Automatic analysis device
The automatic analyzer employs multiple reading devices and adaptive control to maintain throughput by switching between reading modes, addressing throughput issues caused by device malfunctions.
Patent Information
- Application Number
- JP2024505913
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-03-07
- Filing Date
- 2022-12-26
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2042-12-26
AI Technical Summary
Conventional automatic analyzers face a decrease in throughput due to malfunctions in reading devices that limit the information registration process, leading to stagnation in identification information reading.
An automatic analyzer equipped with multiple reading devices and a control unit that operates in a first mode to read identification information of specific consumables and a second mode to read identification information of both types of consumables, allowing switching between modes based on specified conditions to prevent reading errors.
Prevents stagnation in identification information reading and maintains analysis throughput by enabling flexible reading modes in case of device malfunctions.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an automatic analyzer. [Background technology]
[0002] In an automated analyzer, the optical characteristics of a reaction solution generated by reacting a sample (specimen) with a reagent in a reaction vessel are measured, and the concentration of a target component in the sample is analyzed from the measurement results. Different types of assay reagents are used to generate the reaction solution depending on the target component being analyzed. In addition, several types of system reagents are used for cleaning the flow path of the automated analyzer. Here, Patent Document 1 discloses an automated analyzer that reads an identifier attached to a vessel containing a liquid. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] International Publication No. 2015 / 045461 Summary of the Invention [Problem to be solved by the invention]
[0004] However, in the above-mentioned conventional technology, in order to simplify the information registration process, the reading target of each of the multiple reading devices is limited, and therefore, if a malfunction occurs in one of the reading devices and it becomes unable to read information, the operation of the automatic analyzer is hindered, resulting in a significant decrease in the throughput of the analysis process.
[0005] The present invention has been made in view of the above, and has an object to provide an automatic analyzer that can suppress a decrease in throughput of analytical processing. [Means for solving the problem]
[0006] The present application includes multiple means for solving the above problem, and one example is an automatic analyzer that performs analytical processing using multiple types of consumables including first and second consumables, and is equipped with multiple reading devices including first and second reading devices that can read identification information of the consumables, and a control unit that controls the operation of the automatic analyzer, and the control unit has a first reading mode in which the first reading device reads the identification information of the first consumable and the second reading device reads the identification information of the second consumable, and a second reading mode in which the first reading device reads the identification information of both the first and second consumables. [Effects of the Invention]
[0007] According to the present invention, it is possible to prevent stagnation in reading of identification information and to prevent a decrease in throughput of analysis processing. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a diagram schematically illustrating the overall configuration of an automatic analyzer. [Figure 2] 10A and 10B are diagrams showing examples of placement of identification pieces on reagent containers. [Figure 3] 10A and 10B are diagrams showing examples of placement of identification pieces on reagent containers. [Figure 4] FIG. 10 is a diagram showing an example of placing an identification piece on a system reagent container. [Figure 5] FIG. 10 is a diagram showing an example of setting an identification piece on a reaction vessel tray. [Figure 6] FIG. 4 is a diagram showing the relationship between the reading device and the reading target in the first reading mode. [Figure 7] FIG. 10 is a diagram showing the relationship between the reading device and the reading target in the second reading mode. [Figure 8] 10 is a flowchart showing the process of registering consumables when switching from the first reading mode to the second reading mode in the first embodiment. [Figure 9] 10 is a flowchart showing the process of registering consumables when switching from the first reading mode to the second reading mode in the second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. Note that, although the present embodiment will be described by taking as an example a combined automatic analyzer that performs immunoassays and biochemical tests, the present invention can also be applied to other automatic analyzers that include multiple reading devices.
[0010] First Embodiment A first embodiment of the present invention will be described with reference to FIGS.
[0011] FIG. 1 is a diagram showing a schematic overall configuration of an automatic analyzer.
[0012] In FIG. 1, an automatic analyzer 101 is an apparatus for analyzing a sample (specimen) using a reagent corresponding to a predetermined analysis item, and includes a sample mounting disk 102, a sample dispensing mechanism 104, a reagent storage cabinet 105, a reagent dispensing mechanism 108, an incubator (reaction disk) 109, a reaction container tray 110, a biochemical detection unit 111, a control unit 125, an operation unit 126, and a reading device 129. (Second reading device) , and a reader 130 (First reading device) It is roughly composed of:
[0013] The sample mounting disk 102 is configured to mount a plurality of sample containers 103 containing samples (specimens) arranged in a ring shape. When dispensing a sample from a sample container 103 into a reaction cell or reaction container of an incubator 109, the sample mounting disk 102 rotates to transport the sample container 103 to be dispensed to a sample suction position (access position of the sample dispensing mechanism 104).
