WO2011145308A1 - 電池検査装置 - Google Patents
電池検査装置 Download PDFInfo
- Publication number
- WO2011145308A1 WO2011145308A1 PCT/JP2011/002679 JP2011002679W WO2011145308A1 WO 2011145308 A1 WO2011145308 A1 WO 2011145308A1 JP 2011002679 W JP2011002679 W JP 2011002679W WO 2011145308 A1 WO2011145308 A1 WO 2011145308A1
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- WIPO (PCT)
- Prior art keywords
- battery
- inspection
- power supply
- inspection table
- battery inspection
- Prior art date
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/382—Arrangements for monitoring battery or accumulator variables, e.g. SoC
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/385—Arrangements for measuring battery or accumulator variables
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/371—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC] with remote indication, e.g. on external chargers
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/382—Arrangements for monitoring battery or accumulator variables, e.g. SoC
- G01R31/3842—Arrangements for monitoring battery or accumulator variables, e.g. SoC combining voltage and current measurements
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/42—Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
- H01M10/44—Methods for charging or discharging
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/42—Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
- H01M10/48—Accumulators combined with arrangements for measuring, testing or indicating the condition of cells, e.g. the level or density of the electrolyte
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/364—Battery terminal connectors with integrated measuring arrangements
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P70/00—Climate change mitigation technologies in the production process for final industrial or consumer products
- Y02P70/50—Manufacturing or production processes characterised by the final manufactured product
Definitions
- the present invention relates to a battery inspection apparatus for inspecting a chargeable / dischargeable battery.
- Patent Document 1 describes a charging / discharging and inspection system for a flat battery.
- a large number of secondary batteries are arranged side by side in a battery storage container, electrodes are connected to each battery, and charging / discharging and inspection are performed together.
- a power supply device for supplying power to an inspection table for inspecting a battery is provided separately from the inspection table.
- This power supply device is for generating a voltage or current required for inspection and supplying it to each battery.
- wiring for power supply and collection of inspection results is connected from the power supply unit to each battery inspection location. Yes. For this reason, the wiring between the power supply device and the inspection table tends to be enormous and complicated. As a result, the proportion of wiring in the manufacturing cost of the entire device also increases.
- an aspect of the present invention aims to provide a battery inspection apparatus capable of reducing the amount of wiring.
- a battery inspection apparatus includes a battery inspection table including a plurality of inspection units for inspecting a chargeable / dischargeable battery, and is provided separately from the battery inspection table, and controls the battery inspection table. And a control device.
- Each of the inspection units measures at least one of current, voltage, and temperature based on an input from the contact that is connected to the contact and is in contact with the corresponding battery.
- a measurement circuit for generating an analog measurement signal.
- the battery inspection table includes at least one communication unit that converts an analog measurement signal generated by each of a plurality of inspection units into a digital signal and outputs the digital measurement signal to a common digital communication line. The unit and the control device are connected.
- measurement results obtained from a plurality of inspection units can be transmitted to the control device through a common digital communication line. Therefore, since it is not necessary to provide a separate communication line for each inspection unit, the amount of wiring of the battery inspection device can be reduced. In addition, since the analog measurement signal is converted to digital and transmitted, the influence of noise that can be added to the signal in the communication path can be suppressed, and the measurement result can be sent to the control device satisfactorily.
- the battery inspection apparatus outputs measurement data representing a measurement result obtained by the battery inspection table through a common communication line.
- the plurality of inspection units of the battery inspection table are grouped, and one communication unit is mounted on the battery inspection table for each group.
- the communication unit is a remote I / O.
- a single communication unit may be mounted on the battery inspection table. In this case, all the inspection parts of the inspection table are regarded as a single group.
- the common communication line connects the communication unit of the battery inspection table to the control unit of the power supply device provided separately from the battery inspection table.
- the communication unit may be connected to a control device including a data processing device provided separately from the battery inspection table, or a storage device that collects and stores measurement results. .
- the battery inspection apparatus provides an intermediate stage power supply device instead of providing a charge / discharge voltage that conforms to the inspection specification.
- the output voltage is applied to the battery inspection table.
