Power supply device and method for controlling the power supply device

The power supply device efficiently manages capacitor equalization through dynamic control, addressing the inefficiency of existing methods by reducing the time required for voltage equalization, ensuring reliable power supply to critical systems.

JP7779506B2Active Publication Date: 2025-12-03MINEBEAMITSUMI INC

Patent Information

Application Number
JP2021162141
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-30
Publication Date
2025-12-03
Estimated Expiration
2041-09-30

AI Technical Summary

Technical Problem

Existing methods for equalizing electric double layer capacitors require a long period of operation to achieve voltage equalization, which is inefficient.

Method used

A power supply device with a power storage circuit and control unit that includes switches and resistors to dynamically manage the equalization process based on voltage differences between capacitors, reducing the time required for equalization.

Benefits of technology

The device significantly reduces the time needed for equalization of electric double layer capacitors, ensuring efficient and timely power supply to critical systems like automobile door latches.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a power supply which reduces a time required for the equalization processing of an electric double-layer capacitor.SOLUTION: The power supply includes: a power storage circuit including a first electric double-layer capacitor and a second electric double-layer capacitor; a first switch element; a first discharge resistor; a second switch element; a second discharge resistor; and a power control unit. The power control unit executes the procedures of: discharging the first electric double-layer capacitor if the absolute value of a difference between a first capacitance-voltage value of the first electric double-layer capacitor and a second capacitance-voltage value of the second electric double-layer capacitor is larger than a reference voltage value, and if the first capacitance-voltage value is larger than the second capacitance-voltage value; and discharging the second electric double-layer capacitor if the absolute value of a difference between the first capacitance-voltage value and the second capacitance-voltage value is larger than the reference voltage value, and if the second capacitance-voltage value is larger than the first capacitance-voltage value.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to a power supply device and a method for controlling a power supply device. [Background technology]

[0002] BACKGROUND ART In automobiles, backup power supplies are known that are provided to supply electrical energy in place of or supplement the main power supply in the event of a failure or interruption of the main power supply (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent No. 6675874 Summary of the Invention [Problem to be solved by the invention]

[0004] Patent Document 1 discloses the use of a supercapacitor as a backup power source, and also discloses the inclusion of an equalization module so that both capacitor cells have the same cell voltage value.

[0005] Known methods for operating an equalization circuit for electric double layer capacitors connected in series include setting the resistance value used in the circuit high and operating it constantly, or setting the resistance value used in the equalization circuit low and turning the equalization circuit on and off intermittently as needed.However, these methods require a long period of operation until the voltages of the electric double layer capacitors reach equalization.

[0006] The present disclosure provides a power supply device that reduces the time required for equalization of an electric double layer capacitor. [Means for solving the problem]

[0007] In one aspect of the present disclosure, there is provided a power storage circuit having a first node connected to a power supply and a second node grounded, the power storage circuit including a first electric double layer capacitor between the first node and a third node and a second electric double layer capacitor between the third node and the second node; a first switch element having a first terminal connected to the first node and a second terminal and connecting or disconnecting the first terminal and the second terminal; a second switch element having a first discharge resistor provided between the second terminal and a fourth node connected to the third node, a third terminal, and a fourth terminal grounded and connecting or disconnecting the third terminal and the fourth terminal; a second discharge resistor provided between the third terminal and the fourth node; and a power supply control unit that measures voltages of the first node and the third node and controls the first switch element and the second switch element, a step of connecting the first switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than a reference voltage value and the first capacitance voltage value is higher than the second capacitance voltage value, and opening the first switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value is lower than the reference voltage value; and a step of connecting the second switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than the reference voltage value and the second capacitance voltage value is higher than the first capacitance voltage value, and opening the second switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value is lower than the reference voltage value. [Effects of the Invention]

[0008] According to the power supply device of the present disclosure, the time required for equalization processing of the electric double layer capacitor can be reduced. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a diagram showing an example of the configuration of a power supply device according to the first embodiment. [Figure 2] FIG. 2 is a diagram showing an example of the configuration of the equalization discharge circuit of the power supply device according to the first embodiment. [Figure 3] FIG. 3 is a flowchart illustrating a processing procedure of the power supply device according to the first embodiment. [Figure 4] FIG. 4 is a flowchart illustrating the processing procedure of the power supply device according to the first embodiment. [Figure 5] FIG. 5 is a flowchart illustrating the discharge type characteristic measurement process of the power supply device according to the first embodiment. [Figure 6] FIG. 6 is an equivalent circuit diagram of a circuit that performs a discharge-type characteristic measurement process for the storage circuit in the power supply device according to the first embodiment. [Figure 7] FIG. 7 is a flowchart of the process of measuring the capacitance value of the power storage circuit in the power supply device according to the first embodiment. [Figure 8] FIG. 8 is a flowchart of the process of measuring the equivalent series resistance of the power storage circuit in the power supply device according to the first embodiment. [Figure 9] FIG. 9 is a flowchart of the process of measuring the capacitance value and equivalent series resistance value (characteristics measurement process) of the storage circuit in the power supply device according to the first embodiment. [Figure 10] FIG. 10 is an equivalent circuit diagram of a circuit that performs equalization processing of the power storage circuit in the power supply device according to the first embodiment. [Figure 11] FIG. 11 is a flowchart of the equivalent processing of the storage circuit in the power supply device according to the first embodiment. [Figure 12] FIG. 12 is a flowchart of the discharge process of the power storage circuit in the power supply device according to the first embodiment. [Figure 13] FIG. 13 is a flowchart illustrating the rechargeable characteristic measurement process of the power supply device according to the first embodiment. [Figure 14] FIG. 14 is an equivalent circuit diagram of a circuit that performs a rechargeable characteristic measurement process for the power storage circuit in the power supply device according to the first embodiment. [Figure 15] FIG. 15 is a flowchart of the process of measuring the capacitance value of the power storage circuit in the power supply device according to the first embodiment. [Figure 16] FIG. 16 is a flowchart of the process of measuring the equivalent series resistance of the power storage circuit in the power supply device according to the first embodiment. [Figure 17] FIG. 17 is a flowchart of the charging process of the power storage circuit in the power supply device according to the first embodiment. [Figure 18] FIG. 18 is a diagram illustrating an example of the configuration of a power supply device according to the second embodiment. [Figure 19] FIG. 19 is a flowchart illustrating the discharge type characteristic measurement process of the power supply device according to the second embodiment. [Figure 20] FIG. 20 is an equivalent circuit diagram of a circuit that performs a discharge-type characteristic measurement process for a storage circuit in a power supply device according to the second embodiment. [Figure 21] FIG. 21 is a flowchart of a process for measuring the capacitance value of the power storage circuit in the power supply device according to the second embodiment. [Figure 22] FIG. 22 is a flowchart of the process of measuring the equivalent series resistance of the power storage circuit in the power supply device according to the second embodiment. [Figure 23] FIG. 23 is a flowchart illustrating the rechargeable characteristic measurement process of the power supply device according to the second embodiment. [Figure 24] FIG. 24 is an equivalent circuit diagram of a circuit that performs a rechargeable characteristic measurement process for the power storage circuit in the power supply device according to the second embodiment. [Figure 25] FIG. 25 is a flowchart of a process for measuring the capacitance value of the power storage circuit in the power supply device according to the second embodiment. [Figure 26] FIG. 26 is a flowchart of the process of measuring the equivalent series resistance of the power storage circuit in the power supply device according to the second embodiment. [Figure 27] FIG. 27 is a flowchart illustrating the characteristics measurement process of the power supply device according to the third embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0010] The power supply device according to this embodiment will be described in detail below with reference to the drawings.

[0011] <<First Embodiment>> <Power supply 1> FIG. 1 is a diagram showing an example of the configuration of a power supply device 1 according to this embodiment. In recent years, electric latch systems have been adopted in latch mechanisms, which are mechanical locking mechanisms for automobile doors, in which a motor operates the locking portion of the latch. It is essential that automobile doors be able to be released in emergencies such as accidents. Therefore, even if the battery power is lost due to damage caused by an accident, the electric latch system must be able to continue operating for a certain period of time. The power supply device 1 according to this embodiment is used, for example, as a backup power source for the electric latch system.

[0012] The power supply device 1 stores the power supplied from the power supply 100. Furthermore, the power supply device 1 supplies power to the load device 200 when the power from the power supply 100 is cut off. The power supply 100 is also directly connected to the load device 200. The power supply 100 is connected to the load device 200 via a diode 71 to prevent reverse current flow.

[0013] The power supply 100 is, for example, an in-vehicle battery. The load device 200 includes a load 210 and a load drive circuit 220 that drives the load 210. The load 210 is, for example, a motor in an electric latch system for an automobile door.

[0014] The power supply device 1 includes a power storage circuit 10, a charging circuit 20, a boost circuit 30, an equalization discharging circuit 40, and a power supply control unit 50. Each of the components that make up the power supply device 1 will be described.

[0015] [Storage circuit 10] The storage circuit 10 is a circuit that stores electricity. The storage circuit 10 includes at least one electric double layer capacitor, a so-called supercapacitor. The storage circuit 10 of the power supply device 1 according to this embodiment includes an electric double layer capacitor 11 and an electric double layer capacitor 12 connected in series.

[0016] [Charging circuit 20] The charging circuit 20 charges the storage circuit 10 with power supplied from the power source 100. The charging circuit 20 performs charging based on a charge control signal CTL1 from the power supply control unit 50.

[0017] [Boost circuit 30] The boost circuit 30 boosts the power supplied from the power storage circuit 10 and supplies the power to the load device 200. The boost circuit 30 supplies power based on a boost control signal CTL2 from the power supply control unit 50. The boost circuit 30 is connected to the load device 200 via a diode 72 to prevent backflow of current. The diode 72 may be omitted.

[0018] [Equalization discharge circuit 40] The equalization discharge circuit 40 performs equalization processing on the storage circuit 10. The equalization discharge circuit 40 also performs discharge processing on the storage circuit 10. Fig. 2 is a diagram showing an example of the configuration of the equalization discharge circuit 40 of the power supply device 1 according to this embodiment.

