MEASURING APPARATUS AND TESTING APPARATUS
20220018909 · 2022-01-20
Assignee
Inventors
Cpc classification
G01R31/392
PHYSICS
G01R27/025
PHYSICS
Y02E60/10
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
G01R31/396
PHYSICS
International classification
Abstract
A measuring apparatus includes: N pairs of probes that are respectively connected to a positive electrode and an external member of N rechargeable batteries that have a capacitance connected in parallel between the positive electrode and the external member; a scanner that selectively switches to one pair of probes out of the N pairs; a measuring apparatus that measures the voltage between the selected probes; and a controller. A plurality of resistance configurations to be connected between each pair of probes are provided. After a standby time has elapsed in a state where the N pairs of probes are connected to the positive electrodes and external members of the N rechargeable batteries, the controller outputs control signals to the scanner to successively switch to each pair of probes and causes the measuring apparatus to measure the voltage between the selected probes every time switching is performed.
Claims
1. A measuring apparatus comprising: a plurality of pairs of probes that are each connected to a pair of voltage measurement target locations on a plurality of measured objects that each have an equivalent of an internal capacitance connected in parallel between the pair of voltage measurement target locations; a switch that selectively switches to one pair of probes out of the plurality of pairs of probes according to a selective switching signal; a meter that measures a voltage between the probes in the pair of probes that have been selectively switched to according to the selective switching signal; and a controller that outputs the selective switching signal to the switch, wherein a plurality of resistance configurations to be connected between each pair of probes are provided, and after a predetermined standby time has elapsed in a state where the plurality of probes have been connected to each pair of voltage measurement target locations on the plurality of measured objects, the controller outputs the selective switching signal to the switch to cause the switch to successively selectively switch to each pair of probes out of the plurality of pairs of probes and causes the meter to measure the voltage between the probes in the pair of probes that have been selectively switched to every time selective switching is performed.
2. The measuring apparatus according to claim 1, wherein the resistance configurations each include a plurality of resistance circuits with respectively different resistance values and a switching circuit that selectively switches to one out of the plurality of resistance circuits.
3. The measuring apparatus according to claim 2, wherein the switching circuit selectively switches to one out of the plurality of resistance circuits in accordance with a control signal outputted from the controller.
4. A testing apparatus comprising: the measuring apparatus according to claim 1 where each pair of probes is connected, as the pair of voltage measurement target locations, to a positive electrode terminal and an external metal member of a laminated lithium-ion cell as a tested object; and a determiner that determines whether the tested object is defective or non-defective based on the voltage between the probes measured by the meter.
5. A testing apparatus comprising: the measuring apparatus according to claim 2 where each pair of probes is connected, as the pair of voltage measurement target locations, to a positive electrode terminal and an external metal member of a laminated lithium-ion cell as a tested object; and a determiner that determines whether the tested object is defective or non-defective based on the voltage between the probes measured by the meter.
6. A testing apparatus comprising: the measuring apparatus according to claim 3 where each pair of probes is connected, as the pair of voltage measurement target locations, to a positive electrode terminal and an external metal member of a laminated lithium-ion cell as a tested object; and a determiner that determines whether the tested object is defective or non-defective based on the voltage between the probes measured by the meter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0026] Preferred embodiments of a measuring apparatus and a testing apparatus will now be described with reference to the attached drawings.