- a voltage control unit is mounted on the battery inspection table, and the intermediate output voltage of the power supply device is adjusted to a charge / discharge voltage that conforms to the inspection specification. That is, the voltage control unit for generating the inspection voltage is separated from the power supply device and mounted on the inspection table.
- the power supply device includes a regenerative unit for receiving power supplied from an external power source when the battery is charged and returning the power to the external power source when discharging, and a plurality of power sources connected to the regenerative unit and outputting intermediate output voltages And a housing that houses the regenerative unit and the power supply unit.
- a plurality of buck-boost converters mounted on the inspection table may be connected to the power supply unit of the power supply device. That is, a plurality of power supply units may be connected to the regeneration unit, and a plurality of step-up / step-down converters may be connected to each of the plurality of power supply units.
- the power system of the battery inspection system has a so-called tree-like wiring connection in which a plurality of power supply units are connected to one regenerative unit and a number of buck-boost converters are connected to the plurality of power supply units. It may be configured. A large number of step-up / down converters are provided for each inspection unit, and are connected to corresponding inspection units.
- the battery inspection device is configured to connect the power supply device and the inspection table at an intermediate stage of the tree diagram.
- a plurality of step-up / step-down converters are configured as step-up / step-down units in the inspection table, and the step-up / step-down units are connected to the power supply unit of the power supply device corresponding to the unit. If it does in this way, the amount of wiring in a battery inspection device can be reduced from the amount of wiring proportional to the number of inspection parts to the amount of wiring proportional to the number of buck-boost units. Wiring costs are also reduced.
- the power supply device can be made compact. This embodiment is particularly effective when a battery inspection system including a large number of battery inspection devices is constructed.
- the plurality of inspection units of the battery inspection table are grouped, and one step-up / down unit is mounted on the battery inspection table for each group.
- the grouping for the power system may be different from the grouping for the communication system described above.
- different numbers of inspection units may be included in one group for the power system and the communication system, so that the number of step-up / step-down units and communication units mounted on the battery inspection table may be different.
- a power supply system is designed so that the connection wiring between the buck-boost converter at the end of the tree diagram and the inspection unit is the connection wiring between the power supply device and the inspection table.
- a large number of buck-boost converters are provided corresponding to a large number of inspection units for inspecting a large number of batteries collectively. Therefore, enormous wiring is required.
- wiring for sending the measurement result obtained by the inspection unit is also drawn from each of the many inspection units to the power supply device or the control device.
- the installation layout of the battery inspection apparatus can be restricted in order to shorten the enormous amount of wiring as much as possible. Further, since a large number of buck-boost converters and connection terminals are provided, the power supply device becomes large.
- each of a large number of inspection units is directly connected to a power supply device or a control device via an analog communication line. Since the analog communication line and the power wiring are often installed with the same routing, the magnetic field generated by the current flowing through the power wiring interferes with the analog communication line, and noise is easily added to the analog measurement signal. Noise may adversely affect the reliability of the received signal. Further, the longer the analog communication line, the lower the signal reliability due to the voltage drop of the communication line itself.
- FIG. 1 is a diagram schematically showing an overall configuration of a battery inspection apparatus 10 according to an embodiment of the present invention.
- FIG. 2 is a block diagram for explaining a power system and a communication control system of the battery inspection apparatus 10 according to an embodiment of the present invention.
- the battery inspection apparatus 10 is a charge / discharge test apparatus configured to charge and discharge a large number of secondary batteries in order to collectively inspect a large number of secondary batteries.
- FIG.1 and FIG.2 the electric power system and communication control system of the battery test
- a solid line connecting each element indicates a power line
- a broken line indicates a communication control line.
- the battery inspection device 10 includes a power supply device 11 and a battery inspection table 12.
- the power supply device 11 and the battery inspection table 12 are configured as separate devices, and are connected by a connection cable.
- the connection cable includes a power line and a control line.
- the power supply device 11 and the battery inspection table 12 may be installed, for example, adjacent or close to each other. Alternatively, the power supply device 11 may be installed away from the battery inspection table 12.
