Charging device and charging system
The charging device employs resistors and voltage detection to accurately determine connection/disconnection states, ensuring safe and efficient power management by immediately cutting off power upon disconnection.
Patent Information
- Application Number
- JP2021135219
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-08-20
- Publication Date
- 2025-08-14
- Estimated Expiration
- 2041-08-20
AI Technical Summary
Existing charging devices struggle to detect the precise moment of disconnection between vehicle and charging connectors, leading to potential safety hazards and inefficiencies in power application.
A charging device equipped with a detection unit and control unit that utilizes resistors and voltage comparisons to accurately determine the connection or disconnection state between vehicle and charging connectors, allowing immediate cutoff of power supply when disconnection occurs.
Ensures safe and timely cessation of power application upon disconnection, preventing hazards and optimizing charging efficiency by ensuring real-time detection of state changes.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a charging device and a charging system. [Background technology]
[0002] A charging device that charges a vehicle battery using a commercial power source begins charging after detecting a change from a disconnected state, in which the charging device's charging connector and the vehicle's charging connector are not connected, to a connected state, in which the charging device's charging connector and the vehicle's charging connector are connected. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2014-155377 Summary of the Invention [Problem to be solved by the invention]
[0004] The present disclosure provides a charging device and a charging system that can detect a change from a connected state in which the charging connector on the charging device side and the charging connector on the vehicle side are connected to a disconnected state in which the charging connector on the charging device side and the charging connector on the vehicle side are not connected. [Means for solving the problem]
[0005] A charging device according to a first aspect of the present disclosure includes a first power source, a first device-side connector terminal connectable to a first vehicle-side connector terminal, a second device-side connector terminal connectable to a second vehicle-side connector terminal, a first resistor electrically connected between the first power source and the first device-side connector terminal, a detection unit that detects a terminal-to-terminal voltage between the first device-side connector terminal and the second device-side connector terminal, and an device-side control unit, wherein a vehicle-side control unit is electrically connected between the first vehicle-side connector terminal and the second vehicle-side connector terminal, and the device-side control unit determines that a charging device has changed from a connected state in which the first device-side connector terminal is connected to the first vehicle-side connector terminal and the second device-side connector terminal is connected to the second vehicle-side connector terminal to a non-connected state in which the first device-side connector terminal is not connected to the first vehicle-side connector terminal and the second device-side connector terminal is not connected to the second vehicle-side connector terminal when the terminal-to-terminal voltage detected by the detection unit becomes greater than a predetermined voltage. According to the first aspect, the charging device can detect a change from the connected state to the unconnected state.
[0006] A charging device according to a second aspect of the first aspect includes a second power source, a third device-side connector terminal connectable to a third vehicle-side connector terminal, and a fourth device-side connector terminal connectable to a fourth vehicle-side connector terminal, a vehicle-side power storage unit is electrically connected between the third vehicle-side connector terminal and the fourth vehicle-side connector terminal, and a cutoff unit that cuts off a current supply path that supplies current from the second power source to the third device-side connector terminal. supply By interrupting the path, it is possible to stop the supply of electricity from the second power source to the vehicle-side power storage unit.
[0007] In the charging device of a third aspect according to the second aspect, the first device-side connector terminal is a terminal different from the third device-side connector terminal, and the second device-side connector terminal is a terminal identical to the fourth device-side connector terminal. According to the third aspect, the charging device can reduce the number of connector terminals by sharing the device-side connector terminal and the fourth device-side connector terminal.
[0008] In a fourth aspect of the charging device according to the second or third aspect, when the device-side control unit determines that the connected state has changed to the disconnected state, the device-side control unit causes the cut-off unit to cut off the current supply path. According to the fourth aspect, the charging device can cut off the current supply path immediately after determining that the connected state has changed to the disconnected state.
[0009] In a charging device of a fifth aspect according to any one of the first to fourth aspects, a second resistor is electrically connected in parallel with the vehicle-side control unit between the first vehicle-side connector terminal and the second vehicle-side connector terminal. According to the fifth aspect, the charging device can reduce the inter-terminal voltage by connecting the first device-side connector terminal and the first vehicle-side connector terminal.
[0010] In the charging device of the sixth aspect according to the fifth aspect, the resistance value of the first resistor is smaller than the resistance value of the second resistor. According to the sixth aspect, the charging device can reduce the voltage output from the first power source to supply a voltage necessary for the operation of a vehicle-side control unit.
[0011] In a charging device according to any one of the first to sixth aspects, a resistance value of the first resistor is set so that a voltage equal to or higher than a minimum voltage required for operation of the vehicle-side control unit is output from the first device-side connector terminal. The charging device according to the seventh aspect can supply the voltage required for operation of the vehicle-side control unit.
[0012] In the charging device of an eighth aspect according to the seventh aspect, the voltage value of the minimum voltage is 5 V, and the voltage value of the first power source is 7 V. According to the eighth aspect, the charging device can supply a voltage necessary for the operation of a vehicle-side control unit even if the voltage value of the first power source is kept at 7 V.
[0013] In the charging device of the ninth aspect according to the eighth aspect, the voltage value of the predetermined voltage is a voltage value between the voltage value of the first power source and the voltage value of the minimum voltage. According to the ninth aspect, the charging device can detect a change from the connected state to the disconnected state even if there is no voltage value higher than the voltage value of the first power source, and can supply a voltage necessary for operation of a vehicle-side control unit in the connected state.
