1. Field of the Invention
The invention relates to a charging control method.
2. Description of Related Art
Following advances in technology, all kinds of electronic products are developing towards a tendency of high-speed, high-performance and compact size. Hence, all kinds of portable electronic devices, such as notebook computer, tablet PC and Smartphone, gradually become mainstreams of the market. In order to facilitate product uses for users under an environment absent of power supply, every portable electronic device is often disposed with a rechargeable battery therein. In a process of charging the rechargeable battery of the portable electronic device, in order to shorten a charging time, a maximum fixed current is often applied to perform the charging.
However, a temperature of an outer casing of the portable electronic device is raised due to heat generated by the portable electronic device generates during the process of charging. A display module of the portable electronic device also generates heat during the operation, and thus the temperature of the outer casing of the portable electronic device is raised. When the portable electronic device is being charged with the maximum current and the display module of the portable electronic device is constantly operated, it is likely to cause the temperature of the outer casing of the portable electronic device being too high, and thereby arouses a discomfort feeling in the user.
The invention provides a charging control method capable of enabling a portable electronic device to be maintained at an appropriate temperature during charging, and to maintain a charging efficiency thereof.
The invention provides a charging control method adapted to be used in a portable electronic device. The portable electronic device has a display module and a rechargeable battery. The charging control method includes the following steps. Firstly, a working status of the display module is obtained and a control signal is transmitted by used a control unit. Next, the control signal received and a charging power provided to the rechargeable battery is adjusted according to the control signal by a power control unit.
According to the foregoing, in the invention, the working status of the display module is obtained via the control unit, and then the charging power provided to the rechargeable battery is adjusted according to the working status via the power control unit, so as to avoid a temperature of an outer casing of the portable electronic device from being too high. In addition, the charging power provided to the rechargeable battery may further be adjusted by detecting whether the portable electronic device is in idle. When the charging power is a charging current and when the portable electronic device is already being in idle for a preset amount of time, then the control unit and the power control unit (for example a current control unit) adjust a current value of the charging current to a maximum current value in order to accelerate a charging speed of the rechargeable battery. Therefore, under a circumstance of maintaining a certain charging efficiency, the invention may avoid a problem of having the temperature of the outer casing of the portable electronic device being too high in a process of charging due to operations of the display module and the portable electronic device.
In order to make the aforementioned and other features and advantages of the invention comprehensible, several exemplary embodiments accompanied with figures are described in detail below.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
For example, when the brightness value of the display module is in between a brightness range, such as from 60% to 100%, the control unit adjusts a current value of the charging current to 512 milliamperes via the current control unit. When the brightness value of the display module is in between another brightness range, such as 30% to 59%, the control unit adjusts a current value of the charging current to 768 milliamperes via the current control unit. When the brightness value display module is in between yet another brightness range, such as from 0% to 29%, the control unit adjusts a current value of the charging current to 896 milliamperes via the current control unit. If the working status of the display module is OFF, the control unit adjusts a current value of the charging current to 1024 milliamperes via the current control unit. When the display module is already being OFF for a preset amount of time (e.g., 10 minutes), the control unit adjusts a current value of the charging current to a maximum value (e.g., 1024 milliamperes) via the current control unit. The brightness values and the current values mentioned-above are merely examples taken to facilitate the understanding of the concepts of the invention, and are not intended to limit the scope of the invention.
As the charging control method described above, the control unit may adjust the charging power provided to the rechargeable battery according to the working status of the display module and the portable electronic device via the power control unit. IF the adjusted charging power is a charging current, then the current value of the charging current provided to the rechargeable battery may be increased or decrease according to the working status of the display module. As a result, not only that a problem of having a temperature of an outer casing of the portable electronic device being too high in a process of charging due to operations of the display module and the portable electronic device may be avoided, a certain charging efficiency may also be maintained.
