WO2017057715A1 - 異物検査装置及び異物検査システム - Google Patents
異物検査装置及び異物検査システム Download PDFInfo
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- WO2017057715A1 WO2017057715A1 PCT/JP2016/079096 JP2016079096W WO2017057715A1 WO 2017057715 A1 WO2017057715 A1 WO 2017057715A1 JP 2016079096 W JP2016079096 W JP 2016079096W WO 2017057715 A1 WO2017057715 A1 WO 2017057715A1
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N23/00—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00
- G01N23/02—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material
- G01N23/06—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material and measuring the absorption
- G01N23/083—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material and measuring the absorption the radiation being X-rays
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N23/00—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00
- G01N23/02—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material
- G01N23/04—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material and forming images of the material
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N23/00—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00
- G01N23/02—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material
- G01N23/06—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material and measuring the absorption
- G01N23/18—Investigating the presence of flaws defects or foreign matter
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N27/00—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
- G01N27/72—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating magnetic variables
Definitions
- This disclosure relates to a foreign matter inspection apparatus and a foreign matter inspection system.
- Patent Document 1 X-ray inspection for detecting foreign matter contained in an object to be inspected using X-ray permeability and foreign matter contained in the object to be inspected using an interaction between a magnetic field and a metal are disclosed.
- a foreign substance inspection apparatus capable of performing both of metal detection and the detection is described.
- non-metallic foreign matter that is difficult to detect by metal detection is detected by X-ray inspection, and low-density foreign matter that is difficult to detect by X-ray inspection is detected by metal detection. This increases the accuracy of foreign object detection.
- the foreign substance inspection apparatus described in Patent Document 1 cannot use data such as adjusting the setting of the detection threshold value of the other using one result data, for example.
- This disclosure is intended to provide a foreign substance inspection apparatus and a foreign substance inspection system that can be used in association with result data of X-ray inspection and result data of metal detection.
- a foreign matter inspection apparatus uses a transport unit that transports an object to be inspected, and X that detects foreign matter contained in the object being transported by the transport unit using X-ray transparency.
- X-ray inspection unit metal detection unit for detecting foreign matter contained in inspection object being transported by transport unit using line inspection unit, interaction between magnetic field and metal, at least part of transport unit,
- a housing that houses the metal detection unit, and a data management unit that associates and stores the result data of the X-ray inspection unit and the result data of the metal detection unit in the storage unit.
- the data management unit associates the result data of the X-ray inspection unit and the result data of the metal detection unit and stores them in the storage unit. For this reason, the result data of X-ray inspection and the result data of metal detection can be used in association with each other.
- the data management unit uses the inspection time of the X-ray inspection unit and the detection time of the metal detection unit, and results data of the X-ray inspection unit and results of the metal detection unit Data may be associated.
- the inspection time By using the inspection time, the result data of the X-ray inspection unit and the result data of the metal detection unit for the same inspection object can be associated.
- the data management unit when the X-ray inspection unit or the metal detection unit detects foreign matter, the result data of the X-ray inspection unit and the result data of the metal detection unit. You may associate and memorize
- a foreign matter inspection system uses a transport unit that transports an object to be inspected, and X that detects foreign matter contained in the object being transported by the transport unit using X-ray transparency. Result data of a line inspection unit, a metal detection unit that detects foreign matter contained in an object being transported by a transport unit using an interaction between a magnetic field and metal, a storage unit, and an X-ray inspection unit And a data management unit that associates and stores the result data of the metal detection unit in the storage unit.
- This foreign matter inspection system has the same effect as the foreign matter inspection apparatus described above.
- the result data of the X-ray inspection and the result data of the metal detection can be used in association with each other.
- FIG. 1 is a front view of a foreign matter inspection apparatus according to an embodiment.
- FIG. 2 is a conceptual diagram illustrating the internal configuration and control system of the foreign matter inspection apparatus shown in FIG.
- FIG. 3 is an explanatory diagram of a main configuration of the X-ray inspection unit and the metal detection unit of FIG.
- FIG. 4 is a perspective view of main components of the X-ray inspection unit and the metal detection unit of FIG.
- FIG. 5 is a functional block diagram relating to an example of data management of the foreign matter inspection apparatus shown in FIG. 6 is an example of data management of the foreign matter inspection apparatus shown in FIG. 1 shown in FIG.
- FIG. 7 is a flowchart showing an example of data management processing of the foreign matter inspection apparatus shown in FIG.
- FIG. 8 is a functional block diagram of the foreign matter inspection system according to the embodiment.
- FIG. 1 is a front view of a foreign matter inspection apparatus 1 according to an embodiment.
- a foreign matter inspection device 1 shown in FIG. 1 is a device that detects foreign matter contained in an inspection object.
- the inspected object is, for example, food.
- the foreign object inspection apparatus 1 performs X-ray inspection and metal detection while conveying the inspection object in the interior thereof, and inspects whether or not the inspection object contains foreign objects.
