources and the detector.
[0014] The sensing units may be arranged in any dispersed configuration such that each beam trajectory of the first group of sensing units is spaced further apart from other beam trajectories of the first group of sensing units than is spaced further apart from the nearest beam trajectory of the second group of sensing units. In known sensor devices of this type, the sensing units are arranged in a line. When this configuration is used, to achieve the present invention, the sensing units of the first group of sensing units will simply alternate with the sensing units of the second group of sensing units. Other linear configurations are possible, such as a cross shape, or a contour shape of a square, circle, or other shape, in which the detectors of the first group of sensing units and the second group of sensing units can be arranged alternately along a line or contour. The present invention may also include any more complex shapes or configurations, or random dispersed structures in which the spacing between sensing units varies, but still, each sensing unit of the first group of sensing units is spaced further apart from other sensing units of the first group of sensing units than is spaced further apart from the nearest sensing unit of the second group of sensing units.
[0015] As described above, the NIR light source beam scatters as it passes through the material, and in some examples, this scattering may be minimal enough that the present invention can be carried out with only the first and second groups of sensing units. However, the present invention can find particular applications in sensing the internal structure of meat being processed for meat consumption, in which a group of more sensing units may be required because the size of the object being examined is too small for a group of two sensing units to be effective.
[0016] Accordingly, the sensing unit may further comprise a third group and a fourth group, and each detector of the sensing units in the first, second, third, and fourth groups may be spaced apart from each other by a distance greater than the distance from the nearest unit of each of the other groups. The controller may transmit a third activation signal to the sensing units of the third group and a fourth activation signal to the sensing units of the fourth group, and the first, second, third, and fourth activation signals are configured to activate the sensing units of the first, second, third, and fourth groups at separate times. More generally, the number of groups and associated activation signals is not limited to four or fewer. There may be any even number greater than four, specifically up to the theoretical limit imposed by the total number of beam trajectories of the plurality of beam trajectories.
[0017] Accordingly, in this embodiment, the present invention is a sensing device in which units of first, second, third, and fourth groups of sensing units are scattered and used at different times in a quad activation sequence. This allows the sensing units of each group to be activated simultaneously when not interfered with by any of the other groups. This allows for a denser array of sensing units, in particular an array dense enough to generate sufficient detector signals to create a usable visual image.
[0018] The sensing units of the first, second, third, and fourth groups may be arranged in any distributed configuration such that each unit of the first, second, third, and fourth groups is spaced further apart from the units of its own group than the distance between each unit of the sensing units of the other groups is greater. As described above, in known sensor devices of this type, the sensing units are arranged in a line, in which case, in order to achieve the present invention, the units of the first, second, third, and fourth groups of sensing units can be configured in a repeating order.
[0019] However, the NIR laser irradiated onto the chicken meat scatters over an area of approximately 40 mm. This means that if the first, second, third, and fourth groups of sensor units are arranged in a line, the sensor units within that line must be spaced at least 10 mm apart to ensure interference between sensor units of the same group is avoided. This makes the spatial resolution of the sensing device too low for this application. One way to solve this problem is to have more groups of sensing units, thereby increasing the distance between sensing units in each group, but this means that it takes time for all sensing units to start up, which itself creates a problem.
[0020] In addition to the above, the closer the sensor units are to each other, the better the quality of the data that can be collected regarding the internal structure of the object, and in particular, the better the visual image that can be generated. One way to achieve closer sensing is to take advantage of the fact that the object moves through the sensing device at a constant speed and can therefore be sensed at different points in time as it passes.
[0021] Therefore, sensing units can be arranged in an array including rows and columns, and each row can be offset laterally from the previous row by a distance equal to the distance between sensing units within each row divided by the number of rows, in the direction from the top row to the bottom row of the array. In this configuration, the conventional single-line sensing units are rearranged as a two-dimensional array distributed in the direction of movement of the object being studied. In certain embodiments, the rows extend laterally with respect to the direction of movement. The number of rows may be two or more, particularly three or more. The number of sensing units within each row may be two or more, particularly three or more.
