WO2023176094A1 - 自動分析装置 - Google Patents

自動分析装置 Download PDF

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Publication number
WO2023176094A1
WO2023176094A1 PCT/JP2022/048038 JP2022048038W WO2023176094A1 WO 2023176094 A1 WO2023176094 A1 WO 2023176094A1 JP 2022048038 W JP2022048038 W JP 2022048038W WO 2023176094 A1 WO2023176094 A1 WO 2023176094A1
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WO
WIPO (PCT)
Prior art keywords
consumables
storage container
analysis
tray
operator
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/JP2022/048038
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English (en)
French (fr)
Japanese (ja)
Inventor
恭輔 毛利
樹 高倉
和広 野田
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Hitachi High Tech Corp
Original Assignee
Hitachi High Tech Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Hitachi High Tech Corp filed Critical Hitachi High Tech Corp
Priority to JP2024507524A priority Critical patent/JP7743608B2/ja
Priority to US18/846,726 priority patent/US20250224416A1/en
Priority to EP22932351.4A priority patent/EP4495601A4/en
Priority to CN202280093143.4A priority patent/CN118871789A/zh
Publication of WO2023176094A1 publication Critical patent/WO2023176094A1/ja
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N35/00Automatic analysis not limited to methods or materials provided for in any single one of groups G01N1/00 - G01N33/00; Handling materials therefor
    • G01N35/00584Control arrangements for automatic analysers
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N35/00Automatic analysis not limited to methods or materials provided for in any single one of groups G01N1/00 - G01N33/00; Handling materials therefor
    • G01N35/02Automatic analysis not limited to methods or materials provided for in any single one of groups G01N1/00 - G01N33/00; Handling materials therefor using a plurality of sample containers moved by a conveyor system past one or more treatment or analysis stations
    • G01N35/04Details of the conveyor system
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N35/00Automatic analysis not limited to methods or materials provided for in any single one of groups G01N1/00 - G01N33/00; Handling materials therefor
    • G01N35/00584Control arrangements for automatic analysers
    • G01N35/00722Communications; Identification
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N35/00Automatic analysis not limited to methods or materials provided for in any single one of groups G01N1/00 - G01N33/00; Handling materials therefor
    • G01N35/10Devices for transferring samples or any liquids to, in, or from, the analysis apparatus, e.g. suction devices, injection devices
    • G01N35/1002Reagent dispensers
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N35/00Automatic analysis not limited to methods or materials provided for in any single one of groups G01N1/00 - G01N33/00; Handling materials therefor
    • G01N2035/00178Special arrangements of analysers
    • G01N2035/00306Housings, cabinets, control panels (details)
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N35/00Automatic analysis not limited to methods or materials provided for in any single one of groups G01N1/00 - G01N33/00; Handling materials therefor
    • G01N35/00584Control arrangements for automatic analysers
    • G01N35/00722Communications; Identification
    • G01N2035/00891Displaying information to the operator
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N35/00Automatic analysis not limited to methods or materials provided for in any single one of groups G01N1/00 - G01N33/00; Handling materials therefor
    • G01N35/02Automatic analysis not limited to methods or materials provided for in any single one of groups G01N1/00 - G01N33/00; Handling materials therefor using a plurality of sample containers moved by a conveyor system past one or more treatment or analysis stations
    • G01N35/04Details of the conveyor system
    • G01N2035/0401Sample carriers, cuvettes or reaction vessels