[0014] In the charging device of the tenth aspect according to the fifth or sixth aspect, the detection unit is a comparator that compares the inter-terminal voltage with the predetermined voltage. According to the tenth aspect, the detection unit can compare the inter-terminal voltage with the predetermined voltage using a simple electronic circuit.
[0015] A charging device according to the tenth aspect of the present invention includes a third resistor electrically connected to the first power supply and a fourth resistor electrically connected between the third resistor and the second device connector terminal, and the comparator compares the inter-terminal voltage with the predetermined voltage between the third resistor and the fourth resistor. According to the eleventh aspect, the charging device can generate the predetermined voltage smaller than the voltage value of the first power supply by using the third resistor and the fourth resistor electrically connected in series between the first power supply and the second device connector terminal.
[0016] In the charging device of the twelfth aspect according to the eleventh aspect, the resistance value of the fourth resistor is greater than five times the resistance value of the third resistor. According to the eleventh aspect, the charging device can generate the predetermined voltage having a voltage value of 6 [V] to 7 [V], for example, when the voltage of the first power supply is 7 [V] and the minimum voltage is 5 [V].
[0017] In a charging device according to the eleventh or twelfth aspect, the resistance value of the third resistor is greater than 100 times the resistance value of the first resistor. According to the thirteenth aspect, the charging device can generate the predetermined voltage using a current that is less than 1 / 100 of the current flowing from the first power source to the first device-side connector terminal.
[0018] In a charging device of a fourteenth aspect according to any one of the eleventh to thirteenth aspects, the first resistor has a resistance value of 10 [Ω] and the second resistor has a resistance value of 50 [Ω]. According to the fourteenth aspect, when the voltage of the first power source is 7 [V], for example, the charging device can set the voltage value of the inter-terminal voltage in the disconnected state to 7 [V] and the voltage value of the inter-terminal voltage in the connected state to greater than 5 [V] and less than 6 [V].
[0019] In a charging device of a fifteenth aspect according to any one of the eleventh to fourteenth aspects, the third resistor has a resistance value of 5 kΩ and the fourth resistor has a resistance value of 50 kΩ. According to the fifteenth aspect, the charging device can generate the predetermined voltage having a voltage value of 6 V to 7 V, for example, when the voltage of the first power supply is 7 V and the minimum voltage is 5 V.
[0020] A charging device according to any one of the first to fifteenth aspects has an apparatus-side control terminal connectable to the vehicle-side control terminal. According to the sixteenth aspect, the charging device can obtain information necessary for charging from the vehicle-side control unit via the apparatus-side control terminal different from the connector terminal for power supply.
[0021] In a charging device of a seventeenth aspect according to the first to sixteenth aspects, the device-side control unit determines that the state has changed from the unconnected state to the connected state when the inter-terminal voltage detected by the detection unit becomes smaller than a predetermined voltage. According to the seventeenth aspect, the charging device can detect that the state has changed from the unconnected state to the connected state.
[0022] A charging system according to an eighteenth aspect includes a charging device according to any one of the eleventh to seventeenth aspects, and a vehicle-side device having a vehicle-side control unit electrically connected between the first vehicle-side connector terminal and the second vehicle-side connector terminal. According to the eighteenth aspect, the charging device can detect a change from the connected state to the disconnected state. [Effects of the Invention]
[0023] According to the present disclosure, the charging device can detect a change from a connected state in which the charging connector on the charging device side and the charging connector on the vehicle side are connected to a disconnected state in which the charging connector on the charging device side and the charging connector on the vehicle side are not connected. [Brief explanation of the drawings]
[0024] [Figure 1] FIG. 1 is an explanatory diagram showing a charging system according to an embodiment. [Figure 2] FIG. 2 is a schematic configuration diagram of the charging device and the vehicle-side device according to the embodiment. [Figure 3] FIG. 3 is a diagram showing the vehicle-side charging connector according to the embodiment. [Figure 4] FIG. 4 is a diagram showing the charging device-side charging connector according to the embodiment. [Figure 5] FIG. 5 is a circuit diagram of the charging device and the vehicle-side device according to the embodiment. [Figure 6] FIG. 6 is a diagram illustrating the operation of the charging system according to the embodiment. [Figure 7] FIG. 7 is a flowchart illustrating an example of processing executed by the device-side control unit according to the embodiment. [Figure 8] FIG. 8 is a schematic configuration diagram of a charging device and a vehicle-side device according to a modified example of the embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0025] 1, a charging system 10 according to an embodiment includes a charging device 12 and a vehicle 14. The charging device 12 is provided, for example, in a charging station 16. The charging station 16 is installed, for example, on a street. The charging station 16 includes a charging cable 18 that electrically connects the charging device 12 and the vehicle 14.
[0026] The vehicle 14 is, for example, a bicycle with an electric assist function. The vehicle 14 may also be an electric motorcycle, an electric vehicle, a plug-in hybrid vehicle, or the like, as long as it has a power storage unit that is charged by a commercial power source.
[0027] The vehicle 14 has a vehicle-side device 20. The vehicle-side device 20 includes a vehicle-side power storage unit 22 and a vehicle-side control unit 24. The vehicle-side power storage unit 22 is, for example, a lithium-ion battery. The vehicle-side power storage unit 22 may be any secondary battery other than a lithium-ion battery, as long as it can be charged with power supplied from the charging device 12. The vehicle-side power storage unit 22 is housed inside a frame 26 of the vehicle 14. The vehicle-side power storage unit 22 is housed inside a down tube 28 of the frame 26, for example. The vehicle-side power storage unit 22 may be configured to be attached to the outside of the frame 26.