- X-ray inspection is a technique for detecting foreign matter contained in an object to be inspected using X-ray transparency, and is realized by the X-ray inspection unit 2 (see FIG. 2).
- metal detection is a technique for detecting a foreign substance contained in an inspection object using an interaction between a magnetic field and metal, and is realized by the metal detection unit 3 (see FIG. 2). In metal detection, a metal foreign object can be detected. Details of the X-ray inspection unit 2 and the metal detection unit 3 will be described later.
- the foreign matter inspection apparatus 1 has a housing 4 in which a space is defined.
- the housing 4 accommodates the X-ray inspection unit 2 and the metal detection unit 3 therein.
- the housing 4 shields X-rays generated by the X-ray inspection unit 2 and suppresses external leakage of X-rays.
- the housing 4 is made of, for example, stainless steel.
- the housing 4 has a box shape in this embodiment.
- An opening 4 a that communicates with the inside of the housing 4 is formed on the left side surface of the housing 4.
- an opening 4 b that communicates with the inside of the housing 4 is formed on the right side surface of the housing 4.
- the object to be inspected is carried into the inside of the housing 4 from the opening 4a and inspected, and is carried out of the housing 4 through the opening 4b. That is, the opening 4a serves as an inspection object carry-in port, and the opening 4b serves as an inspection object carry-out port.
- an upper door 40 and a lower door 41 that open and close the housing 4 are provided on the front surface of the housing 4.
- the upper door 40 and the lower door 41 have a hinged door structure, for example. By opening or closing the upper door 40 or the lower door 41, at least a part of an X-ray inspection unit 2 and a metal detection unit 3 described later are exposed to the outside.
- the upper door 40 and the lower door 41 are made of, for example, stainless steel.
- a display 5 and an operation switch 6 are provided on the front surface of the upper door 40.
- the display 5 is a display device having both a display function and an input function, for example, a touch panel.
- the display 5 displays the result of X-ray inspection and metal detection, and also displays an operation screen for setting various parameters related to metal detection and X-ray inspection.
- the operation switch 6 is a power switch for the X-ray inspection unit 2 and the metal detection unit 3.
- the housing 4 is supported by a support base 7.
- a notification unit 8 and a cooler 9 are provided on the upper surface of the housing 4.
- the notification unit 8 notifies of foreign matter contamination and the operating state of the device.
- the notification unit 8 includes a first notification device 81 corresponding to the X-ray inspection unit 2 and a second notification device 82 corresponding to the metal detection unit 3.
- the cooler 9 sends cool air to the inside of the housing 4 and adjusts the temperature of the devices arranged inside the housing 4.
- FIG. 2 is a conceptual diagram illustrating the internal configuration and control system of the foreign matter inspection apparatus 1 shown in FIG.
- the inside of the housing 4 is inspected with a substrate chamber T ⁇ b> 1 in which a part of an X-ray generator to be described later and a control board of a component are arranged, and an object S to be inspected. It is divided into the inspection room T2 to be performed. The temperature of the substrate chamber T1 is adjusted by the cooler 9 described above.
- a conveyor (conveying unit) 10 for conveying the inspection object S is disposed.
- the conveyor 10 is a roller belt conveyor in the present embodiment, and extends in the horizontal direction inside the housing 4 with one end located in the opening 4a and the other end located in the opening 4b. is doing. That is, the housing
- the conveyor 10 according to the present embodiment carries the inspection object S into the housing 4 through the opening 4a and carries the inspection object S out of the housing 4 through the opening 4b.
- An X-ray shielding curtain 42 is disposed in the opening 4a.
- an X-ray shielding curtain 43 is disposed in the opening 4b.
- the X-ray shielding curtains 42 and 43 have upper ends that are fixed to the housing 4 and lower ends that are free ends.
- the X-ray shielding curtains 42 and 43 shield X-rays generated by the X-ray inspection unit 2 and suppress external leakage of X-rays.
- the X-ray shielding curtains 42 and 43 are made of, for example, a flexible material containing tungsten.
- the loading conveyor 11 may be disposed on the right side of the conveyor 10 and the unloading conveyor 12 may be disposed on the left side of the conveyor 10. Further, the carry-out conveyor 12 may have a function of distributing the inspection object S.
- an annular case 31 having a through hole 31a for allowing the inspection object S to pass therethrough is disposed in the inspection room T2.
- the conveyor 10 penetrates the case 31 through the through hole 31a.
- the inspection object S passes through the through hole 31 a of the case 31 by the conveyor 10, and X-ray inspection and metal detection are sequentially performed in the case 31.
- the case 31 is made of, for example, stainless steel.
- the X-ray inspection unit 2 includes an X-ray inspection control unit 20, an X-ray generator 21, and an X-ray detector 22.
- the X-ray generator 21 includes an X-ray source that generates X-rays and a slit mechanism.
- the X-ray detector 22 detects X-rays generated by the X-ray generator 21.
