Control device and charging system
The control device and system address temperature-related issues in battery charging by adjusting the charging voltage based on battery information to maintain a set voltage difference, ensuring efficient and reliable charging.
Patent Information
- Application Number
- JP2021108711
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-06-30
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2041-06-30
AI Technical Summary
Existing battery charging methods can cause temperature rises and malfunctions due to excessive charging voltage when the battery voltage is low, leading to inefficiencies and potential device failures.
A control device and system that adjusts the charging voltage based on battery voltage information to maintain a predetermined voltage difference, ensuring a constant current while minimizing heat generation.
The system effectively charges batteries while preventing temperature-related malfunctions by controlling the charging voltage to a set difference from the battery voltage, ensuring reliable operation and reduced power consumption.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a control device, a charging system, and the like. [Background technology]
[0002] Patent Document 1 discloses a method for calculating the potential difference between the battery voltage and a preset target voltage, and controlling the output of a charger according to this voltage difference. This control is performed by increasing the output from the charger as the voltage difference between the target voltage and the battery voltage increases. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-089523 Summary of the Invention [Problem to be solved by the invention]
[0004] In the control method disclosed in Patent Document 1, when the battery voltage is low, the voltage difference between the battery voltage and the charging voltage becomes large. In this case, a charging voltage higher than the minimum voltage required to ensure a constant current during charging may be supplied, which can cause problems due to temperature rise in the electronic device. [Means for solving the problem]
[0005] One aspect of the present disclosure relates to a control device that includes a communication circuit that acquires battery voltage information of a battery of an electronic device, and a control circuit that controls a charging voltage supply circuit that supplies a charging voltage to the electronic device via contacts based on the battery voltage information so that the voltage difference between the charging voltage and the battery voltage of the battery becomes a given set voltage.
[0006] Another aspect of the present disclosure relates to a contact-type charging system including an electronic device and a charger, in which the electronic device transmits battery voltage information of a battery of the electronic device to the charger, and the charger outputs the charging voltage based on the battery voltage information so that the voltage difference between the charging voltage of the battery and the battery voltage of the battery becomes a given set voltage.
[0007] Another aspect of the present disclosure is a charging circuit that charges a battery based on a charging voltage supplied by a charger through a contact, and a battery voltage information to the charger, and a control circuit that controls the communication circuit and the charging circuit, and the control circuit is related to a control device that monitors the voltage difference between the charging voltage and the battery voltage or the battery voltage, and determines the timing of transmitting the battery voltage information based on the monitoring result. [Brief explanation of the drawings]
[0008] [Figure 1] 2 shows an example of the configuration of a control device and a charging system according to the present embodiment. [Figure 2] 4 is a signal waveform diagram of a battery voltage, a charging voltage, and a charging current. [Figure 3] 2 shows a detailed configuration example of a control device and a charging system according to the present embodiment. [Figure 4] An example of the configuration of a charger's communication circuit. [Figure 5] FIG. 4 is an explanatory diagram of a data processing method in a comparison circuit. [Figure 6] An example of a charging circuit configuration. [Figure 7] An example of the configuration of a communication circuit in an electronic device. [Figure 8] 10 shows another example of the configuration of a communication circuit of an electronic device. [Figure 9] 3A and 3B are explanatory diagrams of waveform patterns used in the communication method of the present embodiment. [Figure 10] 4A and 4B are diagrams illustrating the correspondence between waveform patterns and logic levels of communication signals. [Figure 11] Modified examples of the control device and charging system. [Figure 12] Modified examples of the control device and charging system. [Figure 13] 4 is a flowchart illustrating a communication process according to the present embodiment. [Figure 14] 10 is a flowchart illustrating a detailed example of communication processing according to the present embodiment. [Figure 15] 10 is a flowchart illustrating a detailed example of communication processing according to the present embodiment. [Figure 16] 10 is a flowchart illustrating a detailed example of communication processing according to the present embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] The present embodiment will be described below. Note that the present embodiment described below does not unduly limit the content of the claims. Furthermore, not all of the configurations described in the present embodiment are necessarily essential components.
[0010] 1. Control device, charging system 1 shows an example of the configuration of a control device 20, a charging system 2, etc. of this embodiment. The charging system 2 includes a charger 10 and an electronic device 50. The control device 20 of this embodiment is provided in the charger 10 of the charging system 2.
[0011] The electronic device 50 includes a control device 60 and a battery 100. Various devices are conceivable as the electronic device 50 to which this embodiment is applied. For example, hearing aids, wristwatches, wearable devices, biological information measuring devices, smartphones, mobile phones and other personal digital assistants, cordless phones, shavers, electric toothbrushes, wrist computers, handheld terminals, electric vehicles, electric bicycles, and other electronic devices are conceivable.
[0012] The battery 100 is, for example, a rechargeable secondary battery, such as a lithium battery, such as a lithium ion secondary battery or a lithium ion polymer secondary battery, or a nickel battery, such as a nickel-metal hydride battery or a nickel-cadmium battery.
[0013] The control device 60 of the electronic device 50 includes a control circuit 70, a communication circuit 80, and a charging circuit 90. The control device 60 can be realized by, for example, an integrated circuit device called an IC (Integrated Circuit).