Definitions

  • the present invention relates to an automatic analyzer.
  • Automatic analyzers react blood, urine, or other biological samples (analytes) with analytical reagents that specifically react with the components to be measured in the sample, and generate complexes by electrochemiluminescence.
  • analytical reagents that specifically react with the components to be measured in the sample
  • complexes by electrochemiluminescence.
  • the process from measuring the component to be measured to outputting the results is automatically performed.
  • an automatic analyzer equipped with a reagent waste tray on which a plurality of reagents taken out from a reagent storage means can be placed is disclosed (see Patent Document 1).
  • Patent Document 1 In automatic analyzers, if analysis operations are interrupted when replacing, collecting, or disposing of consumables or reagents, there is a concern that throughput and test accuracy will decrease. Therefore, in Patent Document 1, in addition to a mechanism for normal replacement of consumables, a dedicated mechanism for replacing consumables without interrupting the analysis operation is provided. However, when a dedicated mechanism is provided, there are concerns that the device will become larger and more expensive.
  • the present invention has been made in view of the above, and it is an object of the present invention to provide an automatic analyzer capable of replacing consumables without interrupting analysis operations while suppressing the increase in size and cost of the apparatus. shall be.
  • the present application includes multiple means for solving the above problems, but one example is an analysis section that executes the processing necessary for analyzing a sample, and a supply of consumables necessary for analysis to the analysis section.
  • an automatic analyzer comprising a consumables supply section that stores a plurality of consumables, and a control section that controls operations of the analysis section and the consumables supply section, the consumables supply section including a first consumables supply section that stores a plurality of consumables; a first consumables holding part capable of holding a consumables storage container, a second consumables holding part capable of holding a second consumables storage container storing a plurality of consumables; a transport mechanism that transports the consumables in the product holding section and the second consumables holding section to the analysis section;
  • the second consumables holding section is controlled so that the operator can access it, and the second consumables holding section is not allowed to be accessed by the operator. Access by an operator to the first consumables holding section and the second consumables
  • the present invention by not providing a dedicated mechanism, it is possible to suppress the increase in size and cost of the apparatus, and it is possible to replace consumables without interrupting analysis operation, thereby improving throughput. .
  • FIG. 1 is a diagram schematically showing the overall configuration of an automatic analyzer.
  • FIG. 3 is a diagram showing the positional relationship between a reaction container tray and a cover.
  • 7 is a flowchart showing main tray and buffer tray operation processing during analysis operation.
  • 5 is a flowchart showing the processing contents of reaction container tray exchange processing.
  • 12 is a flowchart showing the main tray replacement process during analysis standby.
  • 7 is a flowchart showing the contents of buffer tray exchange processing during analysis standby.
  • FIG. 3 is a diagram showing the order of use of reaction vessels arranged on the main tray.
  • FIG. 3 is a diagram showing the order of use of reaction vessels arranged on a buffer tray.
  • 5 is a flowchart showing the processing contents of reaction container tray status determination processing.
  • FIG. 3 is a functional block diagram of the control unit when the reaction container tray status determination process is performed by the end operation of the first reaction container transport unit.
  • FIG. 7 is a diagram showing a state management table used for state determination processing
  • FIG. 1 is a diagram schematically showing the overall configuration of an automatic analyzer.
  • an automatic analyzer 101 is a device for analyzing a sample (hereinafter referred to as a specimen) using a reagent according to a predetermined analysis item, and includes a specimen mounting disk 102, a specimen dispensing mechanism 104, and a reagent storage. 105, reagent dispensing mechanism 108, first reaction container transport unit (transport mechanism) 113, reaction container disposal hole 110, incubator block 111, reaction container tray 112, second reaction container transport unit 115, immune detection unit 116, control section 118.
  • the configuration of the incubator block 111 and the immune detection unit 116 which use consumables such as reaction vessels supplied by the first reaction vessel transport unit 113, constitutes an analysis section that executes processes necessary for analyzing the specimen.
  • the reaction container tray 112, the first reaction container transport unit 113, and the like constitute a consumables supply section that supplies consumables necessary for analysis to the analysis section.
  • the specimen installation disk 102 has a structure in which a plurality of specimen containers 103 containing specimens are arranged and installed in a ring. When dispensing a sample from the sample container 103 to a reaction container, the sample installation disk 102 rotates clockwise and counterclockwise to move the sample container 103 to be dispensed to the sample suction position (sample dispensing mechanism 104 access position).