[0019] When electric double-layer capacitors such as supercapacitors are connected in series, an imbalance in the voltage distribution of each capacitor may occur due to variations in individual leakage current or capacitance. If an imbalance in the voltage distribution of each capacitor occurs, even if the total rated voltage is within the rated voltage of the entire series, which is the sum of the rated voltages of the individual capacitors, there is a possibility that a voltage exceeding the rated or set value may be applied to one of the capacitors. To prevent a voltage exceeding the rated or set value from being applied to electric double-layer capacitor 11 or electric double-layer capacitor 12, equalization processing is performed to eliminate the voltage distribution imbalance and equalize the voltage applied to each capacitor.

[0020] The equalization discharge circuit 40 performs equalization and discharge processes on the storage circuit 10 using an SW1 control signal CTL3 that opens and closes the switch 41 and an SW2 control signal CTL4 that opens and closes the switch 42. Furthermore, the equalization discharge circuit 40 outputs a voltage signal SIGV1 of the electric double layer capacitor 11 and a voltage signal SIGV2 of the electric double layer capacitor 12 to the power supply control unit 50.

[0021] The equalization discharge circuit 40 includes switches 41 and 42, and resistors 45 and 46. The storage circuit 10 includes an electric double layer capacitor 11 between nodes N1 and N3. The storage circuit 10 also includes an electric double layer capacitor 12 between nodes N3 and N2. The node N1 is connected to a power supply 100 and a load device 200. The node N2 is grounded.

[0022] The switch 41 has a first terminal 41a and a second terminal 41b. The switch 41 connects or disconnects the first terminal 41a and the second terminal 41b. The switch 41 is provided between the node N1 and the resistor 45. In the following description, the switch 41 may also be referred to as the switch SW1. The switch 41 is opened or closed based on an SW1 control signal CTL3.

[0023] The resistor 45 is provided between the switch 41 and the node N4. The resistors 45 and 46 are connected in series at the node N4. The resistor 45 has a resistance value R1.

[0024] The switch 42 has a first terminal 42a and a second terminal 42b. The switch 42 connects or disconnects the first terminal 42a and the second terminal 42b. The switch 42 is provided between the node N2 and the resistor 46. In the following description, the switch 42 may also be referred to as the switch SW2. The switch 42 is opened or closed based on an SW2 control signal CTL4.

[0025] Resistor 46 is provided between node N4 and node N2. Resistor 46 has a resistance value R2. Note that resistance value R2 may be equal to resistance value R1. Note that "equal resistance values" does not necessarily mean that the resistance values ​​are perfectly equal, but also includes cases where the resistance values ​​are equal within a manufacturing tolerance range, for example.

[0026] The equalization discharge circuit 40 outputs the terminal voltage Vtc1 at the node N1 as a voltage signal SIGV1 to the power supply control unit 50. The equalization discharge circuit 40 also outputs the terminal voltage Vtc2 at the node N3 as a voltage signal SIGV2 to the power supply control unit 50. The voltage at the node N1 may also be referred to as the terminal voltage Vtc of the power storage circuit 10.

[0027] Electric double layer capacitor 11 is an example of a first electric double layer capacitor, electric double layer capacitor 12 is an example of a second electric double layer capacitor, switch 41 is an example of a first switch element, and switch 42 is an example of a second switch element. Resistor 45 is an example of a first discharge resistor, and resistor 46 is an example of a second discharge resistor. Furthermore, first terminal 41a of switch 41 is an example of a first terminal, second terminal 41b is an example of a second terminal, first terminal 42a of switch 42 is an example of a fourth terminal, and second terminal 42b is an example of a third terminal. Furthermore, node N1 is an example of a first node, node N2 is an example of a second node, node N3 is an example of a third node, and node N4 is an example of a fourth node.

[0028] [Power supply control unit 50] The power supply control unit 50 controls charging, power supply, discharging, and equalization of the power storage circuit 10. The power supply control unit 50 also measures the characteristics of the power storage circuit 10. The power supply control unit 50 is configured by a controller such as a microcomputer, for example.

[0029] The power supply control unit 50 controls charging of the storage circuit 10 by the charging circuit 20 using a charge control signal CTL1. The power supply control unit 50 also controls power supply from the boost circuit 30 to the load device 200 using a boost control signal CTL2. The power supply control unit 50 controls the equalization process of the equalization discharge circuit 40 using an SW1 control signal CTL3 or an SW2 control signal CTL4.

[0030] Furthermore, the power supply control unit 50 uses an SW1 control signal CTL3 and an SW2 control signal CTL4 to control the discharge process of the equalization discharge circuit 40. The power supply control unit 50 controls the load drive circuit 220 using a drive control signal CTL5.

[0031] The power supply control unit 50 includes a timer for measuring time, and calculates time using the number of counts from when the timer starts counting until when it stops.

[0032] A vehicle control unit 300 is connected to the power supply control unit 50. The vehicle control unit 300 is, for example, an ECU (Electronic Control Unit). The power supply control unit 50 receives various signals CTLh from the vehicle control unit 300, such as whether the vehicle is stopped or in use, and outputs, for example, the state and information of the power supply control unit 50 to the vehicle control unit 300.

[0033] The "stopped state" refers to a state in which the engine is stopped and the operation of systems such as the electric latch is stopped. In addition, in the stopped state, the vehicle's systems are in a low-power consumption state. The stopped state includes a state in which the vehicle is parked or stored. In addition, the "used state" refers to a state in which the engine is running or can be started, and a state in which systems such as the electric latch are operating.

[0034] <Power supply unit 1 processing procedure> Next, we will explain the processing procedure of the power supply device 1. Figures 3 and 4 are flowcharts explaining the processing procedure of the power supply device 1 according to the first embodiment. In this explanation, it is assumed that the vehicle in which the power supply device 1 is installed is in use before processing begins.

[0035] When the process starts, the power supply control unit 50 acquires information about the vehicle state, for example, whether the vehicle is in use or stopped, from the vehicle control unit 300. Then, the power supply control unit 50 determines whether the vehicle is stopped (step S10).

[0036] If the vehicle is not in a stopped state (No in step S10), the power supply control unit 50 repeats step S10.

[0037] If the vehicle is in a stopped state (Yes in step S10), the power supply control unit 50 performs a discharge-type characteristic measurement process (step S20).

[0038] [Discharge characteristic measurement process] The discharge-type characteristic measurement process of the power storage circuit 10 in the power supply control unit 50 of the power supply device 1 according to the first embodiment will now be described. Fig. 5 is a flowchart illustrating the discharge-type characteristic measurement process of the power supply device 1 according to the first embodiment. The discharge-type characteristic measurement process includes a capacitance value measurement process (step S22) and an equivalent series resistance value measurement process (ESR value measurement process) (step S24). The power supply control unit 50 determines the capacitance value and equivalent series resistance value of the power storage circuit 10 as the characteristics of the power storage circuit 10.

[0039] [Capacitance and Equivalent Series Resistance of the Storage Circuit 10] The characteristics of the storage circuit 10 in the power supply device 1 according to the first embodiment will be described below. Fig. 6 is an equivalent circuit diagram of a circuit that performs a discharge-type characteristic measurement process for the storage circuit 10 in the power supply device 1 according to the first embodiment.

[0040] In the energy storage circuit 10 according to this embodiment, the electric double layer capacitors 11 and 12 connected in series are regarded as one capacitor having a capacitance value Csc and one resistor having a resistance value ESRsc connected in series with the capacitor. The capacitance value Csc and the resistance value ESRsc are then used to determine the characteristics of the energy storage circuit 10.

[0041] Furthermore, the resistors 45 and 46 connected in series are evaluated as a discharge resistor R_discharge with a resistance value R (=resistance value R1+resistance value R2). That is, the resistance value R obtained by adding the resistance value R1 of the resistor 45 and the resistance value R2 of the resistor 46 is set as the resistance value of the discharge resistor R_discharge.

[0042] Furthermore, the switches SW1 and SW2 are simultaneously turned on (closed) and off (open) during the characteristics measurement process. Therefore, turning the switches SW1 and SW2 on (closed) and off (open) simultaneously is equivalently expressed as turning the switch SWd on (closed) and off (open).

[0043] [Measurement of the capacitance value of the storage circuit 10] The characteristics of an electric double layer capacitor deteriorate with use. If the deterioration of the electric double layer capacitor progresses and the capacitance value decreases, it is possible that, for example, a problem will occur in the current supply to the motor, shortening the time that the capacitor can be used as a backup power source or making it impossible to release the latch. Therefore, in the power supply device 1 according to the first embodiment, the capacitance value of the electric double layer capacitor is measured and monitored.

[0044] 7 is a flowchart of the process for measuring the capacitance value of the energy storage circuit 10 in the power supply device 1 according to the first embodiment. When this process is performed, the charging circuit 20 and the boost circuit 30 stop operating. That is, the energy storage circuit 10 is not being charged by the power supply 100. The energy storage circuit 10 is also not supplying power to the load device 200. When this process is performed, the energy storage circuit 10 is desirably in a state of being charged to some extent, for example, at least 50% of full charge, and preferably at least 80%.

[0045] The processing procedure of the power supply control unit 50 of the power supply device 1 according to the first embodiment and the steps of the control method for the power supply device 1 will be described with reference to the flowchart of FIG.

[0046] (Step S221) First, the power supply control unit 50 turns on (closes) the switches SW1 and SW2. That is, it turns on (closes) the switch SWd. When the switches SW1 and SW2 are turned on (closed), the discharge resistor R_discharge is connected to the storage circuit 10. When the discharge resistor R_discharge is connected to the storage circuit 10, the power stored in the storage circuit 10 flows to the ground via the discharge resistor R_discharge at a current I_R. When the power stored in the storage circuit 10 flows to the ground at the current I_R, the terminal voltage Vtc of the storage circuit 10 begins to decrease.

[0047] (Step S222) Next, the power supply control unit 50 measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50 records (acquires) the voltage value of the measured terminal voltage Vtc as the start voltage value V1, and at the same time starts a timer count.

[0048] (Step S223) Next, the power supply control unit 50 determines whether the voltage value of the terminal voltage Vtc of the storage circuit 10 has become equal to or less than the end voltage value V2 set to a predetermined value. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is higher than the predetermined end voltage value V2 (No in step S223), step S223 is repeated again. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is equal to or less than the predetermined end voltage value V2 (Yes in step S223), the power supply control unit 50 proceeds to step S224. The end voltage value V2 is set to a value lower than the start voltage value V1.

