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CN113131592A - Charging device, charging control method, charging control device, and storage medium - Google Patents

Charging device, charging control method, charging control device, and storage medium
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CN113131592A
CN113131592ACN202110412735.5ACN202110412735ACN113131592ACN 113131592 ACN113131592 ACN 113131592ACN 202110412735 ACN202110412735 ACN 202110412735ACN 113131592 ACN113131592 ACN 113131592A
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signal
power
module
charging
voltage
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李达寰
张晓洪
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Vivo Mobile Communication Co Ltd
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Vivo Mobile Communication Co Ltd
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Abstract

Translated fromChinese

本申请公开了一种充电装置、充电控制方法和充电控制装置、存储介质。充电装置包括:整流模块,用于对接入的电信号进行整流,得到整流后的输入信号;功率变换模块,用于对输入信号的功率进行调整,并输出调整后的充电信号;电压检测模块,与整流模块相连接,用于检测输入信号的电压值;触发模块,与电压检测模块相连接,触发模块用于在电压值大于或等于预设的电压阈值的情况下,生成第一电压信号,在电压值小于电压阈值的情况下生成第二电压信号;逻辑控制模块,用于在接收到第一电压信号的情况下控制功率变换模块增大充电信号的功率,或在接收到第二电压信号的情况下控制功率变换模块降低充电信号的功率。

Figure 202110412735

The present application discloses a charging device, a charging control method, a charging control device, and a storage medium. The charging device includes: a rectifier module for rectifying the connected electrical signal to obtain a rectified input signal; a power conversion module for adjusting the power of the input signal and outputting the adjusted charging signal; a voltage detection module , connected with the rectification module, used to detect the voltage value of the input signal; the trigger module, connected with the voltage detection module, the trigger module is used to generate the first voltage signal when the voltage value is greater than or equal to the preset voltage threshold , the second voltage signal is generated when the voltage value is less than the voltage threshold; the logic control module is used to control the power conversion module to increase the power of the charging signal when the first voltage signal is received, or when the second voltage is received In the case of the signal, the power conversion module is controlled to reduce the power of the charging signal.

Figure 202110412735

Description

Charging device, charging control method, charging control device, and storage medium
Technical Field
The application belongs to the technical field of intelligent charging, and particularly relates to a charging device, a charging control method, a charging control device and a storage medium.
Background
In the related art, the fast charging technology greatly improves the charging experience, the fast charging technology means higher charging power, and since the mains voltage is in a sine wave type, after rectification, the voltage difference between the wave crest and the wave trough of the input voltage is larger, and therefore a large-capacity capacitor needs to be used.
The large-capacity capacitor affects harmonics and also causes an increase in the size of the charger.
How to reduce the capacitor capacity to achieve the purpose of reducing the volume of the charger on the premise of ensuring the 'quick charging' efficiency is a technical problem to be solved urgently.
Disclosure of Invention
The present application aims to provide a charging device, a charging control method, a charging control device, and a storage medium, which at least achieve the technical effect of being able to reduce the capacitance to reduce the size of a charger.
In a first aspect, an embodiment of the present application provides a charging apparatus, configured to charge an electric device, including:
the rectification module is used for rectifying the accessed electric signal to obtain a rectified input signal;
the power conversion module is used for adjusting the power of the input signal and outputting an adjusted charging signal;
the voltage detection module is connected with the rectification module and used for detecting the voltage value of the input signal;
the trigger module is connected with the voltage detection module and used for generating a first voltage signal under the condition that the voltage value is greater than or equal to a preset voltage threshold value and generating a second voltage signal under the condition that the voltage value is less than the voltage threshold value;
and the logic control module is connected with the voltage detection module, the trigger module and the power conversion module and is used for controlling the power conversion module to increase the power of the charging signal under the condition of receiving the first voltage signal or controlling the power conversion module to reduce the power of the charging signal under the condition of receiving the second voltage signal.
In a second aspect, an embodiment of the present application provides a charging control method for controlling a charging apparatus according to the first aspect, where the method includes:
acquiring a voltage value of an input signal;
generating a corresponding voltage signal and a request signal according to the voltage value and a preset voltage threshold;
and controlling the charging device to adjust the power of the charging signal through the voltage signal and the request signal.
In a third aspect, an embodiment of the present application provides a charging control apparatus for controlling the charging apparatus according to the first aspect, the apparatus including:
an acquisition unit configured to acquire a voltage value of an input signal;
the generating unit is used for generating a corresponding voltage signal and a corresponding request signal according to the voltage value and a preset voltage threshold;
and the adjusting unit is used for controlling the charging device to adjust the power of the charging signal through the voltage signal and the request signal.
In a fourth aspect, the present application proposes a readable storage medium having stored thereon a program or instructions which, when executed by a processor, implement the steps of the charging control method as proposed in the second aspect.
In an embodiment of the application, the charging device at least comprises a rectifying module, a power conversion module, a voltage detection module and a logic control module. The rectifier module is used for rectifying the accessed alternating current commercial power to obtain a rectified direct current input signal. After the direct current input signal is input into the power conversion module, the power of the input signal is adjusted through the power conversion module to obtain an adjusted charging signal, and the electric equipment is charged through the charging signal.
The voltage detection module detects the waveform of the input voltage in real time to obtain the voltage value of the input signal, and controls the power conversion module to change the working state according to the voltage value so as to adjust the power of the charging signal. Specifically, when the voltage value of the input signal is higher, the power conversion module is controlled to output a charging signal with higher power, so that high-power charging is performed on the electric equipment, and the requirement of 'quick charging' is met. When the voltage value of the input signal is lower, the power conversion module is controlled to output a charging signal with lower power, so that the electric energy output of the capacitor is reduced, and the stable work of the charging device is ensured.
The charging device further comprises a trigger module, wherein the trigger module is connected with the rectifying module and generates a corresponding voltage signal according to a comparison result of the voltage value of the input signal detected by the voltage detection module and a preset voltage threshold value. The voltage signal may specifically include two signals, one of which is a first voltage signal, that is, a "high voltage" signal, generated by the trigger module when the voltage value is greater than or equal to the voltage threshold. The second voltage signal is a "low voltage" signal generated by the trigger module when the voltage value is smaller than the voltage threshold.
Specifically, according to whether the voltage value of the input signal of the power conversion module is smaller than the voltage threshold, the embodiment of the present application determines whether the current charging device performs fast charging with "high power" or maintains stable operation of the charging device with "low power". When the voltage value of the input signal is greater than or equal to the voltage threshold value, the input voltage is considered to be higher and is close to the wave crest of the input waveform, and at the moment, the high-power high-voltage input circuit works at high power to meet the requirement of quick charging. When the voltage value of the input signal is lower than the voltage threshold value, the input voltage is considered to be lower and close to the 'trough' of the input waveform, and the charging device is operated at low power at the moment so as to ensure stable operation of the charging device. When the voltage of the input signal is lower, the charging device is controlled to output with lower power, so that a large-capacity capacitor is not needed to be arranged to compensate the low input voltage, the size of the capacitor can be effectively reduced, and the size of the charging device is further reduced.