- the X-ray generator 21 and the X-ray detector 22 are arranged so as to face each other so as to sandwich the conveyor 10 and the case 31 from above and below.
- an X-ray source and the like are disposed in the substrate chamber T1, and a mechanism for irradiating X-rays is disposed in the examination chamber T2.
- a mechanism for irradiating X-rays is disposed in the examination chamber T2.
- the X-ray detector 22 for example, a line sensor in which a plurality of X-ray detection sensors are arranged in parallel in the front-rear direction is used.
- the X-ray detector 22 is accommodated in the substrate case 23 in order to reduce X-ray leakage.
- the substrate case 23 is provided with a slit 23a (see FIG. 4) in order to allow X-rays to reach the X-ray detector 22.
- the X-ray inspection control unit 20 temporarily stores an input / output interface I / O for inputting / outputting signals to / from the outside, a ROM (Read Only Memory) in which a program and information for processing are stored, and data. It has a storage medium such as a RAM (Random Access Memory) and an HDD (Hard Disk Drive), a CPU (Central Processing Unit), a communication circuit, and the like.
- the X-ray inspection control unit 20 stores input data in the RAM based on a signal output from the CPU, loads a program stored in the ROM into the RAM, and executes the program loaded in the RAM. The functions described later are realized.
- the X-ray inspection control unit 20 is disposed in the substrate chamber T1 and connected to the X-ray generator 21 and the X-ray detector 22.
- the X-ray inspection control unit 20 is connected to the display 5 and receives operation information from an operator via an operation screen.
- the X-ray inspection control unit 20 sets operation profiles of the X-ray generator 21 and the X-ray detector 22 based on the operation information, and controls operations of the X-ray generator 21 and the X-ray detector 22.
- the X-ray inspection control unit 20 detects the inspection object S using the laser sensor 24 disposed upstream of the X-ray generator 21 and the X-ray detector 22, the X-ray inspection control unit 20 inspects the inspection object S. Start.
- the X-ray inspection control unit 20 controls the X-ray generator 21 to irradiate the inspection object S being conveyed by the conveyor 10 with X-rays.
- the X-ray detector 22 measures the X-ray transmission amount of X-rays that have passed through the inspection object S, and outputs the measured X-ray transmission amount to the X-ray inspection control unit 20.
- the X-ray inspection control unit 20 generates an X-ray transmission image in which the X-ray transmission amount acquired in time series is reflected in the pixel value. Then, the X-ray inspection control unit 20 detects the foreign matter by analyzing the X-ray transmission image using an image processing technique. For example, the X-ray inspection control unit 20 determines whether there is an image region in which the difference from the reference transmittance of the inspection object S is a predetermined value or more based on the pixel value of the X-ray transmission image. The X-ray inspection control unit 20 determines that a foreign object has been detected when there is an image region in which the difference from the reference transmittance of the inspection object S is a predetermined value or more.
- the X-ray inspection control unit 20 displays the result data of the X-ray inspection on the display 5 or stores the result data in the storage unit in response to a request from the worker. Further, the X-ray inspection control unit 20 indicates that when the X-ray generator 21 and the X-ray detector 22 are operating normally, the device relating to the X-ray inspection is operating using the first alarm 81. To the workers. Further, when it is determined that a foreign object has been detected, the X-ray inspection control unit 20 notifies the worker that the foreign object has been detected using the first notification device 81.
- FIG. 3 is an explanatory diagram of the main components of the X-ray inspection unit 2 and the metal detection unit 3 of FIG.
- FIG. 4 is a perspective view of the main components of the X-ray inspection unit 2 and the metal detection unit 3 of FIG.
- the case 31 includes a main body portion 32, a first hood portion 33, and a second hood portion 34.
- the first hood portion 33 is provided on the opening 4 a side (loading side) with respect to the main body portion 32.
- the second hood part 34 is provided on the opening part 4 b side (the outlet side) with respect to the main body part 32.
- the through hole 31 a of the case 31 described above is defined by the inner walls of the main body portion 32, the first hood portion 33, and the second hood portion 34.
- an X-ray passage slit 33a that allows X-rays to pass is formed below the X-ray generator 21.
- An X-ray passage slit 33b that allows X-rays to pass through is formed on the lower surface of the first hood portion 33 so as to face the X-ray passage slit 33a.
- the X-ray detector 22 is disposed below the X-ray passage slit 33b.
- a slit 33c is provided on the downstream side (the main body portion 32 side) of the X-ray passage slits 33a and 33b.
- a laser sensor 38 is disposed in the slit 33c. The laser sensor 38 irradiates the inspection object S on the conveyor 10 with laser through the slit 33c.
- the metal detection unit 3 includes a metal detection control unit 30, an annular transmission coil 35 that is a search coil, and annular reception coils 36 and 37 that are search coils.
- the transmission coil 35 and the reception coils 36 and 37 are formed of a conductive material such as metal and are disposed inside the main body 32 of the case 31.