- the amount of connection wiring between the power supply device 11 and the battery inspection table 12 can be reduced, it is easy to install the power supply device 11 and the battery inspection table 12 apart from each other. . For this reason, the freedom degree of the installation layout of the battery test
- a battery inspection system including a plurality of battery inspection devices 10 is configured in a factory, and a power supply area where a plurality of power supply devices 11 are installed is distinguished from an inspection area where a plurality of inspection tables 12 are installed. May be.
- an automatic conveyance system for carrying the battery in and out of the inspection table 12 may be installed.
- the power supply area may be provided in a separate room from the inspection area, for example, in a dedicated power supply room.
- the power supply chamber can also be reduced. For this reason, air conditioning management of the power supply room becomes easy. That is, the environmental temperature of the power supply device 11 can be adjusted with energy saving.
- the power supply device 11 includes a power regeneration converter 13, a constant voltage power supply 14, and a controller 15.
- the power regeneration converter 13 relays an external power source (not shown) and a constant voltage power source 14.
- the external power source is, for example, a commercial power source such as an AC power source supplied for industrial use.
- the power regeneration converter 13 functions as a power receiving circuit from an external power source when charging a battery to be inspected on the inspection table 12, and functions to return power to the external power source when the battery is discharged.
- the power regeneration converter 13 is provided as a power regeneration converter common to the plurality of constant voltage power sources 14.
- the constant voltage power supply 14 adjusts and outputs the power supplied from the external power supply via the power regeneration converter 13.
- the output of the constant voltage power supply 14 is referred to as an intermediate output for convenience.
- the constant voltage power supply 14 is configured to generate a plurality of intermediate outputs. That is, the constant voltage power supply 14 has a plurality of channels (for example, several channels or more). Each step-up / down converter 28 (see FIG. 2) of the step-up / step-down unit 17 is connected to each channel.
- the intermediate output is supplied to the step-up / step-down unit 17 mounted on the inspection table 12.
- the intermediate output has a voltage and current that is higher than the voltage and current that meet the inspection specification of the battery.
- the constant voltage power source 14 is, for example, a DC-DC converter, and preferably an insulated bidirectional DC-DC converter.
- a plurality of constant voltage power supplies 14 are provided, and each constant voltage power supply 14 is connected to the power regeneration converter 13 by a DC link line 18.
- the number of DC link lines 18 corresponding to the number of constant voltage power supplies 14 is provided. In the illustrated embodiment, since five constant voltage power supplies 14 are provided, the same number of five DC link lines 18 are provided.
- Each constant voltage power supply 14 receives power supply from the power regeneration converter 13 through the DC link line 18 when charging the battery to be inspected, and supplies power to the power regeneration converter 13 through the DC link line 18 when discharging the battery. To do.
- the controller 15 is configured to control the battery inspection table 12, the power regeneration converter 13, and the constant voltage power supply 14.
- the controller 15 and the power regeneration converter 13 are connected by a first communication control line 19, and the controller 15 and the constant voltage power supply 14 are connected by a second communication control line 21.
- the number of second communication control lines 21 corresponding to the number of constant voltage power supplies 14 is provided.
- the first communication control line 19 and the second communication control line 21 are provided separately from the DC link line 18.
- the power regeneration converter 13, the constant voltage power supply 14, and the controller 15 are accommodated in a power supply enclosure (not shown).
- the power supply device enclosure has a rack or frame structure, for example, and defines a rectangular parallelepiped internal space that houses the power regeneration converter 13, the constant voltage power supply 14, and the controller 15.
- the power supply enclosure contains a power regeneration converter 13 at the bottom, a controller 15 at the top, and a plurality of constant voltage power supplies 14 between the power regeneration converter 13 and the controller 15.
- the power regeneration converter 13, the constant voltage power supply 14, and the controller 15 are accommodated in a vertical direction (that is, a direction perpendicular to the floor surface) inside the power supply device enclosure. For this reason, the occupied floor area (so-called footprint) of the power supply device 11 can be reduced.
- the footprint of the power supply device 11 can be the same as or smaller than the footprint of the inspection table 12.