[0028] The vehicle-side control unit 24 is housed inside the frame 26. For example, the vehicle-side control unit 24 is housed inside the connecting portion of the frame 26 between the down tube 28 and the seat tube 30. The vehicle-side control unit 24 may also be housed inside a portion of the frame 26 other than the connecting portion of the down tube 28 and the seat tube 30. The vehicle-side control unit 24 may also be configured to be attached to the outside of the frame 26.
[0029] The vehicle-side control unit 24 is, for example, an MPU (Micro Processor Unit). The vehicle-side control unit 24 is configured to control the operation of all electrical components in the vehicle 14. The vehicle-side control unit 24 is configured to control the operation of a drive unit 32 of the vehicle 14, for example. The drive unit 32 includes, for example, an electric motor. The electric motor operates using power supplied from the vehicle-side power storage unit 22. The drive unit 32 is configured to provide propulsive force to the human-powered vehicle by the vehicle-side control unit 24 controlling the operation of the electric motor. The vehicle-side control unit 24 controls the charging of the vehicle-side power storage unit 22.
[0030] 2, the charging system 10 includes a charging device 12 and a vehicle-side device 20. The charging device 12 includes an device-side control unit 34, an AC / DC (alternating current / direct current) converter 36, a CC / CV (constant current / constant voltage) charging unit 38, a DC / DC (direct current / direct current) converter 40, and an device-side communication unit 42. The device-side communication unit 42 is, for example, a communication unit conforming to the CAN (Controller Area Network) standard. Device side The communication unit 42 may be a communication unit conforming to the PLC (Power Line Communication) standard. Device side The communication unit 42 may be a communication unit conforming to the UART (Universal Asynchronous Receiver Transmitter) standard.
[0031] The device-side control unit 34 is electrically connected to the AC / DC 36, the CC / CV 38, the DC / DC 40, and the device-side communication unit 42. The AC / DC 36 is electrically connected to a commercial power supply 44 and the CC / CV 38. The CC / CV 38 is electrically connected to the charging device-side charging connector 46. The DC / DC 40 is electrically connected to the CC / CV 38 and the charging device-side charging connector 46. The device-side communication unit 42 is electrically connected to the charging device-side charging connector 46.
[0032] The device-side control unit 34 is, for example, an MPU, and controls the entire charging device 12. 34For example, the control unit controls the operation of the AC / DC 36, the CC / CV 38, and the DC / DC 40. 34 performs information communication with the vehicle-side device 20 via the device-side communication unit 42. 34 receives information relating to the charging of the vehicle-side power storage unit 22 from the vehicle-side device 20. 34 receives information such as the individual identification number ID (Identification Number) of the vehicle 14, the model number of the vehicle-side power storage unit 22, the SOC (State Of Charge) of the vehicle-side power storage unit 22, and the temperature of the vehicle-side power storage unit 22 from the vehicle-side device 20.
[0033] The AC / DC converter 36 converts AC current input from the commercial power supply 44 into DC current and outputs the DC current to the CC / CV converter 38. The CC / CV converter 38 converts the voltage value of the current input from the AC / DC converter 36 into a predetermined constant voltage. The current value of the current output to the CC / CV converter 38 is a current value suitable for charging the vehicle-side power storage unit 22. The current value is, for example, greater than 0 [A] and less than 40 [A]. The constant voltage value is a voltage value suitable for charging the vehicle-side power storage unit 22. The constant voltage value is, for example, greater than 0 [V] and less than 60 [V]. The constant voltage value is, for example, a rated voltage of 48 [V]. The constant voltage value may be, for example, a rated voltage of 36 [V]. In this embodiment, the CC / CV 38 converts the voltage value of the current input from the AC / DC 36 into the voltage value of a predetermined constant voltage, but the CC / CV 38 may also convert the current value of the current input from the AC / DC 36 into the current value of a predetermined constant current.
[0034] The CC / CV 38 outputs the DC current converted into a constant voltage to the charging device-side charging connector 46 and the DC / DC 40. The DC / DC 40 converts the voltage value of the DC current input from the CC / CV 38 to a predetermined voltage value that is equal to or higher than the minimum voltage required for operation of the vehicle-side control unit 24, and outputs the converted voltage to the charging device-side charging connector 46. The minimum voltage required for operation of the vehicle-side control unit 24 is, for example, 5 V.
[0035] The vehicle-side device 20 includes a vehicle-side power storage unit 22, a vehicle-side control unit 24, and a vehicle-side communication unit 48. The vehicle-side control unit 24 is electrically connected to the vehicle-side power storage unit 22 and the vehicle-side communication unit 48. The vehicle-side power storage unit 22 is electrically connected to a vehicle-side charging connector 50. The vehicle-side communication unit 48 is electrically connected to the vehicle-side charging connector 50.