[0014] The reagent storage 105 is a mechanism for storing reagent containers containing reagents, and includes a reagent disk 106 and a reagent container holder 107. The reagent storage 105 has a cooling function to improve the onboard stability of the reagent properties.
[0015] The reagent disk 106 has a plurality of reagent container holders 107 arranged in a double ring, each of which holds a reagent container, so that it can hold a plurality of reagent containers. The reagent disk 106 also has a rotation drive mechanism, and by rotation, moves each of the plurality of reagent containers to a predetermined position on the circumference.
[0016] The reagent storage 105 is also provided with a reader 129 (second reader) that reads identification information from an identification piece (described later) provided on a reagent container (assay reagent). The reader 129 is configured as a wireless device.
[0017] The incubator 109 is a mechanism for reacting the sample with the reagent, and is regulated to an appropriate temperature to promote the reaction between the sample and the reagent. The incubator 109 has a plurality of reaction cells arranged in a ring shape, and each reaction cell is moved to a predetermined position on the ring by rotating it using a rotary drive mechanism.
[0018] A reaction vessel tray 110 holds a plurality of unused reaction vessels for mixing and reacting a sample with a reagent.
[0019] The sample dispensing mechanism 104 is composed of a rotation drive mechanism, a vertical drive mechanism, and a dispensing probe, and the rotation drive mechanism and vertical drive mechanism move the dispensing probe between a sample suction position (access position of the sample dispensing mechanism 104) on the sample mounting disk 102 and a sample discharge position and sample discharge position 118 on the incubator 109. In other words, the sample dispensing mechanism 104 aspirates a predetermined amount of sample (specimen) from a sample container 103 transported to the sample suction position on the sample mounting disk 102, and discharges it into a reaction cell transported to the sample discharge position on the incubator 109, or into a reaction container transported to the sample discharge position 118.
[0020] Reader 130 (First reading device)The reader 130 reads identification information from an identification piece (described later) provided on a consumable item 131 (e.g., a reaction vessel (reaction vessel tray 110), a system reagent bottle, etc.) used in the automatic analyzer 101, and has a reading range 130a at a position (on the front of the automatic analyzer 101) accessible to an operator who operates the automatic analyzer 101. The reader 130 is configured as a wireless device.
[0021] As a representative example, the processing flow of biochemical analysis will be explained.
[0022] In biochemical analysis, first, the sample dispensing mechanism 104 dispenses a predetermined amount of sample into a predetermined reaction cell on the incubator 109 .
[0023] Thereafter, the incubator 109 rotates to move the reaction cell into which the sample has been discharged to an access position for the reagent dispensing mechanism 108, and the reagent dispensing mechanism 108 dispenses a predetermined amount of reagent into the reaction cell into which the sample has been discharged.
[0024] When the reaction process between the sample and the reagent in the incubator 109 is completed, the incubator 109 rotates and moves the reaction cell containing the reaction solution after the reaction is completed to an installation position of the biochemical detection unit 111 .
[0025] Thereafter, the reaction signal is measured by the detection section in the biochemical detection unit 111 .
[0026] The control unit 125 and the operation unit 126 control the overall operation of the automatic analyzer 101 including the individual devices therein.
[0027] The control unit 125 is configured, for example, with a hardware board and a computer, and includes a storage device 127 such as a hard disk and a control device 128 built in.
[0028] The storage device 127 stores, for example, control parameters corresponding to each unit.
[0029] The control device 128 may be configured as hardware using a dedicated circuit board, or may be configured as software executed by a computer. When configured as hardware, it can be realized by integrating multiple arithmetic units that execute processing on a wiring board, or in a semiconductor chip or package. When configured as software, it can be realized by installing a high-speed general-purpose CPU in a computer and executing a program that executes the desired arithmetic processing. It is also possible to upgrade existing devices using a recording medium on which this program is recorded. Furthermore, these devices, circuits, and computers are connected via a wired or wireless network, and data is transmitted and received as appropriate.
[0030] The operation unit 126 is composed of a display device, which is a display, and input devices such as a mouse and a keyboard.
[0031] 2 and 3 are diagrams showing examples of placement of identification pieces on reagent containers.