  • the reagent storage 105 is a mechanism for storing reagent containers containing reagents while keeping them cool, and includes a reagent disk 106 and a reagent container holding section 107.
  • a plurality of reagent container holding sections 107 are arranged in a double ring shape on the reagent disk 106, and are configured to be able to hold a plurality of reagent containers by each holding a reagent container. Further, the reagent disk 106 has a rotational drive mechanism, and moves the plurality of reagent containers to predetermined positions on the circumference through rotational movement.
  • a plurality of unused reaction containers for mixing and reacting a sample and a reagent are arranged in the reaction container tray 112. Further, as a mechanism for transporting the reaction containers of the reaction container tray 112, it has a reaction container gripping mechanism that grips the reaction containers, and a drive mechanism that drives the reaction container gripping mechanism in the X-axis direction, the Y-axis direction, and the Z-axis direction. a first reaction container transport unit 113; a second reaction container transport unit 115 having a reaction container gripping mechanism that grips the reaction container; a rotational drive mechanism that rotationally drives the reaction container gripping mechanism; and a vertical drive mechanism that drives the reaction container up and down. is provided.
  • the first reaction container transport unit 113 grasps the reaction container from the reaction container tray 112, and moves to a sample discharge position 114 where the sample is dispensed into the reaction container, and a mixed solution of the sample and reagent contained in the reaction container ( The reactor is moved between an incubator block 111 where a reaction solution (reaction solution) is reacted and a reaction container disposal hole 110 where a reaction container after measurement is discarded.
  • the second reaction container transport unit 115 has a sample discharge position 114 where a sample is dispensed into the reaction container while holding the reaction container, a reagent discharge position 109 where a reagent is dispensed into the reaction container, and a reagent discharge position 109 which is accommodated in the reaction container.
  • the reaction solution is aspirated and moved between reaction solution suction positions 117 where it is taken into an immunodetection unit 116 that measures the reaction signal of the reaction solution.
  • the incubator block 111 is a mechanism for causing a reaction between a specimen and a reagent, and is temperature-controlled to promote the reaction between the specimen and the reagent.
  • the sample dispensing mechanism 104 is composed of a rotational drive mechanism, a vertical drive mechanism, and a dispensing probe. access position of the mechanism 104) and the sample ejection position 114. That is, the specimen dispensing mechanism 104 aspirates a predetermined amount of specimen from the specimen container 103 that has been transported to the specimen suction position of the specimen installation disk 102 and discharges it into the reaction container that has been transported to the specimen discharge position 114.
  • the reagent dispensing mechanism 108 is a reagent dispensing mechanism for immunoassay.
  • the configuration of the reagent dispensing mechanism 108 includes a rotational drive mechanism, a vertical drive mechanism, and a dispensing probe.
  • the reagent dispensing mechanism 108 rotates and descends to the position of a predetermined type of reagent container on the reagent disk 106, sucks a predetermined amount of reagent, and ascends. Next, the reagent dispensing mechanism 108 rotates and descends into the reaction container transported to the reagent discharge position 109 to discharge the reagent.
  • the first reaction container transport unit 113 moves the reaction container from the reaction container tray 112 to the sample discharge position 114.
  • the sample dispensing mechanism 104 dispenses a predetermined amount of the sample into the reaction container installed at the sample discharge position.
  • reaction container into which the specimen has been discharged is moved to the reagent discharge position 109 by the second reaction container transport unit 115.
  • the reagent dispensing mechanism 108 dispenses a predetermined amount of reagent into a reaction container installed at a reagent discharge position 109.
  • the reaction container After dispensing the reagent, the reaction container is moved to the incubator block 111 by the first reaction container transport unit 113.
  • the reaction container is moved to the specimen discharge position 114 by the first reaction container transport unit 113.
  • reaction container is moved to the reaction liquid suction position 117 of the immune detection unit 116 by the second reaction container transport unit 115.
  • reaction solution is sucked into the detection section within the immunodetection unit 116, and the reaction signal is measured.
  • reaction container After signal measurement, the reaction container is moved to the sample discharge position 114 by the second reaction container transport unit 115, and then moved to the reaction container disposal hole 110 by the first reaction container transport unit 113 and discarded.