[0049] (Step S224) Next, the power supply control unit 50 stops the timer count and records the count value.The power supply control unit 50 then calculates and records the time T from when the timer count started to when it stopped, based on the count value.It is desirable to execute the process of step S224 simultaneously with step S223 or as quickly as possible after executing step S223 within the scope of the power supply control unit 50's feasibility.

[0050] (Step S225) Next, the power supply control unit 50 turns off (opens) the switches SW1 and SW2. When the switches SW1 and SW2 are turned off (opens), the discharge resistor R_discharge is disconnected from the power storage circuit 10.

[0051] (Step S226) Next, the power supply control unit 50 calculates the capacitance value Csc using the measured start voltage value V1 and end voltage value V2 and the time T according to Equation 1. Note that the resistance value R is the resistance value of the discharge resistor R_discharge. Ln represents the natural logarithm.

[0052]

number

[0053] For example, in step S223, when the voltage value of the terminal voltage Vtc of the power storage circuit 10 becomes equal to or lower than the end voltage value V2, the terminal voltage Vtc may be measured again and set as the end voltage value V2. Alternatively, the set time Ts may be set first, the switches SW1 and SW2 may be turned on (closed), the terminal voltage Vtc may be measured in step S222, and then the voltage value of the terminal voltage Vtc of the power storage circuit 10 after the time Ts has elapsed may be measured as the end voltage value V2. When the time Ts is set, the time T in Equation 1 is set to the time Ts.

[0054] The power supply device 1 according to this embodiment can measure the capacitance value of the storage circuit 10 during discharge, in which current is released from the storage circuit 10. Furthermore, the power supply device 1 according to this embodiment can monitor the deterioration of the characteristics of the electric double layer capacitor included in the storage circuit 10 by measuring the capacitance value of the storage circuit 10.

[0055] The equalization discharge circuit 40 of the power supply device 1 according to this embodiment also operates as a discharge circuit that discharges the energy stored in the storage circuit 10. Therefore, the power supply device 1 according to this embodiment can check the operation of the discharge circuit by measuring the capacitance value of the storage circuit 10.

[0056] The start voltage value V1 is an example of a first voltage value, and the end voltage value V2 is an example of a second voltage value.

[0057] [Measurement of Equivalent Series Resistance of Storage Circuit 10] The characteristics of electric double layer capacitors deteriorate with use. If the deterioration of the electric double layer capacitor progresses and the equivalent series resistance value increases, it is possible that, for example, a problem will occur in the supply of current to the motor, making it impossible to release the latch. Therefore, in the power supply device 1 according to this embodiment, the equivalent series resistance value of the electric double layer capacitor is measured and monitored.

[0058] 8 is a flowchart of the process for measuring the equivalent series resistance of the energy storage circuit 10 in the power supply device 1 according to the first embodiment. When this process is performed, the charging circuit 20 and the boost circuit 30 stop operating. That is, the energy storage circuit 10 is not being charged by the power supply 100. The energy storage circuit 10 is not supplying power to the load device 200. When this process is performed, the energy storage circuit 10 is desirably in a state of being charged to some extent, for example, at least 50% of full charge, and preferably at least 80%.

[0059] The processing procedure of the power supply control unit 50 of the power supply device 1 according to this embodiment and the steps of the control method for the power supply device 1 will be described with reference to the flowchart of FIG.

[0060] (Step S241) First, the power supply control unit 50 turns on (closes) the switches SW1 and SW2, i.e., the switch SWd. When the switches SW1 and SW2 are turned on (closed), the discharge resistor R_discharge is connected to the storage circuit 10. When the discharge resistor R_discharge is connected to the storage circuit 10, the power stored in the storage circuit 10 flows to the ground via the discharge resistor R_discharge at a current I_R. When the power stored in the storage circuit 10 flows to the ground at the current I_R, the terminal voltage Vtc of the storage circuit 10 begins to decrease.

[0061] (Step S242) Next, the power supply control unit 50 measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50 stores (acquires) the voltage value of the measured terminal voltage Vtc as the conduction voltage value Vsc_on.

[0062] (Step S243) Next, the power supply control unit 50 turns off (opens) the switches SW1 and SW2 immediately after measuring the terminal voltage Vtc of the power storage circuit 10 in step S242. When the switches SW1 and SW2 are turned off (open), the discharge resistor R_discharge is disconnected from the power storage circuit 10. It is desirable to execute the process of step S243 simultaneously with step S242 or as quickly as possible after executing step S242 within the scope of the power supply control unit 50's feasibility.

[0063] (Step S244) Next, after the switches SW1 and SW2 are turned off (open), the power supply control unit 50 measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50 stores (acquires) the voltage value of the measured terminal voltage Vtc as a non-conducting voltage value Vsc_off.

[0064] (Step S245) Next, the power supply control unit 50 uses the measured on-state voltage value Vsc_on and off-state voltage value Vsc_off to calculate the equivalent series resistance ESR according to Equation 2. Note that the resistance value R is the resistance value of the discharge resistor R_discharge.

[0065]

number

[0066] The power supply device 1 according to this embodiment can measure the equivalent series resistance of the power storage circuit 10 during discharge, in which current is released from the power storage circuit 10. Furthermore, the power supply device 1 according to this embodiment can monitor the deterioration of the characteristics of the electric double layer capacitor included in the power storage circuit 10 by measuring the equivalent series resistance of the power storage circuit 10.

[0067] Furthermore, the equalization discharge circuit 40 of the power supply device 1 according to this embodiment also operates as a discharge circuit that discharges the energy stored in the storage circuit 10. Therefore, the power supply device 1 according to this embodiment can check the operation of the discharge circuit by measuring the equivalent series resistance value of the storage circuit 10.

[0068] The conductive voltage value Vsc_on is an example of a third voltage value, and the non-conductive voltage value Vsc_off is an example of a fourth voltage value.

[0069] [Simultaneous measurement of capacitance and equivalent series resistance of the storage circuit 10] Furthermore, the power supply device 1 according to the first embodiment can simultaneously measure the capacitance value and the equivalent series resistance value of the electric double layer capacitor.

[0070] 9 is a flowchart of the process (characteristics measurement process) for measuring the capacitance and equivalent series resistance of the energy storage circuit 10 in the power supply device 1 according to the first embodiment. When this process is performed, the charging circuit 20 and the boost circuit 30 stop operating. That is, the energy storage circuit 10 is not being charged by the power supply 100. The energy storage circuit 10 is not supplying power to the load device 200. When this process is performed, the energy storage circuit 10 is desirably in a state of being charged to some extent, for example, at least 50% of full charge, and preferably at least 80%.

[0071] The processing procedure of the power supply control unit 50 of the power supply device 1 according to this embodiment and the steps of the control method for the power supply device 1 will be described with reference to the flowchart of FIG.

[0072] (Step S261) First, the power supply control unit 50 turns on (closes) the switches SW1 and SW2, i.e., the switch SWd. When the switches SW1 and SW2 are turned on (closed), the discharge resistor R_discharge is connected to the storage circuit 10. When the discharge resistor R_discharge is connected to the storage circuit 10, the power stored in the storage circuit 10 flows to the ground via the discharge resistor R_discharge at a current I_R. When the power stored in the storage circuit 10 flows to the ground at the current I_R, the terminal voltage Vtc of the storage circuit 10 begins to decrease.

[0073] (Step S262) Next, the power supply control unit 50 measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50 records (acquires) the voltage value of the measured terminal voltage Vtc as the start voltage value V1, and starts a timer count.

[0074] (Step S263) Next, the power supply control unit 50 determines whether the voltage value of the terminal voltage Vtc of the storage circuit 10 has become equal to or less than the end voltage value V2 set to a predetermined value. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is higher than the predetermined end voltage value V2 (No in step S263), step S263 is repeated again. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is equal to or less than the predetermined end voltage value V2 (Yes in step S263), the power supply control unit 50 proceeds to step S264. The end voltage value V2 is set to a value lower than the start voltage value V1.

[0075] (Step S264) Next, the power supply control unit 50 stops the timer count and records the count value.The power supply control unit 50 then calculates and records the time T from when the timer count started to when it stopped, based on the count value.It is desirable to execute the process of step S264 simultaneously with step S263 or as quickly as possible after executing step S263 within the scope of the power supply control unit 50's feasibility.

[0076] For example, in step S263, when the voltage value of the terminal voltage Vtc of the power storage circuit 10 becomes equal to or lower than the end voltage value V2, the terminal voltage Vtc may be measured again and set as the end voltage value V2. Alternatively, the set time Ts may be set first, the switches SW1 and SW2 may be turned on (closed), the terminal voltage Vtc may be measured in step S262, and then the voltage value of the terminal voltage Vtc of the power storage circuit 10 when the time Ts has elapsed may be measured as the end voltage value V2.

[0077] (Step S265) Next, immediately after step S264, the power supply control unit 50 turns off (opens) the switches SW1 and SW2. When the switches SW1 and SW2 are turned off (open), the discharge resistor R_discharge is disconnected from the power storage circuit 10. It is desirable to execute the process of step S265 simultaneously with step S264 or as quickly as possible after executing step S264 within the scope of feasibility of the power supply control unit 50.

[0078] (Step S266) Next, after the switch SW1 is turned off (open), the power supply control unit 50 measures the voltage value of the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50 stores the measured voltage value of the terminal voltage Vtc as a non-conducting voltage value V3.

[0079] (Step S267) Next, the power supply control unit 50 calculates the capacitance value Csc according to Equation 1 using the measured start voltage value V1 and end voltage value V2 and the time T. Note that the resistance value R is the resistance value of the discharge resistor R_discharge.

[0080] (Step S268) Next, the power supply control unit 50 uses the end voltage value V2 and the measured non-conduction voltage value V3 to calculate the equivalent series resistance value ESR according to Equation 3. Note that the resistance value R is the resistance value of the discharge resistor R_discharge.

[0081]

number

[0082] The power supply device 1 according to this embodiment can measure the capacitance value and equivalent series resistance value of the storage circuit 10 during discharge, in which current is released from the storage circuit 10. Furthermore, the power supply device 1 according to this embodiment can monitor the deterioration of the characteristics of the electric double layer capacitor included in the storage circuit 10 by measuring the capacitance value and equivalent series resistance value of the storage circuit 10.