[0014] The control circuit 70 executes control processing for each circuit in the electronic device 50. For example, the control circuit 70 controls the communication circuit 80 and the charging circuit 90. The control circuit 70 can be realized by a logic circuit generated by an automatic placement and routing method such as a gate array, or by various processors such as a microcomputer.
[0015] The communication circuit 80 is a circuit for communicating between the charger 10 and the electronic device 50. Specifically, the communication circuit 80 transmits communication data including battery voltage information of the electronic device 50 to the communication circuit 40 of the charger 10. The battery voltage information is, for example, information on the battery voltage VBAT, but it may also be information on the voltage difference between the battery voltage and the charging voltage, i.e., information on the voltage difference between the battery voltage VBAT and the charging voltage VCHG. Here, the battery voltage VBAT is the voltage of the battery 100 as shown in FIG. 1. For example, in the case of a lithium-ion battery, the battery voltage VBAT is in the range of approximately 3.2 V to 4.2 V. The charging voltage VCHG is the voltage output from the charging voltage supply circuit 12. In addition to this, the battery voltage information may also include information on temperature, charging voltage, a charging status flag, the number of charging cycles, or an IC number.
[0016] The charging circuit 90 charges the battery 100. That is, the charging circuit 90 charges the battery 100 based on the charging voltage VCHG from the charger 10. Specifically, the charging circuit 90 charges the battery 100 by, for example, CC (Constant-Current) charging based on the charging voltage VCHG from the charger 10. Note that in FIG. 1 , the charging circuit 90 is provided in the control device 80, which is an IC, but a modified embodiment in which the charging circuit 90 is provided outside the control device 80 is also possible.
[0017] The charger 10 includes a charging voltage supply circuit 12 and a control device 20. As shown in FIG. 1, the charger 10 transmits power supplied from a power source via a power line to the electronic device 50 via the charging voltage supply circuit 12 via contacts. Power transmission via contacts can take various forms, such as electrical connection between the charger 10 and the electronic device 50 via contact between their metal terminals, or electrical connection between them via a wiring cable or the like. The power source is a high-potential power source, such as a power supply voltage VDD. The power source may be a USB power source or a mobile battery provided in the charger 10. The power supply voltage VDD is, for example, 5 V.
[0018] The charging voltage supply circuit 12 outputs a voltage obtained by, for example, stepping down the power supply voltage VDD as the charging voltage VCHG. Alternatively, the charging voltage supply circuit 12 may output a voltage obtained by stepping up the power supply voltage VDD. Specifically, the charging voltage supply circuit 12 outputs a voltage obtained by stepping up or stepping down the power supply voltage VDD based on a control signal from the control circuit 30 as the charging voltage VCHG. That is, the charging voltage supply circuit 12 outputs the charging voltage VCHG, the voltage of which is variably controlled by the control circuit 30. When the charging voltage supply circuit 12 outputs the charging voltage VCHG, power is supplied from the charger 10 to the electronic device 50, and the battery 100 is charged with that power. The charging voltage supply circuit 12 can be realized, for example, by a DC-DC converter. Specifically, the charging voltage supply circuit 12 is realized by a DC-DC converter including a switching regulator or the like.
[0019] The control device 20 of the charger 10 includes a control circuit 30 and a communication circuit 40. The control device 20 can be realized by, for example, an integrated circuit device called an IC. Note that a modified embodiment is also possible in which the charging voltage supply circuit 12 is provided in the control device 20 which is an IC.
[0020] The communication circuit 40 is a circuit for communicating between the charger 10 and the electronic device 50. Specifically, the communication circuit 40 receives communication data including battery voltage information transmitted from the communication circuit 80 of the electronic device 50. The control circuit 30 performs various processes based on the received communication data. Specifically, the control circuit 30 controls the charging voltage supply circuit 12 based on the received communication data to perform processes such as setting the charging voltage VCHG. The battery voltage information is as described above.
[0021] The control circuit 30 executes various control processes of the control device 20 in the charger 10. For example, the control circuit 30 controls the charging voltage supply circuit 12. Specifically, the control circuit 30 performs various sequence controls and determination processes required for power transmission, communication processing, etc. The control circuit 30 can be realized by, for example, a logic circuit generated by an automatic placement and routing method such as a gate array, or by various processors such as a microcomputer.
[0022] FIG. 2 is an explanatory diagram of the time dependence of the battery voltage VBAT, the charging voltage VCHG, and the charging current ICHG when the battery 100 is charged using CC charging in the charging system 2. In FIG. 2, the horizontal axis t1 represents the timing when the electronic device 50 is placed on the charger 10, t2 represents the timing when the charger 10 starts communicating information about the battery voltage VBAT, t3 represents the timing when charging starts, and t4 represents the timing when charging ends. The vertical axis on the left side of FIG. 2 corresponds to the battery voltage VBAT and the charging voltage VCHG, and the vertical axis on the right side corresponds to the charging current ICHG. The solid line represents the battery voltage VBAT, the dotted line represents the charging voltage VCHG, and the dashed-dotted line represents the charging current ICHG. First, when the electronic device 50 is placed on the charger 10 at time t1, the control circuit 30 controls the charging voltage VCHG to be boosted to a predetermined voltage. Next, when the charger 10 receives battery voltage information from the electronic device 50 at time t2, the charging voltage VCHG is boosted to the minimum charging voltage (VBAT + ΔV) required to ensure constant current CC in CC charging. After that, when charging starts at timing t3, a charging current ICHG with a current value CC flows. Then, during the period TA until charging ends, control is performed so that the charging voltage VCHG becomes VBAT+ΔV in accordance with the battery voltage VBAT sequentially transmitted from the electronic device 50. As the battery 100 approaches full charge during the period TA, the charging current ICHG gradually decreases and approaches zero. Then, at timing t4, when the charging current ICHG reaches zero, charging ends.