[0022] Due to the lateral offset between each row, each column comprises a series of sensing units arranged at a pitch angle, and thus each sensing unit is only a short lateral distance from the next. Therefore, if the object passes through the sensing device at a speed that is a multiple of the distance between rows, the data collected from each sensing unit in each column can be aggregated into a single line representing one plane of the object, in which case the spacing between sensing units becomes narrow.
[0023] In certain embodiments, a first set of alternating rows of the array may comprise first and second groups of sensing units arranged alternately, and a second set of alternating rows of the array may comprise third and fourth groups of sensing units arranged alternately. This creates an array consisting of a quadrilateral configuration of four sensing units, including the first, third, fourth, and second groups of sensing units in a clockwise direction. In this configuration, the nearest sensing unit 2 of one group belongs to another group, while the nearest sensing units of a group of its own are always spaced two units apart along each row or column.
[0024] It will be understood that the array can contain any number of sensing units. In certain embodiments, the total number can be divided by 4. However, preferably, the array may comprise 64 sensing units arranged in an 8x8 grid.
[0025] According to this configuration, 64 sensing units can be included in an array with a width of only 16 cm. To achieve this, the sensing units within each row can be spaced substantially 20 mm apart, and the rows can also be spaced substantially 20 mm apart. The horizontal offset between rows (column pitch) can be 2.5 mm. Thus, the plane of the target object is first sensed at intervals of 20 mm by the uppermost row of the array, then moves to the next row, where it is similarly sensed at intervals of 20 mm, but shifted 2.5 mm horizontally. This continues for all 8 rows downwards until a complete detection line at intervals of 2.5 mm is formed. This is a value close enough to collect sufficient data to enable the formation of a readable image.
[0026] As mentioned below, the quad activation sequence of the first, second, third, and fourth groups of sensing units can occur in 1 ms. In that case, the speed at which the target object passes through the sensing device can be set so that a plane perpendicular to the direction of travel of the target object moves 20 mm from the first row to the second row in 1 ms. However, this is a high speed, and instead, the speed may be set so that the plane of the target object moves 20 mm from the first row to the second row in more than 1 ms, for example, 4 ms (5 meters per second), or 8 ms (2.5 meters per second). Any speed that is an integer multiple of the distance between rows can be selected, and all that is necessary is to re-collect the data collected from each sensing unit in each column into a single line representing one plane of the target object, taking that speed into account. For example, when the speed is 2.5 meters per second, for the 8th detection of the second row, the 16th detection of the third row, the 24th detection of the fourth row, etc., all need to be aligned with the first detection of the first row to form a single plane of the target object.
[0027] However, there are additional complex factors. That is, the sensing unit is activated in a quad sequence, thereby causing a spatial offset as a result of the phase time delay existing between the quad emission phases. However, this spatial offset is small. When this small offset is combined with pixel averaging many times as data is generated, for example, every 1 ms, this small offset becomes an error that can be ignored.
[0028] Depending on the size of the entire sensing device and the size of the sensed target item, which may be significantly different from chicken, the sensing units within each row can be separated by any other suitable distance different from the above, and the rows can also be separated by any other suitable distance. Similarly, if necessary, each row can be offset horizontally by any corresponding distance from the previous row.
[0029] The wavelength of the energy source can be any on the electromagnetic spectrum that can interact with the target item such that the remaining portion after passing through the target item is detectable. The energy source itself can be anything that can emit such electromagnetic radiation, such as an LED or other form of emitter. However, preferably, the energy source can include a near-infrared laser for transmitting a laser beam through the target item. Near-infrared light is electromagnetic radiation having a wavelength in the range of 700 to 2000 nm. In this wavelength range, most materials are relatively transparent to electromagnetic radiation, which means that a sufficient amount passes through to enable inspection of the internal structure. <00,00103> The energy source can be activated in various ways. For example, they can switch the on and off of a switch, or can be a constantly powered source activated by a shutter that opens and closes. Further, the energy source can be activated by a drive signal whose intensity increases and decreases gradually and / or whose frequency is adjusted.