[0083] The start voltage value V1 is an example of a first voltage value, the end voltage value V2 is an example of a second voltage value, and the non-conduction voltage value V3 is an example of a third voltage value.

[0084] <Measurement of terminal voltage Vtc> After step S20 is completed, the power supply control unit 50 determines whether the voltage value of the terminal voltage Vtc is equal to or greater than the storage voltage value Vsc_stg (step S30).

[0085] If the voltage value of the terminal voltage Vtc is equal to or greater than the storage voltage value Vsc_stg (YES in step S30), the process proceeds to the equalization process in step S40. If the voltage value of the terminal voltage Vtc is lower than the storage voltage value Vsc_stg (NO in step S30), the process proceeds to step S60.

[0086] [Equalization] Next, the equalization process in step S40 will be described. Fig. 10 is an equivalent circuit diagram of a circuit that performs equalization of the power storage circuit 10 in the power supply device 1 according to the first embodiment.

[0087] FIG. 11 is a flowchart of the equivalent processing of the power storage circuit 10 in the power supply device 1 according to the first embodiment.

[0088] (Step S41) When the equalization process starts, the power supply control unit 50 turns off (opens) the switches SW1 and SW2.

[0089] (Step S42) Next, the power supply control unit 50 measures the voltage values ​​of the terminal voltage Vtc1 and the terminal voltage Vtc2.

[0090] (Step S43) Next, the power supply control unit 50 calculates the capacitance voltage value Vsc1 of the electric double layer capacitor 11 and the capacitance voltage value Vsc2 of the electric double layer capacitor 12. Specifically, the capacitance voltage value Vsc1 is the voltage value obtained by subtracting the voltage value of the terminal voltage Vtc2 from the voltage value of the terminal voltage Vtc1. The capacitance voltage value Vsc2 is the voltage value of the terminal voltage Vtc2.

[0091] (Step S44) Next, the power supply control unit 50 determines whether the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is higher than the threshold voltage value Vth. If the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is higher than the threshold voltage value Vth (Yes in step S44), it determines that equalization processing is necessary. If the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is equal to or lower than the threshold voltage value Vth (No in step S44), it ends the equalization processing.

[0092] (Step S45) Next, the power supply control unit 50 determines whether the capacitance voltage value Vsc1 is higher than the capacitance voltage value Vsc2. If the capacitance voltage value Vsc1 is higher than the capacitance voltage value Vsc2 (Yes in step S45), the power supply control unit 50 proceeds to step S461. If the capacitance voltage value Vsc1 is lower than the capacitance voltage value Vsc2 (No in step S45), the power supply control unit 50 proceeds to step S466.

[0093] (Step S461) If the capacitance voltage value Vsc1 is higher than the capacitance voltage value Vsc2 (Yes in step S45), the power supply control unit 50 turns on (closes) the switch SW1. When the switch SW1 is turned on (closed), the charge stored in the electric double layer capacitor 11 is discharged through the resistor 45. Therefore, the capacitance voltage value Vsc1 gradually decreases.

[0094] (Step S462) The power supply control unit 50 determines whether the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is lower than the threshold voltage value Vth. If the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is lower than the threshold voltage value Vth (Yes in step S462), the power supply control unit 50 proceeds to step S463. If the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is equal to or greater than the threshold voltage value Vth (No in step S462), the power supply control unit 50 repeats the process of step S462. Note that the threshold voltage value Vth does not have to be a predetermined voltage value, but may be a voltage range with a certain width.

[0095] (Step S463) If the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is lower than the threshold voltage value Vth (Yes in step S462), the power supply control unit 50 turns off (opens) the switch SW1. When the switch SW1 is turned off (opens), the electric double layer capacitor 11 is disconnected from the resistor 45. Note that if the threshold voltage value Vth is set to a voltage range, the switch SW1 may be turned off (opens) when the voltage falls within that range.

[0096] (Step S466) If the capacitance voltage value Vsc1 is lower than the capacitance voltage value Vsc2 (No in step S45), the power supply control unit 50 turns on (closes) the switch SW2. When the switch SW2 is turned on (closed), the charge stored in the electric double layer capacitor 12 is discharged through the resistor 46. Therefore, the capacitance voltage value Vsc2 gradually decreases.

[0097] (Step S467) The power supply control unit 50 determines whether the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is lower than the threshold voltage value Vth. If the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is lower than the threshold voltage value Vth (Yes in step S467), the power supply control unit 50 proceeds to step S468. If the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is equal to or greater than the threshold voltage value Vth (No in step S467), the power supply control unit 50 repeats the process of step S467. Note that the threshold voltage value Vth does not have to be a predetermined voltage value, but may be a voltage range with a certain width.

[0098] (Step S468) If the absolute value of the difference between the capacitance voltage value Vsc1 and the capacitance voltage value Vsc2 is lower than the threshold voltage value Vth (Yes in step S467), the power supply control unit 50 turns off (opens) the switch SW2. When the switch SW2 is turned off (opens), the electric double layer capacitor 12 is disconnected from the resistor 46. Note that if the threshold voltage value Vth is set to a voltage range, the switch SW2 may be turned off (opens) when the voltage falls within that range.

[0099] The power supply device 1 according to this embodiment compares the capacitance voltage value Vsc1 with the capacitance voltage value Vsc2 and discharges the electric double layer capacitor with the higher capacitance voltage value. Therefore, compared to, for example, a method of setting the resistance value used in the equalization circuit high and operating it constantly, a method of setting the resistance value low and performing equalization by simultaneously turning on SW1 and SW2 while continuing to charge, or a method of setting the resistance value used in the equivalent circuit low and intermittently turning on and off each SW in the equivalent circuit individually as appropriate, the time and power required for the equalization process can be reduced.

[0100] The capacitance voltage value Vsc1 is an example of a first capacitance voltage value, the capacitance voltage value Vsc2 is an example of a second capacitance voltage value, and the threshold voltage value Vth is an example of a reference voltage value.

[0101] [Discharge treatment] Next, the discharge process of step S50 will be described. Fig. 12 is a flowchart of the discharge process of the storage circuit 10 in the power supply device 1 according to the first embodiment. The discharge process will be described using the equivalent circuit diagram in Fig. 10. In the discharge process, the voltage value of the storage circuit 10 is set to a storage voltage value Vsc_stg or less, which is lower than an operating voltage value Vact (described later) for normal use.

[0102] (Step S51) First, the power supply control unit 50 measures the terminal voltage Vtc. Then, the power supply control unit 50 determines whether the measured terminal voltage Vtc is higher than the storage voltage value Vsc_stg. If the terminal voltage Vtc is higher than the storage voltage value Vsc_stg (Yes in step S51), the power supply control unit 50 proceeds to step S52. If the terminal voltage Vtc is equal to or lower than the storage voltage value Vsc_stg (No in step S51), the power storage circuit 10 is deemed to have been sufficiently discharged and is at a low voltage, and the discharging process is terminated.

[0103] (Step S52) Next, the power supply control unit 50 turns on (closes) the switches SW1 and SW2 to connect the resistors 45 and 46, which are discharge resistors, to the storage circuit 10, i.e., the electric double layer capacitors 11 and 12. That is, the switches SW1 and SW2 conduct a path that flows from the node N1 to the ground via the resistors 45 and 46. By connecting the resistors 45 and 46, which are discharge resistors, to the storage circuit 10, the charges stored in the electric double layer capacitors 11 and 12 are discharged. Therefore, the terminal voltage Vtc gradually decreases.

[0104] (Step S53) Next, the power supply control unit 50 measures the terminal voltage Vtc. Then, the power supply control unit 50 determines whether the voltage value of the terminal voltage Vtc is equal to or less than the storage voltage value Vsc_stg. If the voltage value of the terminal voltage Vtc is higher than the storage voltage value Vsc_stg (No in step S53), the power supply control unit 50 repeats step S53. If the voltage value of the terminal voltage Vtc is equal to or less than the storage voltage value Vsc_stg (Yes in step S53), the power supply control unit 50 proceeds to step S54.

[0105] (Step S54) Next, the power supply control unit 50 turns off (opens) the switches SW1 and SW2 to disconnect the resistors 45 and 46, which are discharge resistors, from the storage circuit 10, i.e., the electric double layer capacitors 11 and 12. In other words, the switches SW1 and SW2 open the path that flows from the node N1 to the ground via the resistors 45 and 46. Then, the power supply control unit 50 ends the discharge process.

[0106] Electric double layer capacitors deteriorate over long periods of use. The rate at which they deteriorate varies depending on the operating temperature and capacitance / voltage. For example, the lower the voltage applied to an electric double layer capacitor, the slower the rate at which it deteriorates.

[0107] In the power supply device 1 according to this embodiment, when it is determined to transition to a stopped state, the voltage applied to the electric double layer capacitor is set to a value equal to or lower than the storage voltage value Vsc_stg, thereby suppressing deterioration of the electric double layer capacitor.

[0108] Furthermore, the discharge of the electromagnetic double layer capacitor is not limited to the above-described discharge process, and may be performed, for example, by an equalization process or a process of supplying power to a load such as the load device 200 (power supply process). In other words, when the power supply control unit 50 detects a transition to the sleep state, it may perform at least one of a power supply process, a discharge process, and an equalization process to discharge the power storage circuit 10. Note that the power supply control unit 50 may perform the discharge of the power storage circuit 10 by any combination of the power supply process, the discharge process, and the equalization process. For example, the power supply control unit 50 may first perform the discharge process until the terminal voltage Vtc reaches a predetermined reference voltage (first reference voltage), and then perform the power supply process until the voltage reaches an even lower voltage (second reference voltage).

[0109] Furthermore, when performing the discharge process, discharge and stop of discharge may be repeated multiple times. For example, discharge may be started, and after a certain period of time, discharge may be stopped, the terminal voltage Vtc may be measured, and if the terminal voltage Vtc is greater than the storage voltage value Vsc_stg, discharge may be started and stopped again. This procedure may be repeated multiple times.

[0110] The discharge process is not limited to the use of the equalization discharge circuit 40, and a discharge circuit having a discharge resistor may be provided separately from the equalization discharge circuit 40.