The embodiment that this application provided has been used, when the work of charging, gather the input voltage value of power conversion module in real time to according to the change of input voltage value, the power value of the charging signal of output for consumer is adjusted to developments, thereby works with less output when the input voltage value is lower, and need not to set up large capacity electric capacity and come to compensate low input voltage, consequently can reduce the volume of condenser effectively, and then reduces charging device's volume. Meanwhile, due to the fact that the small-capacity capacitor is arranged, when a voltage wave valley is input, electric energy released by the capacitor is small, and therefore the degree of current and voltage asynchronism is reduced, harmonic interference is reduced, and power supply quality of the charging device is improved.
Additional aspects and advantages of the present application will be set forth in part in the description which follows and, in part, will be obvious from the description, or may be learned by practice of the present application.
Drawings
The above and/or additional aspects and advantages of the present application will become apparent and readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings of which:
fig. 1 shows a schematic structural diagram of a charging device according to an embodiment of the present application;
fig. 2 shows one of the flowcharts of a charge control method according to an embodiment of the present application;
fig. 3 shows a second flowchart of a charge control method according to an embodiment of the present application;
fig. 4 illustrates waveform diagrams of voltage and current of a charging signal output by a charging device according to an embodiment of the present application;
fig. 5 is a block diagram showing a configuration of a charge control device according to an embodiment of the present application.
Reference numerals:
100 charging device, 102 rectifying module, 104 power conversion module, 106 voltage detection module, 108 logic control module, 110 trigger module, 112 port module, 114 output control module, 116 signal transmission module, 118 feedback module, 120 driving module, 122 signal receiving module, 124 first filtering module, 126 second filtering module, 128 third filtering module, 130 auxiliary module, 132 current detection module.
Detailed Description
Reference will now be made in detail to embodiments of the present application, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the same or similar elements or elements having the same or similar function throughout. The embodiments described below with reference to the drawings are exemplary only for the purpose of explaining the present application and are not to be construed as limiting the present application. All other embodiments, which can be derived by a person skilled in the art from the embodiments given herein without making any creative effort, shall fall within the protection scope of the present application.
The features of the terms first and second in the description and in the claims of the present application may explicitly or implicitly include one or more of such features. In the description of the present application, "a plurality" means two or more unless otherwise specified. In addition, "and/or" in the specification and claims means at least one of connected objects, a character "/" generally means that a preceding and succeeding related objects are in an "or" relationship.
In the description of the present application, it is to be understood that the terms "central," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," "circumferential," and the like are used in the orientations and positional relationships indicated in the drawings for convenience in describing the present application and to simplify the description, and are not intended to indicate or imply that the referenced devices or elements must have a particular orientation, be constructed and operated in a particular orientation, and are therefore not to be considered limiting of the present application.
In the description of the present application, it is to be noted that, unless otherwise explicitly specified or limited, the terms "mounted," "connected," and "connected" are to be construed broadly, e.g., as meaning either a fixed connection, a removable connection, or an integral connection; can be mechanically or electrically connected; they may be connected directly or indirectly through intervening media, or they may be interconnected between two elements. The specific meaning of the above terms in the present application can be understood in a specific case by those of ordinary skill in the art.
A charging device, a charging control method, a charging control device, and a storage medium according to embodiments of the present application are described below with reference to fig. 1 to 5.
In some embodiments of the present application, there is provided a charging device, and fig. 1 shows a schematic structural diagram of a charging device according to an embodiment of the present application, and as shown in fig. 1, the charging device includes:
therectification module 102 is configured to rectify the accessed electrical signal to obtain a rectified input signal;
apower conversion module 104, configured to adjust power of an input signal and output an adjusted charging signal;
thevoltage detection module 106 is connected with therectification module 102 and is used for detecting the voltage value of the input signal;
thetrigger module 110 is connected to thevoltage detection module 106, and thetrigger module 110 is configured to generate a first voltage signal when the voltage value is greater than or equal to a preset voltage threshold, and generate a second voltage signal when the voltage value is less than the voltage threshold;
and thelogic control module 108, connected to thevoltage detection module 106, thetrigger module 110 and thepower conversion module 104, is configured to control the power conversion module to increase the power of the charging signal when receiving the first voltage signal, or to control the power conversion module to decrease the power of the charging signal when receiving the second voltage signal.
In the embodiment of the present application, the chargingdevice 100 includes at least arectifying module 102, apower conversion module 104, avoltage detection module 106, and alogic control module 108. Therectifier module 102 rectifies the ac mains supply to obtain a rectified dc input signal. After the input signal of the direct current is input to thepower conversion module 104, the power of the input signal is adjusted by thepower conversion module 104 to obtain an adjusted charging signal, and the electric device is charged by the charging signal.
Thevoltage detection module 106 detects the waveform of the input voltage in real time to obtain the voltage value of the input signal, and controls thepower conversion module 104 to change the working state according to the voltage value, so as to adjust the power of the charging signal. Specifically, when the voltage value of the input signal is higher, thepower conversion module 104 is controlled to output a charging signal with higher power, so that the electric equipment is charged with high power, and the requirement of 'quick charging' is met. When the voltage value of the input signal is low, thepower conversion module 104 is controlled to output a charging signal with low power, so that the electric energy output of the capacitor is reduced, and the stable operation of thecharging device 100 is ensured.
The chargingdevice 100 further includes a triggeringmodule 110, where the triggeringmodule 110 is connected to therectifying module 102, and generates a corresponding voltage signal according to a comparison result between the voltage value of the input signal detected by thevoltage detecting module 106 and a preset voltage threshold. The voltage signal may specifically include two signals, one of which is a first voltage signal, i.e., a "high voltage" signal, generated by thetrigger module 110 when the voltage value is greater than or equal to the voltage threshold. The second voltage signal is a "low voltage" signal generated by thetrigger module 110 when the voltage value is smaller than the voltage threshold.
Specifically, according to whether the voltage value of the input signal of thepower conversion module 104 is smaller than the voltage threshold, the embodiment of the present application determines whether the chargingdevice 100 performs fast charging at "high power" or keeps stable operation of thecharging device 100 at "low power". When the voltage value of the input signal is greater than or equal to the voltage threshold value, the input voltage is considered to be higher and is close to the wave crest of the input waveform, and at the moment, the high-power high-voltage input circuit works at high power to meet the requirement of quick charging. When the voltage value of the input signal is lower than the voltage threshold value, the input voltage is considered to be lower and close to the 'trough' of the input waveform, and the charging device is operated at low power at the moment so as to ensure stable operation of the charging device. When the voltage of the input signal is low, the chargingdevice 100 is controlled to output with low power, so that a large-capacity capacitor is not needed to be arranged to compensate for the low input voltage, the size of the capacitor can be effectively reduced, and the size of thecharging device 100 can be further reduced.
By applying the embodiment provided by the application, when the charging device works, the input voltage value of thepower conversion module 104 is acquired in real time, so that the power value of the charging signal output to the electric equipment is dynamically adjusted according to the change of the input voltage value, the charging device works with smaller output power when the input voltage value is lower, and the low input voltage is compensated without setting a large-capacity capacitor, so that the size of the capacitor can be effectively reduced, and the size of thecharging device 100 is further reduced. Meanwhile, due to the arrangement of the small-capacity capacitor, when a voltage wave valley is input, the electric energy released by the capacitor is small, so that the degree of current and voltage asynchronism is reduced, the harmonic interference is reduced, and the power supply quality of thecharging device 100 is improved.