[0031] However, preferably, the controller can transmit a pulsed signal to each sensing unit that continuously turns the near-infrared laser on and off. The pulsed signal may have a pulse width of substantially 1 ms and a peak amplitude width of substantially 0.25 ms.
[0032] Subsequently, the controller can simultaneously transmit the first, second, third, and fourth pulse wave signals to the first, second, third, and fourth groups of sensing units, respectively, with a phase difference of 0.25 ms between each pulse wave signal. Thus, the first, second, third, and fourth groups of sensing units are activated in a consecutive 1 ms quad emission sequence.
[0033] As described above, the present invention aims to provide a means for detecting the internal structure of meat processed for consumption, particularly for detecting the presence of bone or cartilage fragments in chicken meat. The data collected by the sensing device can be used in any suitable or convenient way. For example, this data can be easily processed by a suitable computer program that can determine from the raw data collected by the detector whether bone or cartilage fragments are present in a particular target item. This can be done by comparing the detection signal sent by the detector with a reference signal corresponding to an activation signal sent to an energy source. From this, the difference can be easily determined. In that case, an appropriate automatic action can be performed, such as an alarm or the activation of a mechanism for removing the target item from the production line.
[0034] However, preferably, the sensing device may further include an imaging device comprising an imaging function and a visual display screen. Each detector can transmit a detection signal corresponding to the electromagnetic radiation detected during use to the imaging device. The visual display screen may comprise multiple pixels, and the imaging function can determine the visual characteristics of each pixel according to the detection signal received from the sensing unit. The visual characteristics of each pixel may simply be on a scale from white to black. Thus, basically, the greater the amount of electromagnetic radiation detected by the detector, the brighter the corresponding pixel will be made by the imaging function. Therefore, if small pieces of bone or cartilage are present in the object, these will be displayed as dark objects on the visual display screen. This type of imaging technique is well known, and many kinds of enhancement functions and adjustable parameters exist, such as filters and phase adjustments, to manipulate the detection signal to create a practical image. Since such features are well known, further detailed explanation will not be given here.
[0035] Each detector can transmit a continuous live detection signal to an imaging device so that a visual display screen shows a live animated image. This is a result of the speed of the continuous quad emission sequence.
[0036] Due to the aforementioned phase problem inherent in the quad activation sequence and array geometry, the data collected by the first, second, third, and fourth groups of sensing units and transmitted to the imaging device relates to different regions of the object as it passes through the array of sensing units. Therefore, the imaging device can be equipped with a phase compensation function that aligns the phases of the detection signals transmitted from the detectors of the first, second, third, and fourth groups of sensing units with each other, thereby creating an interpretable image.
[0037] In a preferred configuration, the sensing device may comprise an upper housing in which an energy source can be housed, a lower housing in which a detector can be housed, and a conveyor belt device for moving the object to be sensed between the upper and lower housings. This is a configuration commonly known in the sensing industry and is applicable to the present invention because it provides a means for a continuous flow of the object to be sensed to pass through the sensing device at a constant speed.