[0111] [Transition to stopped state] When the discharge process is completed, the vehicle transitions to a stopped state (step S60). In the stopped state, systems such as the electric latch stop operating and the entire vehicle is in a low-power consumption state. In transitioning to the stopped state, the power supply control unit 50 acquires information on the state of the vehicle from the vehicle control unit 300, for example, whether the vehicle is in use or stopped. Then, the power supply control unit 50 determines whether the vehicle is in use (step S70).

[0112] If the vehicle is not in use (No in step S70), the power supply control unit 50 repeats step S70. If it is determined that the vehicle is in use (Yes in step S70), the power supply control unit 50 proceeds to the processing of step S75. When the vehicle is not in use, the determination of the vehicle use state may be made based on startup information, vehicle information, etc. sent from the vehicle control unit 300, etc. to the power supply control unit 50, instead of repeating the determination of step S70 by the power supply control unit 50.

[0113] (Step S75) The power supply control unit 50 measures the terminal voltage Vtc. Then, the power supply control unit 50 determines whether the voltage value of the terminal voltage Vtc is lower than the threshold voltage value Vsc_th2. If the voltage value of the terminal voltage Vtc is equal to or higher than the threshold voltage value Vsc_th2 (No in step S75), the power supply control unit 50 proceeds to step S90. If the voltage value of the terminal voltage Vtc is lower than the threshold voltage value Vsc_th2 (Yes in step S75), the power supply control unit 50 proceeds to step S80.

[0114] When the electric double layer capacitors 11 and 12 are in a stopped state, the terminal voltage Vtc decreases over time due to leakage currents in the electric double layer capacitors and the circuits, etc. Therefore, by measuring the terminal voltage Vtc of the storage circuit 10, the period during which the capacitors were in a stopped state can be estimated.

[0115] For example, when the voltage value of the terminal voltage Vtc of the power storage circuit 10 is equal to the threshold voltage value Vsc_th2, the power supply control unit 50 determines that the period of the stopped state is equal to the threshold period. That is, when the voltage value of the terminal voltage Vtc is lower than the threshold voltage value Vsc_th2, the power supply control unit 50 determines that the period of the stopped state is longer than the threshold period.

[0116] If the period of the stopped state becomes long, it is conceivable that the characteristics of the electric double layer capacitors 11 and 12 may differ from the state measured in step S20. Therefore, in the power supply device 1 according to this embodiment, if the voltage value of the terminal voltage Vtc is lower than a predetermined threshold voltage value Vsc_th2, it is determined that the stopped state has continued for a long period of time, and the characteristics of the storage circuit 10 are measured.

[0117] [Rechargeable characteristics measurement processing] The rechargeable characteristic measurement process of the power storage circuit 10 in the power supply control unit 50 of the power supply device 1 according to the first embodiment will be described below. Fig. 13 is a flowchart illustrating the rechargeable characteristic measurement process of the power supply device 1 according to the first embodiment. The rechargeable characteristic measurement process includes a capacitance value measurement process (step S82) and an equivalent series resistance value measurement process (ESR value measurement process) (step S84). The power supply control unit 50 determines the capacitance value and equivalent series resistance value of the power storage circuit 10 as the characteristics of the power storage circuit 10.

[0118] [Capacitance and Equivalent Series Resistance of the Storage Circuit 10] The characteristics of the power storage circuit 10 in the power supply device 1 according to the first embodiment will be described below. Fig. 14 is an equivalent circuit diagram of a circuit that performs a rechargeable characteristic measurement process for the power storage circuit 10 in the power supply device 1 according to the first embodiment.

[0119] In the energy storage circuit 10 according to this embodiment, the electric double layer capacitors 11 and 12 connected in series are regarded as one capacitor having a capacitance value Csc and one resistor having a resistance value ESRsc connected in series with the capacitor. The capacitance value Csc and the resistance value ESRsc are then used to determine the characteristics of the energy storage circuit 10.

[0120] In the energy storage circuit 10 according to the first embodiment, the energy storage circuit 10 is charged from a constant voltage source. The power supply 100 is a constant voltage source. The energy storage circuit 10 is charged at a constant voltage, that is, a power supply voltage Vbat of the power supply 100. The energy storage circuit 10 includes a charging resistor Rc and a switch SWc between the power supply 100 and the energy storage circuit 10. For example, the charging circuit 20 includes the charging resistor Rc and the switch SWc.

[0121] [Measurement of the capacitance value of the storage circuit 10] 15 is a flowchart of the process of measuring the capacitance value of the storage circuit 10 in the power supply device 1 according to the first embodiment. When this process is performed, the boost circuit 30 and the equalization discharge circuit 40 stop operating. That is, the storage circuit 10 is not supplying power to the load device 200 and is not performing the equalization discharge operation.

[0122] The processing procedure of the power supply control unit 50 of the power supply device 1 according to the first embodiment and the steps of the control method for the power supply device 1 will be described with reference to the flowchart of FIG.

[0123] (Step S821) First, the power supply control unit 50 turns on (closes) the switch SWc. When the switch SWc is turned on (closed), the power supply 100 and the charging resistor Rc are connected to the storage circuit 10. When the power supply 100 and the charging resistor Rc are connected to the storage circuit 10, the storage circuit 10 is charged from the power supply 100 via the charging resistor Rc. When the storage circuit 10 is charged, the terminal voltage Vtc of the storage circuit 10 starts to rise.

[0124] (Step S822) Next, the power supply control unit 50 measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50 records (acquires) the voltage value of the measured terminal voltage Vtc as a start voltage value V4, and also starts a timer count.

[0125] (Step S823) Next, the power supply control unit 50 determines whether the voltage value of the terminal voltage Vtc of the storage circuit 10 has become equal to or greater than the end voltage value V5 set to a predetermined value. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is lower than the predetermined end voltage value V5 (No in step S823), step S823 is repeated again. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is equal to or greater than the predetermined end voltage value V5 (Yes in step S823), the power supply control unit 50 proceeds to step S824. The end voltage value V5 is set to a value higher than the start voltage value V4.

[0126] (Step S824) Next, the power supply control unit 50 stops the timer count and records the count value.The power supply control unit 50 then calculates and records the time T1 from when the timer count started to when it stopped, based on the count value.It is desirable to execute the process of step S824 simultaneously with step S823, or as quickly as possible after executing step S823 within the scope of the power supply control unit 50's feasibility.

[0127] (Step S825) Next, the power supply control unit 50 turns off (opens) the switch SWc. When the switch SWc turns off (opens), the power supply 100 and the charging resistor Rc are disconnected from the storage circuit 10.

[0128] (Step S826) Next, the power supply control unit 50 calculates the capacitance value Csc using the measured start voltage value V4 and end voltage value V5 and the time T1 according to Equation 4. Note that the resistance value R is the resistance value of the charging resistor Rc. Ln represents the natural logarithm.

[0129]

number

[0130] For example, in step S823, when the voltage value of the terminal voltage Vtc of the power storage circuit 10 becomes equal to or greater than the end voltage value V5, the terminal voltage Vtc may be measured again and set as the end voltage value V5. Alternatively, the set time Ts may be set first, the switch SWc may be turned on (closed), the terminal voltage Vtc may be measured in step S822, and then the voltage value of the terminal voltage Vtc of the power storage circuit 10 after the time Ts has elapsed may be measured as the end voltage value V5. When the time Ts is set, the time T1 in Equation 4 is set to the time Ts.

[0131] The power supply device 1 according to this embodiment can measure the capacitance value of the storage circuit 10 during charging, in which a current flows into the storage circuit 10. Furthermore, the power supply device 1 according to this embodiment can monitor the deterioration of the characteristics of the electric double layer capacitor included in the storage circuit 10 by measuring the capacitance value of the storage circuit 10.

[0132] [Measurement of Equivalent Series Resistance of Storage Circuit 10] 16 is a flowchart of the process for measuring the equivalent series resistance of the storage circuit 10 in the power supply device 1 according to the first embodiment. When this process is performed, the boost circuit 30 and the equalization discharge circuit 40 stop operating. That is, the storage circuit 10 is not supplying power to the load device 200 and is not performing the equalization discharge operation.

[0133] The processing procedure of the power supply control unit 50 of the power supply device 1 according to this embodiment and the steps of the control method for the power supply device 1 will be described with reference to the flowchart of FIG.

[0134] (Step S841) First, the power supply control unit 50 turns on (closes) the switch SWc. When the switch SWc is turned on (closed), the power supply 100 and the charging resistor Rc are connected to the storage circuit 10. When the power supply 100 and the charging resistor Rc are connected to the storage circuit 10, the storage circuit 10 is charged from the power supply 100 via the charging resistor Rc. When the storage circuit 10 is charged, the terminal voltage Vtc of the storage circuit 10 starts to rise.

[0135] (Step S842) Next, the power supply control unit 50 measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50 stores (acquires) the voltage value of the measured terminal voltage Vtc as the conduction voltage value Vsc_on1.

[0136] (Step S843) Next, the power supply control unit 50 turns off (opens) the switch SWc immediately after measuring the terminal voltage Vtc of the power storage circuit 10 in step S842. When the switch SWc turns off (opens), the power supply 100 and the charging resistor Rc are disconnected from the power storage circuit 10. It is desirable to execute the process of step S843 simultaneously with step S842 or as quickly as possible after executing step S842 within the scope of feasibility of the power supply control unit 50.

[0137] (Step S844) Next, after the switch SWc is turned off (open), the power supply control unit 50 measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50 stores (acquires) the voltage value of the measured terminal voltage Vtc as a non-conduction voltage value Vsc_off1.

[0138] (Step S845) Next, the power supply control unit 50 uses the measured on-state voltage value Vsc_on1 and off-state voltage value Vsc_off1 to calculate the equivalent series resistance ESR according to Equation 5. The resistance value R is the resistance value of the charging resistor Rc.

[0139]

number

[0140] The power supply device 1 according to this embodiment can measure the capacitance value and equivalent series resistance value of the storage circuit 10 during charging, in which a current flows into the storage circuit 10. Furthermore, the power supply device 1 according to this embodiment can monitor the deterioration of the characteristics of the electric double layer capacitor included in the storage circuit 10 by measuring the capacitance value and equivalent series resistance value of the storage circuit 10.