In some embodiments of the present application, the number of the preset voltage thresholds is plural. When thevoltage detection module 106 detects that the voltage value is smaller than one of the voltage thresholds, if the voltage value is smaller than the voltage threshold a1, thelogic control module 108 controls thepower conversion module 104 to reduce the power of the output charging signal. Thereafter, thevoltage detection module 106 continuously detects the voltage value of the input signal of therectification module 102, and if it is further detected that the voltage value is less than a2(a2 < a1) in the plurality of voltage thresholds, generates a second voltage signal again, so that thelogic control module 108 controls thepower conversion module 104 again to further reduce the power of the output charging signal, and similarly, if it is further detected that the voltage value is less than A3(A3 < a2) in the plurality of voltage thresholds, the power of the output charging signal is further reduced until the voltage of the input signal enters a rising interval.
In the rising interval, when thevoltage detection module 106 detects that the voltage value is greater than one of the plurality of voltage thresholds, if the voltage value is greater than the voltage threshold a4, thelogic control module 108 controls thepower conversion module 104 to increase the power of the output charging signal. Then, thevoltage detection module 106 continuously detects the voltage value of the input signal of therectification module 102, and if it is further detected that the voltage value is greater than a5(a5 > a4) in the plurality of voltage thresholds, generates a first voltage signal again, so that thelogic control module 108 controls the power of the charging signal further increased by thepower conversion module 104 again, and if it is further detected that the voltage value is greater than a6(a6 > a5), the power of the charging signal is further increased until the voltage of the input signal enters the falling interval again, so that the power variation trend of the charging signal matches the current variation trend of the input signal, thereby improving the power supply efficiency and the power supply quality of thecharging device 100.
In some embodiments of the present application, as shown in fig. 1, the chargingdevice 100 further includes: aport module 112 for connecting the electric device to transmit and receive signals; theoutput control module 114 is connected with thetrigger module 110 and theport module 112, and theoutput control module 114 is configured to generate a first request signal according to the first voltage signal, and send the first request signal to the electric device through theport module 112, so that the power-taking power of the electric device is adjusted to be the first power-taking power; or generating a second request signal according to the second voltage signal, and sending the second request signal to the electric equipment through theport module 112 so as to adjust the power-taking power of the electric equipment to a second power-taking power; the first power taking power is larger than the second power taking power.
In this embodiment, the chargingdevice 100 includes theport module 112, and the electric device can establish an electrical connection with the charging device through theport module 112, so as to receive a charging signal of the charging device to perform charging, and meanwhile, the chargingdevice 100 and the electric device can also perform other data instruction interaction through theport module 112, such as establishing a connection according to a charging protocol, transmitting a request signal, getting an electric signal, and the like.
Theport module 112 may be configured as a Universal Serial Bus (USB) interface, such as USB-A, USB-C. The embodiment of the present application does not limit the specific type of theport module 112.
Further, the chargingdevice 100 further includes anoutput control module 114, theoutput control module 114 is connected to the triggeringmodule 110 and theport module 112, and when theoutput control module 114 receives a first voltage signal, that is, a high voltage signal, a first request signal is generated and sent to the electric equipment, and the electric equipment can respond to the first request signal to increase its own power taking power, specifically, to increase the first power taking power. Then, the charging equipment supplies power to the electric equipment with higher charging power, and the electric equipment also gets power from the charging equipment with higher power, so when the input waveform reaches the wave crest, the high-power charging is carried out to meet the quick charging requirement.
When theoutput control module 114 receives the second voltage signal, that is, the low voltage signal, sent by thetrigger module 110, theoutput control module 114 generates a corresponding second request signal, and sends the second request signal to the electric device through theport module 112, so as to inform that the waveform of the current input signal of the electric device is located near the trough, and therefore, the electric device is requested to reduce the power consumption.
And after receiving the second request signal, the electric equipment responds to the second request signal to reduce the self power taking power, specifically to the second power taking power. And then, the charging equipment supplies power to the electric equipment with lower charging power, and the electric equipment also takes power from the charging equipment with lower power taking power. Therefore, when the waveform reaches the valley, the smooth operation of the charging device is ensured by reducing the charging power, and the volume of thecharging device 100 can be effectively reduced without providing a large-capacity capacitor.
In some embodiments of the present application, as shown in fig. 1, the chargingdevice 100 further includes: a signal transceiver module, wherein the signal transceiver module includes asignal transmitting module 116, and is connected to thelogic control module 108 and thetrigger module 110; afeedback module 118 connected with thesignal sending module 116 and theoutput control module 114; thesignal transmitting module 116 receives the first request signal or the second request signal and transmits the first request signal or the second request signal to theport module 112 through thefeedback module 118.
In this embodiment, the chargingdevice 100 further includes asignal sending module 116 and afeedback module 118, data instruction communication among thelogic control module 108, thetrigger module 110, and thefeedback module 118 is realized through thesignal sending module 116, data transmission between thelogic control module 108 and theoutput control module 114 is further realized through thefeedback module 118, and finally request signals, specifically, a first request signal and a second request signal, are transmitted to theport module 112 and are finally sent to the electric device, so that internal data transmission of thecharging device 100 is realized.
In some embodiments of the present application, as shown in fig. 1, the chargingdevice 100 further includes: and thedriving module 120 is connected with thelogic control module 108 and thepower conversion module 104, and thedriving module 120 is used for driving thepower conversion module 104 to operate.
In the embodiment of the present application, the chargingdevice 100 further includes adriving module 120, and thedriving module 120 is connected to thelogic control module 108 and the power conversion module. During the operation of thecharging device 100, thelogic control module 108 generates a corresponding control signal according to the voltage value of the input signal detected in real time, and controls thedriving module 120 to drive thepower conversion module 104 to operate through the control signal, so as to change the power of the charging signal of thepower conversion module 104.
Specifically, when the voltage value of the input signal is lower than the preset voltage threshold, thedriving module 120 drives thepower conversion module 104 to output a charging signal with lower power under the control of thelogic control module 108, so that the charging device may not be provided with a capacitor with large capacity, and the size of the charging device may be reduced.
When the voltage value of the input signal is not lower than the preset voltage threshold, thedriving module 120 drives thepower conversion module 104 to output a charging signal with higher power under the control of thelogic control module 108, so as to perform fast charging.
In some embodiments of the present application, as shown in fig. 1, the signal transceiver module further includes asignal receiving module 122, and thesignal receiving module 122 is connected to theport module 112, theoutput control module 114, and thelogic control module 108;
theport module 112 is further configured to receive a power taking signal sent by the electric device;
theoutput control module 114 is further configured to send the voltage signal to thesignal receiving module 122;
thelogic control module 108 obtains the voltage signal and the power taking signal through thesignal receiving module 122, and determines the power taking power of the electric device according to the voltage signal and the power taking signal.
In this embodiment, the chargingdevice 100 further includes asignal receiving module 122, thesignal receiving module 122 is disposed in parallel with thesignal sending module 116, and is connected to theport module 112, theoutput control module 114 and thelogic control module 108, and thesignal receiving module 122 is responsible for receiving signals from theport module 112 to theoutput control module 114, then to thefeedback module 118, and then to thelogic control module 108, and similarly, thesignal sending module 116 is responsible for sending signals from thelogic control module 108 or thetrigger module 110 to thefeedback module 118, then to theoutput control module 114, and then to theport module 112.