[0036] The vehicle-side control unit 24 communicates information with the charging device 12 via the vehicle-side communication unit 48. The vehicle-side control unit 24 transmits information related to the charging of the vehicle-side power storage unit 22 to the charging device 12. The vehicle-side control unit 24 transmits information such as the individual identification number ID of the vehicle 14, the model number of the vehicle-side power storage unit 22, the SOC of the vehicle-side power storage unit 22, and the temperature of the vehicle-side power storage unit 22 to the charging device 12. A user of the vehicle 14 connects the charging device-side charging connector 46 and the vehicle-side charging connector 50 to charge the vehicle-side power storage unit 22. The vehicle-side control unit 24 communicates information with electrical components in the vehicle 14. The vehicle-side control unit 24 communicates information with the vehicle-side power storage unit 22, for example. The vehicle-side control unit 24 communicates information with the electrical components in the vehicle 14, for example, via CAN communication. If the communication standard for communicating information with the charging device 12 differs from the communication standard for communicating information with the electrical components in the vehicle 14, the vehicle-side control unit 24 may include a communication standard conversion unit.
[0037] Vehicle-side charging connector 50 is provided such that the connection surface with charging device-side charging connector 46 is exposed from frame 26 of vehicle 14. For example, an openable cover is attached to vehicle-side charging connector 50 to protect the connection surface with charging device-side charging connector 46. The cover is configured to be opened when vehicle-side power storage unit 22 is being charged and closed when vehicle-side power storage unit 22 is not being charged.
[0038] 3, the vehicle-side charging connector 50 includes a first vehicle-side connector terminal 50A, a second vehicle-side connector terminal 50B, a third vehicle-side connector terminal 50C, and a fourth vehicle-side connector terminal 50D on a connection surface with the charging device-side charging connector 46. The first vehicle-side connector terminal 50A, the second vehicle-side connector terminal 50B, and the third vehicle-side connector terminal 50C are different terminals. The second vehicle-side connector terminal 50B is the same terminal as the fourth vehicle-side connector terminal 50D.
[0039] The vehicle-side charging connector 50 further includes a vehicle-side control terminal. Specifically, the vehicle-side charging connector 50 includes a first vehicle-side control terminal 50E and a second vehicle-side control terminal 50F on a connection surface with the charging device-side charging connector 46. The second vehicle-side control terminal 50F is a different terminal from the first vehicle-side control terminal 50E. The first vehicle-side connector terminal 50A, the second vehicle-side connector terminal 50B, the third vehicle-side connector terminal 50C, the fourth vehicle-side connector terminal 50D, the first vehicle-side control terminal 50E, and the second vehicle-side control terminal 50F are recessed connection terminals.
[0040] The first vehicle-side connector terminal 50A is a high-voltage (+) terminal for supplying power to the vehicle-side control unit 24. The second vehicle-side connector terminal 50B is a low-voltage (-) terminal for supplying power to the vehicle-side control unit 24. The third vehicle-side connector terminal 50C is a high-voltage (+) terminal for charging the vehicle-side power storage unit 22. The fourth vehicle-side connector terminal 50D is a low-voltage (-) terminal for charging the vehicle-side power storage unit 22. The first vehicle-side control terminal 50E is an input / output terminal for High signals in CAN communication. The second vehicle-side control terminal 50F is an input / output terminal for Low signals in CAN communication.
[0041] As shown in FIG. 4 , the charging device-side charging connector 46 is attached to the tip of the charging cable 18. The base end of the charging cable 18 is connected to the charging device 12. The charging device-side charging connector 46 has a first device-side connector terminal 46A, a second device-side connector terminal 46B, a third device-side connector terminal 46C, and a fourth device-side connector terminal 46D on a connection surface with the vehicle-side charging connector 50. The first device-side connector terminal 46A, the second device-side connector terminal 46B, and the third device-side connector terminal 46C are all different terminals. The second device-side connector terminal 46B is the same terminal as the fourth device-side connector terminal 46D.
[0042] The charging device-side charging connector 46 further includes an apparatus-side control terminal. Specifically, the charging device-side charging connector 46 includes a first apparatus-side control terminal 46E and a second apparatus-side control terminal 46F on a connection surface with the vehicle-side charging connector 50. The second apparatus-side control terminal 46F is a different terminal from the first apparatus-side control terminal 46E. The first apparatus-side connector terminal 46A, the second apparatus-side connector terminal 46B, the third apparatus-side connector terminal 46C, the fourth apparatus-side connector terminal 46D, the first apparatus-side control terminal 46E, and the second apparatus-side control terminal 46F are convex connection terminals. The charging device-side charging connector 46 maintains an engaged state with the vehicle-side charging connector 50 solely by frictional force. In other words, there is no latch mechanism between the charging device-side charging connector 46 and the vehicle-side charging connector 50 that controls the engagement to maintain the engaged state.
[0043] The first device-side connector terminal 46A is a high-voltage (+) terminal for supplying power to the vehicle-side control unit 24. The second device-side connector terminal 46B is a low-voltage (-) terminal for supplying power to the vehicle-side control unit 24. The third device-side connector terminal 46C is a high-voltage (+) terminal for charging the vehicle-side power storage unit 22. The fourth device-side connector terminal 46D is a low-voltage (-) terminal for charging the vehicle-side power storage unit 22. The first device-side control terminal 46E is an input / output terminal for a High signal in CAN communication. The second device-side control terminal 46F is an input / output terminal for a Low signal in CAN communication.
[0044] It is desirable for charging device 12 to stop charging at the same time that charging device 12 changes from a connected state, in which charging device-side charging connector 46 is connected to vehicle-side charging connector 50, to a disconnected state, in which charging device-side charging connector 46 is not connected to vehicle-side charging connector 50. Because charging device-side charging connector 46 maintains an engaged state with vehicle-side charging connector 50 only by frictional force, the user can pull charging device-side charging connector 46 out of vehicle-side charging connector 50 while charging device 12 is applying a voltage appropriate for charging vehicle-side power storage unit 22.