[0141] For example, even if the capacitance and equivalent series resistance are measured in step S20, if the device is left in a stopped state for a long period of time, the capacitance and equivalent series resistance measured during discharge may be invalid. Therefore, if it is determined in step S75 that the device has been in a stopped state for a long period of time by measuring the terminal voltage Vtc of the storage circuit 10, the capacitance and equivalent series resistance are measured when the device transitions to a use state in step S80. By measuring the capacitance and equivalent series resistance when the device transitions to a use state, the capacitance and equivalent series resistance at the time of transition to the use state can be accurately determined. The capacitance and equivalent series resistance when the device transitions to a use state can be measured during charging using a charging circuit, during discharging using a discharging circuit, or both.

[0142] On the other hand, if the device has been stopped for a short period of time, the capacitance and equivalent series resistance values ​​measured during discharge can be used to immediately determine and notify degradation of the capacitance and equivalent series resistance values, and by only performing the charging operation and not taking measurements during charging, it is possible to reduce the processing load on the power supply control unit and shorten the charging period of the power supply device 1. Furthermore, even if the device has been stopped for a short period of time, the capacitance and equivalent series resistance values ​​may be obtained every time or as needed by measuring during charging using the charging circuit, measuring during discharging using the discharging circuit, or by measuring during both.

[0143] [Charging process] Next, the charging process in step S90 will be described. Fig. 17 is a flowchart of the charging process for the power storage circuit 10 in the power supply device 1 according to the first embodiment. The charging process will be described using the equivalent circuit diagram in Fig. 14.

[0144] (Step S91) First, the power supply control unit 50 turns on (closes) the switch SWc to connect the power supply 100 and the charging resistor Rc to the storage circuit 10. By connecting the power supply 100 and the charging resistor Rc to the storage circuit 10, the electric double layer capacitors 11 and 12 of the storage circuit 10 are charged, respectively. Therefore, the terminal voltage Vtc gradually increases. At this time, the switch SWc may be turned on (closed) intermittently to perform PWM operation, or the PWM duty may be changed to perform pseudo-constant current charging.

[0145] (Step S92) Next, the power supply control unit 50 measures the terminal voltage Vtc. Then, the power supply control unit 50 determines whether the voltage value of the terminal voltage Vtc is higher than the operating voltage value Vact. If the voltage value of the terminal voltage Vtc is equal to or lower than the operating voltage value Vact (No in step S93), the power supply control unit 50 repeats step S92. If the voltage value of the terminal voltage Vtc is higher than the operating voltage value Vact (Yes in step S92), the power supply control unit 50 proceeds to step S93.

[0146] (Step S93) Next, the power supply control unit 50 turns off (opens) the switch SWc to disconnect the power supply 100 and the charging resistor Rc from the power storage circuit 10. Then, the power supply control unit 50 ends the charging process.

[0147] <<Second embodiment>> <Power supply unit 1a> 18 is a diagram showing an example of the configuration of a power supply device 1a according to this embodiment. The power supply device 1a further comprises a constant current discharge circuit 48 in addition to the power supply device 1. Furthermore, instead of the charging circuit 20 and power supply control unit 50 of the power supply device 1, the power supply device 1a comprises a charging circuit 20a and a power supply control unit 50a, respectively.

[0148] [Constant current discharge circuit 48] The constant current discharge circuit 48 is a circuit that discharges a predetermined constant current from the storage circuit 10. The constant current discharge circuit 48 is controlled by a power supply control unit 50a. The power supply control unit 50a controls the constant current discharge circuit 48 using a discharge control signal CTL6.

[0149] The power supply device 1a according to the second embodiment differs from the power supply device 1 according to the first embodiment in the contents of the discharge type characteristic measurement process in step S20 and the contents of the charge type characteristic measurement process in step S80.

[0150] [Discharge characteristic measurement process] First, a discharge-type characteristic measurement process of the power storage circuit 10 in the power supply control unit 50a of the power supply device 1a according to the second embodiment will be described. Fig. 19 is a flowchart illustrating the discharge-type characteristic measurement process of the power supply device 1a according to the second embodiment. The discharge-type characteristic measurement process includes a capacitance value measurement process (step S122) and an equivalent series resistance value measurement process (ESR value measurement process) (step S124). The power supply control unit 50a obtains the capacitance value and equivalent series resistance value of the power storage circuit 10 as the characteristics of the power storage circuit 10.

[0151] [Capacitance and Equivalent Series Resistance of the Storage Circuit 10] The characteristics of the storage circuit 10 in the power supply device 1a according to the second embodiment will be described below. Fig. 20 is an equivalent circuit diagram of a circuit that performs a discharge-type characteristic measurement process for the storage circuit 10 in the power supply device 1a according to the second embodiment.

[0152] In the energy storage circuit 10 according to this embodiment, the electric double layer capacitors 11 and 12 connected in series are regarded as one capacitor having a capacitance value Csc and one resistor having a resistance value ESRsc connected in series with the capacitor. The capacitance value Csc and the resistance value ESRsc are then used to determine the characteristics of the energy storage circuit 10.

[0153] The constant current discharge circuit 48 includes a constant current source CCSd and a switch SWd1. When the switch SWd1 is turned on (closed), the constant current source CCSd supplies a constant current I_ccsd.

[0154] [Measurement of the capacitance value of the storage circuit 10] 21 is a flowchart of the process of measuring the capacitance value of the storage circuit 10 in the power supply device 1a according to the second embodiment. When this process is performed, the charging circuit 20a and the boost circuit 30 stop operating. That is, the storage circuit 10 is not being charged by the power supply 100. The storage circuit 10 is also not supplying power to the load device 200. The switches SW1 and SW2 of the equalization discharge circuit 40 are also assumed to be off (open).

[0155] The processing procedure of the power supply control unit 50a of the power supply device 1a according to the second embodiment and the steps of the control method for the power supply device 1a will be described with reference to the flowchart of FIG.

[0156] (Step S1221) First, the power supply control unit 50a turns on (closes) the switch SWd1 of the constant current discharge circuit 48. When the switch SWd1 is turned on (closed), the constant current source CCSd is connected to the energy storage circuit 10. When the constant current source CCSd is connected to the energy storage circuit 10, a constant current I_ccsd flows from the energy storage circuit 10 to ground. When the constant current I_ccsd flows from the energy storage circuit 10 to ground, the terminal voltage Vtc of the energy storage circuit 10 begins to decrease.

[0157] (Step S1222) Next, the power supply control unit 50a measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50a records (acquires) the voltage value of the measured terminal voltage Vtc as the start voltage value V11, and starts a timer count.

[0158] (Step S1223) Next, the power supply control unit 50a determines whether the voltage value of the terminal voltage Vtc of the storage circuit 10 has become equal to or less than the end voltage value V12 set to a predetermined value. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is higher than the predetermined end voltage value V12 (No in step S1223), step S1223 is repeated again. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is equal to or less than the predetermined end voltage value V12 (Yes in step S1223), the power supply control unit 50a proceeds to step S1224. The end voltage value V12 is set to a value lower than the start voltage value V11.

[0159] (Step S1224) Next, the power supply control unit 50a stops the timer count and records the count value.The power supply control unit 50a then calculates and records the time T2 from when the timer count started to when it stopped, based on the count value.It is desirable to perform the process of step S1224 simultaneously with step S1223 or as quickly as possible after executing step S1223 within the scope of the power supply control unit 50a's feasibility.

[0160] (Step S1225) Next, the power supply control unit 50a turns off (opens) the switch SWd1. When the switch SWd1 is turned off (opens), the constant current source CCSd is disconnected from the power storage circuit 10.

[0161] (Step S1226) Next, the power supply control unit 50a calculates the capacitance value Csc using the measured start voltage value V11 and end voltage value V12 and the time T2 according to Equation 6. The current value Ic is the current value of the current I_ccsd, which is a constant current flowing through the constant current source CCSd.

[0162]

number

[0163] For example, in step S1223, when the voltage value of the terminal voltage Vtc of the power storage circuit 10 becomes equal to or lower than the end voltage value V12, the terminal voltage Vtc may be measured again and set as the end voltage value V12. Alternatively, the set time Ts may be set first, the switch SWd1 may be turned on (closed), the terminal voltage Vtc may be measured in step S1222, and then the voltage value of the terminal voltage Vtc of the power storage circuit 10 after the time Ts has elapsed may be measured as the end voltage value V12. When the time Ts is set, the time T2 in Equation 6 is set to the time Ts.

[0164] The power supply device 1a according to this embodiment can measure the capacitance value of the storage circuit 10 during discharge, in which current is released from the storage circuit 10. Furthermore, the power supply device 1a according to this embodiment can monitor the deterioration of the characteristics of the electric double layer capacitor included in the storage circuit 10 by measuring the capacitance value of the storage circuit 10.

[0165] [Measurement of Equivalent Series Resistance of Storage Circuit 10] 22 is a flowchart of the process for measuring the equivalent series resistance of the storage circuit 10 in the power supply device 1a according to the second embodiment. When this process is performed, the charging circuit 20a and the boost circuit 30 stop operating. That is, the storage circuit 10 is not being charged by the power supply 100. The storage circuit 10 is also not supplying power to the load device 200. The switches SW1 and SW2 of the equalization discharge circuit 40 are also assumed to be off (open).

[0166] The processing procedure of the power supply control unit 50a of the power supply device 1a according to this embodiment and the steps of the control method for the power supply device 1a will be described with reference to the flowchart of FIG.

[0167] (Step S1241) First, the power supply control unit 50a turns on (closes) the switch SWd1. When the switch SWd1 is turned on (closed), the constant current source CCSd is connected to the energy storage circuit 10. When the constant current source CCSd is connected to the energy storage circuit 10, a constant current I_ccsd flows from the energy storage circuit 10 to the ground. When the constant current I_ccsd flows from the energy storage circuit 10 to the ground, the terminal voltage Vtc of the energy storage circuit 10 starts to decrease.

[0168] (Step S1242) Next, the power supply control unit 50a waits for a certain period of time, for example, until the current I_ccsd becomes stable.

[0169] (Step S1243) Next, the power supply control unit 50a measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50a stores (acquires) the voltage value of the measured terminal voltage Vtc as a conduction-time voltage value Vsc_on2.