Further, theport module 112 receives a power-taking signal sent by the electric device, where the power-taking signal corresponds to a request signal sent by the chargingapparatus 100 to the electric device, that is, after thecharging apparatus 100 sends a request for reducing or increasing power-taking to the electric device, the electric device may reduce or increase its power-taking power according to the received request signal, generate a corresponding feedback signal, that is, the power-taking signal, and send the feedback signal to thecharging apparatus 100.
After receiving the power-taking signal, the chargingdevice 100 combines the received power-taking signal with the voltage signal acquired by the charging device through theoutput control module 114 and thefeedback module 118, and sends the voltage signal to thelogic control module 108, and thelogic control module 108 determines the power-taking power requested by the power-taking device according to the received voltage signal and the power-taking signal. The voltage signal corresponds to the power taking signal, that is, when the voltage signal is a high voltage signal, the power taking signal corresponds to power taking with high power, and when the voltage signal is a low voltage signal, the power taking signal corresponds to power taking with low power.
When the power-taking signal and the voltage signal are matched, thelogic control module 108 may generate a control instruction to control thedriving module 120 to drive thepower conversion module 104, so as to change the power of the charging signal of thepower conversion module 104, so as to output with high power when the input voltage waveform is close to the peak, thereby realizing fast charging, and output with low power when the input voltage waveform is close to the valley, thereby realizing miniaturization of thecharging device 100 without providing a capacitor with large capacity.
In some embodiments of the present application, thelogic control module 108 is further configured to generate a first control signal according to the power-taking power when receiving the first voltage signal, and control thedriving module 120 through the first control signal, so that thedriving module 120 drives thepower conversion module 104 to adjust the power of the charging signal to the first charging power; or generating a second control signal according to the second power taking power under the condition of receiving the second voltage signal, and controlling thedriving module 120 through the second control signal, so that thedriving module 120 drives thepower conversion module 104 to adjust the power of the charging signal to the second charging power;
the first charging power is larger than the second charging power, the first charging power is matched with the first power taking power, and the second charging power is matched with the second power taking power.
In this embodiment of the application, if thelogic control module 108 determines that the power-taking power from the electrical device is the first power-taking power according to the voltage signal and the power-taking signal, and the corresponding voltage signal is the first voltage signal at the same time, that is, the voltage signal is a high voltage signal, and when the power-taking power is high power, the corresponding first control signal is generated and sent to thedriving module 120, and thedriving module 120 adjusts the power of the charging signal to the first charging power matched with the first power-taking signal according to the first control signal and the drivingpower conversion module 104.
If thelogic control module 108 determines that the power-taking power of the electric device is the second power-taking power and the corresponding voltage signal is the second voltage signal, that is, the voltage signal is the low voltage signal, and the corresponding second control signal is generated under the condition that the power-taking power is low power, and the second control signal is sent to thedriving module 120, thedriving module 120 adjusts the power of the charging signal to the second charging power matched with the second power-taking signal according to the second control signal by the drivingpower conversion module 104.
It can be understood that the first charging power is "higher" charging power, when thepower conversion module 104 outputs a charging signal of the first charging power, the chargingdevice 100 supplies power at higher power to achieve fast charging, the second charging power is "lower" charging power, and when thepower conversion module 104 outputs a charging signal of the second charging power, the chargingdevice 100 supplies power at lower power to improve the stability of thecharging device 100.
In some embodiments of the present application, as shown in fig. 1, the chargingdevice 100 further includes:
the first filtering module 124 is disposed between the rectifyingmodule 102 and thepower converting module 104, and is configured to filter the input signal; and/or
Thesecond filtering module 126 is disposed between thepower conversion module 104 and theport module 112, and is configured to filter the charging signal.
In this embodiment, the chargingdevice 100 is provided with a first filtering module 124 and asecond filtering module 126, wherein the first filtering module 124 is located after therectifying module 102 and before thepower converting module 104, and the first filtering module 124 can filter the rectified mains signal, so as to remove a clutter signal in the mains signal. Thesecond filtering module 126 is located after thepower conversion module 104 and before theport module 112, and is configured to filter the charging signal after thepower conversion module 104 converts the power, so as to reduce the ripple of the charging signal and improve the power supply quality of thecharging device 100.
The first filtering module 124 and thesecond filtering module 126 are each provided with an energy storage device, such as a capacitor, for filtering out noise in the signal. It can be understood that, since the power of the charging signal is dynamically adjusted according to the voltage waveform of the input signal in the embodiment of the present application, when the voltage waveform is close to the trough position, that is, when the voltage of the input signal is lower than the threshold, the power is supplied with lower power, and thus, the stable operation of thecharging device 100 is ensured, it is not necessary to provide capacitors with large capacity in the first filtering module 124 and thesecond filtering module 126, so that the size of thecharging device 100 is effectively reduced, and the miniaturization of thecharging device 100 is facilitated.
In some embodiments of the present application, the chargingdevice 100 further comprises: thethird filtering module 128 is disposed at the input end of therectifying module 102, and is configured to filter the mains supply; thethird filtering module 128 is an electromagnetic interference filtering module.
In the embodiment of the present application, athird filtering module 128 is further disposed at the input end of therectifying module 102, wherein thethird filtering module 128 may be specifically configured as an Electromagnetic Interference (EMI) filtering module. Through setting upthird filtering module 128, can further filter the clutter in the electric wire netting, reduce electromagnetic interference, improve the rate of accuracy of signal sampling.
In some embodiments of the present application, as shown in fig. 1, the chargingdevice 100 includes: theauxiliary module 130 is connected with thelogic control module 108 and used for supplying power to thelogic control module 108; and acurrent detection module 132, connected to thelogic control module 108 and thepower conversion module 104, for detecting an output current of thepower conversion module 104, so that thelogic control module 108 controls thepower conversion module 104 to operate according to the output current.
In the embodiment of the present application, the chargingdevice 100 includes anauxiliary module 130, and theauxiliary module 130 can supply power to a chip such as thelogic control module 108. Specifically, after thecharging device 100 is powered on, theauxiliary module 130 starts to store electric energy, and when the voltage value of theauxiliary module 130 satisfies the power supply voltage of the chip such as thelogic control module 108, each control module is powered on and started.
The chargingdevice 100 further includes acurrent detection module 132, thecurrent detection module 132 is connected to thelogic control module 108 and thepower conversion module 104 to detect a current value of the charging signal output by thepower conversion module 104, and thelogic control module 108 determines the power of the charging signal according to the current value detected by thecurrent detection module 132, so as to determine a control result of thepower conversion module 104, thereby forming a closed-loop control.
In some embodiments of the present application, there is provided a charging control method for controlling a charging device as in any of the above embodiments, fig. 2 shows one of flowcharts of the charging control method according to an embodiment of the present application, and as shown in fig. 2, the control method includes:
step 202, acquiring a voltage value of an input signal;
step 204, generating a first voltage signal and a first request signal when the voltage value is greater than or equal to the voltage threshold, and generating a second voltage signal and a second request signal when the voltage value is less than the voltage threshold;
instep 206, the charging device is controlled to increase the power of the charging signal by the first voltage signal and the first request signal, or the charging device is controlled to decrease the power of the charging signal by the second voltage signal and the second request signal.