[0023] As described above, the battery 100 in the electronic device 50 is charged by, for example, CC (Constant-Current) charging. Therefore, to ensure a constant current for charging, it is necessary to control the magnitude of the charging voltage VCHG so that VCHG > VBAT. On the other hand, if the charging voltage VCHG exceeds the minimum voltage (VBAT + ΔV) required to ensure a constant current for charging, heat corresponding to the excess charging voltage VCHG (VCHG - (VBAT + ΔV)) is generated inside the electronic device 50. If the temperature inside the electronic device 50 rises due to this heat, it can adversely affect the operation of the control device 60 and lead to a deterioration in the reliability of circuit operation. Furthermore, if the temperature of the electronic device 50 exceeds a predetermined temperature, problems such as the charging operation of the electronic device 50 being stopped can occur.
[0024] In this regard, according to the present embodiment, the control circuit 30 controls the charging voltage supply circuit 12 based on, for example, information about the battery voltage VBAT received from the communication circuit 80 so that the voltage difference between the charging voltage VCHG and the battery voltage VBAT becomes a given set voltage ΔV. That is, as shown in Fig. 2, during a period TA, the charging voltage VCHG is controlled so that the voltage difference between the charging voltage VCHG and the battery voltage VBAT becomes a given set voltage ΔV. The given set voltage ΔV can be determined taking into consideration factors such as the allowable amount of heat generation in the electronic device 50, and is, for example, about 0.4V to 0.8V, and preferably about 0.4V to 0.6V.
[0025] In the control device of this embodiment, when the battery voltage information is the battery voltage VBAT, the control circuit 30 determines the minimum voltage necessary to ensure a constant current for charging the battery 100, and the charging voltage supply circuit 12 sets the magnitude of the charging voltage VCHG to that voltage. This makes it possible to charge the battery 100 using CC charging while avoiding the above-mentioned heat-related problems. Furthermore, when the battery voltage information is information about the voltage difference between the battery voltage VBAT and the charging voltage VCHG, the charger 10 can more easily control the charging voltage VCHG than when the battery voltage information is the battery voltage VBAT. In other words, when the voltage difference is smaller than the minimum set voltage ΔV necessary to ensure a constant current for charging the battery 100, it is not necessary to perform processing to change the charging voltage VCHG output by the charging voltage supply circuit 12. Furthermore, when the charger 10 is in a portable case powered by a mobile battery, consumption of the mobile battery can be reduced.
[0026] 2. Detailed configuration example FIG. 3 shows a detailed configuration example of the control device 20, charging system 2, etc. The detailed configuration example is an example in which data communication between the charger 10 and electronic device 50 is achieved by load modulation, which will be described below. The detailed configuration example differs from the configuration example of FIG. 1 in the configuration of the control devices 20, 60. The control device 60 on the electronic device 50 side has an AD conversion circuit 62, an oscillation circuit 64, and a non-volatile memory 66 in addition to the components of the control device 60 in FIG. 1. In the control device 20 on the charger 10 side, the control circuit 30 has a register 32, and the communication circuit 40 has a current detection circuit 42.
[0027] The AD conversion circuit 62 performs A / D conversion on the battery voltage VBAT. The AD conversion circuit 62 then outputs the digital measurement data obtained by A / D converting the battery voltage VBAT to the control circuit 70 as the measurement result of the battery voltage VBAT.
[0028] The oscillator circuit 64 generates a clock signal by oscillation and outputs the clock signal to the control circuit 70. The control circuit 70 operates based on the clock signal from the oscillator circuit 64 to execute control processing. The oscillator circuit 64 is configured by, for example, a crystal oscillator circuit.
[0029] The nonvolatile memory 66 is a nonvolatile storage device that stores various types of information. The control circuit 70 operates based on the information stored in the nonvolatile memory 66, or stores status information and the like in the nonvolatile memory 66. The nonvolatile memory 66 can be, for example, an EEPROM. For example, a MONOS (Metal-Oxide-Nitride-Oxide-Silicon) type memory can be used as the EEPROM. For example, a flash memory using a MONOS type memory can be used as the EEPROM. Alternatively, other types of memory, such as a floating gate type, can be used as the EEPROM.
[0030] Another difference is that the communication circuit 80 of the electronic device 50 is electrically connected to the supply node NVCHG of the charging voltage VCHG. Details of the communication circuit 80 will be described later.