[0032] As shown in Figures 2 and 3, assay reagents used in analysis are provided to the user of the automatic analyzer 101 in a state where they are sealed in reagent containers. Reagent container 201 and reagent container 301 are provided with identification pieces 202 and 302 to which reagent codes (identification information) are fixed to obtain reagent information about the reagent sealed in the reagent container. As the identification piece, for example, a tag (e.g., a Radio Frequency Identifier (hereinafter, RFID)) in which the reagent code (identification information of the reagent) is embedded is used. Furthermore, as the identification information reader 129, a reader (here, an RFID reader) that matches the format of the identification piece is used. Note that the format of the identification piece and the reader may be other types, such as a barcode and a barcode reader.
[0033] FIG. 4 is a diagram showing an example of the placement of an identification piece on a system reagent container.
[0034] As shown in FIG. 4, the system reagent used in the analysis is provided to the user of the automatic analyzer 101 in a sealed state in a system reagent container 401. The system reagent container 401 is provided with an identification piece 402 to which a reagent code (identification information) is fixed for obtaining manufacturing information of the system reagent sealed in the system reagent container 401. For example, a tag (e.g., RFID) with manufacturing information embedded therein is used as the identification piece 402. Furthermore, a reader (here, an RFID reader) suited to the format of the identification piece is used as the identification information reader 130. Note that the identification piece and reader may be in the form of another system, such as a barcode and a barcode reader.
[0035] FIG. 5 is a diagram showing an example of setting an identification piece on a reaction vessel tray.
[0036] As shown in FIG. 5, reaction vessels used in analysis are provided to a user of the automatic analyzer 101 in a sealed state arranged in a reaction vessel tray 501 (corresponding to the reaction vessel tray 110 shown in FIG. 1). The reaction vessel tray 501 on which the reaction vessels are arranged is provided with an identification piece 502 to which a code (identification information) for obtaining manufacturing information of the reaction vessel is fixed. For example, a tag (e.g., RFID) with embedded manufacturing information is used as the identification piece 502. Furthermore, a reader (here, an RFID reader) suited to the format of the identification piece is used as the identification information reader 130. Note that the identification piece and reader may be in the form of other methods, such as a barcode and a barcode reader.
[0037] Here, the automatic analyzer 101 in this embodiment has a first reading mode in which the reading device 130 (first reading device) reads the identification information of the system reagent container 401, the reaction container tray 501, etc. (first consumables), and the reading device 129 (second reading device) reads the identification information of the reagent container 201 for immunological analysis, the reagent container 301 for biochemical analysis, etc. (second consumables), and a second reading mode in which the reading device 130 (first reading device) reads the identification information of both the first and second consumables (i.e., the system reagent container 401, the reaction container tray 501, the reagent container 201 for immunological analysis, and the reagent container 301 for biochemical analysis), and can be switched according to specified conditions.
[0038] First, the procedure for registering consumables such as reagents in the first reading mode in the automatic analyzer 101 will be described.
[0039] When the operator of the automatic analyzer 101 issues an instruction to register an assay reagent via the operation unit 126, the control device 128 starts reagent registration control based on the reagent registration command issued via the operation unit 126. The identification pieces 202 and 302 fixed to the reagent containers 201 and 301 mounted on the reagent disk 106 are read by a dedicated reading device 129 (second reading device) and stored in the memory device 127. After reading, the reagent disk 106 is rotated, and the operation of reading the identification piece of the next reagent container is repeated, thereby reading the identification information of all reagent containers mounted on the reagent disk 106 and registering the identification information in the automatic analyzer 101.
[0040] Next, a procedure for registering consumables such as system reagents and reaction vessels in the first reading mode of the automatic analyzer 101 will be described.
[0041] After the operator of the automatic analyzer 101 issues a command to register consumables via the operation unit 126 and the automatic analyzer 101 enters a mode that allows consumables to be registered, the identification pieces 402 or 502 provided on the system reagent container 401 or reaction container tray 501 are read by a dedicated reader 130. The read information is saved in a storage device and registered in the automatic analyzer 101. The system reagent container 401 or reaction container tray 501 is installed in a predetermined position on the automatic analyzer 101 by the user.
[0042] Fig. 6 is a diagram showing the relationship between the reading device and the read object in the first reading mode, and Fig. 7 is a diagram showing the relationship between the reading device and the read object in the second reading mode.