In the embodiment of the present application, the charging device dynamically adjusts the power of the charging signal according to a comparison result between the voltage value of the input signal and a preset voltage threshold. Specifically, the waveform of the input voltage is detected in real time through the voltage detection module, so that the voltage value of the input signal is obtained, the magnitude relation between the voltage value and the voltage threshold is judged, and the power conversion module is controlled to change the working state according to the magnitude relation value, so that the power of the charging signal is adjusted, namely, the charging device is adjusted to perform fast charging at high power or maintain stable operation of the charging device at low power.
When the voltage value of the input signal is lower than the voltage threshold value, the input voltage is considered to be lower and close to the 'trough' of the input waveform, and the charging device is operated at low power at the moment so as to ensure stable operation of the charging device. When the voltage of the input signal is lower, the charging device is controlled to output with lower power, so that a large-capacity capacitor is not needed to be arranged to compensate the low input voltage, the size of the capacitor can be effectively reduced, and the size of the charging device is further reduced.
Specifically, when the output control module of the charging device receives a first voltage signal, that is, a high voltage signal, a first request signal is generated and sent to the electric equipment, and the electric equipment can respond to the first request signal, so that the self power taking power is improved, specifically, the first power taking power is improved. Then, the charging equipment supplies power to the electric equipment with higher charging power, and the electric equipment also gets power from the charging equipment with higher power, so when the input waveform reaches the wave crest, the high-power charging is carried out to meet the quick charging requirement.
When the output control module of the charging device receives a second voltage signal, namely a low voltage signal, sent by the trigger module, the output control module generates a corresponding second request signal, and sends the second request signal to the electric equipment through the port module, so that the electric equipment is informed that the waveform of the current input signal is near the trough, and the electric equipment is requested to reduce the power taking power.
And after receiving the second request signal, the electric equipment responds to the second request signal to reduce the self power taking power, specifically to the second power taking power. And then, the charging equipment supplies power to the electric equipment with lower charging power, and the electric equipment also takes power from the charging equipment with lower power taking power. Therefore, when the waveform is input to the wave valley, the stable work of the charging equipment is ensured by reducing the charging power, a large-capacity capacitor is not required to be arranged, and the size of the charging device can be effectively reduced.
In some embodiments of the present application, the charge control method further comprises: sending the first request signal to the electric equipment so that the electric equipment can increase the electricity taking power according to the first request signal; or
And sending the second request signal to the electric equipment so that the electric equipment can reduce the power taking power according to the second request signal.
In this application embodiment, charging equipment generates corresponding voltage signal according to the comparison result of the voltage value of input signal and preset voltage threshold, and charging equipment's output control module generates corresponding request signal according to the voltage signal that receives, and send to consumer, consumer can adjust self according to the request signal that receives and get electric power, in order when charging device outputs the charging signal of high power, with higher power of getting work, satisfy self demand of fast filling, and when charging device outputs the charging signal of low power, with lower power of getting work, guarantee charging equipment's stability.
Specifically, the charging device sends the first request signal to the electric equipment, and then the electric equipment improves its own power taking power, and the charging device sends the second request signal to the electric equipment, and then the electric equipment reduces its own power taking power.
In some embodiments of the present application, fig. 3 illustrates a second flowchart of a charging control method according to an embodiment of the present application, and as shown in fig. 3, the charging control method includes:
step 302, receiving a power getting signal sent by the electric equipment according to the request signal;
and 304, determining the power taking power of the electric equipment according to the power taking signal.
In this application embodiment, charging device receives the electricity-taking signal that the consumer sent, wherein, should get the electricity signal and the request signal that charging device sent to the consumer corresponds, promptly, charging device sends the request back that reduces or improve to get the electricity to the consumer, and the consumer can reduce or improve self according to the received request signal and get the electric power, and generate corresponding feedback signal, promptly get the electricity signal above-mentioned, and send charging device to.
After receiving the power taking signal, the charging device determines the power taking power requested by the power taking equipment according to the received voltage signal and the power taking signal. The voltage signal corresponds to the power taking signal, that is, when the voltage signal is a high voltage signal, the power taking signal corresponds to power taking with high power, and when the voltage signal is a low voltage signal, the power taking signal corresponds to power taking with low power.
When getting electric signal and voltage signal phase matching, charging device changes the power of the signal of charging to when the input voltage waveform is close to the crest, carry out output with high-power, realize fast charging, and when the input voltage waveform is close to the crest, carry out output with miniwatt, thereby need not set up the condenser of large capacity, realize charging device's miniaturization.
In some embodiments of the present application, controlling the charging device to adjust the power of the charging signal through the voltage signal and the request signal includes:
under the condition that the voltage signal is the first voltage signal, adjusting the power of the charging signal to be first charging power;
under the condition that the voltage signal is the second voltage signal, adjusting the power of the charging signal to be the second charging power;
the first charging power is larger than the second charging power, the first charging power is matched with the first power taking power, and the second charging power is matched with the second power taking power.
In this application embodiment, according to the voltage signal and the power-taking signal, it is determined that the power-taking power from the electric device is the first power-taking power, and the corresponding voltage signal is the first voltage signal at the same time, that is, the voltage signal is a high voltage signal, and the power of the charging signal is adjusted to the first charging power matched with the first power-taking signal when the power-taking power is the high power.
And if the power-taking power of the electric equipment is determined to be the second power-taking power and the corresponding voltage signal is the second voltage signal, namely the voltage signal is a low-voltage signal, and under the condition that the power-taking power is low, the power of the charging signal is adjusted to be the second charging power matched with the second power-taking signal.
It can be understood that the first charging power is "higher" charging power, when the power conversion module outputs a charging signal of the first charging power, the charging device supplies power with higher power to realize quick charging, the second charging power is "lower" charging power, and when the power conversion module outputs a charging signal of the second charging power, the charging device supplies power with lower power to improve the stability of the charging device.
In some embodiments of the present application, a specific workflow of a charging device is described.
In this embodiment of the present application, a charging-power-taking system is formed between the charging device and the electric device, and in this charging-power-taking system, three functional units may be specifically included:
the device comprises a power unit, a control unit and a power utilization unit.
The power unit comprises the rectification module, a power conversion module, an output control module, a port module, a feedback module, a first filtering module, a second filtering module and a third filtering module.
The control unit comprises a trigger module, a voltage detection module, an auxiliary module, a driving module, a current detection module, a signal receiving module, a signal sending module and a logic control module.
The electricity utilization unit is the electricity utilization equipment.
Step 001, after the charging device is started, after the electric energy obtained by commercial power passes through the rectifying module, the electric energy supplies power to the auxiliary module on the primary side (input side), and after the voltage value of the auxiliary module reaches the starting voltage value of the control unit, each module in the control unit starts to work.
And step 002, after the control unit is started, the voltage detection module detects the voltage waveform of the input signal rectified by the rectification module in real time, and sends the detection information to the logic control module and the trigger module.