[0031] The control circuit 30 of the control device 20 on the charger 10 side includes a register 32. The register 32 can be realized, for example, by a flip-flop circuit or a memory such as RAM. In this embodiment, as described above, the control circuit 30 controls the charging voltage supply circuit 12 so that the voltage difference between the charging voltage VCHG and the battery voltage VBAT becomes a predetermined set voltage. The register 32 of the control circuit 30 is a register that can set this set voltage. That is, the register 32 stores information about the set voltage, which is the voltage difference between the charging voltage VCHG and the battery voltage VBAT during the period TA in FIG. 2 . For example, the set voltage information can be written to the register 32 by an external processing device. By providing such a register 32, the set voltage, which is the voltage difference between the charging voltage VCHG and the battery voltage VBAT, can be variably set to a desired voltage. This makes it possible to set the set voltage information in the register 32 according to the amount of heat generation allowed by the electronic device 50.
[0032] 3 includes a current detection circuit 42. An example of the detailed configuration of the communication circuit 40 is shown in Fig. 4. The current detection circuit 42 detects the current ID1 that flows in the power line of the charging voltage supply circuit 12. In other words, the current detection circuit 42 detects the current ID1 that flows from the power supply VDD to the charging voltage supply circuit 12. The current detection circuit 42 has an IV conversion amplifier IVC, an amplifier AP, and a comparison circuit CP.
[0033] The IV conversion amplifier IVC has its non-inverting input terminal (+) connected to one end of the sense resistor RCS and its inverting input terminal (-) connected to the other end of the sense resistor RCS. The IV conversion amplifier IVC amplifies a minute voltage (VC1-VC2) generated when a minute current ID1 flows through the sense resistor RCS and outputs the result as a detection voltage VDT. This detection voltage VDT is further amplified by the amplifier AP and output to the comparator circuit CP as a detection voltage VDTA. Specifically, the amplifier AP receives the detection voltage VDT at its non-inverting input terminal and a reference voltage VRF at its inverting input terminal, and outputs a signal of the detection voltage VDTA amplified with respect to the reference voltage VRF.
[0034] The comparison circuit CP compares the detection voltage VDTA after voltage amplification by the IV conversion amplifier IVC with the judgment voltage VCP, and outputs the comparison judgment result CQ. VDTA and the determination voltage VCP. The determination voltage VCP is set, for example, to VRF+VOFF, which is the reference voltage VRF plus an offset voltage VOFF, and a comparison is made to determine whether the detection voltage VDTA is above or below the determination voltage VCP. If the detection voltage VDTA is above the determination voltage VCP, it is determined to be in a high load state corresponding to the aforementioned bit = 1. This comparison circuit CP can be configured, for example, with a comparator. In this case, the offset voltage VOFF of the determination voltage VCP may be realized, for example, by the offset voltage of the comparator.
[0035] The filter unit 35 reduces noise contained in the comparison judgment result CQ. Specifically, it can reduce adverse effects caused by noise at the rising edge F1 and falling edge F2 of the comparison judgment result CQ signal in FIG. 5. The filter unit 35 is provided, for example, between the comparator circuit CP and the demodulator unit 36. The filter unit 35 can be a digital filter such as an FIR filter, but a passive filter may also be used as the filter unit 35.
[0036] The demodulation unit 36 demodulates the load modulation pattern (described later) based on the comparison result FQ processed by the filter unit 35. Specifically, the demodulation unit 36 detects a pulse indicating a high load corresponding to bit = 1, and performs bit synchronization when the pulse width is within a first range, e.g., 220 × T to 511 × T. For example, the demodulation unit 36 detects a first edge at which the comparison result FQ signal changes from a low load corresponding to bit = 0 to a high load corresponding to bit = 1 for a predetermined number of bits, and a second edge at which the comparison result FQ changes from a high load to a low load after the first edge. If the pulse width defined by the first and second edges is within the first range, bit synchronization is determined to have been achieved, and the first bit "1" of the communication data is detected. If bit synchronization is achieved, a first sampling point SP1 is set at the center of the pulse width, and a signal is acquired from the first sampling point SP1 at sampling intervals SI. If the level of the captured signal corresponds to a high load, it is determined to be a logical level of "1," and if it corresponds to a low load, it is determined to be a logical level of "0." By demodulating the load-modulated signal in this way, communication data is detected and output to the control circuit 30 as detected data DAT.
[0037] 3, in the charging system 2, data communication between the charger 10 and the electronic device 50 can be achieved on the wiring used for power supply. Therefore, unlike the case where serial communication is used, which will be described later, there is no need to provide wiring separate from the wiring used for power supply. Furthermore, in communication using load modulation, by making the logic level correspond to a pattern waveform, adverse effects of signal noise can be reduced.
[0038] FIG. 6 shows an example configuration of a charging circuit 90. The charging circuit 90 includes a transistor TR, a resistor RS, and a current control circuit 92. The transistor TR and resistor RS are connected in series between the supply node of the charging voltage VCHG and the output node of the battery voltage VBAT. The current control circuit 92 outputs an output signal to the gate terminal of the transistor TR to control a constant current to flow through the resistor RS. Specifically, the current control circuit 92 includes an operational amplifier OP, a resistor RC1, and a current source IS. The transistor TR is controlled based on the output signal from the operational amplifier OP.