- the transmission coil 35 and the reception coils 36 and 37 are arranged coaxially with the extending direction of the through hole 31a. That is, the transmission coil 35 and the reception coils 36 and 37 are disposed so as to surround the through hole 31a.
- the inspection object S passes through the transmission coil 35 and the reception coils 36 and 37 by the conveyor 10.
- the transmission coil 35 is disposed between the reception coils 36 and 37.
- the receiving coils 36 and 37 are differentially connected to each other and arranged symmetrically with respect to the transmitting coil 35.
- the two receiving coils 36 and 37 have the same flux linkage.
- the transmission coil 35 is configured to be energized and generates magnetic flux.
- a voltage is excited in each of the receiving coils 36 and 37 by electromagnetic induction of a magnetic field generated by the transmitting coil 35.
- the first hood portion 33 and the second hood portion 34 shield external leakage of the magnetic field generated by the transmission coil 35 and entry of an external magnetic field.
- the metal detection control unit 30 includes an input / output interface I / O for inputting / outputting signals from / to the outside, a ROM storing programs and information for processing, a RAM for temporarily storing data, an HDD, etc. Storage medium, CPU, and communication circuit.
- the metal detection control unit 30 stores input data in the RAM based on a signal output from the CPU, loads a program stored in the ROM into the RAM, and executes the program loaded into the RAM, which will be described later. Realize the function to do.
- the metal detection control unit 30 is disposed in the substrate chamber T1 and connected to the X-ray inspection control unit 20, and receives operation information from the worker input to the operation screen of the display 5 via the X-ray inspection control unit 20. Accept.
- the metal detection control unit 30 sets operation profiles of the transmission coil 35 and the reception coils 36 and 37 based on the operation information.
- the metal detection control unit 30 detects the inspection object S using the laser sensor 38 disposed on the upstream side of the transmission coil 35 and the reception coils 36 and 37, the metal detection control unit 30 starts metal detection of the inspection object S. .
- the metal detection control unit 30 supplies an alternating excitation current to the transmission coil 35 to generate a magnetic flux.
- the magnetic flux generated by the transmission coil 35 passes through the two reception coils 36 and 37, and a voltage is excited in each of the reception coils 36 and 37 by electromagnetic induction.
- the metal detection control unit 30 acquires the output voltage of the differential connection of the receiving coils 36 and 37 and determines metal detection. When the differential connection output voltage is 0, the metal detection control unit 30 determines that a metal foreign object is not detected. On the other hand, when the differential connection output voltage is not zero, the metal detection control unit 30 determines that a metal foreign object has been detected.
- the metal detection control unit 30 displays the metal detection result data on the display 5 or stores the result data in the storage unit in response to a request from the worker. In addition, when the transmission coil 35 and the reception coils 36 and 37 are operating normally, the metal detection control unit 30 informs the worker that the metal detection device is operating using the second alarm 82. Inform. Furthermore, when the metal detection control unit 30 determines that a foreign object has been detected, the metal detection control unit 30 notifies the worker that the foreign object has been detected using the second notification device 82.
- the case 31 may be held by a vibration isolation table 39 (anti-vibration tables 39a and 39b) for the purpose of improving the vibration resistance characteristics.
- the X-ray inspection unit 2 and the metal detection unit 3 described above are configured to be independently operable. That is, the foreign substance inspection apparatus 1 can perform not only both the X-ray inspection and the metal detection but also any one of the X-ray inspection and the metal detection.
- the X-ray inspection unit 2 since the X-ray inspection unit 2 performs display control of the display 5, the operation screen of the metal detection unit 3 is displayed on the display 5 when the X-ray inspection unit 2 is stopped. Not. For this reason, a sub-display (not shown) connected to the metal detection unit 3 is disposed inside the housing 4.
- the metal detection unit 3 receives operation information via the sub display and displays result data or the like on the sub display.
- FIG. 5 is a functional block diagram relating to an example of data management of the foreign matter inspection apparatus 1 shown in FIG.
- the X-ray inspection control unit 20 includes a first storage unit 211 (an example of a storage unit).
- the metal detection control unit 30 includes a second storage unit 310.
- the first storage unit 211 and the second storage unit 310 are non-volatile storage media that retain storage even when the power is turned off, such as a flash memory or an HDD.
- the X-ray inspection control unit 20 stores the result data of the X-ray inspection in the first storage unit 211.
- the result data of the X-ray inspection is information acquired in the X-ray inspection.
- the result data of the X-ray inspection is information used for foreign matter determination in the X-ray inspection, for example.
- the result data of the X-ray inspection is an X-ray transmission image in which the X-ray transmission amount is reflected in the pixel value or a processed image obtained by processing the X-ray transmission image.
- the X-ray inspection control unit 20 may store the result data of the X-ray inspection and the inspection time of the X-ray inspection unit 2 in the first storage unit 211 in association with each other.