In this process, the current detection module synchronously transmits a current signal to the logic control module to form closed-loop control. The logic control module controls the power conversion module to operate according to a preset rule. The preset rule may be determined according to a charging protocol of the powered device.
And the logic control module judges whether the voltage of the input signal is lower than a voltage threshold value according to the voltage waveform fact. During the falling of the voltage waveform, there are the following steps 003 to 007:
step 003, when the voltage is lower than the threshold value V0When the charging equipment is used, the trigger module sends a low-voltage signal to the logic control module and the signal sending module, and meanwhile, the logic control module controls the primary side (input side) of the charging equipment to maintain working.
Step 004, the signal sending module sends the low-voltage signal to the output control module through the feedback module.
In step 005, the output control module outputs a request signal through the port module to request the power consumption equipment (power consumption unit) to reduce power consumption.
Step 0051, the output control module sends a command to reduce power output to the signal receiving module of the control unit through the feedback module (step 0051 may also be performed after step 006, as in step 0061 below).
In step 006, the electric device reduces the power supply power (generally, reduces the charging power by 1W to 10W) in response to the request signal, and feeds back the related request signal.
0061, if step 0051 is executed, skipping, if step 0051 is not executed, the output control module sends a command of reducing power output to the signal receiving module of the control unit through the feedback module.
Step 007, the signal receiving module sends the feedback request signal to the logic control module, and the logic control module controls the driving module to reduce the duty ratio of the driving signal, so that the power of the charging signal output by the power conversion module is reduced to the lower power (reduced current) requested by the electric equipment.
In the process of the rising voltage waveform, there are the following steps 008 to 012:
step 008, when the voltage is higher than the threshold value V0When the charging device is used, the trigger module sends a high-voltage signal to the logic control module and the signal sending module, and meanwhile, thelogic control module 108 controls and controls the primary side (input side) of the charging device to maintain working.
And step 009, the signal sending module sends the high-voltage signal to the output control module through the feedback module.
And 010, the output control module requests the electric equipment to boost the power taking power through the output port.
In step 0101, the output control module sends a command for increasing the power output to the signal receiving module of the control unit through the feedback module (step 0101 may also be executed after step 011, as in step 0111 below).
Step 011, the electric equipment extracts the electric power (usually, the maximum output power of the charging equipment), and feeds back the relevant request signal to the output control module through the port module.
Step 0111, if step 0101 is executed, skipping, if step 0101 is not executed, the output control module sends the instruction of increasing power output to the signal receiving module of the control unit through the feedback module.
In step 012, the signal receiving module sends the fed back request signal to the logic control module, and the logic control module controls the driving module to increase the duty ratio of the driving signal, so that the power of the charging signal output by the power conversion module is increased to the higher power (fast charging power) requested by the electric device.
And 013, rectifying the charging signal output by the power conversion module through the second filtering module, and outputting the rectified charging signal to the electric equipment.
According to the embodiment of the application, the change of the output power is dynamically controlled by sampling the value of the input voltage in real time, so that the value of the output power can be adjusted by using a single capacitor according to the value of the capacitance. In the whole working period, the working time of the capacitor is short, and the harmonic ratio is small. The capacitance of the capacitor is reduced, so that the volume of the capacitor becomes small. The volume of the final charging device can be greatly reduced.
With the charging device and the control method thereof provided by the embodiment of the present application applied, fig. 4 shows a waveform diagram of voltage and current of the charging signal output by the charging device according to the embodiment of the present application, as shown in fig. 4, the power supply detects the waveform of the voltage in real time, and when the voltage decreases, at t0When is below the threshold value V0Adjusting the output power, wherein the current of the charging signal is reduced to I1So that the discharge curve of the capacitor is L1(if the output power is not adjusted, the voltage curve is L2) So that the minimum voltage V in the cycle1Greater than the minimum value V of the operating voltage2The output power is maintained continuously.
When the voltage rises, at t2Is higher than the threshold value V0Adjusting the output power to the maximum required value and increasing the current to I0And charging experience is improved.
In some embodiments of the present application, a charging control device is provided for controlling a charging device in any of the above embodiments, fig. 5 shows a block diagram of a charging control device according to an embodiment of the present application, and as shown in fig. 5, the chargingcontrol device 500 includes:
anacquisition unit 502 for acquiring a voltage value of an input signal;
agenerating unit 504 for generating a first voltage signal and a first request signal in a case where the voltage value is greater than or equal to the voltage threshold; generating a second voltage signal and a second request signal if the voltage value is less than the voltage threshold;
anadjusting unit 506, configured to control the charging device to increase the power of the charging signal through the first voltage signal and the first request signal; or the charging device is controlled to reduce the power of the charging signal through the second voltage signal and the second request signal.
In the embodiment of the present application, the charging device dynamically adjusts the power of the charging signal according to a comparison result between the voltage value of the input signal and a preset voltage threshold. Specifically, the waveform of the input voltage is detected in real time through the voltage detection module, so that the voltage value of the input signal is obtained, the magnitude relation between the voltage value and the voltage threshold is judged, and the power conversion module is controlled to change the working state according to the magnitude relation value, so that the power of the charging signal is adjusted, namely, the charging device is adjusted to perform fast charging at high power or maintain stable operation of the charging device at low power.
When the voltage value of the input signal is lower than the voltage threshold value, the input voltage is considered to be lower and close to the 'trough' of the input waveform, and the charging device is operated at low power at the moment so as to ensure stable operation of the charging device. When the voltage of the input signal is lower, the charging device is controlled to output with lower power, so that a large-capacity capacitor is not needed to be arranged to compensate the low input voltage, the size of the capacitor can be effectively reduced, and the size of the charging device is further reduced.
Specifically, when the output control module of the charging device receives a first voltage signal, that is, a high voltage signal, a first request signal is generated and sent to the electric equipment, and the electric equipment can respond to the first request signal, so that the self power taking power is improved, specifically, the first power taking power is improved. Then, the charging equipment supplies power to the electric equipment with higher charging power, and the electric equipment also gets power from the charging equipment with higher power, so when the input waveform reaches the wave crest, the high-power charging is carried out to meet the quick charging requirement.
When the output control module of the charging device receives a second voltage signal, namely a low voltage signal, sent by the trigger module, the output control module generates a corresponding second request signal, and sends the second request signal to the electric equipment through the port module, so that the electric equipment is informed that the waveform of the current input signal is near the trough, and the electric equipment is requested to reduce the power taking power.
And after receiving the second request signal, the electric equipment responds to the second request signal to reduce the self power taking power, specifically to the second power taking power. And then, the charging equipment supplies power to the electric equipment with lower charging power, and the electric equipment also takes power from the charging equipment with lower power taking power. Therefore, when the waveform is input to the wave valley, the stable work of the charging equipment is ensured by reducing the charging power, a large-capacity capacitor is not required to be arranged, and the size of the charging device can be effectively reduced.
In some embodiments of the present application, the chargingcontrol apparatus 500 further includes:
a sendingunit 508, configured to send the first request signal to the electric device, so that the electric device increases the power consumption according to the first request signal; or sending the second request signal to the electric equipment so that the electric equipment can reduce the power taking power according to the second request signal.