[0038] The present invention can be implemented in various ways, but here, one embodiment will be described with reference to the accompanying drawings as an example. [Brief explanation of the drawing]
[0039] [Figure 1] Figure 1 is a perspective view of the sensing device according to the present invention. [Figure 2] Figure 2 is a bottom view of the upper housing of the sensing device shown in Figure 1. [Figure 3] Figure 3 is a plan view of the lower housing of the sensing device shown in Figure 1. [Figure 4] Figure 4 is a schematic diagram of the energy source of the sensing unit array of the sensing device shown in Figure 1 in the first operating mode. [Figure 5] Figure 5 is a schematic diagram of the energy source shown in Figure 4 in the second operating mode. [Figure 6] Figure 6 is a schematic diagram of the energy source shown in Figure 4 in the third operating mode. [Figure 7] Figure 7 is a schematic diagram of the energy source shown in Figure 4 in the fourth operating mode. [Figure 8] Figure 8 is a schematic diagram of the operating components of the sensing device shown in Figure 1. [Figure 9] Figure 9 is a schematic diagram of the first, second, third, and fourth pulse wave signals transmitted to the first, second, third, and fourth groups of sensing units of the sensing device shown in Figure 1. [Figure 10]Figure 10 is a schematic side view of the sensing unit of the sensing device shown in Figure 1. [Modes for carrying out the invention]
[0040] As shown in the figure, the sensing device 1 comprises a plurality of sensing units 2, each including an energy source in the form of an NIR laser 3 for transmitting a beam of electromagnetic radiation onto a target object (not shown) along a beam trajectory, and a detector 4 for receiving the beam emitted from the target object, and a controller in the form of a computer processor 5. As will be further described below, the sensing units 2 are arranged in a distributed configuration, comprising a first group 6 and a second group 7, and the controller (5) activates the first group 6 by transmitting a first activation signal 8 to the first group 6 at a first time and a second activation signal 9 to the second group 7 at another second time. In this distributed configuration, each beam trajectory of the first group 6 of the sensing units 2 is spaced further apart from the beam activations of the first group 6 of the sensing units 2 by a distance greater than the distance from the nearest beam trajectory of the second group 7 of the sensing units 2.
[0041] Referring to Figure 1, the sensing device 1 comprises an upper housing 10 in which an NIR laser 3 and a computer processor 5 are located, and a lower housing 11 in which a detector 4 is located. The upper housing 10 and the lower housing 11 are designed to be mounted on an existing framework (not shown) that forms part of a meat production line. When mounted in this manner, the NIR laser 3 of each sensing unit 2 is aligned vertically with the corresponding detector 4 below it, so that the directions of all beam trajectories are parallel to each other. The lower housing 11 is mounted beneath a conveyor platform 12, which is designed to be integrated with a conveyor belt mechanism (not shown) that forms part of a meat production line. An opening 13 is provided in the conveyor platform 12 to expose the detector 4. Thus, target items in the form of processed chicken meat can pass between the upper housing 10 and the lower housing 11 at a constant speed.
[0042] Figures 2 and 3 show the lower surface 14 and upper surface 15 of the upper housing 10 and lower housing 11, respectively. This shows that the sensing unit 2, consisting of opposing NIR lasers 3 and detectors 4, is arranged in the array 16. In fact, the sensing device 1 has two such arrays 16 and 16a, each containing 64 sensing units 2 arranged in 8 rows 17 and 8 columns 18.
[0043] Referring here to Figures 4 to 7, these show the arrangement of sensing units 2 in an array 16 consisting of 64 sensing units 2 arranged in 8 rows 17 and 8 columns 18. In particular, the sensing device 1 has not only the first group 6 and the second group 7 of sensing units, but also a third group 19 and a fourth group 20. The computer processor 5 sends a third activation signal 21 to the third group 19 and a fourth activation signal 22 to the fourth group 20. The present invention can be implemented using only two such groups, but in a preferred embodiment, four are used. Figures 4 to 7 show the emitting first, second, third, and fourth groups 6, 7, 19, and 20 NIR lasers 3 and their positions.
[0044] It will be understood that the first set 23 of alternating rows of array 16 each comprises sensing units 2 with alternating first group 6 and second group 7, and the second set 24 of alternating rows of array 16 each comprises sensing units with alternating third group 19 and fourth group 20. This generates array 16 consisting of 16 rectangular configurations 25 of four sensing units 2, each containing sensing units 2 of the first group 6, third group 19, fourth group 20, and second group 7, in a clockwise direction. In this configuration, the nearest neighbors of sensing units 2 of one group belong to other groups, while the nearest sensing units 2 of a group of its own are always separated by a gap of two units along each row 17 or column 18.