[0027] First, the configuration of a rechargeable battery to be tested will be described with reference to the drawings. As depicted in
[0028] Note that in
[0029] Next, the configuration of a testing apparatus 1 as the testing apparatus depicted in
[0030] The tip of one probe PR1.sub.1 out of the pair of probes PR1.sub.1 and PR2.sub.1 that construct the channel CH1 is connected to the positive electrode terminal T1 (that is, one out of a pair of “voltage measurement target locations”) of the rechargeable battery Cell.sub.1 and the base end of this probe PR1.sub.1 is connected to the input IN1.sub.1 of the scanner SC. The tip of the other probe PR2.sub.1 out of the pair of probes PR1.sub.1 and PR2.sub.1 is connected to the external member AO (that is, the other out of the pair of “voltage measurement target locations”) of the rechargeable battery Cell.sub.1 and the base end of this probe PR2.sub.1 is connected to the input IN2.sub.1 of the scanner SC. Similarly, the tip of one probe PR1.sub.2 out of the pair of probes PR1.sub.2 and PR2.sub.2 that construct the channel CH2 is connected to the positive electrode terminal T1 of the rechargeable battery Cell.sub.2 and the base end of this probe PR1.sub.2 is connected to the input IN1.sub.2 of the scanner SC. The tip of the other probe PR2.sub.2 out of the pair of probes PR1.sub.2 and PR2.sub.2 is connected to the external member AO of the rechargeable battery Cell.sub.2 and the base end of this probe PR2.sub.2 is connected to the input IN2.sub.2 of the scanner SC. In the same way, although not illustrated, the tip of one probe PR1.sub.J out of the pair of probes PR1.sub.J and PR2.sub.J (where J is an integer that is three or higher but below N) that construct the channel CH.sub.J is connected to the positive electrode terminal T1 of the rechargeable battery Cell.sub.J and the base end of this probe PR1.sub.J is connected to the input IN1.sub.J of the scanner SC. The tip of the other probe PR2.sub.J out of the pair of probes PR1.sub.J and PR2.sub.J is connected to the external member AO of the rechargeable battery Cell.sub.J and the base end of this probe PR2.sub.J is connected to the input IN2.sub.J of the scanner SC. The tip of one probe PR1.sub.N out of the pair of probes PR1.sub.N and PR2.sub.N that construct the channel CH.sub.N is connected to the positive electrode terminal T1 of the rechargeable battery Cell.sub.N and the base end of this probe PR1.sub.N is connected to the input IN1.sub.N of the scanner SC. The tip of the other probe PR2.sub.N out of the pair of probes PR1.sub.N and PR2.sub.N is connected to the external member AO of the rechargeable battery Cell.sub.N and the base end of this probe PR2.sub.N is connected to the input IN2.sub.N of the scanner SC. Note that as one example, the probe PR2 has a sharp tip, and during voltage measurement, the tip of the probe PR2 is placed in contact with the metal layer by being passed through the synthetic resin layer located at the sealed portion of the external member AO. However, the present invention is not limited to this configuration, and it is also possible to use a configuration where a conductive sheet (rubber) or the like is placed in contact with the end surface of the external member AO and the probe PR2 is placed in contact with this conductive sheet.
[0031] The probe holder HD holds the respective probes PR (a plurality of pairs of the probes PR), and at the start of voltage measurement, operates (moves) according to a control signal S3, described later, outputted from the controller CON to connect the positive electrode terminals T1 and the external members AO, which are pairs of voltage measurement target locations of all (that is, the plurality of) rechargeable batteries Cell that are to be connected and the corresponding probes PR in a single operation. However, the probe holder HD is not limited to automatic control in accordance with the control signal S3 outputted from the controller CON, and it is also possible for measurement staff to manually move the probe holder HD at arbitrary timing and connect the positive electrode terminals T1 and the external members AO of all of the rechargeable batteries Cell that are to be connected and the corresponding probes PR at the same time.
[0032] The scanner SC is configured to have a function that selectively switches to one pair of probes PR out of a plurality of pairs (in the present embodiment, N pairs) of probes PR in accordance with control signals S1.sub.1 to S1.sub.N (or “switching control signals”, hereinafter collectively referred to as the “control signal S1” when no distinction is made between the signals) described later outputted from the controller CON and connects the probes PR, which have been selectively switched to, to the measuring apparatus M. In more detail, the scanner SC includes: inputs IN1.sub.1, IN2.sub.1 to IN1.sub.N, IN2.sub.N (hereinafter referred to as the “inputs IN1” when no distinction is made between the inputs IN1.sub.1 to IN1.sub.N and referred to as the “inputs IN2” when no distinction is made between the inputs IN2.sub.1 to IN2.sub.N) to which the N pairs of probes PR are respectively connected; N switches SW1.sub.1 to SW1.sub.N (hereinafter referred to as the “switches SW1” when no distinction is made between the switches) for successively selectively switching to a pair of probes PR out of the N pairs of probes PR; N resistors R21.sub.1 to R21.sub.N (hereinafter referred to as the “resistors R21” when no distinction is made) and N resistors R22.sub.1 to R22.sub.N (hereinafter referred to as “resistors R22” when no distinction is made) that act in combination with the capacitor C1 of the rechargeable batteries Cell to shorten the time constant during transient response; N switches SW2 (switching circuits) for selectively switching to one out of the resistors R21 and R22; outputs OUT1 and OUT2 for outputting an input signal SIN out of the input signals SIN.sub.1 to SIN.sub.N (the voltage across the probes PR, hereinafter referred to as the “input signal SIN” when no distinction is made), described later, selectively switched to by the switches SW1; inputs INS1.sub.1 to INS1.sub.N (hereinafter referred to as “inputs INS1” when no distinction is made) into which control signals S1.sub.1 to S1.sub.N for switching control of the switches SW1.sub.1 to SW1.sub.N are inputted; and an input INS2 into which a control signal S2 for switching control of the movable contacts of the above N switches SW2 to the same fixed contacts is inputted. Note that it is also possible to provide the resistors R21 and R22 and the switches SW2 outside the scanner SC.