[0039] The virtual ground of the operational amplifier OP controls the transistor TR so that the voltage at the non-inverting input terminal, which is the voltage at one end of resistor RC1, is equal to the voltage at the inverting input terminal, which is the voltage at the other end of sense resistor RS, VCS2. For example, let IDA be the current flowing through current source IS and IRS be the current flowing through resistor RS. Then, IRS × RS = IDA × RC1. That is, in this charging circuit 90, the current IRS, which is the charging current flowing through sense resistor RS, is controlled to a constant value. This enables CC charging. Furthermore, by controlling the current IRS flowing through current source IS, for example, with the control circuit 70, the current IRS, which is the charging current in CC charging, can be variably controlled. Also, ΔV in Figure 2 is the voltage required to properly turn on transistor TR in the charging circuit 90 of Figure 6 and operate the charging circuit 90 properly.
[0040] Let VRS be the voltage difference between one end of resistor RS and the other end of transistor TR be VDS. Then, the relationship VCHG-VBAT = VRS + VDS holds. In this embodiment, as shown in Figure 2, control is performed so that VCHG-VBAT = ΔV, and therefore the relationship VCHG-VBAT = VRS + VDS = ΔV holds. Here, a constant current IRS flows through resistor RS, so VRS = IRS × RS is a constant voltage. Therefore, by setting a given voltage ΔV so that VDS, the drain-source voltage of transistor TR, is the minimum voltage required to pass current IRS, heat generation in transistor TR can be minimized. In other words, in the comparative example, where VRS is not set so that VCHG-VBAT = ΔV holds, when the battery voltage VBAT is low, VDS, the drain-source voltage of transistor TR, becomes high because VRS is a constant voltage as described above. Specifically, when the battery voltage VBAT is low, the on-resistance of the transistor TR, whose gate voltage is controlled by the current control circuit 92, increases, causing VDS to have a high voltage. This on-resistance wastes power, resulting in a large amount of heat being generated in the transistor TR. In this regard, in this embodiment, a given set voltage ΔV is set so that VDS is the minimum voltage necessary to pass the current IRS, thereby making it possible to suppress the generation of heat caused by such wasted power consumption.
[0041] The communication circuit 80 in FIG. 3 will be described in detail. FIG. 7 is a diagram showing an example of the configuration of the communication circuit 80, illustrating a communication configuration in which data communication between the charger 10 and the electronic device 50 is performed by load modulation. The communication circuit 80 has a load modulation circuit 82. The load modulation circuit 82 includes a resistor R and a switch element SW. The switch element SW can be implemented using a MOS transistor or the like. The resistor R and the switch element SW are connected in series between the supply node NVCHG and the ground node. The output signal of the control circuit 70 is input to the switch element SW. Note that the arrangement order of the resistor R and the switch element SW may be reversed from that shown in FIG. 7, and the switch element SW may be provided on the supply node NVCHG side and the resistor R on the ground node side. The load modulation circuit 82 is not limited to the configuration shown in FIG. 7. As shown in FIG. 8, a current source IS may be provided as an element corresponding to the resistor R in FIG. 7.
[0042] A data transmission method within the electronic device 50 will now be described in detail. The control circuit 70, which acquires information related to the measurement data of the battery voltage VBAT from the AD conversion circuit 62, controls the communication circuit 80 based on the acquired information. Specifically, the switch element SW is turned on or off based on a signal from the control circuit 70, and the current flowing from the supply node NVCHG to GND is turned on or off. This enables data transmission of the battery voltage information through load modulation. The load modulation is performed by changing the load state between a first load state and a second load state. The first load state is, for example, a high load state, and the second state is, for example, a low load state. The first load state is a state in which the switch element SW is on, and corresponds to bit = 1. The second load state is a state in which the switch element SW is off, and corresponds to bit = 0.
[0043] FIG. 9 shows waveform patterns used in communication using load modulation. The first pattern PT1 shown in the upper part is a pattern in which the width of the period TM1 in the first load state is longer than the width of the period TM2 in the second load state, and corresponds to a logic level of "1." On the other hand, the second pattern PT2 shown in the lower part of FIG. 9 is a pattern in which the width of the period TM1 in the first load state is equal to the width of the period TM2 in the second load state, and corresponds to a logic level of "0." Here, if the drive frequency of the oscillator circuit 64 is FCK and the drive period is T=1 / FCK, the length of each pattern can be expressed as, for example, 512×T. In this case, the length of one bit section can be expressed as (512×T) / 4=128×T. Therefore, when transmitting communication data with a logic level of "1," the load modulation circuit 82 turns the switch element SW on or off using a bit pattern (1110) corresponding to the first pattern PT1, for example, at intervals of 128×T. Furthermore, when transmitting communication data with a logic level of "1," the load modulation circuit 82 turns on or off the switch element SW using a bit pattern of (1010) corresponding to the second pattern PT2, for example, at intervals of 128×T. In this case, the length of the period TM1 of the first pattern PT1 and the length of the period TM1 of the second pattern PT2 can be expressed as 384×T and 128×T, respectively.
[0044] 10 is a table summarizing the correspondence between the waveform pattern PT, the length of the first load state period TM1, and the logic level described above. By defining the waveform patterns and assigning logic levels to each waveform pattern in this way, it is possible to prevent communication data from being erroneously read due to noise contained in the signal.