[0045] However, because device-side control unit 34 communicates with vehicle-side control unit 24 via CAN at a predetermined cycle, such as a cycle of 100 ms, charging device 12 cannot determine in real time that it has changed from a connected state to a disconnected state when the connected state changes to a disconnected state during the non-communication period. Therefore, charging device 12 may not be able to stop applying a voltage suitable for charging vehicle-side power storage unit 22 to charging device-side charging connector 46 at the same time as it changes from a connected state to a disconnected state.
[0046] When the user pulls out the charging device side charging connector 46 from the vehicle side charging connector 50, if the user touches, for example, the third device side connector terminal 46C while voltage application from the charging device 12 to the charging device side charging connector 46 continues, there is a risk that a voltage suitable for charging the vehicle side power storage unit 22 will be applied to the user.
[0047] Therefore, the charging system 10 according to the embodiment has a configuration that can determine that the charging device-side charging connector 46 has changed from a connected state to a disconnected state at the same time that the charging device-side charging connector 46 has been pulled out from the vehicle-side charging connector 50.
[0048] Specifically, as shown in Fig. 5, the charging device 12 has a first power source 52, a first device-side connector terminal 46A connectable to a first vehicle-side connector terminal 50A, and a second device-side connector terminal 46B connectable to a second vehicle-side connector terminal 50B. The first power source 52 is the DC / DC converter 40 shown in Fig. 2. The charging device 12 further includes a first resistor R1 electrically connected between the first power source 52 and the first device-side connector terminal 46A. The resistance value of the first resistor R1 is, for example, 10 [Ω].
[0049] The charging device 12 further includes a detector 56 that detects the inter-terminal voltage between the first device-side connector terminal 46A and the second device-side connector terminal 46B, and an device-side control unit 34. The vehicle-side control unit 24 is electrically connected between the first vehicle-side connector terminal 50A and the second vehicle-side connector terminal 50B. The detector 56 is a comparator that compares the inter-terminal voltage between the first device-side connector terminal 46A and the second device-side connector terminal 46B with a predetermined voltage. The predetermined voltage is a voltage value between the voltage value of the first power source 52 and the minimum voltage required for operation of the vehicle-side control unit 24.
[0050] The charging device 12 further includes a second power source 54, a third device-side connector terminal 46C connectable to the third vehicle-side connector terminal 50C, and a fourth device-side connector terminal 46D connectable to the fourth vehicle-side connector terminal 50D. The first device-side connector terminal 46A is a terminal different from the third device-side connector terminal 46C. The second device-side connector terminal 46B is the same terminal as the fourth device-side connector terminal 46D. The second power source 54 is different from the first power source 52. The second device-side connector terminal 46B and the fourth device-side connector terminal 46D are connected to ground (GND). The fourth device-side connector terminal 46D may be a terminal different from the second device-side connector terminal 46B.
[0051] The first vehicle-side connector terminal 50A is a terminal different from the third vehicle-side connector terminal 50C. The second vehicle-side connector terminal 50B is the same terminal as the fourth vehicle-side connector terminal 50D. The second vehicle-side connector terminal 50B and the fourth vehicle-side connector terminal 50D are connected to ground (GND). The fourth vehicle-side connector terminal 50D may be a terminal different from the second vehicle-side connector terminal 50B. The vehicle-side power storage unit 22 is electrically connected between the third vehicle-side connector terminal 50C and the fourth vehicle-side connector terminal 50D. The charging device 12 further includes a cutoff unit 60 that cuts off a current supply path 58 that supplies current from the second power source 54 to the third device-side connector terminal 46C.
[0052] A second resistor R2 is electrically connected in parallel with the vehicle-side control unit 24 between the first vehicle-side connector terminal 50A and the second vehicle-side connector terminal 50B. The resistance value of the second resistor R2 is, for example, 50 [Ω]. The resistance value of the first resistor R1 is smaller than the resistance value of the second resistor R2. The resistance value of the first resistor R1 is set so that a voltage equal to or greater than the minimum voltage required for operation of the vehicle-side control unit 24 is output from the first device-side connector terminal 46A. The minimum voltage required for operation of the vehicle-side control unit 24 is, for example, 5 [V]. The voltage value Vdd of the first power supply 52 is, for example, 7 [V].
[0053] The charging device 12 further includes a third resistor R3 electrically connected to the first power supply 52 and a fourth resistor R4 electrically connected between the third resistor R3 and the second device-side connector terminal 46B. The resistance value of the fourth resistor R4 is more than five times the resistance value of the third resistor R3. The resistance value of the third resistor R3 is more than 100 times the resistance value of the first resistor R1. For example, the resistance value of the third resistor R3 is 5 kΩ. The resistance value of the fourth resistor R4 is 50 kΩ. The comparator, which is the detection unit 56, compares the inter-terminal voltage between the first device-side connector terminal 46A and the second device-side connector terminal 46B with a predetermined voltage across the third resistor R3 and the fourth resistor R4.
[0054] The charging device 12 has device-side control terminals connectable to the vehicle-side control terminals, including a first device-side control terminal 46E connectable to the first vehicle-side control terminal 50E and a second device-side control terminal 46F connectable to the second vehicle-side control terminal 50F.