  • the control unit 118 controls the overall operation of the automatic analyzer 101, including each device, and controls the operation device 119, which includes input devices such as a mouse and a keyboard, such as control parameters corresponding to each unit.
  • the computer includes a storage device 120 in which is stored, a control device 121 composed of, for example, a hardware board and a computer, and a display device 122 such as a display. Note that the operating device 119 and the display device 122 may be realized by a touch display in which the operating function and the display function are integrated.
  • control device 121 may be configured as hardware using a dedicated circuit board, or may be configured as software executed on a computer.
  • hardware When configured by hardware, it can be realized by integrating a plurality of arithmetic units that execute processing on a wiring board, or in a semiconductor chip or package.
  • software When configured by software, it can be realized by installing a high-speed general-purpose CPU in a computer and executing a program that executes desired arithmetic processing. It is also possible to upgrade existing devices using a recording medium on which this program is recorded. Further, these devices, circuits, and computers are connected via a wired or wireless network, and data is sent and received as appropriate.
  • reaction container tray 112 (consumables storage container) and the reaction containers (consumables) stored in the reaction container tray 112 in this embodiment will be described.
  • the reaction container tray and the reaction container are shown as an example of a consumable storage container and a consumable.
  • a reaction container and a dispensing tip may be stored as consumables in a consumable storage container. It's okay.
  • FIG. 2 is a diagram showing the positional relationship between the reaction container tray and the cover.
  • the reaction container tray 112 is arranged as a first consumable storage container (hereinafter referred to as a main tray 132) and a second consumable storage container (hereinafter referred to as a buffer tray 133).
  • the main tray 132 is covered by a main tray cover 134 equipped with an opening/closing lock mechanism
  • the buffer tray 133 together with the analysis section, is covered by a top cover 135 equipped with an opening/closing lock mechanism.
  • a plurality of main trays 132 and buffer trays 133 may be arranged side by side on a plane, and the plurality of main trays 132 may be covered with main tray covers 134 and the plurality of buffer trays 133 may be covered with top covers 135. good.
  • the opening/closing locking mechanism of the main tray cover 134 and the opening/closing locking mechanism of the top cover 135 are different from each other, and the opening/closing is managed separately by the control unit 118.
  • the main tray cover 134 cannot be opened or closed by the operator when it is locked by the opening/closing lock mechanism (locked state), and cannot be opened or closed by the operator when it is unlocked by the opening/closing lock mechanism (unlocked state). is possible.
  • the top cover 135 cannot be opened by the operator in the locked state, and can be opened and closed by the operator in the unlocked state.
  • the opening/closing locking mechanism of the main tray cover 134 is configured such that the first reaction vessel transport unit 113 cannot be accessed by the operator simply by opening the main tray cover 134, that is, the first reaction vessel transport unit 113 cannot be touched. It is possible to control the reaction container to the unlocked state only in a range (evacuation range), for example, in a state where it is evacuated to a range covered by the top cover 135 (however, the reaction container can be transported within the evacuation range).
  • a range evacuation range
  • the opening/closing lock mechanism of the top cover 135 allows the first reaction container transport unit 113 to retreat to a predetermined range outside the range on the buffer tray 133 (for example, a retreat range whose upper part is covered) and then stop. It is possible to control the unlocked state only when the device is in the unlocked state.
  • FIG. 3 is a flowchart showing the main tray and buffer tray operation processing during analysis operation.
  • a measurement request is made from the operating device 119 (step S110).
  • the measurement request may be sent and received from an external host computer, or may be input manually by the operator.
  • control unit 118 starts preparation operations before the measurement operation, resets each mechanism, and resets the syringes and flow paths connected to the sample dispensing mechanism 104 and reagent dispensing mechanism 108.
  • the system water is replaced, etc. (step S120).
  • reaction container tray status determination processing determines the status of the main tray 132 and buffer tray 133 (the presence or absence of a tray or the number of reaction containers remaining on the tray).
  • step S140 the measurement operation is started, and the use of the reaction container on the main tray 132 or buffer tray 133 is started.
  • Step S150 it is determined whether or not the operator has requested replacement of the main tray 132 (step S150), and if the determination result is YES, a reaction tray replacement request process is performed to determine whether the main tray 132 can be replaced. (Step S300; detailed description in FIG. 4 later).
  • step S150 determines whether the reaction vessel tray 112 is usable.