[0033] The respective switches SW1.sub.1 to SW1.sub.N perform selective switching control (on/off control) in accordance with the control signals S1.sub.1 to S1.sub.N outputted from the controller CON so that one switch SW1 to which a control signal S1 at the high level is outputted is turned on and all of the other switches SW1 to which a control signal S1 at the low level is outputted are turned off. Here, the input signal SIN (that is also the voltage across the resistor R21 or resistor R22 used to shorten the time constant), which is the voltage between the positive electrode terminal T1 and the external member AO of the corresponding rechargeable battery Cell, is outputted to the measuring apparatus M via the pair of probes PR on the channel CH of the switch SW1 that has been controlled so as to be turned on.
[0034] The resistors R21 and R22 each construct a resistance circuit and construct one resistance configuration to be connected between each pair of probes PR. By being provided on each channel CH, the resistors R21 and R22 construct a “plurality of resistance configurations” for the present invention. The resistors R21 and R22 are provided to shorten the time constant and as one example, the respective resistance values are 10 M ohm and 100 M ohm. One out of the resistors R21 and R22 is selected by the selective switching by the switches SW2. In a configuration where the resistors R21 and R22 are not provided, when, during voltage measurement of the voltage of a rechargeable battery Cell, the voltage across both ends of the capacitor C1 (that is, the voltage between the positive electrode terminal T1 and the external member AO) of the rechargeable battery Cell is inputted into the measuring apparatus M via the scanner SC as the input signal SIN, the response waveform of the input signal SIN will change in accordance with a time constant determined by the capacitance value of the capacitor C1 and the resistance value of the input resistance R11, described later, of the measuring apparatus M. In that configuration, when the resistance value of the input resistance R11 is set at around 10 G ohms as one example, this large resistance value will produce a large time constant, and as a result, it will take a long time for the voltage value of the input signal SIN to reach the value in the steady state. That is, it will take a long time to measure a voltage value of the input signal SIN.
[0035] On the other hand, as depicted in
[0036] However, when the insulation resistance (the resistor R2) between the negative electrode terminal T2 and the external member AO is in an intermediate state between an open circuit and a short circuit, the voltage value of the battery B4 will be a voltage value in keeping with the extent of this intermediate state (that is, whether the state is close to an open circuit or close to a short circuit), and the response waveform of the input signal SIN will change in accordance with the time constant described above immediately after the input signal SIN has been inputted. Accordingly, if the voltage is measured immediately after the input signal SIN has been inputted, there is the risk that it will not be possible to accurately determine whether a rechargeable battery Cell is defective or non-defective. For this reason, it is necessary to measure the voltage value of the input signal SIN in a state where the voltage has settled from the transient state to a steady state according to the time constant (that is, when a standby time TW described later has elapsed from the inputting of the input signal SIN) and then determine whether the rechargeable battery Cell to be measured is defective or non-defective by comparing the voltage value and a threshold voltage set in advance. To shorten this standby time TW, separately to the input resistance R11 inside the measuring apparatus M, the resistors R21 and R22, which shorten the time constant, have resistance values that are a certain degree smaller than (or sufficiently smaller than) the input resistance R11, and act in combination with the capacitance value of the capacitor C1 to produce a small time constant, are provided either at the inputs of the measuring apparatus M or outside the measuring apparatus M (in the present embodiment, outside the measuring apparatus M). When the resistance values of the resistors R21 and R22 are too small, the voltage value of the inputted input signal SIN will become small, resulting in a slight drop in the accuracy of voltage measurement. Accordingly, the resistance values of the resistors R21 and R22 are determined in advance so that these two objects (that is, shortening the time constant and improving the accuracy of voltage measurement) can be selected as desired, and selective switching between the resistors R21 and R22 is performed in accordance with factors such as the type of the rechargeable battery Cell to be measured (that is, the capacitance value of the internal capacitance that is equivalently connected in parallel between the pair of the voltage measurement target locations). Note that the length of the standby time TW and the voltage value of the threshold voltage described above are set in advance in accordance with factors such as the type of the rechargeable battery Cell to be measured.