- the inspection time of the X-ray inspection unit 2 may be, for example, the time when the inspection object S is detected using the laser sensor 24, or the time when the generation or inspection of the result data is completed.
- the X-ray inspection control unit 20 acquires time by using a clock function of a real-time clock provided in the X-ray inspection control unit 20, for example.
- the X-ray inspection control unit 20 may store the result data of the X-ray inspection and the inspection result of the X-ray inspection in the first storage unit 211 in association with each other.
- the inspection result of the X-ray inspection is, for example, a determination result indicating whether or not a foreign object has been detected.
- the inspection result of the X-ray inspection is, for example, information “OK” indicating that a foreign object is not detected or information “NG” indicating that a foreign object is detected.
- FIG. 6 is an example of data management of the foreign matter inspection apparatus 1 shown in FIG.
- FIG. 6A is an example of data management of the X-ray inspection control unit 20.
- the X-ray inspection control unit 20 manages the inspection time, X-ray inspection result data, and determination results in a table format.
- the X-ray inspection result data “A1” is associated with the inspection time “T1” and the determination result “OK”.
- the X-ray inspection result data “A2” is associated with the inspection time “T2” and the determination result “NG”.
- the X-ray inspection control unit 20 may store the result data of the X-ray inspection and the setting information of the X-ray inspection in the first storage unit 211 in association with each other.
- the setting information of the X-ray inspection is information that is set by a worker or automatically in order to perform the X-ray inspection.
- the setting information of the X-ray inspection includes, for example, an X-ray output value, an X-ray image processing parameter, a foreign object detection threshold, and the like.
- the parameter of the X-ray image processing is, for example, an image filter parameter that converts an X-ray transmission amount into a pixel value.
- the foreign object detection threshold is, for example, a threshold for determining how much a difference from the reference transmittance of the inspection object S is to be determined as a foreign object.
- the X-ray inspection control unit 20 temporarily stores the result data of the X-ray inspection in a ROM or the like, and stores the result data of the X-ray inspection in the first storage unit 211 when the data storage condition is satisfied.
- the data storage condition is a standard for determining whether or not to store result data.
- An example of the data storage condition is when foreign matter is detected (when the inspection result is “NG”).
- the data storage condition may be a case where an operator's storage instruction is received via the operation screen of the display 5 or when the storable capacity of the first storage unit 211 is equal to or less than a threshold value. There may be.
- the X-ray inspection control unit 20 can effectively utilize the capacity of the first storage unit 211 or maintain the capacity at an appropriate value by performing data management using the data storage conditions.
- the metal detection control unit 30 stores the metal detection result data in the second storage unit 310.
- the metal detection result data is information acquired in metal detection.
- the metal detection result data is, for example, information used for metal foreign object determination of metal detection.
- the metal detection result data is a graph of the output voltage of the differential connection or a peak value of the output voltage.
- the metal detection control unit 30 may store the result data of the metal detection and the detection time of the metal detection unit 3 in the second storage unit 310 in association with each other.
- the detection time of the metal detection unit 3 may be, for example, the time when the inspection object S is detected using the laser sensor 38 or the time when the generation or detection of the result data is completed.
- the metal detection control unit 30 acquires the time using a clock function of a real-time clock provided in the metal detection control unit 30.
- the metal detection control unit 30 may store the metal detection result data and the metal detection detection result in the second storage unit 310 in association with each other.
- the detection result of metal detection is, for example, a determination result indicating whether a metal foreign object has been detected.
- the detection result of the metal detection is, for example, information “OK” indicating that the metal foreign object is not detected or information “NG” indicating that the metal foreign object is detected.
- FIG. 6 is an example of data management of the metal detection control unit 30.
- the metal detection control unit 30 manages the inspection time, metal detection result data, and determination results in a table format.
- the metal detection result data “B1” is associated with the detection time “T1” and the determination result “OK”.
- the metal detection result data “B2” is associated with the inspection time “T2” and the determination result “NG”.
- the metal detection control unit 30 may store the metal detection result data and the metal detection setting information in the second storage unit 310 in association with each other.
- the metal detection setting information is information set by a worker or automatically in order to perform metal detection.
- the metal detection setting information includes, for example, an alternating excitation current value, a metal foreign object detection threshold value, and the like.
- the metal foreign object detection threshold value is a threshold value that determines, for example, how much the difference between the excitation voltages of the two receiving coils 36 and 37 should be determined as a foreign object. For example, when the foreign object is detected when the output voltage of the differential connection is 0, the threshold is set to 0.
- the metal detection control unit 30 may temporarily store the metal detection result data in a ROM or the like, and store the metal detection result data in the second storage unit 310 when the data storage condition is satisfied.
- the data storage conditions are the same as those described in the X-ray inspection control unit 20.
- the data storage condition of the metal detection control unit 30 may be different from the data storage condition of the X-ray inspection control unit 20.