  • the remaining amount of usable reaction vessels in the reaction vessel tray 112 is determined based on the information stored in the storage device 120. (Step S160).
  • step S160 determines whether there is a remaining amount in the reaction container. If the determination result in step S160 is YES, that is, if there is a remaining amount in the reaction container, the process returns to step S140 and the measurement operation using the reaction container is continued. Furthermore, if the determination result in step S160 is NO, that is, if there is no remaining capacity in the reaction container, new measurements are stopped and the operator is notified (step S170).
  • FIG. 4 is a flowchart showing the processing contents of the reaction container tray exchange process in FIG. 3.
  • step S300 in the reaction container tray exchange request process (FIG. 3: step S300), when the operator requests exchange on the main tray 132 using the operating device 119 (step S310), the control unit 118 It is determined based on the usage status of the buffer tray 133 stored in the storage device 120 whether or not there is a reaction container necessary for replacement (step S320). If the determination result is NO, that is, there is a reaction container necessary for replacement. If there is no suitable reaction container, the operator is notified that replacement is not possible (step S321). Note that the request to replace the main tray 132 in step S310 may be sent and received from an external host computer.
  • step S330 When the exchange is accepted in step S330, the operator opens the main tray cover 134 (step S340). At this time, the main tray cover 134 is controlled to be unlocked (unlocked).
  • step S350 the operator manually replaces the main tray 132 (step S350) and closes the main tray cover 134 (step S360).
  • the operator inputs a report on the completion of replacement of the main tray 132 on the screen of the operating device 119, and the replacement work of the main tray 132 is completed (step S370).
  • the exchange completion report may be sent and received from an external host computer.
  • step S341 new measurement is stopped (step S341).
  • step S370 When the replacement work of the main tray 132 in step S370 is completed, the usage status determination operation of the main tray 132 and buffer tray 133 is subsequently performed (step S380; detailed description in FIG. 9 later).
  • the main tray cover 134 of the main tray 132 and the top cover 135 of the buffer tray 133 are individually provided with opening/closing operations and opening/closing locks, so that the operator can easily access the analysis operation.
  • FIG. 5 is a flowchart showing the main tray exchange process during analysis standby.
  • step S410 the operator requests replacement of the reaction container storage container by operating the operating device 119 (step S410).
  • the exchange request may be sent and received from an external host computer.
  • step S410 when replacing the main tray 132, the operator opens the main tray cover 134 (step S410), manually replaces the main tray 132 (step S420), and closes the main tray cover 134 (step S430). .
  • step S440 the operator inputs a main tray replacement completion report on the screen of the operating device 119 (step S440), and the replacement work is completed (step S450).
  • FIG. 6 is a flowchart showing the contents of the buffer tray exchange process during analysis standby.
  • step S500 the operator requests replacement of the reaction container storage container by operating the operating device 119 (step S500).
  • the exchange request may be sent and received from an external host computer.
  • step S540 the operator inputs a buffer tray replacement completion report on the screen of the operating device 119 (step S540), and the replacement work is completed (step S550).
  • FIG. 7 is a diagram showing the order of use of reaction containers arranged on the main tray.
  • FIG. 8 is a diagram showing the order of use of the reaction vessels arranged on the buffer tray.
  • the x-axis is in the horizontal direction
  • the y-axis is in the front-rear direction
  • the origin is set at the corner of , and the position of each reaction vessel is expressed by coordinates.
  • reaction containers 133a and 133b used during the analysis operation and a reaction container 133b used when replacing the reaction container tray (main tray 132) are arranged in an area. are arranged separately. However, the area of the reaction container 133b is set farther from the main tray 132.
  • the reaction vessels 133a and 133b are of the same type, and the reaction vessels 133a and 133b (area) used during analysis operation or during exchange of reaction vessel trays can be set as appropriate.
  • reaction vessels 133a and 133b are used during analysis operation, and only reaction vessel 133b is used when replacing the reaction vessel tray (main tray 132). That is, the reaction vessel 133a is used only during analysis operations.
  • the reaction vessels 133b used during replacement of the main tray 132 may be controlled to be used in a different order from the order of use of the reaction vessels 133a used during the analysis operation.
  • FIG. 9 is a flowchart showing the processing contents of the reaction container tray status determination process.
  • the first reaction container transport unit 113 selects the first storage position (Pos.Start) on the main tray 132 and buffer tray 133.
  • the filling status of the reaction container is confirmed (step S210).
  • the filling status of reaction containers at all storage positions on the main tray 132 and buffer tray 133 may be checked.