- the power regeneration converter 13, the constant voltage power supply 14, and the controller 15 may be arranged in an order different from the illustrated order inside the power supply device enclosure.
- the data processing unit 16 is connected to the controller 15.
- the data processing unit 16 collects and stores measurement data such as battery voltage, current, and temperature obtained by the inspection table 12 via the controller 15.
- the data processing unit 16 processes the collected data and outputs it by an output means such as an associated display or printer.
- the data processing unit 16 is a known personal computer, for example.
- the controller 15 and the data processing unit 16 are connected by a known method such as a LAN.
- the inspection table 12 includes an inspection stage for arranging a large number of batteries to be inspected in a matrix and a probe mechanism including a contact for inspecting the batteries, for example, a probe.
- the probe mechanism includes a large number of probes provided in an array corresponding to the matrix array of the inspection unit.
- the battery inspection table 12 has contacts arranged in an inspection stage in which mounting portions are arranged in a matrix to hold a large number of batteries, and an arrangement corresponding to the matrix arrangement of the mounting portions. A contactor array.
- the battery mounting position is defined as a mounting part.
- Each of the inspection units measures a probe for contact with a battery to be inspected and measures at least one of current, voltage, and temperature based on an input from the probe to generate an analog measurement signal.
- Circuit 34 In the battery inspection table 12, a communication unit (for example, a remote I / O 92) is installed on the opposite side of the inspection stage with the contactor array interposed therebetween. The communication unit and the contactor array are arranged on the same side as viewed from the inspection stage. That is, the communication unit is disposed behind the probe mechanism as viewed from the inspection stage.
- the measurement circuit 34 is disposed between the contact array and the communication unit.
- the arrangement of the devices on the battery inspection table 12 is in the order of the contact array, the measurement circuit 34, and the communication unit from the inspection stage.
- an electrical component including a contact 44, a contact support 46, a measurement circuit 34, and a remote I / O 92 outward from a battery support 42 for placing a battery. Products 56 are arranged in this order.
- the measurement circuit 34 can be arranged close to the communication unit.
- a control panel 90 that mounts the communication unit and the measurement circuit 34 and electrically connects the communication unit and the measurement circuit 34 may be provided in the battery inspection table 12. In this way, the wiring length between the measurement circuit 34 and the communication unit can be minimized.
- the inspection table 12 may include a moving mechanism that relatively moves the inspection stage and the probe mechanism so that the probe is brought into and out of contact with the battery.
- the inspection stage arranges a large number (for example, several tens or more) of batteries in a matrix along a plane perpendicular to the vertical direction (for example, a plane parallel to the floor surface).
- the moving mechanism provides a vertical relative movement between the inspection stage and the probe mechanism.
- the case 22 of the inspection table 12 accommodates an inspection stage and a probe mechanism. Moreover, the housing
- casing 22 is formed in the rectangular parallelepiped shape, and the emergency stop switch 23 is provided in the side surface. When the operator operates the emergency stop switch 23 in an emergency, the operation of the battery inspection device 10 can be stopped.
- the emergency stop switch 23 may be provided in the power supply device 11, or may be provided in the power supply device 11 and the inspection table 12, respectively.
- a plurality of (five in the figure) step-up / step-down units 17 and a control panel 90 are mounted on the inspection table 12.
- the step-up / step-down unit 17 and the control panel 90 are installed on the upper surface of the housing 22.
- the control panel 90 accommodates a remote I / O 92 (see FIG. 2).
- the remote I / O 92 is connected to the controller 15 via the communication cable 25. Since the remote I / O itself is a known device, the details of its configuration are omitted.
- the communication cable 25 is a digital communication line that enables multi-channel synchronous communication. Transmission / reception of control commands from the power supply device 11 to the inspection table 12 and transmission of measurement data from the inspection table 12 to the power supply device 11 are performed through the communication cable 25.
- Each of the step-up / step-down units 17 is directly connected to the constant voltage power supply 14 by a power cable 24.
- the power cable 24 is, for example, a four-core cable including a ground wire.