[0055] When charger-side charging connector 46 and vehicle-side charging connector 50 change from a disconnected state to a connected state, charging device 12 supplies power to vehicle-side device 20 to charge vehicle-side power storage unit 22. Based on the voltage value Vcc of first device-side connector terminal 46A, charging device 12 detects that charger-side charging connector 46 and vehicle-side charging connector 50 have changed from a disconnected state to a connected state.
[0056] The first power supply 52 constantly supplies voltage to the first device-side connector terminal 46A. When the first device-side connector terminal 46A and the first vehicle-side connector terminal 50A are not connected and the second device-side connector terminal 46B and the second vehicle-side connector terminal 50B are not connected, the voltage value Vcc is equal to the voltage value Vdd.
[0057] When the charger-side charging connector 46 is connected to the vehicle-side charging connector 50, the first power source 52 supplies the power necessary for communication to the vehicle-side device 20. When the first device-side connector terminal 46A is connected to the first vehicle-side connector terminal 50A and the second device-side connector terminal 46B is connected to the second vehicle-side connector terminal 50B, current flows through the second resistor R2, causing the voltage Vcc to drop by the amount of the first resistor R1. The device-side control unit 34 can confirm that the charger-side charging connector 46 and the vehicle-side charging connector 50 are connected by detecting that the voltage Vcc of the first device-side connector terminal 46A has dropped from the voltage Vdd.
[0058] When the charging device-side charging connector 46 is pulled out from the vehicle-side charging connector 50, the voltage value Vcc rises to the voltage value Vdd. By detecting the rise in the voltage value Vcc, the device-side control unit 34 can confirm that the charging device-side charging connector 46 has been pulled out from the vehicle-side charging connector 50.
[0059] For example, to supply a voltage of 5 V or more to vehicle-side control unit 24, voltage value Vdd must be greater than 5 V. A case will be described where voltage value Vdd of first power supply 52 is 7 V, resistance value of first resistor R1 is 10 Ω, and resistance value of second resistor R2 is 50 Ω. As shown in FIG. 6, when charger-side charging connector 46 and vehicle-side charging connector 50 are in a disconnected state, voltage value Vcc is 7 V.
[0060] When the charging device-side charging connector 46 and the vehicle-side charging connector 50 change from a disconnected state to a connected state and the vehicle-side control unit 24 is not operating, the voltage value Vcc becomes approximately 6 (e.g., 5.83) V. After that, when the vehicle-side control unit 24 starts operating, the voltage value Vcc further decreases from 5.83 V.
[0061] Assuming that a current greater than 100 mA does not flow through the vehicle-side control unit 24, even if the vehicle-side control unit 24 consumes the maximum current, the voltage value Vcc will be greater than 5 V. Because the voltage value Vcc of the detection unit 56 varies between 5.83 V and 5 V, the predetermined voltage to be compared with the voltage value Vcc is set between 7 V and 5.83 V. Therefore, the resistance value r3 of the third resistor R3 and the resistance value r4 of the fourth resistor R4 are determined by the following equation (1). r4≧5×r3 (1) Equation (1) holds when the resistance value r1 of the first resistor R1, the resistance value r2 of the second resistor R2, and the input resistance value rf of the vehicle-side controller 24 satisfy the above conditions. If they differ, a different equation based on the same concept is required.
[0062] When the voltage value Vdd of the first power supply 52 is 7 [V], the voltage value Vcc of the first device-side connector terminal 46A is determined by the following formula (2). Vcc=r2´ / (r1+r2´)×7[V]····. (2) However, r2´ is the combined resistance value of r2 and the vehicle-side control unit 24. When r2 > rf, the input resistance value rf of the vehicle-side control unit 24 dominantly determines the input resistance. When r2 < rf, r2 dominantly determines the input resistance value. If the input current value IF of the vehicle-side control unit 24 is defined as IF < 100 [mA], the voltage value Vcc will be 5 [V] < Vcc < 6 [V].
[0063] When the voltage value Vcc becomes smaller than a predetermined voltage, the detection unit 56 notifies the device-side control unit 34 to that effect. The device-side control unit 34 determines that the connection state has changed from the non-connection state when the terminal voltage detected by the detection unit 56 becomes smaller than a predetermined voltage. Specifically, the device-side control unit 34 determines that the charging device-side charging connector 46 and the vehicle-side charging connector 50 have changed from the non-connection state to the connection state when the voltage value Vcc of the first device-side connector terminal 46A detected by the detection unit 56 becomes smaller than a predetermined voltage.
[0064] During the period when the charging device-side charging connector 46 and the vehicle-side charging connector 50 are in the non-connection state, the device-side control unit 34 causes the current supply path 58 to be interrupted by the interruption unit 60. When the device-side control unit 34 determines that the charging device-side charging connector 46 and the vehicle-side charging connector 50 have changed from the non-connection state to the connection state, it receives information about the vehicle-side device 20 from the vehicle-side device 20 via the device-side communication unit 42.
[0065] For example, the device-side control unit 34 receives information such as the individual identification number ID of the vehicle 14, the model number of the vehicle-side power storage unit 22, the SOC of the vehicle-side power storage unit 22, and the temperature of the vehicle-side power storage unit 22 from the vehicle-side device 20. The device-side control unit 34 authenticates and confirms the vehicle-side device 20 based on the received information, determines whether charging is possible, and sets the conditions related to charging. When charging is possible and the setting of the conditions related to charging is completed, the device-side control unit 34 releases the interruption of the current supply path 58 by the interruption unit 60. As a result, current is supplied from the second power source 54 to the vehicle-side power storage unit 22, and charging of the vehicle-side power storage unit 22 is started.