[0043] As shown in Figure 6, in the first reading mode, the reading device 129 (second reading device) can read the identification information of reagent containers 201 for immunological analysis and reagent containers 301 for biochemical analysis (second consumables), and the reading device 130 (first reading device) provided on the front of the automatic analyzer 101 can read the identification information of system reagent containers 401 and reaction container trays 501 (first consumables).
[0044] On the other hand, as shown in Figure 7, in the second reading mode, the reading device 129 (second reading device) cannot read identification information, but the reading device 130 (first reading device) provided on the front of the automatic analyzer 101 can read identification information of reagent containers 201 for immunological analysis, reagent containers 301 for biochemical analysis, system reagent containers 401, reaction container trays 501, etc. (first and second consumables).
[0045] FIG. 8 is a flowchart showing the process of registering consumables when switching from the first reading mode to the second reading mode.
[0046] As shown in FIG. 8, when an RFID reading error or the like occurs in the reading device 129 (second reading device) and an alarm is generated (step S100), the operator switches from the first reading mode to the second reading mode using the operation unit 126 (step S110).
[0047] Based on a command input from the operation unit 126, the control device 128 switches the state of the automatic analyzer 101 from the first reading mode to the second reading mode, thereby enabling the reading device 130 (first reading device) to read the identification pieces 202, 203 of the second consumables such as the reagent container 201 and the reagent container 301 in addition to the first consumables such as the system reagent container 401 and the reaction container tray 501 (step S120).
[0048] Next, the operator uses the operation unit 126 to specify the positions on the reagent disk 106 where the reagent containers 201 and 301 are to be placed (step S130), and then causes the reader 130 to read the identification pieces 202 and 203 of the reagent containers 201 and 301 (step S140).
[0049] Next, it is determined whether the reading device 130 was able to read the identification information of the identification pieces 202, 203, i.e., whether the reading was performed normally (step S150).If the determination result is NO, the operator is notified by using the display function of the operation unit 126 or the like that the reading error in step S100 was not due to a malfunction of the reading device 129 (second reading device) or the like, but rather a malfunction of the identification pieces 202, 203 (step S151), and the processing is terminated.
[0050] If the determination result in step S150 is YES, the reading device 130 (First reading device) The identification information of the identification pieces 202, 203 read in step S160 is registered in the storage device 127, and the operator places the reagent container 201 or reagent container 301 whose identification information has been read at the position on the reagent disk 106 specified in step S130 (step S170), and the process ends.
[0051] The effects of the present embodiment configured as above will be described.
[0052] In the prior art, in order to simplify the information registration process, the reading targets of each of the multiple reading devices are limited. Therefore, if a malfunction occurs in one of the reading devices and it becomes unable to read information, the operation of the automatic analyzer is hindered, resulting in a significant decrease in the throughput of the analysis process.
[0053] In contrast to this, in this embodiment, there is a first reading mode in which the reading device 130 (first reading device) reads the identification information of the system reagent container 401, reaction container tray 501, etc. (first consumables), and the reading device 129 (second reading device) reads the identification information of the reagent containers 201, 301, etc. (second consumables), and a second reading mode in which the first reading device reads the identification information of both the first and second consumables, and the configuration is such that it is possible to switch between these modes depending on specified conditions, thereby preventing stagnation in the reading of the identification information and preventing a decrease in the throughput of the analysis process.
[0054] <Second embodiment> A second embodiment of the present invention will be described with reference to FIG.
[0055] In this embodiment, the reading mode is automatically switched when an error occurs in reading the identification information. In the description and drawings of this embodiment, the same components as those in the first embodiment are given the same reference numerals, and the description thereof will be omitted.
[0056] FIG. 9 is a flowchart showing the process of registering consumables when switching from the first reading mode to the second reading mode in this embodiment.
[0057] 9, when an RFID reading error or the like occurs in the reader 129 (second reader) and an alarm is generated (step S100), the control device 128 uses the reading error as a trigger to switch the state of the automatic analyzer 101 from the first reading mode to the second reading mode, thereby enabling the reader 130 (first reader) to read the identification pieces 202, 203 of the second consumables such as the reagent container 201 and the reagent container 301 in addition to the first consumables such as the system reagent container 401 and the reaction container tray 501 (step S120A). Furthermore, in the processing of step S120A, the fact that the reading mode of the automatic analyzer 101 has switched from the first reading mode to the second reading mode is displayed by the display function of the operation unit 126 or the like to notify the operator.