- the X-ray inspection control unit 20 and the metal detection control unit 30 are capable of bidirectional communication.
- the data management unit 210 of the X-ray inspection control unit 20 acquires information related to metal detection from the metal detection control unit 30 and associates the result data of both.
- the information acquisition timing related to metal detection may be a timing at which metal detection is performed, or may be a predetermined timing after metal detection is performed.
- the predetermined timing is a timing after a certain time has elapsed, a timing immediately before the apparatus is turned off, or the like.
- the data management unit 210 associates the result data of the X-ray inspection unit 2 and the result data of the metal detection unit 3 by using the inspection time of the X-ray inspection unit 2 and the detection time of the metal detection unit 3. For example, when the inspection time of the X-ray inspection unit 2 and the detection time of the metal detection unit 3 are within a predetermined time range, the data management unit 210 sets the result data of the X-ray inspection unit 2 and the metal detection unit 3. Associate with result data.
- the predetermined time range is determined by using a difference in execution time between X-ray inspection and metal detection for the same inspection object S. Specifically, the predetermined time range is determined depending on the position where X-ray inspection and metal detection are performed and the conveyance speed of the conveyor 10. In the following description, it is assumed that there is no time difference between the execution timings of X-ray inspection and metal detection for the same inspection object S in consideration of easy understanding.
- the data management unit 210 stores the result data of the X-ray inspection unit 2 and the result data of the metal detection unit 3 in the first storage unit 211 in association with each other.
- the data management unit 210 may store only the relevance between the two (for example, only the identifier that can identify the data) in the first storage unit 211, or collectively store the result data of both as one data. Also good.
- the data management unit 210 acquires an identifier that can identify the metal detection result data from the metal detection control unit 30. Then, the data management unit 210 stores the obtained metal detection identifier and the identifier of the result data of the X-ray inspection in association with each other. When both the result data are set as one data, the data management unit 210 acquires the metal detection result data from the metal detection control unit 30. Then, the data management unit 210 collectively stores the acquired metal detection result data and the X-ray inspection result data as one data.
- the data management unit 210 may store the result data of the X-ray inspection unit 2 and the result data of the metal detection unit 3 in the first storage unit 211 in association with each other only when the related condition is satisfied.
- the related condition is a condition for the data management unit 210 to determine whether to associate both result data. The case where the related condition is satisfied is, for example, when the X-ray inspection unit 2 or the metal detection unit 3 detects a foreign object, or when a worker's association instruction is received via the operation screen of the display 5. is there.
- FIG. 6 is an example of data management of the data management unit 210.
- the data management unit 210 detects the result data of the X-ray inspection unit 2 and the metal detection unit 3 only when the X-ray inspection unit 2 or the metal detection unit 3 detects a foreign object.
- the result data is associated and stored. For example, the determination result of the X-ray inspection data “A1” at the inspection time “T1” is “OK”, and the determination result of the metal detection data “B1” at the detection time “T1” is “OK”. In this case, the data management unit 210 does not associate the X-ray inspection data “A1” with the metal detection data “B1”.
- the determination result of the X-ray inspection data “A2” at the inspection time “T2” is “NG”, and the determination result of the metal detection data “B2” at the detection time “T2” is “NG”.
- the data management unit 210 associates the X-ray inspection data “A2” with the metal detection data “B2”.
- the determination result of the X-ray inspection data “A5” at the inspection time “T5” is “NG”, and the determination result of the metal detection data “B5” at the detection time “T5” is “OK”.
- the data management unit 210 associates the X-ray inspection data “A5” with the metal detection data “B5”.
- the data management unit 210 may associate the result data of the X-ray inspection unit 2 and the result data of the metal detection unit 3 only when the X-ray inspection unit 2 or the metal detection unit 3 detects a foreign object. .
- the data management unit 210 protects only the X-ray inspection result data and metal detection result data shown in (C) of FIG. 6 and deletes other data (both determination results are “OK” result data). May be. For example, the data management unit 210 may delete the result data in which both determination results are “OK” when a certain time has elapsed since the data generation.
- FIG. 7 is a flowchart showing an example of data management processing of the foreign matter inspection apparatus 1 shown in FIG.
- the flowchart shown in FIG. 7 is executed, for example, at the power-on timing of the foreign substance inspection apparatus 1.
- the result data is nonvolatile only when the X-ray inspection unit 2 and the metal detection unit 3 store the result data in a temporary storage medium and the data management unit 210 determines that the storage is necessary.
- An example stored in the storage medium will be described.
- the X-ray inspection unit 2 of the foreign substance inspection apparatus 1 performs an X-ray inspection process (S10).
- S10 the X-ray inspection unit 2 irradiates the inspection object S with X-rays, acquires an X-ray transmission image and an inspection time, temporarily stores them in a ROM, and performs image processing. To determine foreign matter.
- the metal detection unit 3 of the foreign matter inspection apparatus 1 performs a metal detection process (S12).