[0045] FIG. 11 shows a first modified example of this embodiment. The first modified example differs from the configuration example of FIG. 3 in the communication method between the charger 10 and the electronic device 50. In the first modified example, the communication method is realized not by load modulation but by serial communication such as I2C (Inter-Integrated Circuit). Specifically, in FIG. 11, the communication circuit 80 of the electronic device 50 and the communication circuit 40 of the charger 10 are electrically connected by two wires. One wire corresponds to a serial clock SCLK, and the other wire corresponds to serial data SDA. In FIG. 11, communication data such as battery voltage information is communicated from the electronic device 50 to the charger 10 via such serial communication such as I2C. Note that the serial communication is not limited to I2C serial communication and may be, for example, serial communication using SPI (Serial Peripheral Interface).
[0046] FIG. 12 shows a second modification of this embodiment. The second modification also differs from the configuration example of FIG. 3 in the communication method between the charger 10 and the electronic device 50. In the second modification, the communication method is realized by short-range wireless communication rather than load modulation. Modification 2 differs from the detailed configuration example of FIG. 3 in the configurations of the control circuit 30, communication circuit 40, and control device 60. Specifically, the communication circuit 40 of the charger 10 includes a short-range wireless communication circuit 44, and the communication circuit 80 of the electronic device 50 also includes a short-range wireless communication circuit 84. Communication data such as battery voltage information is communicated between the communication circuit 40 and the communication circuit 80 via short-range wireless communication. For example, Bluetooth (Bluetooth is a registered trademark) such as Bluetooth Low Energy (BLE) can be used as the short-range wireless communication. Alternatively, ZigBee (registered trademark), Wi-SUN (registered trademark), IP500 (registered trademark), etc. may also be used as the short-range wireless communication.
[0047] 3. Processing example Fig. 13 is a flowchart illustrating an example of communication processing in this embodiment. The flow of communication processing shown in Fig. 13 is based on the assumption of communication processing in the basic configuration example of the charging system 2 in Fig. 1. First, the electronic device 50 transmits battery voltage information to the charger 10 (step S1). Next, the charger 10 receives the battery voltage information (step S2). Then, the charger 10 outputs to the electronic device 50 a charging voltage VCHG whose voltage difference with the battery voltage VBAT is a given set voltage (step S3). The battery voltage information is as described above.
[0048] As described above, as shown in FIG. 1 , the charging system 2 of this embodiment is a contact-type charging system including the electronic device 50 and the charger 10. As shown in FIG. 13 , the electronic device 50 transmits battery voltage information of the battery 100 of the electronic device 50 to the charger 10. Based on the battery voltage information, the charger 10 outputs the charging voltage VCHG so that the voltage difference between the charging voltage VCHG of the battery 100 and the battery voltage VBAT of the battery 100 becomes a given set voltage. That is, the charging system 2 of this embodiment is a contact-type charging system 2 including the electronic device 50 and the charger 10, and the electronic device 50 transmits battery voltage information of the battery 100 of the electronic device 50 to the charger 10, and the charger 10 outputs the charging voltage VCHG based on the battery voltage information so that the voltage difference between the charging voltage VCHG of the battery 100 and the battery voltage VBAT of the battery 100 becomes a given set voltage.
[0049] FIG. 14 is a flowchart illustrating a first detailed example of the communication process of this embodiment. FIG. 14 differs from FIG. 13 in that step S11, which determines whether it is time to transmit battery voltage information, is provided before step S12, which corresponds to step S1 in FIG. 13. As described above, in order to charge battery 100 while suppressing a rise in temperature of electronic device 50, it is desirable to control the voltage difference between charging voltage VCHG and battery voltage VBAT to a given set voltage. Here, step S11 is provided as a step for performing determination processes and the like required for performing this control. As a method for determining whether it is time to transmit battery voltage information, various modes are possible in addition to the cases shown in FIGS. 15 and 16, which will be described later.
[0050] FIG. 15 is a flowchart illustrating a second detailed example of the communication process of this embodiment. In FIG. 15, step S21 is provided as the process of step S11 in FIG. 14. Specifically, in FIG. 14, the step of determining the timing to transmit battery voltage information (step S11) is replaced by step S21 in FIG. 15, where the transmission timing is determined based on whether a predetermined time has elapsed since the previous transmission timing. As described above, when charging the battery 100 of the electronic device 50 by CC charging, it is desirable to control the voltage difference between the charging voltage VCHG and the battery voltage VBAT to a predetermined set voltage in order to ensure a constant current while suppressing heat generation within the electronic device 50. One control method for this is to periodically transmit battery voltage information to the charger 10 from the electronic device 50, as shown in steps S21 and S22 in FIG. 15.
[0051] 13, the electronic device 50 may have a load modulation circuit 82, and may transmit battery voltage information to the charger 10 through load modulation by the load modulation circuit 82. Also, in the communication processes shown in FIGS. 13 and 14, the electronic device 50 periodically transmits battery voltage information to the charger 10.
[0052] This makes it easier for the electronic device 50 to determine whether it is time to transmit battery voltage information. The charger 10 can also output the charging voltage VCHG, which is the battery voltage VBAT plus a given set voltage, based on the transmitted battery voltage information, thereby simplifying the communication process. The communication process of Fig. 15 is effective, for example, when the rate of increase of the battery voltage VBAT relative to the charging voltage VCHG is within a certain range.