- Each of the step-up / step-down units 17 is connected to a remote I / O 92 by a communication line 26.
- the number of step-up / step-down units 17 is equal to the number of constant voltage power supplies 14, and the same number of power cables 24 as the constant voltage power supplies 14 are provided.
- the step-up / down unit 17 may be accommodated in the control panel 90.
- the control panel 90 may be provided with a control power supply module (not shown) for operating the step-up / step-down unit 17.
- the step-up / step-down unit 17 is preferably provided in an arrangement section different from the inspection stage section in which the inspection stage is arranged in the housing 22 of the inspection table 12. Since the step-up / step-down unit 17 handles a relatively large amount of power, it is preferable that the step-up / step-down unit 17 be provided away from the inspection section of the inspection table 12.
- the step-up / down unit 17 is preferably installed at the end of the inspection table 12. This would be effective as a measure assuming the possibility of flammable gas leaking from a defective battery in the inspection target.
- the step-up / down unit 17 is preferably provided at the upper end or the lower end of the inspection table 12.
- the housing 22 has a structure that closes the internal space from the external space and holds the contents so as not to be seen from the outside.
- casing 22 is provided with the wall part and door part (not shown) for demarcating internal space.
- the housing 22 may have a structure in which the contents are opened to the outside and visible from the outside.
- the housing 22 may be a rack, a frame, or a frame structure, for example.
- the step-up / step-down unit 17 mounted on the inspection table 12 includes a plurality of step-up / down converters 28 and a control circuit 29 for controlling these step-up / down converters 28.
- the step-up / step-down unit 17 includes, for example, an electronic board on which electronic circuits corresponding to the plurality of step-up / down converters 28 and the control circuit 29 are constructed.
- the control circuit 29 is connected to the remote I / O 92 through the communication line 26.
- the step-up / down unit 17 includes a number of step-up / down converters 28 equal to the number of channels of the constant voltage power supply 14 at the maximum.
- the step-up / step-down unit 17 includes a number of step-up / down converters 28 equal to the number of channels of the constant voltage power supply 14.
- the plurality of step-up / step-down converters 28 included in the step-up / step-down unit 17 are connected to the corresponding constant voltage power supply 14 by a common power cable 24.
- the inspection table 12 includes a number of step-up / down converters 28 corresponding to the inspection units of the inspection stage. That is, one step-up / down converter 28 is associated with each inspection unit, and the same number of step-up / down converters 28 as the inspection units are provided.
- the step-up / step-down converter 28 adjusts an intermediate output input from the constant voltage power supply 14 through the power cable 24 to a voltage and a current that conform to the inspection specification.
- the output of the step-up / down converter 28 is applied to the load 35 through each probe of the probe mechanism and used for inspection.
- the load 35 is a secondary battery to be inspected, for example, a battery cell.
- a measurement circuit 34 is provided corresponding to each inspection unit.
- the measurement circuit 34 is attached to the inspection unit or in the vicinity thereof along with the inspection unit.
- the measurement circuit 34 measures the state of the load 35 based on the input from each probe.
- the measurement circuit 34 includes, for example, at least one of a temperature measurement circuit, a voltage measurement circuit, and a current measurement circuit, and measures at least one of the temperature, voltage, and current of the load 35.
- the measurement circuit 34 is configured as an analog sensor that generates an analog measurement signal indicating the state of the load 35.
- the measurement circuit 34 and the remote I / O 92 are connected by an analog communication line 27.
- An analog communication line 27 is provided corresponding to each measurement circuit 34, and outputs from the plurality of measurement circuits 34 are input to the remote I / O 92.
- one remote I / O 92 may be provided on the examination table 12, and the outputs of all the measurement circuits 34 may be input to the remote I / O 92.
- a plurality of remote I / O 92 may be provided, and outputs of a plurality of measurement circuits 34 corresponding to the respective remote I / O 92 may be input.
- the analog input from each measurement circuit 34 is converted into a data file of a predetermined format by the remote I / O 92.
- This data file includes information on measurement results, and includes measured temperature data, measured voltage data, and measured current data.