[0045] The width of array 16 is 16 cm. The sensing units 2 within each row 17 are spaced apart by a distance A of 20 mm, and the rows 17 are spaced apart by a distance B of 20 mm. The lateral offset C between rows 17 is 2.5 mm.
[0046] Referring to Figure 8, the computer processor 5 includes an operating system 27 having a drive signal subprogram 28. This generates first, second, third, and fourth start signals 8, 9, 21, and 22, which it transmits to the first, second, third, and fourth groups 6, 7, 19, and 20 of the sensing unit 2, respectively.
[0047] These activation signals 8, 9, 21, and 22 are schematically shown in Figure 9, indicating that they are pulse wave signals with a period D of 1 ms and a peak amplitude width E of 0.25 ms. These four signals 8, 9, 21, and 22 are sent simultaneously to the first, second, third, and fourth groups 6, 7, 19, and 20 of sensing unit 2, respectively, with a phase difference of 0.25 ms between each pulse wave signal and the next pulse wave signal. Thus, the sensing units of the first, second, third, and fourth groups 6, 7, 19, and 20 are activated at different times from each other in a consecutive 1 ms quad emission sequence.
[0048] The operating system 27 also includes a reference signal subprogram 29 that corresponds to the start signals 8, 9, 21, and 22 and generates and transmits reference signals used for comparison with the detection signals.
[0049] The sensing device 1 further comprises an imaging device 30 including an operating system 31, the operating system 31 including an imaging subprogram 32, a phase compensation subprogram 33, and a visual display screen 34. The detector 2 transmits a detection signal corresponding to the electromagnetic radiation detected during use to the imaging device 30. The visual display screen 34 comprises multiple pixels, and the imaging subprogram 32 determines the visual characteristics of each pixel according to the detection signal received from the sensing unit 2. This is done in a known way by comparing the detection signal with a reference signal provided by the reference signal subprogram 29 to determine the difference. The visual characteristics of each pixel can simply be a grade from white to black.
[0050] If there is no difference between the detected signal and the reference signal, the corresponding pixel is made white. If the detected signal is zero, the corresponding pixel is made black, and if the detected signal has a value between these two limits, the pixel is made gray with appropriate shading. Therefore, the greater the amount of electromagnetic radiation detected by the detector 4, the brighter the corresponding pixel is made by the imaging subprogram 32. In this way, if small pieces of bone or cartilage are present in the object, these are displayed as dark objects on the visual display screen 34. This type of imaging technique is well known, and there are many kinds of enhancement functions and adjustable parameters, such as filters and phase adjustments, to manipulate the detected signal to create a practical image. Since these features are well known, they will not be described in further detail here.
[0051] (It will be understood that the schematic diagram shown in Figure 8 is very simple and is provided merely to illustrate the basic functions of the sensing device 1. In practice, the functions of the present invention can be implemented using any known computer programming method or structure, and it depends on the individual programmer and the software and / or hardware used. For example, the imaging device 30 may be integrated with the computer processor 5 rather than being separate. There may be many other subprograms and functions known in computer science that can be applied to the sensing device 1 to improve its performance in any known way. All that is required is that the functions of the present invention are provided and the sensing device 1 performs novel features such as those described herein.)
[0052] Detector 4 transmits a continuous live detection signal to imaging device 30 so that the visual display screen 33 displays a live animated image. This occurs as a result of a continuous quad emission sequence.