- the metal detection unit 3 acquires the differential connection output voltage and the detection time when the inspection object S passes the search coil, temporarily stores it in the ROM, etc. I do.
- the data management unit 210 of the foreign matter inspection apparatus 1 performs related condition determination processing (S14).
- the data management unit 210 specifies the determination result of the X-ray inspection and the determination result of the metal detection for the same inspection object S based on the inspection time and the detection time. Then, the data management unit 210 determines whether or not “NG” exists in any one of the determination result of the X-ray inspection and the determination result of the metal detection.
- the data management unit 210 performs a storage process (S16).
- the data management unit 210 stores both result data in the first storage unit 211 in association with each other as a storage process (S16).
- the data management unit 210 associates the result data of the X-ray inspection unit 2 and the result data of the metal detection unit 3 with the first storage unit 211. Is remembered. For this reason, the result data of X-ray inspection and the result data of metal detection can be used in association with each other.
- the data management unit 210 when the X-ray inspection unit 2 or the metal detection unit 3 detects foreign matter, results data and metal of the X-ray inspection unit 2
- the result data of the detection unit 3 can be associated and stored in the first storage unit 211.
- both result data can be stored in association with each other even when the other does not detect the foreign object. For this reason, it is possible to verify afterwards the setting of an inspection in which no foreign matter is detected despite the presence of the foreign matter.
- result data and setting information are stored in association with each other, it is possible to review setting information for an examination in which no foreign matter has been detected. Furthermore, it is possible to avoid the compression of the capacity of the storage unit that stores the result data.
- the data management unit 210 may be provided in the metal detection control unit 30.
- the data management unit 210 may acquire information from the X-ray inspection control unit 20 and associate both data with each other and store them in the second storage unit 310.
- the data management unit 210 may be prepared as a control board other than the X-ray inspection control unit 20 and the metal detection control unit 30.
- first storage unit 211 and the second storage unit 310 are not limited to those provided in the foreign matter inspection apparatus 1, and may be a memory or an external HDD that is externally connected to the foreign matter inspection apparatus 1.
- the example in which the inspection object S is transported from the opening 4a to the opening 4b has been described.
- the transport direction may be reversed.
- the laser sensor 24 may be disposed between the opening 4b and the second hood portion 34, and a slit may be provided on the side surface of the second hood portion 34.
- the determination result of the X-ray inspection unit 2 and the metal detection unit 3 are “OK” or “NG” is shown, but the determination result may include image data or the like.
- the foreign matter inspection apparatus 1 may be configured as a system in which some of the components are physically separated.
- FIG. 8 is a functional block diagram of the foreign matter inspection system 100 according to the embodiment.
- the foreign substance inspection system 100 includes components corresponding to the foreign substance inspection apparatus 1.
- the foreign object inspection system 100 is different from the foreign object inspection apparatus 1 in that the X-ray inspection unit 2, the metal detection unit 3, and the data management unit 210 are physically separated from each other, and the third storage unit 50 (storage unit). 1) is different, and the others are the same. That is, when the foreign substance inspection system 100 and the foreign substance inspection apparatus 1 are compared, only the number of storage units and the arrangement of components are different. Below, it demonstrates centering around difference with the foreign material inspection apparatus 1, and the overlapping description is abbreviate
- the foreign matter inspection system 100 includes a conveyor 10, an X-ray inspection unit 2A, a metal detection unit 3, a data management unit 210A, and a third storage unit 50.
- the X-ray inspection unit 2 ⁇ / b> A is physically separated from the metal detection unit 3.
- two casings having the same configuration as the casing 4 are provided for the conveyor 10, the X-ray inspection unit 2A is accommodated in the first casing, and the metal detection unit 3 is mounted in the second casing. Be contained.
- the X-ray inspection unit 2A includes an X-ray inspection control unit 20A having a first storage unit 211A, an X-ray generator 21, and an X-ray detector 22.
- the X-ray inspection control unit 20A, the X-ray generator 21, and the X-ray detector 22 are accommodated in, for example, the first casing described above.
- the metal detection unit 3 includes a metal detection control unit 30 having a second storage unit 310, a transmission coil 35, and reception coils 36 and 37.
- the metal detection control unit 30, the transmission coil 35, and the reception coils 36 and 37 are accommodated, for example, in the above-described second casing.
- the data management unit 210A and the third storage unit 50 are physically separated from the X-ray inspection unit 2A and the metal detection unit 3. That is, the data management unit 210A and the third storage unit 50 are arranged outside the first housing and outside the second housing.
- the X-ray inspection unit 2A, the metal detection unit 3, the data management unit 210A, and the third storage unit 50 are respectively connected via communication.
- the third storage unit 50 is a non-volatile storage medium that retains memory even when the power is turned off, and is, for example, a flash memory or an HDD.
- the result of the X-ray inspection is stored in the first storage unit 211, and the result of the metal inspection is stored in the second storage unit 310.