- the remote I / O 92 transmits measurement data to the controller 15 of the power supply device 11 through the communication cable 25. The measurement data is relayed by the controller 15 and further sent to the data processing unit 16.
- measurement results obtained from a large number of measurement circuits 34 can be output to the common digital communication line via the remote I / O 92 and transmitted to the controller 15. Since it is not necessary to provide a separate communication line for each measurement circuit 34, the wiring amount of the battery inspection apparatus 10 can be reduced.
- the analog communication line is kept in the vicinity of the measurement circuit of the battery inspection table 12 and the communication line with the power supply device 11 is constituted by a digital system, it can be made less susceptible to the influence of the attached power line.
- the power cable 24 transmits a relatively large intermediate output. For this reason, digitization of the communication cable 25 is highly effective as a countermeasure against noise caused by the power cable 24.
- the remote I / O 92 transmits a measured value with a relatively small temporal variation rate (that is, does not change suddenly) less frequently than a measured value with a relatively large variation rate. May be.
- the temperature transmission frequency may be made smaller than the voltage and current. In this way, it is possible to reduce the communication load while suppressing the influence on the measurement accuracy.
- the measurement circuit 34 and the remote I / O 92 may be configured on a single electronic board, and the measurement circuit 34 may be connected to the remote I / O 92 by wiring on the electronic board. In this way, the transmission path of the analog measurement signal between the measurement circuit 34 and the remote I / O 92 can be shortened.
- both the measurement circuit 34 and the buck-boost converter 28 are provided on the inspection table 12. Since the measurement circuit 34 and the step-up / step-down converter 28 are connected in proximity to each other as compared with the case where the step-up / down converter 28 is built in the power supply device 11, a measurement error due to noise can be reduced.
- FIGS. 3 to 6 are diagrams schematically showing a main part of the battery inspection table 12 according to an embodiment of the present invention.
- 3 and 4 are a front view and a side view, respectively, when the battery 40 is carried in (or carried out after the inspection) for inspection.
- 5 and 6 are a front view and a side view, respectively, showing a state during inspection. 4 and 6 are views when the main part of the configuration shown in FIGS. 3 and 5 is viewed from the side.
- an XYZ orthogonal coordinate system is defined as shown. That is, the arrangement direction of the batteries 40 is the X direction, the vertical direction is the Y direction, and the direction orthogonal to both is the Z direction.
- the battery inspection table 12 includes a battery support portion 42, a contactor 44, and a contactor support portion 46. These are housed in a housing 22. In the illustrated embodiment, the battery support portion 42 and the contact support portion 46 face each other, and a battery array space 48 is formed between them. The battery support portion 42 is disposed below the contact support portion 46 in the vertical direction. A cross flow fan 50 for adjusting the temperature of the battery 40 is attached to the lower side of the battery support portion 42.
- the battery 40 has a first end face having the electrode 41, a second end face facing the first end face, and a side face connecting the first end face and the second end face.
- the battery 40 has a rectangular parallelepiped shape, and the batteries 40 are arranged in the horizontal direction (X direction) with the first end surface on the upper side, the second end surface on the lower side, and the side surfaces facing each other.
- the battery 40 is arranged with an interval from the adjacent battery 40.
- the side surface of the battery 40 is a plane parallel to the vertical direction (Y direction).
- the battery 40 is carried into the battery inspection table 12 while being held on the pallet 52, and is inspected and carried out.
- the loading / unloading direction of the pallet 52 is indicated by an arrow.
- the position when the pallet 52 and the battery 40 mounted on the pallet 52 are carried into the battery support portion 42 is indicated by a broken line.
- the pallet 52 and the battery 40 are, for example, carried into or out of the battery inspection table 12 by a pallet automatic carry-in device (not shown). Therefore, a part of the side wall of the battery inspection table 12 is configured as a door 54 that can be opened and closed.
- the door 54 is opened when the battery 40 is carried in and out, and is closed when the battery 40 is inspected. By closing the door 54, the battery array space 48 is partitioned from the external space during inspection.
- the battery support part 42 is a support table for mounting and supporting a plurality of batteries to be inspected.