  • the gripping operation of the consumables by the transport mechanism may be used, or a camera may be installed above the storage container and the presence or absence of the consumables may be confirmed by image analysis.
  • a distance measuring device such as a laser displacement meter may be attached to the first reaction container transport unit 113 to measure the distance between the transport mechanism and the storage container to check the presence or absence of consumables.
  • FIG. 10 is a functional block diagram of the control unit when the reaction container tray status determination process is performed by the end operation of the first reaction container transport unit.
  • the control unit 118 includes a reaction container tray status management memory 120a provided in the storage device 120, a consumables transport mechanism control portion 121a and a reaction container presence/absence determination portion 121b provided in the control device 121.
  • the consumables transport mechanism control unit 121a supplies the first reaction container transport unit 113 with a predetermined amount of consumables based on the information stored in the reaction container tray status management memory 120a. Outputs a command to grasp the product position.
  • the reaction container presence/absence determining unit 121b determines the presence or absence of consumables based on the consumables held result by the first reaction container transport unit 113, and stores the determination result as the reaction container tray status in the reaction container tray status management memory 120a. do.
  • step S210 determines whether the storage device 120 stores the positions of the consumables used on the buffer tray 133 used during the replacement of the main tray 132 (step S220).
  • step S220 determines whether the buffer tray 133 can be used (step S221), and the process proceeds to a state determination process for the buffer tray 133 (step S250).
  • step S220 determines whether the reaction vessels in the buffer tray 133 have been used. If the determination result in step S220 is YES, that is, if there is a record that the reaction vessels in the buffer tray 133 have been used, the usage from the storable number of reaction vessels to the final position (Pos.End) of the reaction vessels is The value obtained by subtracting the number is stored in the storage device 120 as the remaining amount of reaction containers in the buffer tray 133, and it is determined that the buffer tray 133 can be used (step S222), and the state determination process of the buffer tray 133 is performed (step S250). Proceed to.
  • step S220 the main tray 132 is not subject to the determination in step S220, so if the determination result in step S210 is YES, it is determined that reaction containers are stored in all filling positions, and the main tray 132 is not subject to the determination in step S220. 132 is usable (step S221), and the process advances to main tray 132 state determination processing (step S250).
  • step S210 determines whether or not a reaction container is filled in the storage position S(x, y) next to the last accessed reaction container storage position among the reaction container storage positions used for the analysis operation from the stored head position.
  • Step S230 If the determination result in step S230 is NO, that is, if the storage position S (x, y) on the reaction container tray (main tray 132/buffer tray 133) is not filled with reaction containers, the reaction containers remain. It is determined that the amount is 0, the reaction container tray (main tray 132/buffer tray 133) is determined to be unusable (step S231), and the process proceeds to main tray/buffer tray status determination processing (step S250).
  • step S230 determines whether the storage position S (x, y) on the buffer tray 133 is filled with a reaction container. It is determined whether the position of the consumable used during container tray replacement is stored (step S240).
  • step S240 If the determination result in step S240 is NO, that is, if the consumables position E (x, y) used during reaction container tray replacement is not stored in the storage device 120, then The value obtained by subtracting the number of used containers up to the storage position (Pos.Start) is stored in the storage device 120 as the remaining number, and it is determined that the reaction container tray can be used (step S242), and the state determination process of the buffer tray 133 is performed. The process advances to (step S250). Further, if the determination result in step S240 is YES, that is, if there is a record that the reaction containers in the buffer tray 133 have been used, the usage from the storable number of reaction containers to the first position (Pos.Start) of the reaction containers is determined.
  • the value obtained by subtracting the number of pieces and the number of pieces used up to the final position (Pos.End) is stored in the storage device 120 as the remaining amount of reaction containers in the buffer tray 133, and it is determined that the buffer tray 133 can be used (step S241 ), the process proceeds to the state determination process of the buffer tray 133 (step S250).
  • step S230 the determination result in step S230 is YES, the number of used reaction containers from the storable number of reaction containers to the first storage position (Pos.Start) The value obtained by subtracting the value is stored in the storage device 120 as the remaining number, it is determined that the reaction container tray can be used (step S242), and the process proceeds to the state determination process of the main tray 132 (step S250).