[0066] Thereafter, the device-side control unit 34 determines that the state has changed from a connected state, in which the first device-side connector terminal 46A is connected to the first vehicle-side connector terminal 50A and the second device-side connector terminal 46B is connected to the second vehicle-side connector terminal 50B, to a disconnected state, in which the first device-side connector terminal 46A is not connected to the first vehicle-side connector terminal 50A and the second device-side connector terminal 46B is not connected to the second vehicle-side connector terminal 50B, by detecting that the inter-terminal voltage detected by the detection unit 56 is greater than a predetermined voltage. In other words, the device-side control unit 34 determines that the state has changed from the connected state to the disconnected state by detecting that the voltage value Vcc of the first device-side connector terminal 46A is greater than a predetermined voltage. When the device-side control unit 34 determines that the state has changed from the connected state to the disconnected state, it causes the cutoff unit 60 to cut off the current supply path 58.
[0067] In this way, according to the charging device 12, the first device-side connector terminal 46A can be used both as a terminal for supplying power to the vehicle-side control unit 24 and as a terminal for detecting connection / disconnection between the charging device-side charging connector 46 and the vehicle-side charging connector 50.
[0068] The device-side control unit 34 repeatedly executes the process shown in Fig. 7. The device-side control unit 34 determines whether or not the voltage value Vcc, which is the voltage between the terminals, is smaller than a predetermined voltage (step S1). If the voltage between the terminals is equal to or greater than the predetermined voltage, the device-side control unit 34 ends the process and returns to the predetermined voltage from step S1. Processing Start.
[0069] If the inter-terminal voltage is lower than the predetermined voltage, the device-side controller 34 determines that the charging device-side charging connector 46 and the vehicle-side charging connector 50 have transitioned from a disconnected state to a connected state (step S2), and starts charging based on the set charging conditions (step S3). Thereafter, the device-side controller 34 determines whether the inter-terminal voltage is higher than the predetermined voltage (step S4).
[0070] The device-side control unit 34 continues charging when the inter-terminal voltage is equal to or lower than a predetermined voltage. Terminals The voltage between Large If not, the device-side control unit 34 determines that the charging device-side charging connector 46 and the vehicle-side charging connector 50 have changed from a connected state to a disconnected state (step S5). Thereafter, the device-side control unit 34 interrupts the current supply path 58 (step S6), ends the process, and starts the process again from step S1. In step S3, the device-side control unit 34 authenticates and confirms the vehicle-side device 20 based on the information received from the vehicle-side device 20, determines whether charging is possible, and sets conditions for charging. 2 In this case, when it is determined that the charging device side charging connector 46 and the vehicle side charging connector 50 have changed from a non-connected state to a connected state, charging may be started.
[0071] Fig. 8 shows a schematic configuration of a charging system 10A according to a modified example. As shown in Fig. 8, the charging system 10A includes a charging device 12, a relay device 62, and a vehicle-side device 20A. The charging device 12 has the same configuration as the charging device 12 shown in Fig. 2. The vehicle-side device 20A differs in configuration from the vehicle-side device 20 shown in Fig. 2 in that it does not include a vehicle-side control unit 24 and a vehicle-side communication unit 48. Although not shown in Fig. 8, the vehicle 14A includes a control unit that controls the operation of the drive unit 32.
[0072] Relay device 62 includes a vehicle-side control unit 24A and a vehicle-side communication unit 48A. Of the processes performed by vehicle-side control unit 24 shown in FIG. 2, vehicle-side control unit 24A performs processes related to charging of vehicle-side power storage unit 22. Vehicle-side communication unit 48A has the same configuration as vehicle-side communication unit 48 shown in FIG. 2. Charging device 12 and relay device 62 are connected when charging device-side charging connector 46 and vehicle-side charging connector 50 are connected. Charging device-side charging connector 46 has the same configuration as charging device-side charging connector 46 shown in FIG. 4. Vehicle-side charging connector 50 has the same configuration as vehicle-side charging connector 50 shown in FIG. 3.
[0073] Relay device 62 and vehicle device 20A are connected by connecting relay device-side charging connector 64 and vehicle device-side charging connector 66. Relay device-side charging connector 64 has the same configuration as charging device-side charging connector 46 shown in FIG. 4. Vehicle device-side charging connector 66 has the same configuration as vehicle-side charging connector 50 shown in FIG. 3.
[0074] The charging device 12 supplies power to the vehicle-side device 20A via the relay device 62, thereby charging the vehicle-side power storage unit 22. According to the charging system 10A, 8 The charging device 12 can charge the vehicle-side power storage unit 22 of an existing vehicle 14A that does not have the vehicle-side control unit 24 and the vehicle-side communication unit 48 shown in Fig. 1. The charging device 12 can share the first device-side connector terminal 46A as a terminal for supplying power to the vehicle-side control unit 24A and as a terminal for detecting connection / disconnection between the charging device-side charging connector 46 and the vehicle-side charging connector 50.
[0075] Although the embodiments of the present invention have been described above, the embodiments are not limited to the contents of these embodiments. Furthermore, the above-described components include those that can be easily imagined by a person skilled in the art, those that are substantially the same, and those that are within the scope of what is called equivalents. Furthermore, the above-described components can be combined as appropriate. Furthermore, various omissions, substitutions, or modifications of the components can be made without departing from the spirit of the above-described embodiments.