[0037] Each switch SW2 operates in accordance with an instruction signal S2 outputted from the controller CON to selectively switch to one of the resistors R21 and R22.
[0038] The measuring apparatus M is configured as a voltage measuring apparatus with extremely high input resistance, like a digital multimeter for example, and as an equivalent circuit, includes an input resistance R11 of about 10 G ohms, for example, and a voltmeter VM that measures the voltage of the input signal SIN (that is, the DC voltage between the positive electrode terminal T1 and the external member AO), which is the voltage to be measured and has been inputted across both ends of the input resistance R11 via the probes PR1 and PR2 and the scanner SC. The voltmeter VM starts measurement when a measurement start signal Ss has been outputted from the controller CON, performs A/D conversion on the input signal SIN using an internal A/D converter to generate measurement data Dm, and outputs the measurement data Dm to the controller CON. The operator OP includes various operation switches for selecting the resistors R21 or R22 for shortening the time constant of the transient response and indicating the start of measurement and end of measurement to the controller CON.
[0039] In accordance with various switch signals outputted from the operator OP, the controller CON outputs the control signal S3 described above to control the probe holder HD, outputs the control signal S1 (or “selective switching signal”) to execute on/off control of the switches SW1, and outputs the control signal S2 to execute selective switching control of the switches SW2. Every time selective switching of the probes PR is performed, the controller CON outputs the measurement start signal Ss for causing the measuring apparatus M (the voltmeter VM) to measure the voltage between the probes PR and PR out of the pair of probes PR selectively switched to by one of the switches SW1, and thereby executes control over the measuring device M. The controller CON also includes an internal memory composed of a semiconductor memory, a hard disk device, or the like, and stores the measurement data Dm outputted from the measuring apparatus M (the voltmeter VM) in the internal memory.
[0040] The controller CON also functions as a determiner, and determines whether a rechargeable battery Cell is defective or non-defective based on the voltage value of the input signal SIN measured by the measuring apparatus M (the voltmeter VM). As described above, the controller CON compares the voltage value of the input signal SIN when the standby time TW has elapsed from the inputting of the input signal SIN and the voltage value has settled into a steady state with the threshold voltage to determine whether the rechargeable battery Cell is defective or non-defective.
[0041] Next, the operation of the testing apparatus 1 will be described. Note that it is assumed that all N rechargeable batteries Cell have been placed at a testing position and that N pairs of probes PR are held in advance in the probe holder HD.
[0042] First, one of the resistors R21 and R22 is selected in accordance with the capacitance value of the capacitor C1 of the rechargeable battery Cell to be measured and the desired voltage measurement accuracy. In the present embodiment, as one example, it is assumed that the resistors R21, which are 10 M ohm, are selected, and the operation switch of the operator OP for selecting the resistors R21 is operated. When this happens, the controller CON inputs the switch signal from the operation switch and outputs the control signal S2. In response to this, the control signal S2 is outputted via the inputs INS2 to the inside of the scanner SC, and all of the switches SW2 on the respective channels CH switch their movable contacts to the resistor R21 side. Note that when selecting the resistors R22, which are 100 M ohm, the operation switch of the operator OP for selecting the resistors R22 is operated. When this happens, the controller CON inputs the switch signal of the operation switch and outputs the control signal S2. In response to this, the control signal S2 is outputted via the inputs INS2 to the inside of the scanner SC, and all of the switches SW2 on the respective channels CH switch their movable contacts to the resistor R22 side.