- the battery support portion 42 supports the battery 40 by supporting a pallet 52 on which the battery 40 is mounted, instead of directly supporting the battery 40.
- the battery support 42 is moved up and down by a vertical movement mechanism (see FIG. 5).
- the battery 40 is moved together with the pallet 52 by the movement of the battery support portion 42, and the electrode 41 and the contact 44 of the battery 40 are contacted and separated.
- a space is formed inside the support table as described later. This space may be used as a rectifying space for rectifying the airflow sent from the crossflow fan 50 and directed to each battery 40.
- the support table includes a battery support plate for supporting the battery 40, a mounting plate for mounting the cross flow fan 50, a battery support plate and a mounting plate at both ends. You may provide the side plate connected mutually.
- the contactor 44 contacts the electrode 41 of each battery 40 and applies a voltage to each battery 40. Further, as described above, a contact (not shown) for measuring the temperature, voltage, current and the like of the battery 40 is also provided.
- the plurality of contacts 44 are provided in an arrangement corresponding to the arrangement of the plurality of batteries 40.
- the measurement circuit 34 connected to each contactor 44 is also provided in an array corresponding to the array of the plurality of batteries 40. In the illustrated example, six batteries are arranged in a row with their side surfaces facing each other, and correspondingly, six sets of contacts 44 and measurement circuits 34 are arranged in a row. In one example, two electrodes 41 are provided in one battery 40, and two contacts 44 are provided correspondingly (see FIGS. 4 and 6).
- Each contactor 44 and measurement circuit 34 are supported by a contactor support 46.
- the contact support portion 46 is, for example, a support plate for supporting the contact 44 and the measurement circuit 34, and is provided to face the battery support portion 42.
- the measurement circuit 34 is provided on the back side of the contact 44 (upward in the illustrated example) with the contact support 46 interposed therebetween.
- Each contactor 44 protrudes from the support plate toward the battery support 42, and on the opposite side of the battery support 42, various electrical devices such as the measurement circuit 34, the step-up / step-down unit 17, and the remote I / O 92 are provided. A space for accommodating the product 56 is secured (see FIG. 4).
- the remote I / O 92 is provided on the opposite side of the battery support 42 across the contact 44, and the measurement circuit 34 is disposed between the contact 44 and the remote I / O 92.
- a power cable 24 and a communication cable 25 that connect the battery inspection table 12 to the power supply device 11 extend from the side opposite to the door 54 in the X direction.
- the control panel 90 may be disposed on the upper surface of the inspection table 12 as shown in FIG. In some cases, the control panel 90 may be arranged in parallel with the measurement circuit 34, and the control panel 90 may be attached to the contact support 46 similarly to the measurement circuit 34.
- the electrical component housing space is partitioned from the battery array space 48 by the contact support portion 46, and may be used as an exhaust space for exhausting an air flow exhausted from the battery array space 48 as described later.
- This exhaust space is also partitioned from the external space in the same manner as the rectifying space and the battery array space 48 described above.
- the electrical component 56 such as the step-up / step-down unit 17 may be exposed outside the housing 22 instead of being accommodated in the electrical component accommodation space (see FIG. 2). ).
- the batteries 40 are arranged in one row, and six batteries 40 can be accommodated in the battery inspection table 12.
- the battery inspection table 12 may be configured to accommodate a larger number (or a small number) of batteries. For example, the number in the arrangement direction (X direction) may be increased, or the number of columns of the batteries 40 may be two or more.
- a plurality of battery inspection units including the battery support part 42, the contactor 44, and the contactor support part 46 may be stacked in the vertical direction. In this way, the number of batteries that can be inspected collectively can be increased.
- a battery array space 48 is formed for each battery row, and a cross flow fan 50 is also attached to each battery row.
- the cross flow fan 50 is disposed along the arrangement direction of the batteries 40.
- the cross-flow fan 50 is arranged with the air outlet facing the battery 40. As shown in FIG. 6, the cross-flow fan 50 sucks air from the lateral direction (Z direction) and blows upward toward the battery 40 (Y direction). To do.