In this application embodiment, charging equipment generates corresponding voltage signal according to the comparison result of the voltage value of input signal and preset voltage threshold, and charging equipment's output control module generates corresponding request signal according to the voltage signal that receives, and send to consumer, consumer can adjust self according to the request signal that receives and get electric power, in order when charging device outputs the charging signal of high power, with higher power of getting work, satisfy self demand of fast filling, and when charging device outputs the charging signal of low power, with lower power of getting work, guarantee charging equipment's stability.
Specifically, the charging device sends the first request signal to the electric equipment, and then the electric equipment improves its own power taking power, and the charging device sends the second request signal to the electric equipment, and then the electric equipment reduces its own power taking power.
In some embodiments of the present application, the obtainingunit 502 is further configured to receive a power getting signal sent by the electric device according to the request signal;
the adjustingunit 506 is further configured to determine the power-taking power of the electric device according to the power-taking signal.
In this application embodiment, charging device receives the electricity-taking signal that the consumer sent, wherein, should get the electricity signal and the request signal that charging device sent to the consumer corresponds, promptly, charging device sends the request back that reduces or improve to get the electricity to the consumer, and the consumer can reduce or improve self according to the received request signal and get the electric power, and generate corresponding feedback signal, promptly get the electricity signal above-mentioned, and send charging device to.
After receiving the power taking signal, the charging device determines the power taking power requested by the power taking equipment according to the received voltage signal and the power taking signal. The voltage signal corresponds to the power taking signal, that is, when the voltage signal is a high voltage signal, the power taking signal corresponds to power taking with high power, and when the voltage signal is a low voltage signal, the power taking signal corresponds to power taking with low power.
When getting electric signal and voltage signal phase matching, charging device changes the power of the signal of charging to when the input voltage waveform is close to the crest, carry out output with high-power, realize fast charging, and when the input voltage waveform is close to the crest, carry out output with miniwatt, thereby need not set up the condenser of large capacity, realize charging device's miniaturization.
In some embodiments of the present application, the adjustingunit 506 is further configured to adjust the power of the charging signal to the first charging power if the voltage signal is the first voltage signal; under the condition that the voltage signal is the second voltage signal, adjusting the power of the charging signal to be the second charging power; the first charging power is larger than the second charging power, the first charging power is matched with the first power taking power, and the second charging power is matched with the second power taking power.
In this application embodiment, according to the voltage signal and the power-taking signal, it is determined that the power-taking power from the electric device is the first power-taking power, and the corresponding voltage signal is the first voltage signal at the same time, that is, the voltage signal is a high voltage signal, and the power of the charging signal is adjusted to the first charging power matched with the first power-taking signal when the power-taking power is the high power.
And if the power-taking power of the electric equipment is determined to be the second power-taking power and the corresponding voltage signal is the second voltage signal, namely the voltage signal is a low-voltage signal, and under the condition that the power-taking power is low, the power of the charging signal is adjusted to be the second charging power matched with the second power-taking signal.
It can be understood that the first charging power is "higher" charging power, when the power conversion module outputs a charging signal of the first charging power, the charging device supplies power with higher power to realize quick charging, the second charging power is "lower" charging power, and when the power conversion module outputs a charging signal of the second charging power, the charging device supplies power with lower power to improve the stability of the charging device.
In some embodiments of the present application, a readable storage medium is provided, on which a program or an instruction is stored, and the program or the instruction, when executed by a processor, implements the steps of the charging control method provided in any of the above embodiments, so that the readable storage medium also includes all the beneficial effects of the charging control method provided in any of the above embodiments, and in order to avoid repetition, details are not described herein again.
In the description herein, reference to the description of the terms "one embodiment," "some embodiments," "an illustrative embodiment," "an example," "a specific example," or "some examples" or the like means that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the application. In this specification, the schematic representations of the terms used above do not necessarily refer to the same embodiment or example. Furthermore, the particular features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
While embodiments of the present application have been shown and described, it will be understood by those of ordinary skill in the art that: various changes, modifications, substitutions and alterations can be made to the embodiments without departing from the principles and spirit of the application, the scope of which is defined by the claims and their equivalents.

Claims (13)

Translated fromChinese
1.一种充电装置,用于为用电设备充电,其特征在于,包括:1. A charging device for charging electrical equipment, characterized in that, comprising:整流模块,用于对接入的电信号进行整流,得到整流后的输入信号;The rectifier module is used to rectify the connected electrical signal to obtain the rectified input signal;功率变换模块,用于对所述输入信号的功率进行调整,并输出调整后的充电信号;a power conversion module for adjusting the power of the input signal and outputting the adjusted charging signal;电压检测模块,与所述整流模块相连接,用于检测所述输入信号的电压值;a voltage detection module, connected to the rectifier module, for detecting the voltage value of the input signal;触发模块,与所述电压检测模块相连接,所述触发模块用于在所述电压值大于或等于预设的电压阈值的情况下,生成第一电压信号,在所述电压值小于所述电压阈值的情况下生成第二电压信号;a trigger module, connected to the voltage detection module, the trigger module is configured to generate a first voltage signal when the voltage value is greater than or equal to a preset voltage threshold, and when the voltage value is less than the voltage generating a second voltage signal under the condition of the threshold;逻辑控制模块,与所述电压检测模块、所述触发模块和所述功率变换模块相连接,用于在接收到所述第一电压信号的情况下控制所述功率变换模块增大所述充电信号的功率,或在接收到所述第二电压信号的情况下控制所述功率变换模块降低所述充电信号的功率。a logic control module, connected to the voltage detection module, the trigger module and the power conversion module, for controlling the power conversion module to increase the charging signal when the first voltage signal is received the power of the charging signal, or control the power conversion module to reduce the power of the charging signal when the second voltage signal is received.2.