[0053] FIG. 16 is a flowchart illustrating a third detailed example of the communication process of this embodiment. In FIG. 16, steps S31 and S32 are performed as the process of step S11 in FIG. 14. Specifically, the electronic device 50 monitors the battery voltage VBAT or the voltage difference between the charging voltage VCHG and the battery voltage VBAT (step S31), determines whether the monitored voltage difference is equal to a predetermined voltage, and determines the transmission timing (step S32). If the voltage difference is smaller than the predetermined voltage (YES), the electronic device 50 transmits battery voltage information to the charger 10. If the voltage difference is maintained at the predetermined voltage (NO), the electronic device 50 returns to step S31. To control the voltage difference between the charging voltage VCHG and the battery voltage VBAT to the predetermined voltage, the electronic device 50 monitors whether the charging voltage VCHG is below VBAT+ΔV. If VCHG is below VBAT+ΔV, the electronic device 50 transmits battery voltage information to the charger 10 and changes the value of the charging voltage VCHG.
[0054] That is, in the communication processing shown in FIG. 16, in FIGS. 13 and 14, the electronic device 50 monitors the voltage difference between the charging voltage VCHG and the battery voltage VBAT or the battery voltage VBAT, and determines the timing of transmitting the battery voltage information based on the monitoring result.
[0055] 16 reduces the burden of communication processing on the charger 10 and the electronic device 50 compared to the second detailed example of Fig. 15 in which battery voltage information is periodically transmitted regardless of whether VCHG is below VBAT+ΔV. The communication processing of Fig. 16 is effective, for example, when the rate at which the battery voltage VBAT increases relative to the charging voltage VCHG is not constant.
[0056] As described above, the control device of this embodiment relates to a control device that includes a communication circuit that acquires battery voltage information of the battery of an electronic device, and a control circuit that controls a charging voltage supply circuit that supplies a charging voltage to the electronic device via contacts based on the battery voltage information so that the voltage difference between the charging voltage and the battery voltage of the battery becomes a given set voltage.
[0057] According to this embodiment, it is possible to charge the battery of an electronic device by setting a charging voltage that can ensure both the current necessary to charge the battery and avoid malfunctions in circuit operation due to temperature increases inside the electronic device that accompany charging.
[0058] In the control device of this embodiment, the battery voltage information may be the battery voltage.
[0059] In this way, it is possible to set an optimum charging voltage for the current battery voltage on the charger side to ensure current while avoiding heat generation in the electronic device.
[0060] In the control device of this embodiment, the battery voltage information may be information about the voltage difference between the battery voltage and the charging voltage.
[0061] This makes it possible to facilitate the control process of the charging voltage on the charger side.
[0062] In the control device of this embodiment, the control circuit on the electronic device side may include a register capable of setting the set voltage.
[0063] In this way, information on the set voltage according to the amount of heat generation allowed by the electronic device can be stored in the register, and the charging voltage can be set to a desired voltage based on this information.
[0064] In the control device of this embodiment, the communication circuit of the charger may include a current detection circuit that detects a current flowing through the power line of the charging voltage supply circuit.
[0065] In this way, it becomes possible to obtain the battery voltage information transmitted by the electronic device by detecting the current flowing through the power line of the charging voltage supply circuit.
[0066] Another aspect of this embodiment relates to a contact-type charging system including an electronic device and a charger, in which the electronic device transmits battery voltage information of the battery of the electronic device to the charger, and the charger outputs a charging voltage based on the battery voltage information so that the voltage difference between the charging voltage of the battery and the battery voltage of the battery becomes a given set voltage.
[0067] For example, when charging a battery, excessive charging voltage can cause the temperature of the electronic device to rise and result in malfunctions in the circuitry, so it is desirable to monitor the battery voltage and output an optimal charging voltage to the electronic device. Therefore, according to this embodiment, the charger can receive battery voltage information acquired by the electronic device, and based on this information, the charger can output an optimal charging voltage.
[0068] In the charging system of this embodiment, the electronic device may have a load modulation circuit, and the load modulation circuit may transmit battery voltage information to the charger through load modulation.
[0069] In this way, data communication between the charger and the electronic device can be achieved on the wiring used for power supply, eliminating the need to provide wiring separate from the wiring used for power supply.
[0070] In the charging system of this embodiment, the electronic device may periodically transmit battery voltage information to the charger.
[0071] This makes it easier for the electronic device to determine whether it is time to transmit battery voltage information.
[0072] In the charging system of this embodiment, the electronic device may monitor the battery voltage or the voltage difference between the charging voltage and the battery voltage, and determine the timing of transmitting the battery voltage information based on the monitoring result.
[0073] This reduces the communication processing load on the charger compared to when battery voltage information is periodically transmitted regardless of the value of the battery voltage.
[0074] The control device in this embodiment also includes a charging circuit that charges the battery based on a charging voltage supplied from a charger via contacts, and a battery voltage control circuit that controls the battery. information to the charger, and a control circuit that controls the communication circuit and the charging circuit, and the control circuit is related to a control device that monitors the voltage difference between the charging voltage and the battery voltage or the battery voltage, and determines the timing of transmitting battery voltage information based on the monitoring result.
[0075] According to this embodiment, it is possible to charge the battery of an electronic device while avoiding malfunctions in circuit operation due to temperature rises in the electronic device or the like in the charging system.