[0053] Figure 10 shows one sensing unit 2 of the array 16. This is a known structure and comprises a facing NIR laser 3 and a detector 4. The NIR laser 3 includes an energy emission diode 35 located in a slot 36 formed in the upper housing 10. A lens assembly 37 is located above the diode 35, and therefore, when activated, the NIR laser beam is transmitted through the upper channel 38 and through the gap 39 to the lower housing 11. The NIR laser beam has a wavelength suitable for the application. In this case, the NIR laser beam has a wavelength that substantially passes through chicken meat but does not at least partially pass through bone or cartilage fragments in the chicken meat, and therefore its presence can be detected. When the NIR laser beam reaches the detector 4, it passes through the lens 40 and then through the lower channel 41 to the detector diode 42. The detector diode 42 is a known type of detector that can detect the NIR laser beam and transmit a detection signal.
[0054] Referring again to Figure 4, the NIR laser beam can scatter over an area 43 with a diameter of 40 mm or more as it passes through the target object, such as a piece of chicken. Therefore, the scattering caused by the activation of sensing unit 6a causes interference with all eight surrounding sensing units, as shown in the figure, if they are activated simultaneously.
[0055] The sensing device 1 of the present invention operates as follows when in use. The sensing device 1 is mounted on the framework (not shown) of a meat production line having a conveyor belt positioned to move between an upper housing 10 and a lower housing 11 at a constant speed of 2.42 meters per second. Edible chicken products are placed on the conveyor belt, and as a result they pass between the upper housing 10 and the lower housing 11 at this constant speed.
[0056] The computer processor 5 operates so that the drive signal subprogram 28 simultaneously transmits the first, second, third, and fourth activation signals 8, 9, 21, and 22 of the sensing unit 2 to the first, second, third, and fourth groups 6, 7, 19, and 20 of the sensing unit 2 in the phase sequence shown in Figure 9. As a result, the NIR lasers 3 of the first, second, third, and fourth groups 6, 7, 19, and 20 of the sensing unit 2 are activated in a 1 ms quad emission sequence, as shown in Figures 4 to 7. The computer processor 5 also operates so that a reference signal is sent to the imaging subprogram 32 of the imaging device 30.
[0057] The detectors 4 of the first, second, third, and fourth groups 6, 7, 19, and 20 of the sensing unit 2 detect the NIR laser beam reaching them and send the detection signal to the imaging device 30. The imaging subprogram 32 then compares the detection signal with a reference signal provided by the reference signal subprogram 29 to determine the difference. It then determines the visual characteristics of each pixel of the visual display screen 34 to create an image. The visual characteristics of each pixel are grades from white to black. If there is no difference between the detection signal and the reference signal, the corresponding pixel is set to white. If the detection signal is zero, the corresponding pixel is set to black, and if the detection signal has a value between these two extreme values, the pixel is set to gray with appropriate shades.
[0058] Simultaneously, the phase compensation subprogram 33 operates to convert the received detection signal into a readable image. This is sometimes called the re-stitching function. The quad activation sequences of the first, second, third, and fourth groups 6, 7, 19, and 20 of the sensing unit 2 occur in 1 ms, and the conveyor belt is moving at 2.42 meters per second. Thus, the detected planes of the entire chicken piece moving on the conveyor belt consist of detection data from all 64 sensing units 2, but at four different points in time when they were activated. In particular, the four sensing units 2 of the first group 6 in the first row 17 (located in the first set 23 of the alternating rows) first detect the internal structure of a particular plane of the chicken piece.
[0059] Simultaneously, three groups of four sensing units 2 from the first group 6 in the third, fifth, and seventh rows 17 are activated, detecting the internal structures of three other planes 20 mm apart from each other, which may or may not intersect with the chicken pieces. After 0.25 ms, four groups of four sensing units 2 from the second group 7 in the second, fourth, sixth, and eighth rows 17 are activated, detecting the internal structures of four other planes 20 mm apart from each other, which may or may not intersect with the chicken pieces. After 0.25 ms, all sensing units 2 from the third group 19 are activated, and after 0.25 ms, all sensing units 2 from the fourth group 20 are activated, thereby detecting the internal structures of eight further planes. This 1ms quad emission process is repeated continuously, so that as the chicken piece passes through the sensor 1, data is collected for areas spaced 2.5 mm apart on each consecutive plane of the chicken piece. The challenge is to stitch all the data together again so that a readable image can be generated.