- the length of the cross flow fans 50 in the arrangement direction is equal to or longer than the arrangement length of the batteries 40.
- a plurality of cross flow fans 50 may be provided along the battery arrangement direction with respect to one battery row, or a plurality of battery rows may share one cross flow fan 50.
- the supply source of the temperature control fluid is not limited to the cross flow fan.
- a fan such as a fan, a circulator, or a blower may be disposed along the arrangement direction of the batteries 40.
- the blower has an elongated blower port extending in the battery arrangement direction, and the blower port is disposed to face each battery.
- a flow straightening plate may be used between the air blowing port and the battery to improve flow uniformity.
- the temperature control fluid supply source may be configured to flow a temperature control gas or liquid other than ambient air along the battery surface.
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- Chemical Kinetics & Catalysis (AREA)
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- Secondary Cells (AREA)
- Tests Of Electric Status Of Batteries (AREA)
- Charge And Discharge Circuits For Batteries Or The Like (AREA)
Abstract
Description
Claims (5)
- 充放電可能な電池を検査するための検査部を複数備える電池検査台と、該電池検査台とは別体に設けられており該電池検査台を制御するための制御装置と、を備える電池検査装置であって、
前記検査部の各々は、対応する電池に接触するための検査用の接触子と、該接触子に接続されており該接触子からの入力に基づき電流、電圧、及び温度の少なくとも1つを計測してアナログ計測信号を生成する計測回路と、を含み、
前記電池検査台は、複数の検査部の各々で生成されたアナログ計測信号をデジタルに変換し共通のデジタル通信線に出力する少なくとも1つの通信ユニットを搭載しており、前記デジタル通信線は前記通信ユニットと前記制御装置とを接続することを特徴とする電池検査装置。 - 前記検査部の各々は、電池の載置位置を画定する載置部を含み、
前記電池検査台は、多数の電池を保持するために前記載置部がマトリックス状に配列されている検査ステージと、前記載置部のマトリックス状配列に対応する配列で前記接触子が配列されている接触子アレイと、を備え、
前記通信ユニットは前記接触子アレイを挟んで前記検査ステージとは反対側に設けられており、前記接触子アレイと前記通信ユニットとの間に前記計測回路が配置されることを特徴とする請求項1に記載の電池検査装置。 - 前記電池検査台は、前記通信ユニットと前記計測回路とを搭載した制御盤を備えることを特徴とする請求項1に記載の電池検査装置。
- 前記通信ユニットは、入力されたアナログ計測信号が表す計測結果をデータファイルに変換し前記デジタル通信線を通じて前記制御装置に送信することを特徴とする請求項1に記載の電池検査装置。
- 前記電池検査装置は、前記電池検査台とは別体に設けられており前記検査部への電力の供給及び回収をするための電源装置をさらに備え、前記制御装置は前記電源装置に搭載されており、
前記電池検査台は、複数の検査部の各々に与える電圧を調整する複数の昇降圧コンバータを搭載しており、複数の昇降圧コンバータは、共通の電力線で前記電源装置に接続される昇降圧ユニットとして構成されており、前記昇降圧ユニットは前記通信ユニット及び前記デジタル通信線を介して前記制御装置に接続されていることを特徴とする請求項1に記載の電池検査装置。
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CN201180024797.3A CN102906583B (zh) | 2010-05-19 | 2011-05-13 | 电池检查装置 |
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US13/680,576 US9217776B2 (en) | 2010-05-19 | 2012-11-19 | Battery inspection apparatus |
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US13/680,576 Continuation US9217776B2 (en) | 2010-05-19 | 2012-11-19 | Battery inspection apparatus |
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JP (1) | JP2012002796A (ja) |
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US20130141107A1 (en) | 2013-06-06 |
TW201211567A (en) | 2012-03-16 |
JP2012002796A (ja) | 2012-01-05 |
KR101403737B1 (ko) | 2014-06-03 |
US9217776B2 (en) | 2015-12-22 |
CN102906583A (zh) | 2013-01-30 |
KR20130040204A (ko) | 2013-04-23 |
CN102906583B (zh) | 2016-03-16 |
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