根据权利要求1所述的充电装置,其特征在于,还包括:2. The charging device according to claim 1, further comprising:端口模块,用于连接所述用电设备以收发信号;a port module, used to connect the powered device to send and receive signals;输出控制模块,与所述触发模块和所述端口模块相连接,所述输出控制模块用于根据所述第一电压信号生成第一请求信号,通过所述端口模块将所述第一请求信号发送至所述用电设备,以使所述用电设备的取电功率调整为第一取电功率;或an output control module, connected with the trigger module and the port module, the output control module is configured to generate a first request signal according to the first voltage signal, and send the first request signal through the port module to the electrical equipment, so that the electrical power of the electrical equipment is adjusted to the first electrical power; or根据所述第二电压信号生成第二请求信号,通过所述端口模块将所述第二请求信号发送至所述用电设备,以使所述用电设备的取电功率调整为第二取电功率;Generate a second request signal according to the second voltage signal, and send the second request signal to the electrical device through the port module, so that the electrical power of the electrical device is adjusted to the second electrical power;其中,所述第一取电功率大于所述第二取电功率。Wherein, the first electric power is greater than the second electric power.3.根据权利要求2所述的充电装置,其特征在于,还包括:3. The charging device according to claim 2, further comprising:信号收发模块,与所述逻辑控制模块和所述触发模块相连接;a signal transceiver module, connected with the logic control module and the trigger module;反馈模块,与所述信号收发模块和所述输出控制模块相连接;a feedback module, connected with the signal transceiver module and the output control module;其中,所述信号收发模块接收所述第一请求信号或所述第二请求信号,并通过所述反馈模块将所述第一请求信号或所述第二请求信号发送至所述端口模块。The signal transceiving module receives the first request signal or the second request signal, and sends the first request signal or the second request signal to the port module through the feedback module.4.根据权利要求3所述的充电装置,其特征在于,还包括:4. The charging device according to claim 3, further comprising:驱动模块,与所述逻辑控制模块和所述功率变换模块相连接,所述驱动模块用于驱动所述功率变换模块工作。A driving module is connected with the logic control module and the power conversion module, and the driving module is used for driving the power conversion module to work.5.根据权利要求4所述的充电装置,其特征在于,还包括:5. The charging device according to claim 4, further comprising:所述信号收发模块还与所述端口模块和所述输出控制模块相连接;The signal transceiver module is also connected with the port module and the output control module;所述端口模块还用于接收所述用电设备发送的取电信号;The port module is further configured to receive a power-taking signal sent by the electrical device;所述输出控制模块还用于将所述电压信号发送至所述信号收发模块;The output control module is further configured to send the voltage signal to the signal transceiver module;所述逻辑控制模块通过所述信号收发模块获取所述电压信号和所述取电信号,根据所述电压信号和所述取电信号确定所述用电设备的取电功率。The logic control module obtains the voltage signal and the power-taking signal through the signal transceiving module, and determines the power-taking power of the electrical device according to the voltage signal and the power-taking signal.6.根据权利要求5所述的充电装置,其特征在于,6. The charging device according to claim 5, wherein,所述逻辑控制模块还用于在接收到所述第一电压信号的情况下,根据所述第一取电功率生成第一控制信号,通过所述第一控制信号控制所述驱动模块,以使所述驱动模块驱动所述功率变换模块将所述充电信号的功率调整为第一充电功率;或The logic control module is further configured to, when receiving the first voltage signal, generate a first control signal according to the first electric power, and control the driving module through the first control signal, so that all The driving module drives the power conversion module to adjust the power of the charging signal to the first charging power; or在接收到所述第二电压信号的情况下,根据所述第二取电功率生成第二控制信号,通过所述第二控制信号控制所述驱动模块,以使所述驱动模块驱动所述功率变换模块将所述充电信号的功率调整为第二充电功率;In the case of receiving the second voltage signal, a second control signal is generated according to the second electric power, and the driving module is controlled by the second control signal, so that the driving module drives the power conversion The module adjusts the power of the charging signal to the second charging power;其中,所述第一充电功率大于所述第二充电功率,且所述第一充电功率与所述第一取电功率相匹配,所述第二充电功率与所述第二取电功率相匹配。Wherein, the first charging power is greater than the second charging power, and the first charging power matches the first power taking power, and the second charging power matches the second taking power.7.根据权利要求2至6中任一项所述的充电装置,其特征在于,还包括:7. The charging device according to any one of claims 2 to 6, further comprising:第一滤波模块,设置于所述整流模块和所述功率变换模块之间,用于对所述输入信号进行滤波;和/或a first filtering module, disposed between the rectification module and the power conversion module, for filtering the input signal; and/or第二滤波模块,设置于所述功率变换模块和所述端口模块之间,用于对所述充电信号进行滤波。The second filtering module is arranged between the power conversion module and the port module, and is used for filtering the charging signal.8.一种充电控制方法,其特征在于,所述方法包括:8. A charging control method, wherein the method comprises:获取输入信号的电压值;Get the voltage value of the input signal;在所述电压值大于或等于电压阈值的情况下,生成第一电压信号和第一请求信号;generating a first voltage signal and a first request signal when the voltage value is greater than or equal to a voltage threshold;在所述电压值小于所述电压阈值的情况下,生成第二电压信号和第二请求信号;通过所述第一电压信号和所述第一请求信号控制充电装置增大充电信号的功率;或When the voltage value is less than the voltage threshold, generate a second voltage signal and a second request signal; control the charging device to increase the power of the charging signal through the first voltage signal and the first request signal; or通过所述第二电压信号和所述第二请求信号控制所述充电装置降低所述充电信号的功率。The charging device is controlled to reduce the power of the charging signal through the second voltage signal and the second request signal.9.根据权利要求8所述方法,其特征在于,还包括:9. The method of claim 8, further comprising:将所述第一请求信号发送至用电设备,以使所述用电设备根据所述第一请求信号增加取电功率;或sending the first request signal to the powered device, so that the powered device increases the power drawn according to the first request signal; or将所述第二请求信号发送至所述用电设备,以使所述用电设备根据所述第二请求信号降低所述取电功率。The second request signal is sent to the powered device, so that the powered device reduces the power taken according to the second request signal.10.根据权利要求9所述方法,其特征在于,还包括:10. The method of claim 9, further comprising:接收所述用电设备根据所述请求信号发送的取电信号;receiving a power-taking signal sent by the power-consuming device according to the request signal;根据所述取电信号确定所述用电设备的取电功率。The power taken by the electrical device is determined according to the power taken signal.11.根据权利要求10所述方法,其特征在于,所述通过所述电压信号和所述请求信号控制所述充电装置调整所述充电信号的功率,包括:11. The method according to claim 10, wherein the controlling the charging device to adjust the power of the charging signal by using the voltage signal and the request signal comprises:在所述电压信号为所述第一电压信号的情况下,将所述充电信号的功率调整为第一充电功率;when the voltage signal is the first voltage signal, adjusting the power of the charging signal to be the first charging power;在所述电压信号为所述第二电压信号的情况下,将所述充电信号的功率调整为第二充电功率;In the case that the voltage signal is the second voltage signal, adjusting the power of the charging signal to the second charging power;其中,所述第一充电功率大于所述第二充电功率,且所述第一充电功率与所述第一取电功率相匹配,所述第二充电功率与所述第二取电功率相匹配。Wherein, the first charging power is greater than the second charging power, and the first charging power matches the first power taking power, and the second charging power matches the second taking power.12.一种充电控制装置,其特征在于,所述装置包括:12. A charging control device, characterized in that the device comprises:获取单元,用于获取输入信号的电压值;an acquisition unit for acquiring the voltage value of the input signal;生成单元,用于在所述电压值大于或等于电压阈值的情况下,生成第一电压信号和第一请求信号;在所述电压值小于所述电压阈值的情况下,生成第二电压信号和第二请求信号;a generating unit, configured to generate a first voltage signal and a first request signal when the voltage value is greater than or equal to a voltage threshold value; and generate a second voltage signal and a first request signal when the voltage value is less than the voltage threshold value the second request signal;调整单元,用于通过所述第一电压信号和所述第一请求信号控制充电装置增大充电信号的功率;或通过所述第二电压信号和所述第二请求信号控制所述充电装置降低所述充电信号的功率。an adjustment unit, configured to control the charging device to increase the power of the charging signal through the first voltage signal and the first request signal; or control the charging device to decrease the power of the charging signal through the second voltage signal and the second request signal the power of the charging signal.13.一种可读存储介质,其上存储有程序或指令,其特征在于,所述程序或指令被处理器执行时实现如权利要求8至11中任一项所述方法的步骤。13. A readable storage medium on which programs or instructions are stored, characterized in that, when the programs or instructions are executed by a processor, the steps of the method according to any one of claims 8 to 11 are implemented.
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