  • step S250 the states of the main tray 132 and buffer tray 133 are determined based on the remaining number of reaction containers determined in the processes of steps S210 to S242.
  • step S260 the reaction container tray usage status determination process is finished (step S260).
  • FIG. 11 is a diagram showing a state management table used in the main tray and buffer tray state determination processing.
  • a tray in the "in use” state indicates a tray currently in use or a tray to be used in the next measurement.
  • a tray in the "standby” state indicates that it is available for use and will begin to be used as soon as the other tray becomes unavailable.
  • a tray in the "unusable” state indicates a tray that is not used for measurement.
  • each tray the one with fewer reaction containers remaining is used preferentially, and if the number is the same, the main tray is used preferentially.
  • the method of managing and determining the usage status of the reaction container tray configured as described above is just one example, and as another example, when the state stored in the storage device 120 and the actual reaction container filling situation are different, A usage status classification such as "provenance unknown" may be provided.
  • a function for determining the usage status may be provided, and even at times other than the above, the user can perform the relevant item to check the usage status at that time. It can be confirmed.
  • the timing (date and time) at which the usage status was determined in the storage device 120 it is desirable to store the timing (date and time) at which the usage status was determined in the storage device 120 together with the determination results. From the viewpoint of reliability of analytical performance, this is to prevent old reaction vessels from remaining and being used in a deteriorated state. If all the reaction containers on the tray have not been consumed even after a certain period of time has passed since replacing them with new ones, an alarm will be displayed to notify the user and prompt the user to replace the container. Alternatively, the automatic analyzer may automatically discard all the consumables on the tray or stop using the storage container. From the viewpoint of usability, it is preferable that the expiration date can be set freely within the period during which quality is guaranteed, and the fixed period for prompting the replacement of consumables. In addition, it is preferable that the user be able to select a method for disposing of the consumables after the certain period of time has elapsed.
  • an analysis section for example, incubator block 111, immune detection unit 116, etc.
  • a An automatic analyzer comprising a consumable supplies supply unit (for example, a reaction vessel tray 112, a first reaction vessel transport unit 113, etc.) that supplies supplies, and a control unit 118 that controls the operation of the analysis unit and the consumables supply unit.
  • a consumable supplies supply unit for example, a reaction vessel tray 112, a first reaction vessel transport unit 113, etc.
  • the consumables supply section includes a first consumables holding section (e.g., main tray 132) capable of holding a first consumables storage container that stores a plurality of consumables;
  • a second consumables holder e.g., buffer tray 133) that can hold a second consumables storage container, and an analyzer that stores the consumables in the first consumables holder and the second consumables holder.
  • a transport mechanism for example, the first reaction container transport unit 113 for transporting the first consumables to the first consumable holding part, and the control unit controls the first consumable holding part to be accessible by the operator during the analysis operation in the analysis part.
  • the structure is configured to allow access by the operator to the parts, it is possible to suppress the increase in size and cost of the apparatus and to replace consumables without interrupting the analysis operation.
  • the present invention is not limited to the above-described embodiments, and includes various modifications and combinations within the scope of the invention. Furthermore, the present invention is not limited to having all the configurations described in the above embodiments, but also includes configurations in which some of the configurations are deleted. Moreover, each of the above-mentioned configurations, functions, etc. may be realized in part or in whole by, for example, designing an integrated circuit. Furthermore, each of the above configurations, functions, etc. may be realized by software by a processor interpreting and executing a program for realizing each function.
  • Reagent dispensing mechanism 109 ...Reagent discharge position, 110...Reaction vessel disposal hole, 111...Incubator block, 112...Reaction vessel tray, 113...First reaction vessel transport unit, 114...Sample discharge position, 115...Second reaction vessel transport unit, 116...Immunization Detection unit, 117...Reaction liquid suction position, 118...Control unit, 119...Operation device, 120...Storage device, 120a...Reaction container tray status management memory, 121...Control device, 121a...Consumables transport mechanism control unit, 121b... Reaction container presence/absence determination unit, 122...Display device, 132...Main tray, 132a...Reaction container, 133...Buffer tray, 133a, 133b...Reaction container, 134...Main tray cover, 135...Top cover