[0043] Next, the operation switch of the operator OP for indicating the start of testing is operated. When this happens, as depicted in
[0044] Next, as depicted in
[0045] Next, the controller CON stops the outputting of the control signal S1.sub.1 and the measurement start signal Ss at time tis to stop voltage measurement of the rechargeable battery Cell.sub.1 by the measuring apparatus M (the voltmeter VM), and also ends the testing of defective or non-defective for the rechargeable battery Cell.sub.1. At this time, on each channel CH, any electric charge that has accumulated in the capacitors C1 of all the rechargeable batteries Cell will have already been discharged, so that the voltage waveform W1 on every channel CH will be the voltage value in the steady state. For this reason, the controller CON outputs the control signal S12 at the time t2 immediately after the time t1s without waiting for the standby time TW to shift the switch SW1.sub.2 of the channel CH2 to the ON state and outputs the measurement start signal Ss to cause the measuring apparatus M (the voltmeter VM) to commence voltage measurement for the rechargeable battery Cell.sub.2 which is to be measured next. Here also, in the same way as the voltage measurement and the determination of defective or non-defective for the rechargeable battery Cell.sub.1, the controller CON measures (calculates) the voltage value of the rechargeable battery Cell.sub.2 based on the measurement data Dm outputted from the measuring apparatus M (the voltmeter VM) and also determines whether the rechargeable battery Cell.sub.2 is defective or non-defective based on the measured voltage value and the threshold voltage. After this, in the same way as the voltage measurement and determination of defective or non-defective for the rechargeable battery Cell.sub.1, the controller CON stops the outputting of the control signal S12 and the measurement start signal Ss to stop the voltage measurement of the rechargeable battery Cell.sub.2 by the measuring apparatus M (the voltmeter VM) and ends the determination of defective or non-defective for the rechargeable battery Cell.sub.2.
[0046] After this, in the same way as the voltage measurement and determination of defective or non-defective for the rechargeable battery Cell.sub.2, the controller CON executes the voltage measurement and determination of defective or non-defective for the rechargeable battery Cell.sub.3 to the rechargeable battery Cell.sub.(N-1), stops the outputting of the control signal S1.sub.(N-1) and the measurement start signal Ss at the time t(N−1)s to stop the voltage measurement of the rechargeable battery Cell.sub.(N-1) by the measuring apparatus M (the voltmeter VM) and ends the determination of defective or non-defective for the rechargeable battery Cell.sub.(N-1). Next, the controller CON outputs the control signal S1.sub.N at the time tN immediately after the time t(N−1)s to shift the switch SW1.sub.N on the channel CHN to the on state and also outputs the measurement start signal Ss to cause the measuring apparatus M (the voltmeter VM) to start voltage measurement of the rechargeable battery Cell.sub.N, which is the final measured object. Here also, in the same way as the voltage measurement and determination of defective or non-defective for the rechargeable batteries Cell.sub.1 to Cell.sub.(N-1), the controller CON measures (calculates) the voltage value of the rechargeable battery Cell.sub.N based on the measurement data Dm outputted from the measuring apparatus M (the voltmeter VM) and executes a determination of defective or non-defective for the rechargeable battery Cell.sub.N based on the measured voltage value and the threshold voltage. After this, at the time tNs, the controller CON stops the outputting of the control signal S1.sub.N and the measurement start signal Ss to complete the voltage measurement and determination of defective or non-defective for all of the rechargeable batteries Cell, and by doing so, ends the testing of the N rechargeable batteries Cell.
[0047] In this way, the measuring apparatus M and the testing apparatus 1 are provided with the plurality of resistors R21 (and the resistors R22) connected between the pair of probes PR on each channel CH. Before the start of voltage measurement, in a state where N pairs of probes PR have been connected to the positive electrode terminals T1 and the external members AO of the N rechargeable batteries Cell, the controller CON discharges any charge accumulated in the respective capacitors C1 of all of the rechargeable batteries Cell in a single operation via the resistors R21 (or the resistors R22) connected between the respective probes PR. Next, after the standby time TW has elapsed, the controller CON successively outputs the control signals S1 to the scanner SC to successively selectively switch to a pair of probes PR out of the N pairs of probes PR. Every time the selective switching is performed, the controller CON causes the measuring apparatus M (the voltmeter VM) to perform A/D conversion (measurement) on the voltage between the probes of the pair of probes PR that have been selectively switched to (that is, the input signal SIN), measures the voltage value of the input signal SIN based on the converted measurement data Dm, and determines whether each rechargeable battery Cell is defective or non-defective based on this measured value.