[0076] The phrase "at least one" as used herein means "one or more" of the desired options. As an example, the phrase "at least one" as used herein means "only one option" or "both of two options" when the number of options is two. As another example, the phrase "at least one" as used herein means "only one option" or "any combination of two or more options" when the number of options is three or more. [Explanation of symbols]
[0077] 10, 10A... charging system, 12... charging device, 14, 14A... vehicle, 16... charging station, 18... charging cable, 20... vehicle-side device, 22... vehicle-side power storage unit, 24, 24A... vehicle-side control unit, 26... frame, 28... down tube, 30... seat tube, 32... drive unit, 34... device-side control unit, 36... AC / DC, 38... CC / CV, 40... DC / DC, 42... device-side communication unit, 48, 48A... vehicle-side communication unit, 44... commercial power supply, 46... charging device-side charging connector, 46A... first device-side connector terminal, 46B... second device-side connector terminal , 46C...Third device side connector terminal, 46D...Fourth device side connector terminal, 46E...First device side control terminal, 46F...Second device side control terminal, 50...Vehicle side charging connector, 50A...First vehicle side connector terminal, 50B...Second vehicle side connector terminal, 50C...Third vehicle side connector terminal, 50D...Fourth vehicle side connector terminal, 50E...First vehicle side control terminal, 50F...Second vehicle side control terminal, 52...First power source, 54...Second power source, 56...Detection unit, 58...Current supply path, 60...Breaker unit, 62...Relay device, 64...Relay device side charging connector, 66...Vehicle device side charging connector
Claims
1. a first power source; a first device-side connector terminal connectable to the first vehicle-side connector terminal; a second device-side connector terminal connectable to the second vehicle-side connector terminal; a first resistor electrically connected between the first power supply and the first device-side connector terminal; a detection unit that detects a voltage between the first device-side connector terminal and the second device-side connector terminal; an apparatus-side control unit; a vehicle-side control unit is electrically connected between the first vehicle-side connector terminal and the second vehicle-side connector terminal; The device-side control unit A charging device that determines that a change has occurred from a connected state in which the first device side connector terminal is connected to the first vehicle side connector terminal and the second device side connector terminal is connected to the second vehicle side connector terminal to a non-connected state in which the first device side connector terminal is not connected to the first vehicle side connector terminal and the second device side connector terminal is not connected to the second vehicle side connector terminal when the inter-terminal voltage detected by the detection unit becomes greater than a predetermined voltage.
2. A second power source; a third device-side connector terminal connectable to the third vehicle-side connector terminal; a fourth device-side connector terminal connectable to the fourth vehicle-side connector terminal, a vehicle-side power storage unit is electrically connected between the third vehicle-side connector terminal and the fourth vehicle-side connector terminal; The charging device according to claim 1 , further comprising a cutoff unit that cuts off a current supply path that supplies current from the second power source to the third device-side connector terminal.
3. the first device-side connector terminal is a terminal different from the third device-side connector terminal, The charging device according to claim 2 , wherein the second device-side connector terminal is the same terminal as the fourth device-side connector terminal.
4. The device-side control unit The charging device according to claim 2 or 3, wherein when it is determined that the connected state has changed to the non-connected state, the current supply path is interrupted by the interrupting unit.
5. The charging device according to claim 1 , wherein a second resistor is electrically connected in parallel with the vehicle-side control unit between the first vehicle-side connector terminal and the second vehicle-side connector terminal.
6. The charging device according to claim 5 , wherein the resistance value of the first resistor is smaller than the resistance value of the second resistor.
7. The resistance value of the first resistor is The charging device according to claim 1 , wherein a voltage equal to or higher than a minimum voltage required for operation of the vehicle-side control unit is set to be output from the first device-side connector terminal.
8. The voltage value of the minimum voltage is 5 [V], 8. The charging device according to claim 7, wherein the voltage value of the first power supply is 7 V.
9. 9. The charging device according to claim 7, wherein the predetermined voltage is a voltage value between the voltage value of the first power supply and the voltage value of the minimum voltage.
10. The detection unit 7. The charging device according to claim 5, wherein the charging device is a comparator that compares the inter-terminal voltage with the predetermined voltage.
11. a third resistor electrically connected to the first power supply; a fourth resistor electrically connected between the third resistor and the second device-side connector terminal; The comparator The charging device according to claim 10, wherein the inter-terminal voltage is compared with the predetermined voltage between the third resistor and the fourth resistor.
12. The charging device according to claim 11 , wherein the resistance value of the fourth resistor is greater than five times the resistance value of the third resistor.
13. 13. The charging device according to claim 11, wherein the resistance value of the third resistor is greater than 100 times the resistance value of the first resistor.
14. The resistance value of the first resistor is 10 [Ω], The charging device according to claim 11 , wherein the second resistor has a resistance value of 50Ω.
15. The resistance value of the third resistor is 5 kΩ. The charging device according to claim 11 , wherein the fourth resistor has a resistance value of 50 kΩ.
16. The charging device according to claim 1 , further comprising a device-side control terminal connectable to a vehicle-side control terminal.
17. The device-side control unit 17. The charging device according to claim 1, wherein the change from the non-connected state to the connected state is determined when the inter-terminal voltage detected by the detection unit becomes smaller than a predetermined voltage.
18. A charging device according to any one of claims 1 to 17; a vehicle-side device in which a vehicle-side control unit is electrically connected between the first vehicle-side connector terminal and the second vehicle-side connector terminal; Charging system including.
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