[0076] Although the present embodiment has been described in detail above, it will be readily apparent to those skilled in the art that many modifications are possible without substantially departing from the novel features and advantages of the present disclosure. Therefore, all such modifications are intended to be included within the scope of the present disclosure. For example, a term described at least once in the specification or drawings together with a different term having a broader or equivalent meaning may be replaced with that different term anywhere in the specification or drawings. Furthermore, all combinations of the present embodiment and modifications are also included within the scope of the present disclosure. Furthermore, the configurations and operations of the control device, charging system, charger, and electronic device are not limited to those described in the present embodiment, and various modifications are possible. [Explanation of symbols]
[0077] 2...charging system, 10...charger, 12...charging voltage supply circuit, 20...control device, 30...control circuit, 32...register, 35...filter section, 36...demodulation section, 40...communication circuit, 42...current detection circuit, 44...short-range wireless communication circuit, 50...electronic device, 60...control device, 62...AD conversion circuit, 64...oscillating circuit, 66...non-volatile memory, 70...control circuit, 80...communication circuit, 82...load modulation circuit, 84...short-range wireless communication circuit, 90...charging circuit, 92...current control circuit 92, 100...battery, AP...amplifier, CC...constant current, CP...comparison circuit, CQ...comparison judgment result, DAT...detection data, F1...rising edge, F2...falling edge, FQ...comparison judgment result, ICHG...charging current, I D1...current, IRS...current, IS...current source, IVC...IV conversion amplifier, NVCHG...supply node, OP...operational amplifier, PT...pattern, PT1...first pattern, PT2...second pattern, R...resistor, RC1...resistor, RCS...sense resistor, S1...step, S11...step, S2...step, S21...step, S3...step, S31...step, S32...step, SCLK...serial clock, SDA...serial data, SI...sampling interval, SP1...first sampling point, SW...switch element, TA...period, TM1...period, TM2...period, TR...transistor, VBAT...battery voltage, VCHG...charging voltage, VCP...judgment voltage 、VDD...power supply voltage, VDT...detection voltage, VDTA...detection voltage, VOFF...offset voltage, VRF...reference voltage, t1...timing, t2...timing, t3...timing, t4...timing, ΔV...setting voltage pressure
Claims
1. An electronic device including a charging circuit that charges a battery with a constant current based on a supplied charging voltage, a communication circuit that acquires battery voltage information of the battery; a control circuit that controls a charging voltage supply circuit that supplies the charging voltage to the charging circuit of the electronic device via contacts based on the battery voltage information so that a voltage difference between the charging voltage supplied to the charging circuit and a battery voltage of the battery, which is a voltage at an output node of the charging circuit, becomes a given set voltage; Including, The charging circuit a control device comprising: a transistor provided between a node to which the charging voltage is supplied and the output node of the charging circuit, for causing a charging current to flow to the battery;
2. 2. The control device according to claim 1, The control device, wherein the battery voltage information is the battery voltage.
3. 2. The control device according to claim 1, The control device, wherein the battery voltage information is information about a voltage difference between the battery voltage and the charging voltage.
4. The control device according to any one of claims 1 to 3, The control circuit A control device comprising a register capable of setting the set voltage.
5. 5. The control device according to claim 1, The communication circuit The control device further comprises a current detection circuit for detecting a current flowing through a power supply line of the charging voltage supply circuit.
6. A contact-type charging system including an electronic device and a charger, The electronic device includes: a charging circuit that charges the battery with a constant current based on the supplied charging voltage; a first communication circuit for transmitting battery voltage information of the battery to the charger; Including, The charging circuit a transistor provided between a node to which the charging voltage is supplied and an output node of the charging circuit, for causing a charging current to flow to the battery; The charger includes: A charging system characterized by outputting the charging voltage based on the battery voltage information so that the voltage difference between the charging voltage supplied to the charging circuit and the battery voltage of the battery, which is the voltage of the output node of the charging circuit, becomes a given set voltage.
7. In the charging system described in claim 6, The charger includes: a second communication circuit for acquiring the battery voltage information; a charging voltage supply circuit that supplies the charging voltage to the charging circuit of the electronic device via contacts; a control circuit that controls the charging voltage supply circuit based on the battery voltage information so that the voltage difference becomes the set voltage; A charging system comprising:
8. 8. The charging system according to claim 6 or 7, The first communication circuit A charging system comprising a load modulation circuit, wherein the battery voltage information is transmitted to the charger through load modulation by the load modulation circuit.
9. 9. The charging system according to claim 6, The charging system is characterized in that the first communication circuit periodically transmits the battery voltage information to the charger.
10. 9. The charging system according to claim 6, A charging system characterized in that the electronic device monitors the voltage difference between the charging voltage and the battery voltage or the battery voltage, and determines the timing of transmitting the battery voltage information based on the monitoring result.
11. a charging circuit that charges the battery with a constant current based on the charging voltage supplied via contacts from the charger; a communication circuit that transmits battery voltage information of the battery to the charger; a control circuit for controlling the communication circuit and the charging circuit; Including, The control circuit A control device characterized by monitoring the battery voltage or the voltage difference between the charging voltage supplied to the charging circuit and the battery voltage of the battery, which is the voltage at the output node of the charging circuit, and determining the timing of transmitting the battery voltage information based on the monitoring results.
Citation Information
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