- Data relating to the association between the result data of the X-ray inspection unit 2A and the result data of the metal detection unit 3 is stored in the first storage unit 211 by the data management unit 210.
- data relating to the association is stored in the third storage unit 50 by the data management unit 210A. That is, in the foreign matter inspection system 100, components related to the data association function in the foreign matter inspection apparatus 1 are arranged outside the foreign matter inspection apparatus 1. Other configurations and functions of the foreign object inspection system 100 are the same as those of the foreign object inspection apparatus 1.
- the foreign matter inspection system 100 described above has the same effect as the foreign matter inspection apparatus 1.
- the foreign substance inspection system 100 has not only a form in which the X-ray inspection part 2A, the metal detection part 3, the data management part 210A, and the third storage part 50 are all separated, but also a part of the function of the foreign substance inspection apparatus 1. It can also be set as the form arrange
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Abstract
Description
Claims (4)
- 被検査物を搬送する搬送部と、
X線の透過性を利用して、前記搬送部で搬送されている前記被検査物に含まれる異物を検出するX線検査部と、
磁界と金属との相互作用を利用して、前記搬送部で搬送されている前記被検査物に含まれる異物を検出する金属検出部と、
前記搬送部の少なくとも一部、前記X線検査部、及び前記金属検出部を内部に収容する筐体と、
前記X線検査部の結果データと前記金属検出部の結果データとを関連付けて記憶部に記憶するデータ管理部と、
を備える異物検査装置。 - 前記データ管理部は、前記X線検査部の検査時刻と、前記金属検出部の検出時刻とを用いて、前記X線検査部の結果データと前記金属検出部の結果データとを関連付ける請求項1に記載の異物検査装置。
- 前記データ管理部は、前記X線検査部又は前記金属検出部が異物を検出した場合には、前記X線検査部の結果データと前記金属検出部の結果データとを関連付けて前記記憶部に記憶する請求項1又は2に記載の異物検査装置。
- 被検査物を搬送する搬送部と、
X線の透過性を利用して、前記搬送部で搬送されている前記被検査物に含まれる異物を検出するX線検査部と、
磁界と金属との相互作用を利用して、前記搬送部で搬送されている前記被検査物に含まれる異物を検出する金属検出部と、
記憶部と、
前記X線検査部の結果データと前記金属検出部の結果データとを関連付けて前記記憶部に記憶するデータ管理部と、
を備える異物検査システム。
Priority Applications (4)
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US15/764,523 US20180313772A1 (en) | 2015-10-01 | 2016-09-30 | Foreign-matter inspection device and foreign-matter inspection system |
JP2017504833A JP6157775B1 (ja) | 2015-10-01 | 2016-09-30 | 異物検査装置及び異物検査システム |
CN201680057158.XA CN108449986A (zh) | 2015-10-01 | 2016-09-30 | 异物检查装置及异物检查系统 |
EP16851884.3A EP3358341A4 (en) | 2015-10-01 | 2016-09-30 | FOREIGN BODY INSPECTION DEVICE AND FOREIGN BODY INSPECTION SYSTEM |
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JP2015-195911 | 2015-10-01 | ||
JP2015195911 | 2015-10-01 |
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US (1) | US20180313772A1 (ja) |
EP (1) | EP3358341A4 (ja) |
JP (1) | JP6157775B1 (ja) |
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JP2019049431A (ja) * | 2017-09-08 | 2019-03-28 | アンリツインフィビス株式会社 | 物品検査装置及び物品検査システム |
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PL3317652T3 (pl) | 2015-06-30 | 2021-03-08 | Illinois Tool Works Inc. | Urządzenie i sposób pomiaru promieniowania rentgenowskiego inline |
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- 2016-09-30 JP JP2017504833A patent/JP6157775B1/ja active Active
- 2016-09-30 US US15/764,523 patent/US20180313772A1/en not_active Abandoned
- 2016-09-30 EP EP16851884.3A patent/EP3358341A4/en not_active Withdrawn
- 2016-09-30 WO PCT/JP2016/079096 patent/WO2017057715A1/ja active Application Filing
- 2016-09-30 CN CN201680057158.XA patent/CN108449986A/zh active Pending
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JPH0949883A (ja) * | 1995-08-07 | 1997-02-18 | Toshiba Corp | 異物検査装置 |
JP2003294852A (ja) * | 2002-04-02 | 2003-10-15 | Yamato Scale Co Ltd | 異物特定装置 |
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JP7212446B2 (ja) | 2017-09-08 | 2023-01-25 | アンリツ株式会社 | 物品検査装置及び物品検査システム |
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US20180313772A1 (en) | 2018-11-01 |
JPWO2017057715A1 (ja) | 2017-10-05 |
CN108449986A (zh) | 2018-08-24 |
EP3358341A4 (en) | 2019-07-03 |
EP3358341A1 (en) | 2018-08-08 |
JP6157775B1 (ja) | 2017-07-05 |
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