[0170] (Step S1244) Next, the power supply control unit 50a turns off (opens) the switch SWd1 immediately after measuring the terminal voltage Vtc of the power storage circuit 10 in step S1243. When the switch SWd1 is turned off (opens), the constant current source CCSd is disconnected from the power storage circuit 10. It is desirable to execute the process of step S1244 simultaneously with step S1243 or as quickly as possible after executing step S1243 within the scope of feasibility of the power supply control unit 50a.

[0171] (Step S1245) Next, after the switch SW1 is turned off (open), the power supply control unit 50a measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50a stores (acquires) the voltage value of the measured terminal voltage Vtc as a non-conduction voltage value Vsc_off2.

[0172] (Step S1246) Next, the power supply control unit 50a uses the measured on-state voltage value Vsc_on2 and off-state voltage value Vsc_off2 to calculate the equivalent series resistance ESR according to Equation 7. Note that the current value Ic is the current value of the current I_ccsd, which is a constant current flowing through the constant current source CCSd.

[0173]

number

[0174] The power supply device 1a according to this embodiment can measure the equivalent series resistance of the power storage circuit 10 during discharge, in which current is released from the power storage circuit 10. Furthermore, the power supply device 1a according to this embodiment can monitor the deterioration of the characteristics of the electric double layer capacitor included in the power storage circuit 10 by measuring the equivalent series resistance of the power storage circuit 10.

[0175] [Rechargeable characteristics measurement processing] The rechargeable characteristic measurement process of the power storage circuit 10 in the power supply control unit 50a of the power supply device 1a according to the second embodiment will be described below. Fig. 23 is a flowchart illustrating the rechargeable characteristic measurement process of the power supply device 1a according to the second embodiment. The rechargeable characteristic measurement process includes a capacitance value measurement process (step S182) and an equivalent series resistance value measurement process (ESR value measurement process) (step S184). The power supply control unit 50a determines the capacitance value and equivalent series resistance value of the power storage circuit 10 as the characteristics of the power storage circuit 10.

[0176] [Capacitance and Equivalent Series Resistance of the Storage Circuit 10] The characteristics of the power storage circuit 10 in the power supply device 1a according to the second embodiment will be described below. Fig. 24 is an equivalent circuit diagram of a circuit that performs a rechargeable characteristic measurement process for the power storage circuit 10 in the power supply device 1a according to the second embodiment.

[0177] In the energy storage circuit 10 according to this embodiment, the electric double layer capacitors 11 and 12 connected in series are regarded as one capacitor having a capacitance value Csc and one resistor having a resistance value ESRsc connected in series with the capacitor. The capacitance value Csc and the resistance value ESRsc are then used to determine the characteristics of the energy storage circuit 10.

[0178] In the energy storage circuit 10 according to the second embodiment, the energy storage circuit 10 is charged from a constant current source CCSc. The power supply 101 is a constant current source CCSc. The power supply 101 is configured, for example, by combining a power supply 100 and a charging circuit 20a. The power supply 101 charges the energy storage circuit 10 with a constant current I_ccsc. The power supply device 1a includes a switch SWc1 between the power supply 101 and the energy storage circuit 10. For example, the charging circuit 20a includes the switch SWc1.

[0179] [Measurement of the capacitance value of the storage circuit 10] 25 is a flowchart of the process of measuring the capacitance value of the storage circuit 10 in the power supply device 1a according to the second embodiment. When this process is performed, the boost circuit 30, the equalization discharge circuit 40, and the constant current discharge circuit 48 stop operating. That is, the storage circuit 10 does not supply power to the load device 200, and is not performing the equalization discharge operation or the constant current discharge operation.

[0180] The processing procedure of the power supply control unit 50a of the power supply device 1a according to the second embodiment and the steps of the control method for the power supply device 1a will be described with reference to the flowchart of FIG.

[0181] (Step S1821) First, the power supply control unit 50a turns on (closes) the switch SWc1. When the switch SWc1 is turned on (closed), the power supply 101 is connected to the power storage circuit 10. When the power supply 101 is connected to the power storage circuit 10, the power storage circuit 10 is charged by the power supply 101. When the power storage circuit 10 is charged, the terminal voltage Vtc of the power storage circuit 10 starts to rise.

[0182] (Step S1822) Next, the power supply control unit 50a measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50a records (acquires) the voltage value of the measured terminal voltage Vtc as the start voltage value V13. Also, the power supply control unit 50a starts a timer count.

[0183] (Step S1823) Next, the power supply control unit 50a determines whether the voltage value of the terminal voltage Vtc of the storage circuit 10 has become equal to or greater than the end voltage value V14, which has been set to a predetermined value. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is lower than the predetermined end voltage value V14 (No in step S1823), step S1823 is repeated again. If the voltage value of the terminal voltage Vtc of the storage circuit 10 is equal to or greater than the predetermined end voltage value V14 (Yes in step S1823), the power supply control unit 50a proceeds to step S1824. The end voltage value V14 is set to a value higher than the start voltage value V13.

[0184] (Step S1824) Next, the power supply control unit 50a stops the timer count and records the count value.The power supply control unit 50a then calculates and records the time T3 from when the timer count started to when it stopped from the count value.It is desirable to execute the process of step S1824 simultaneously with step S1823 or as quickly as possible after executing step S1823 within the scope of the power supply control unit 50a's feasibility.

[0185] (Step S1825) Next, the power supply control unit 50a turns off (opens) the switch SWc1. When the switch SWc1 is turned off (opens), the power supply 101 is disconnected from the power storage circuit 10.

[0186] (Step S1826) Next, the power supply control unit 50a calculates the capacitance value Csc using the measured start voltage value V13 and end voltage value V14 and the time T3 according to Equation 8. The current value Ic is the current value of the current I_ccsc, which is a constant current flowing through the constant current source CCSc.

[0187]

number

[0188] For example, in step S1823, when the voltage value of the terminal voltage Vtc of the power storage circuit 10 becomes equal to or greater than the end voltage value V14, the terminal voltage Vtc may be measured again and set as the end voltage value V14. Alternatively, the set time Ts may be set first, the switch SWc1 may be turned on (closed), the terminal voltage Vtc may be measured in step S1822, and then the voltage value of the terminal voltage Vtc of the power storage circuit 10 after the time Ts has elapsed may be measured as the end voltage value V14. When the time Ts is set, the time T3 in equation 8 is set to the time Ts.

[0189] The power supply device 1a according to this embodiment can measure the capacitance value of the power storage circuit 10 during charging, in which a current flows into the power storage circuit 10. Furthermore, the power supply device 1a according to this embodiment can monitor the deterioration of the characteristics of the electric double layer capacitor included in the power storage circuit 10 by measuring the capacitance value of the power storage circuit 10.

[0190] [Measurement of Equivalent Series Resistance of Storage Circuit 10] 26 is a flowchart of the process of measuring the equivalent series resistance of the energy storage circuit 10 in the power supply device 1a according to the second embodiment. When this process is performed, the boost circuit 30 stops operating. That is, the energy storage circuit 10 is not supplying power to the load device 200.

[0191] The processing procedure of the power supply control unit 50a of the power supply device 1a according to this embodiment and the steps of the control method for the power supply device 1a will be described with reference to the flowchart of FIG.

[0192] (Step S1841) First, the power supply control unit 50a turns on (closes) the switch SWc1. When the switch SWc1 is turned on (closed), the power supply 101 is connected to the power storage circuit 10. When the power supply 101 is connected to the power storage circuit 10, the power storage circuit 10 is charged by the power supply 101. When the power storage circuit 10 is charged, the terminal voltage Vtc of the power storage circuit 10 gradually increases.

[0193] (Step S1842) Next, the power supply control unit 50a waits for a certain period of time, for example, until the charging current becomes stable.

[0194] (Step S1843) Next, the power supply control unit 50a measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50a stores (acquires) the voltage value of the measured terminal voltage Vtc as a conduction-time voltage value Vsc_on3.

[0195] (Step S1844) Next, the power supply control unit 50a turns off (opens) the switch SWc1 immediately after measuring the terminal voltage Vtc of the power storage circuit 10 in step S1843. When the switch SWc1 is turned off (opens), the power supply 101 is disconnected from the power storage circuit 10. It is desirable to execute the process of step S1844 simultaneously with step S1843 or as quickly as possible after executing step S1843 within the scope of feasibility of the power supply control unit 50a.

[0196] (Step S1845) Next, after the switch SWc1 is turned off (open), the power supply control unit 50a measures the terminal voltage Vtc of the power storage circuit 10. Then, the power supply control unit 50a stores (acquires) the voltage value of the measured terminal voltage Vtc as a non-conduction voltage value Vsc_off3.

[0197] (Step S1846) Next, the power supply control unit 50a calculates the equivalent series resistance ESR using the measured on-state voltage Vsc_on3 and off-state voltage Vsc_off3 according to Equation 9. The current Ic is the current value of the current I_ccsc, which is a constant current flowing through the constant current source CCSc.

[0198]

number

[0199] The power supply device 1a according to this embodiment can measure the capacitance value of the power storage circuit 10 during charging, in which a current flows into the power storage circuit 10. Furthermore, the power supply device 1a according to this embodiment can monitor the deterioration of the characteristics of the electric double layer capacitor included in the power storage circuit 10 by measuring the capacitance value of the power storage circuit 10.

[0200] <<Third Embodiment>> The power supply device 1 according to the first embodiment and the power supply device 1a according to the second embodiment perform a discharge-type characteristic measurement process in step S20 and a charge-type characteristic measurement process in step S80, but may perform a characteristic measurement process that combines the discharge-type characteristic measurement process and the charge-type characteristic measurement process in each of steps S20 and S80.

[0201] [Characteristics measurement processing] 27 is a flowchart illustrating a characteristic measurement process that combines a discharge-type characteristic measurement process and a charge-type characteristic measurement process. The characteristic measurement process that combines a discharge-type characteristic measurement process and a charge-type characteristic measurement process includes a discharge-type characteristic measurement process (step S201) and a charge-type characteristic measurement process (step S202).