[0060] In this example, 8.25 ms after the four sensing units 2 of the first group 6 on the first row 17 detect the internal structure of the plane of the chicken piece, the plane aligns with the four sensing units 2 of the second group 7 on the second row 17, which means it has traveled a distance of 20 mm, given a speed of 2.42 meters per second. Therefore, after the plane of the chicken piece comes below the first row 17, the four sensing units 2 of the second group 7 on the second row 17 are activated 9 times before the plane of the chicken piece reaches that point. Thus, these specific detection results need to be stitched together to form the detection result for this plane of the chicken piece.
[0061] The third group 19 and the fourth group 20 of sensing unit 2 are within the second set 24 of the alternating array and perform the same processing, but are 0.5 ms out of phase with the first group 6 and the second group 7 because they are activated in the third and fourth quarters of the 1 ms quad emission sequence. The phase compensation subprogram 33 also takes this into account and therefore re-stitches all the collected data so that each line of pixels on the visual display screen 34 corresponds to a specific plane that has traveled through the sensing device 1. Since the sensing device 1 comprises two arrays 16 and 16a, the visual display screen 34 can display an image with 128 data acquisition points in each line.
[0062] Because the sensing units 2 within the array 16 are distributed, when each is activated, the resulting interference region (as shown in 43 of Figure 4) is insufficient to reach any of the other sensing units 2 in the same group. Therefore, this interference does not affect data acquisition. The quad emission sequence solves the lateral interference problem because each sensing unit 2 in each of the first, second, third, and fourth groups 6, 7, 19, and 20 is always at least 40 mm away from the next one in its row 17. Forming the sensing units 2 into eight rows 17 solves the longitudinal interference problem because each sensing unit 2 in each of the first, second, third, and fourth groups 6, 7, 19, and 20 is always at least 40 mm away from the next one in its column 18. The 2.5 mm shift in the columns 18 from row to row, and the re-stitching of the data by the phase compensation subprogram 33, enable the array 16 of the detection unit to provide planar detection with an interval of only 2.5 mm between detection points.
[0063] The present invention can be modified without departing from the scope of claim 1 or 7. For example, in one alternative embodiment (not shown), the sensing device is configured in a reflective arrangement in which a detector is positioned to detect a beam of electromagnetic radiation reflected by (or by a reflective element positioned behind) an object, and the detector is located on the same side as the energy source with respect to the object.
[0064] In other alternative embodiments (not shown), the energy source is activated in various ways, including a continuously energized energy source activated by an opening and closing shutter, and an energy source activated by a drive signal whose intensity gradually increases and / or whose frequency is adjusted.
[0065] In other alternative embodiments (not shown), the data collected by the sensing device is not used as data to generate a visual image, but is processed by an appropriate computer program to determine from the raw data collected by the detector whether a bone or cartilage fragment is present in a particular object.
[0066] In other alternative embodiments (not shown), the sensing device of the present invention is configured and operated to examine the internal structure of different object items, such as other foods, luggage, or the human body. This requires the use of different energy sources suitable for the application.
[0067] Thus, the present invention provides a sensing device that can detect the internal structure of an object at intervals far smaller than the interference area caused by sensing. This makes possible an NIR laser array that can be used to detect the presence of small pieces of bone or cartilage in processed chicken meat, which was previously impossible due to scattering of the NIR laser beam caused by the object material.