[0058] Next, the operator uses the operation unit 126 to specify the positions on the reagent disk 106 where the reagent containers 201 and 301 are to be placed (step S130), and then causes the reader 130 to read the identification pieces 202 and 203 of the reagent containers 201 and 301 (step S140).
[0059] Next, it is determined whether the reading device 130 was able to read the identification information of the identification pieces 202, 203, i.e., whether the reading was performed normally (step S150).If the determination result is NO, the operator is notified by using the display function of the operation unit 126 or the like that the reading error in step S100 was not due to a malfunction of the reading device 129 (second reading device) or the like, but rather a malfunction of the identification pieces 202, 203 (step S151), and the processing is terminated.
[0060] If the determination result in step S150 is YES, the reading device 130 (First reading device) The identification information of the identification pieces 202, 203 read in step S160 is registered in the storage device 127, and the operator places the reagent container 201 or reagent container 301 whose identification information has been read at the position on the reagent disk 106 specified in step S130 (step S170), and the process ends.
[0061] The other configurations are the same as those in the first embodiment.
[0062] The present embodiment configured as above can also achieve the same effects as the first embodiment.
[0063] <Additional Notes> The present invention is not limited to the above-described embodiments, but includes various modifications and combinations within the scope of the invention.
[0064] For example, in the above embodiment, an example was given in which the reading device 129 provided in the reagent storage 150 and the reading device 130 provided on the front of the automatic analyzer 101 are used, but this is not limited to this. Two or more reagent storages (reagent disks), each provided with an identification information reading device, may be provided, and a reading mode may be set in which the identification information of the reagent containers mounted on each reagent disk is read by each reading device, and a reading mode in which the reading device of one reagent storage (reagent disk) reads the identification information of all reagent containers including the reagent containers in the other reagent storage (reagent disk), and these modes may be switchable.
[0065] Furthermore, the automatic analyzer 101 may be configured to have three or more readers.
[0066] Furthermore, the present invention is not limited to those having all of the configurations described in the above embodiments, and includes those in which some of the configurations are omitted. Furthermore, the above-described configurations, functions, etc. may be realized in part or in whole by designing, for example, an integrated circuit. Furthermore, the above-described configurations, functions, etc. may be realized in software by a processor interpreting and executing a program that realizes each function. [Explanation of symbols]
[0067] 101...automatic analyzer, 102...sample mounting disk, 103...sample container, 104...sample dispensing mechanism, 105...reagent storage, 106...reagent disk, 107...reagent container holder, 108...reagent dispensing mechanism, 109...incubator, 110...reaction container tray, 111...biochemical detection unit, 125...controller, 126...operation unit, 127...storage device, 128...controller, 129...reader, 130...reader, 130a...reading range, 131...consumables, 150...reagent storage, 201...reagent container, 202...identification piece, 203...identification piece, 301...reagent container, 302...identification piece, 401...system reagent container, 402...identification piece, 501...reaction container tray, 502...identification piece
Claims
1. An automatic analyzer that performs an analysis process using a plurality of types of consumables including first and second consumables, a first reader having a reading range at a position accessible to an operator of the automatic analyzer and capable of reading the identification information of the consumable; a second reading device provided in a holder that holds the second consumable, the second reading device being capable of reading identification information of the consumable; a control unit that controls the operation of the automatic analyzer, The control unit a first reading mode in which the first reading device reads the identification information of the first consumable product and the second reading device reads the identification information of the second consumable product; a second reading mode in which the first reading device reads the identification information of both the first and second consumables.
2. 2. The automatic analyzer according to claim 1, The control unit An automatic analyzer characterized in that the first reading mode and the second reading mode are switched in response to an operation by an operator.
3. 2. The automatic analyzer according to claim 1, The control unit An automatic analyzer characterized in that it determines whether the second reading device is in a state where reading is not possible, and if it determines that the second reading device is in a state where reading is not possible, it switches from the first reading mode to the second reading mode.
4. A control method for an automated analyzer that performs an analysis process using a plurality of types of consumables including first and second consumables, A control method for an automatic analyzer, characterized by switching between two reading devices: a first reading device having a reading range in a position accessible to an operator of the automatic analyzer and capable of reading the identification information of the consumable; and a second reading device provided in a holding section that holds the second consumable and capable of reading the identification information of the consumable; a first reading mode in which the first reading device reads the identification information of the first consumable and the second reading device reads the identification information of the second consumable, and a second reading mode in which the first reading device reads the identification information of both the first and second consumables.
Citation Information
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