[0202] The discharge-type characteristic measurement process of step S201 is, for example, the discharge-type characteristic measurement process of the power supply device 1 according to the first embodiment (see FIGS. 5 and 9) or the discharge-type characteristic measurement process of the power supply device 1a according to the second embodiment (see FIG. 19). The charge-type characteristic measurement process of step S202 is, for example, the charge-type characteristic measurement process of the power supply device 1 according to the first embodiment (see FIG. 13) or the charge-type characteristic measurement process of the power supply device 1a according to the second embodiment (see FIG. 23).

[0203] Then, in step S203, the power supply control unit 50a combines the measurement results of the discharge type characteristic measurement process in step S201 and the charge type characteristic measurement process in step S202 to determine the capacitance value and equivalent series resistance value of the storage circuit 10 as the characteristics of the storage circuit 10.

[0204] For example, the power supply control unit 50a may set the average or weighted average of the capacitance value determined in the discharge-type characteristic measurement process of step S201 and the capacitance value determined in the charge-type characteristic measurement process of step S202 as the capacitance value of the storage circuit 10. Furthermore, the power supply control unit 50a may set the average or weighted average of the equivalent series resistance value determined in the discharge-type characteristic measurement process of step S201 and the equivalent series resistance value determined in the charge-type characteristic measurement process of step S202 as the equivalent series resistance value of the storage circuit 10.

[0205] Furthermore, for example, the power supply control unit 50a may select either the capacitance value determined in the discharge type characteristic measurement process of step S201 or the capacitance value determined in the charge type characteristic measurement process of step S202, whichever is estimated to be more reliable, and set this as the capacitance value of the storage circuit 10. Furthermore, the power supply control unit 50a may select either the equivalent series resistance value determined in the discharge type characteristic measurement process of step S201 or the equivalent series resistance value determined in the charge type characteristic measurement process of step S202, whichever is estimated to be more reliable, and set this as the equivalent series resistance value of the storage circuit 10.

[0206] <Actions and Effects> The power supply device according to this embodiment can reduce the time required for equalization processing by comparing the capacitance voltage values ​​of the electric double layer capacitors and discharging the electric double layer capacitor with the higher capacitance voltage value.

[0207] Although the power supply device has been described above using an embodiment, the present invention is not limited to the above embodiment. Various modifications and improvements, such as combinations or substitutions with part or all of other embodiments, are possible within the scope of the present invention.

[0208] The power supply device according to the present embodiment is not limited to being used as a backup power supply for an electric latch system, but may also be used as a backup power supply for a brake system (electric brakes including electric parking brakes) or an airbag system. Furthermore, the power supply device according to the present embodiment is not limited to being used as a backup power supply, but may also be used as a main power supply (a power supply used under normal conditions). [Explanation of symbols]

[0209] 1, 1a power supply 10. Storage Circuit 11, 12 Electric double layer capacitor 20, 20a charging circuit 30 Boost circuit 40 Equalization discharge circuit 41 Switch 41a 1st terminal 41b 2nd terminal 42 Switch 42a Terminal 1 42b 2nd terminal 45 Resistance 46 Resistance 48 Constant current discharge circuit 50, 50a Power supply control unit 300 Vehicle control unit

Claims

1. a storage circuit having a first node connected to a power supply and a second node grounded, the storage circuit including a first electric double layer capacitor between the first node and a third node, and a second electric double layer capacitor between the third node and the second node; a first switch element having a first terminal connected to the first node and a second terminal, and connecting or disconnecting the first terminal and the second terminal; a first discharge resistor provided between the second terminal and a fourth node connected to the third node; a second switch element having a third terminal and a fourth terminal connected to ground, and connecting or disconnecting the third terminal and the fourth terminal; a second discharge resistor provided between the third terminal and the fourth node; a power supply control unit that measures voltages at the first node and the third node and controls the first switch element and the second switch element, The power supply control unit determining a first capacitance-voltage value of the first electric double layer capacitor and a second capacitance-voltage value of the second electric double layer capacitor based on the measured voltages of the first node and the third node; connecting the first switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than a reference voltage value and the first capacitance voltage value is higher than the second capacitance voltage value, and opening the first switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value becomes lower than the reference voltage value; connecting the second switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than the reference voltage value and the second capacitance voltage value is higher than the first capacitance voltage value, and opening the second switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value becomes lower than the reference voltage value; connecting the first switch element and the second switch element; measuring a voltage at the first node to obtain a first voltage value; determining whether the voltage at the first node is equal to or less than a second voltage value that is lower than the first voltage value; opening the first switch element and the second switch element when the voltage at the first node is equal to or less than the second voltage value; calculating a time from connection to release by the first switch element and the second switch element; calculating a capacitance value of the storage circuit based on the time, the first voltage value, and the second voltage value; To execute power supply.

2. The power supply control unit connecting the first switch element and the second switch element; measuring a voltage at the first node to obtain a third voltage value; immediately after measuring the voltage at the first node, opening the first switch element and the second switch element; measuring a voltage at the first node after opening the first switch element and the second switch element, and obtaining a fourth voltage value that is lower than the third voltage value; and calculating an equivalent series resistance of the storage circuit based on the third voltage value and the fourth voltage value. The power supply device of claim 1 .

3. A storage circuit having a first node connected to a power source and a second node grounded, a first electric double layer capacitor between the first node and a third node, and a second electric double layer capacitor between the third node and the second node; a first switch element having a first terminal connected to the first node and a second terminal, and connecting or disconnecting the first terminal and the second terminal; a first discharge resistor provided between the second terminal and a fourth node connected to the third node; a second switch element having a third terminal and a fourth terminal connected to ground, and connecting or disconnecting the third terminal and the fourth terminal; a second discharge resistor provided between the third terminal and the fourth node; a power supply control unit that measures voltages at the first node and the third node and controls the first switch element and the second switch element, The power supply control unit determining a first capacitance-voltage value of the first electric double layer capacitor and a second capacitance-voltage value of the second electric double layer capacitor based on the measured voltages of the first node and the third node; connecting the first switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than a reference voltage value and the first capacitance voltage value is higher than the second capacitance voltage value, and opening the first switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value becomes lower than the reference voltage value; connecting the second switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than the reference voltage value and the second capacitance voltage value is higher than the first capacitance voltage value, and opening the second switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value becomes lower than the reference voltage value; connecting the first switch element and the second switch element; measuring a voltage at the first node to obtain a third voltage value; immediately after measuring the voltage at the first node, opening the first switch element and the second switch element; measuring a voltage at the first node after opening the first switch element and the second switch element, and obtaining a fourth voltage value that is lower than the third voltage value; calculating an equivalent series resistance of the storage circuit based on the third voltage value and the fourth voltage value; To execute power supply.

4. The power supply control unit a step of connecting the first switch element and the second switch element, and opening the first switch element and the second switch element when a voltage value of the first node becomes equal to or lower than a storage voltage value, further performing the step of: The power supply device according to any one of claims 1 to 3.

5. The power supply control unit a step of connecting the first switch element and the second switch element when information indicating that the vehicle is in a stopped state is acquired from a vehicle control unit, and opening the first switch element and the second switch element when a voltage value of the first node becomes equal to or lower than a storage voltage value. The power supply device according to any one of claims 1 to 3.

6. a storage circuit having a first node connected to a power supply and a second node grounded, the storage circuit including a first electric double layer capacitor between the first node and a third node, and a second electric double layer capacitor between the third node and the second node; a first switch element having a first terminal connected to the first node and a second terminal, and connecting or disconnecting the first terminal and the second terminal; a first discharge resistor provided between the second terminal and a fourth node connected to the third node; a second switch element having a third terminal and a fourth terminal connected to ground, and connecting or disconnecting the third terminal and the fourth terminal; a second discharge resistor provided between the third terminal and the fourth node; A control method for a power supply device comprising: measuring a voltage at each of the first node and the third node; determining a first capacitance-voltage value of the first electric double layer capacitor and a second capacitance-voltage value of the second electric double layer capacitor based on the measured voltages of the first node and the third node; connecting the first switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than a reference voltage value and the first capacitance voltage value is higher than the second capacitance voltage value, and opening the first switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value becomes lower than the reference voltage value; connecting the second switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than the reference voltage value and the second capacitance voltage value is higher than the first capacitance voltage value, and opening the second switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value becomes lower than the reference voltage value; connecting the first switch element and the second switch element; measuring a voltage at the first node to obtain a first voltage value; determining whether the voltage at the first node is equal to or less than a second voltage value that is lower than the first voltage value; opening the first switch element and the second switch element when the voltage at the first node is equal to or less than the second voltage value; calculating a time from connection to release by the first switch element and the second switch element; calculating a capacitance value of the storage circuit based on the time, the first voltage value, and the second voltage value; Including, A method for controlling a power supply.

7. A storage circuit having a first node connected to a power source and a second node grounded, a first electric double layer capacitor between the first node and a third node, and a second electric double layer capacitor between the third node and the second node; a first switch element having a first terminal connected to the first node and a second terminal, and connecting or disconnecting the first terminal and the second terminal; a first discharge resistor provided between the second terminal and a fourth node connected to the third node; a second switch element having a third terminal and a fourth terminal connected to ground, and connecting or disconnecting the third terminal and the fourth terminal; a second discharge resistor provided between the third terminal and the fourth node; A control method for a power supply device comprising: measuring a voltage at each of the first node and the third node; determining a first capacitance-voltage value of the first electric double layer capacitor and a second capacitance-voltage value of the second electric double layer capacitor based on the measured voltages of the first node and the third node; connecting the first switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than a reference voltage value and the first capacitance voltage value is higher than the second capacitance voltage value, and opening the first switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value becomes lower than the reference voltage value; connecting the second switch element when an absolute value of a difference between the first capacitance voltage value and the second capacitance voltage value is higher than the reference voltage value and the second capacitance voltage value is higher than the first capacitance voltage value, and opening the second switch element when the absolute value of the difference between the first capacitance voltage value and the second capacitance voltage value becomes lower than the reference voltage value; connecting the first switch element and the second switch element; measuring a voltage at the first node to obtain a third voltage value; immediately after measuring the voltage at the first node, opening the first switch element and the second switch element; measuring a voltage at the first node after opening the first switch element and the second switch element, and obtaining a fourth voltage value that is lower than the third voltage value; calculating an equivalent series resistance of the storage circuit based on the third voltage value and the fourth voltage value; Including, A method for controlling a power supply.

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