Claims
1. A method for inspecting the target item. A step of providing a plurality of beam trajectories for a beam of electromagnetic radiation, wherein the plurality of beam trajectories are arranged in a dispersed configuration that can be decomposed into groups of beam trajectories, each of which includes at least one beam trajectory, and the distance between beam trajectories in a group containing two or more beam trajectories is greater than or equal to a predetermined value greater than at least one of the distances between beam trajectories in the plurality of beam trajectories. A step of providing a plurality of sensing units corresponding to beams of the plurality of beam trajectories, wherein each sensing unit comprises an energy source for transmitting a beam of electromagnetic radiation onto the target article along each of the corresponding beam trajectories, and a detector for receiving the electromagnetic radiation of the beam that has passed through or been reflected from the target article, and the sensing units are arranged in a two-dimensional or three-dimensional configuration and sense the properties of a material located between the energy source and the detector, The steps include: positioning the target article within the plurality of beam trajectories, continuously activating each of the groups to transmit the beam of electromagnetic radiation along the beam trajectory of the group, and sensing the electromagnetic radiation from each of the beams that have passed through or been reflected from the target article; Testing methods including those mentioned.
2. The method according to claim 1, wherein the positioning includes moving the target article across the plurality of beam trajectories.
3. The method according to claim 1 or 2, wherein a correspondence is established between each of the detected electromagnetic radiations from each of the beams that have passed through or been reflected from the target article, and the corresponding position on the target article from which the electromagnetic radiation was reflected or passed.
4. The method according to claim 3, wherein the correspondence between the position and the electromagnetic radiation that has passed through or been reflected from the target article is converted into a pixel representation on a screen.
5. The method according to any one of claims 1 to 4, wherein the number of beam trajectories is the same in all groups.
6. A device for inspecting target items, Means for transmitting multiple beams of electromagnetic radiation along multiple beam trajectories, wherein the beam trajectories are arranged in a distributed configuration that can be decomposed into groups of beam trajectories, each of which includes at least one beam trajectory, and the distance between beam trajectories in a group containing two or more beam trajectories is greater than or equal to a predetermined value greater than at least one of the distances between beam trajectories in the multiple beam trajectories. Means for positioning the target article within the plurality of beam trajectories, Means for providing a sensing unit comprising a plurality of energy sources, each configured to supply a beam of electromagnetic radiation to one of the beam trajectories, and a plurality of detectors, each configured to detect electromagnetic radiation from one of the beams that has passed through or been reflected from the object, wherein the sensing unit is arranged in a two-dimensional or three-dimensional configuration and includes means for sensing the properties of a material located between the energy sources and the detectors, A device equipped with the following features.
7. The apparatus according to claim 6, wherein the positioning means includes means for moving the target article across the plurality of beam trajectories.
8. The apparatus according to claim 6 or 7, wherein the beam trajectories are parallel to each other in a spatial region provided for positioning the target article within the plurality of beam trajectories.
9. The apparatus according to claim 8, wherein the beam trajectories are arranged in an array of parallel rows and columns in the region which is parallel to each other, the rows extending laterally with respect to the direction of motion of the object and being equally spaced apart along the direction of motion, and the beam trajectories being equally spaced apart within the rows.
10. The apparatus according to claim 9, wherein the beam trajectory in each of the rows is offset laterally from the beam trajectory of the adjacent row by a distance equal to the distance between the beam trajectories within each row divided by the number of rows.
11. The apparatus according to claim 9 or 10, wherein the distance between the beam trajectories in each of the groups in the row direction is at least twice the distance between the beam trajectories in each row, and the distance in the orthogonal direction is at least twice the distance between the rows.
12. The apparatus according to any one of claims 6 to 11, comprising means for continuously activating each of the groups such that the beam of electromagnetic radiation is transmitted along the beam trajectory in each of the groups, while the target article is positioned to cross the beam trajectory.
13. The method according to any one of claims 1 to 5 or the apparatus according to any one of claims 6 to 12, wherein the predetermined value is selected to avoid interference between the beams on the beam trajectory.
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