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  • Physics & Mathematics (AREA)
  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Analytical Chemistry (AREA)
  • Biochemistry (AREA)
  • General Health & Medical Sciences (AREA)
  • General Physics & Mathematics (AREA)
  • Immunology (AREA)
  • Pathology (AREA)
  • Automatic Analysis And Handling Materials Therefor (AREA)
PCT/JP2022/048038 2022-03-17 2022-12-26 自動分析装置 Ceased WO2023176094A1 (ja)

Priority Applications (4)

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JP2024507524A JP7743608B2 (ja) 2022-03-17 2022-12-26 自動分析装置
US18/846,726 US20250224416A1 (en) 2022-03-17 2022-12-26 Automatic analyzer
EP22932351.4A EP4495601A4 (en) 2022-03-17 2022-12-26 AUTOMATIC ANALYSIS DEVICE
CN202280093143.4A CN118871789A (zh) 2022-03-17 2022-12-26 自动分析装置

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JP2022-042994 2022-03-17
JP2022042994 2022-03-17

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EP (1) EP4495601A4 (https=)
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WO2024241919A1 (ja) * 2023-05-19 2024-11-28 株式会社日立ハイテク 自動分析装置

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JP2010216889A (ja) * 2009-03-13 2010-09-30 Toshiba Corp 自動分析装置
JP2012021862A (ja) 2010-07-14 2012-02-02 Hitachi High-Technologies Corp 自動分析装置
JP2017053642A (ja) * 2015-09-07 2017-03-16 日本電子株式会社 自動分析装置及び自動分析方法
WO2019053991A1 (ja) * 2017-09-13 2019-03-21 株式会社日立ハイテクノロジーズ 自動分析装置
WO2021255995A1 (ja) * 2020-06-19 2021-12-23 株式会社日立ハイテク 自動分析装置

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JP4851266B2 (ja) * 2006-06-30 2012-01-11 シスメックス株式会社 試料分析装置
EP3255436B1 (en) * 2016-06-06 2022-09-21 F. Hoffmann-La Roche AG Supplying consumable items to an automated sample analyzer

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JP2010216889A (ja) * 2009-03-13 2010-09-30 Toshiba Corp 自動分析装置
JP2012021862A (ja) 2010-07-14 2012-02-02 Hitachi High-Technologies Corp 自動分析装置
JP2017053642A (ja) * 2015-09-07 2017-03-16 日本電子株式会社 自動分析装置及び自動分析方法
WO2019053991A1 (ja) * 2017-09-13 2019-03-21 株式会社日立ハイテクノロジーズ 自動分析装置
WO2021255995A1 (ja) * 2020-06-19 2021-12-23 株式会社日立ハイテク 自動分析装置

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Publication number Priority date Publication date Assignee Title
WO2024241919A1 (ja) * 2023-05-19 2024-11-28 株式会社日立ハイテク 自動分析装置

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US20250224416A1 (en) 2025-07-10
EP4495601A4 (en) 2026-03-18
JPWO2023176094A1 (https=) 2023-09-21
JP7743608B2 (ja) 2025-09-24
EP4495601A1 (en) 2025-01-22
CN118871789A (zh) 2024-10-29

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