According to the foregoing, if the working status detected by the detection unit 130 is a brightness value of the display module 110, then the control unit 120 generates a control signal according to the brightness value, and the current control unit 140 adjusts the current value of the charging current according to the control signal. In the present embodiment, the display module 110 has a display unit and a backlight module, and the brightness value is a brightness value of the backlight module. When the brightness value detected by the detection unit 130 is increased, the current control unit 140 decreases the current value of the charging current according to the control signal. When the brightness value detected by the detection unit 130 is decreased, the current control unit 140 increases the current value of the charging current according to the control signal. When the working status of the display module 110 detected by the detection unit 130 is OFF, the current control unit 140 increase the current value of the charging current according to the control signal.
For example, when the detection unit 130 detects that the brightness value of the display module 110 is in between a brightness range, such as from 60% to 100%, the current control unit 140 adjusts the current value of the charging current to 512 milliamperes according to the control signal transmitted from the control unit 120. When the detection unit 130 detects that the brightness value of the display module 110 is in between another brightness range, such as from 30% to 59%, the current control unit 140 adjusts the current value of the charging current to 768 milliamperes according to the control signal transmitted from the control unit 120. When the detection unit 130 detects that the brightness value of the display module 110 is in between yet another brightness range, such as from 0% to 29%, the current control unit 140 adjusts the current value of the charging current to 896 milliamperes according to the control signal transmitted from the control unit 120. When the detection unit 130 detects that the working status of the display module 110 is OFF, the current control unit 140 adjusts the current value of the charging current to 1024 milliamperes according to the control signal transmitted by the control unit 120. When the display module 110 is detected as being OFF for a preset amount of time (e.g., 10 minutes), the current control unit 140 adjusts the current value of the charging current to a maximum value (e.g., 1024 milliamperes) according to the control signals transmitted from the control unit 120. The above-mentioned brightness value and the current value are merely examples taken to facilitate the understanding of the concepts of the invention, and are not intended to limit the scope of the invention.
According to the foregoing, in the present embodiment, the brightness value detected by the detection unit 130 is neither increased nor decreased; namely, the working status has not changed, and then the control unit 120 further determines whether the portable electronic device 100 is in idle. When the control unit 120 determines that the portable electronic device 100 is already in idle for a present amount of time (e.g., 10 minutes), such that no action has been executed for more than 10 minutes, a control signal is transmitted to the current control unit 140, so as to adjust the current value of the charging current to a maximum current value, such as 1920 milliamperes. If the control unit 120 determines that the working status of the display module is switched from OFF to ON, the control unit 120 transmits the control signal to the current control unit 140 to lower the current value of the charging current.
As for the portable electronic device 100 described above, the control unit 120 may transmit the control signal according to the working status detected by the detection unit 130, and the current control unit 140 may adjust the current value of the charging current according to the control signal. Therefore, the current value of the charging current provided to the rechargeable battery 150 may be changed according to the working status of the display module 110 and a usage status of the portable electronic device 100. As a result, not only that a problem of having a temperature of an outer casing of the portable electronic device 100 being too high in a process of charging due to operations of the display module 110 and the portable electronic device 100 may be avoided, a certain charging efficiency may also be maintained.
In summary, in the invention, the working status of the display module is obtained via the control unit, and then the charging power provided to the rechargeable battery is adjusted according to the working status via the power control unit, so as to avoid the temperature of the outer casing of the portable electronic device from being too high. In addition, the charging power provided to the rechargeable battery may further be adjusted by detecting whether the portable electronic device is in idle. When the charging power is a charging current and when the portable electronic device is already being in idle for a preset amount of time, then the control unit and the power control unit (for example a current control unit) adjust the current value of the charging current to the maximum current value in order to accelerate a charging speed of the rechargeable battery. Therefore, under a circumstance of maintaining a certain charging efficiency, the invention may avoid the problem of having the temperature of the outer casing of the portable electronic device being too high in the process of charging due to the operations of the display module and the portable electronic device.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
This application claims the priority benefits of U.S. provisional application Ser. No. 61/550,469, filed on Oct. 24, 2011. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
Number | Date | Country | |
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61550469 | Oct 2011 | US |