[0048] Accordingly, before the start of voltage measurement, by merely waiting for the standby time Tw once after the N pairs of probes PR have been connected to the positive electrode terminals T1 and the external members AO of the N rechargeable batteries Cell, it is possible, when measuring the voltage of each rechargeable battery Cell, to measure the voltage immediately without waiting for the standby time TW. As a result, since it is sufficient to wait for the standby time TW once compared to the existing configuration adopted by the applicant where a time at least equal to the standby time TW multiplied by N was necessary, the measuring apparatus M and the testing apparatus 1 are capable of sufficiently shortening the measurement time required by voltage measurement of a large number of rechargeable batteries Cell and also sufficiently shortening the testing time. By increasing the number of N pairs of probes PR, it is possible to further shorten the time required for voltage measurement and testing per rechargeable battery Cell.
[0049] Also, by using resistance configurations that each include a plurality of resistors R21 and R22 with respectively different resistance values and a switch SW2 for selectively switching to one out of the plurality of resistors R21 and R22, it is possible, while using simple and low-cost configurations, for the measuring apparatus M and the testing apparatus 1 to select shortening of the time constant and the accuracy of voltage measurement as desired in accordance with factors such as the type of measured object.
[0050] By having the switches SW2 selectively switch to any one out of the plurality of resistors R21 and R22 according to the control signal S2 outputted from the controller CON, the measuring apparatus M and the testing apparatus 1 can selectively switch to one of the resistors R21 and R22 in a fully automatic manner.
[0051] According to this testing apparatus 1, testing is performed on laminated lithium ion batteries as tested objects by connecting a pair of probes PR to a positive electrode terminal T1 and an external member AO of each battery as a pair of voltage measurement target locations, performing voltage measurement with the measurement apparatus M (the voltmeter VM), and the controller CON (or “determiner”) determining whether each rechargeable battery Cell is defective or non-defective based on the measured measurement data Dm (that is, the voltage between the probes PR). This means that it is possible to test whether the insulation resistance (the resistor R2) between the negative electrode terminal T2 and the external member AO of the rechargeable battery Cell is defective or non-defective, and in turn to test whether the rechargeable battery Cell is defective or non-defective in a sufficiently short time.
[0052] Note that in the present embodiment, although dead time is provided between the timing at which the switch SW1 of one channel CH is turned off (for example, the time t1s) and the timing at which the switch SW1 of the next channel CH is turned on (for example, the time t2) to avoid a state where two switches SW1 are simultaneously on due to the time taken for the switch SW1 to become completely off (the fall time) and the time taken to become completely on (the rise time), when two switches being on at the same time is not problematic, this dead time does not need to be provided.
[0053] Also, although in the present embodiment, the controller CON determines whether a rechargeable battery Cell is defective or non-defective every time voltage measurement is executed for a rechargeable battery Cell, the present invention is not limited to this. As one example, it is also possible for the controller CON to not execute a determination of defective or non-defective every time voltage measurement is executed for a rechargeable battery Cell and to instead collectively execute a determination of defective or non-defective for all of the rechargeable batteries Cell when voltage measurement has been completed for all of the rechargeable batteries Cell.sub.1 to Cell.sub.N.
[0054] The resistance circuits (the resistors R21 and R22) according to the present invention do not need to be constructed of a single resistance element, and may be configured by connecting a plurality of resistance elements in parallel and/or in series. Also, although the present embodiment uses a configuration where switching is performed between two types of resistors R21 and R22 with different resistance values so that one of the resistors (the resistor R21 or the resistor R22) is selected, the present invention is not limited to this. As one example, it is possible to adopt a configuration in which three or more types of resistors with different resistance values are provided and one or more of the resistors is selected, or a configuration where only one resistance circuit with a predetermined resistance value is included (that is, a configuration that does not selectively switch to at least one resistance circuit out of a plurality of resistance circuits with different resistance values).
[0055] Also, although an example where each switching circuit inside the scanner SC is constructed of the mechanical switches SW1 and SW2 has been described, it is also possible to construct a switching circuit with a relay, a semiconductor switch, or the like.
[0056] As another example, as depicted in
[0057] Although measurement and testing are performed on a non-aqueous electrolyte rechargeable battery Cell as a measured object and as a tested object, which is a laminated cell battery, in the above example, the present invention is not limited to this, and so long as measurement and testing are performed on a plurality of measured objects as measured objects and as tested objects, where an internal capacitance is equivalently connected in parallel between a pair of voltage measurement target locations, it is also possible to perform measurement and testing of other types of rechargeable batteries as measured objects and as tested objects. The present invention is also not limited to rechargeable batteries, and it is possible to perform measurement and testing on a variety of elements, circuits, and the like as measured objects and as tested objects.