The present invention relates to a power managing method and an electronic system applying the power managing method, and particularly relates to a power managing method that can avoid the sudden drop for the battery voltage and an electronic system applying the power managing method.
Conventionally, a portable electronic system such as a mobile phone, a laptop or a tablet pc comprises a battery to provide power supply. However, if a battery voltage of the battery suddenly drops due to loading peak, some issues may occur.
Some methods are provided to solve the above-mentioned issue. For example, increase the shutdown threshold voltage, which is a threshold voltage for controlling the electronic system to automatically shut down. If the battery voltage is lower than the shutdown threshold voltage, the electronic system automatically shut down. However, for such method, the effectiveness of the battery is limited. For example, the battery can provide a maximum battery voltage 4V, but the shutdown threshold voltage is 3.0V. That is, the electronic system will shut down if the battery voltage is lower than 3.0 v. In such case, the battery can only support the electronic system to smoothly operate for a short period of time since the shutdown threshold voltage 3.0 v is close to the maximum battery voltage 4V. Alternatively, a more powerful battery which can support a higher battery voltage can be provided to the electronic system to solve above-mentioned issue. However, the cost for the electronic system accordingly increases.
Another method for solving the above-mentioned issue is decreasing total power impedance, which may comprise battery resistance, connector resistance, and PCB (printed circuit board) trace resistance.
Also, the battery voltage V1 is larger than the battery voltage V2, and the battery voltage V2 is larger than the battery voltage V3. Additionally, the battery current I11 is larger than the battery current I12, and the battery current I12 is larger than the battery current I13. Further, the battery current I21 is larger than the battery current I22, and the battery current I22 is larger than the battery current I23.
As illustrated in
One objective of the present invention is to provide an electronic system that can avoid the sudden drop for the battery voltage.
Another objective of the present invention is to provide a power managing method that can avoid the sudden drop for the battery voltage.
One embodiment of the present invention discloses an electronic system, which comprises: a battery; at least one electronic device; and a power managing unit, arranged for detecting a battery voltage of the battery, and arranged for limiting at least one performance of the at least one electronic device when the battery voltage is not higher than a first low threshold voltage.
Another embodiment of the present invention discloses an electronic system, which comprises: a battery; at least one electronic device; and a power managing unit, arranged for determining if remaining power of the battery is not higher than a threshold value, and arranged for limiting at least one performance of the at least one electronic device when the remaining power is not higher than a threshold value.
Still another embodiment of the present invention discloses an electronic system, which comprises: a battery; at least two electronic devices; and a power managing unit, arranged for performing: (a) determining if at least two of the electronic devices in a predetermined list will simultaneously operate; and (b) limiting at least one performance of at least one the electronic devices if least two of the electronic devices in the predetermined list will simultaneously operate.
Corresponding power managing methods can be acquired based on above-mentioned embodiments. The steps thereof can be easily understood according to above-mentioned embodiments, thus are omitted for brevity here.
In view of above-mentioned embodiments, a peak for the total battery current can be avoided since a total battery current provided to electronic devices can be well controlled. By this way, the sudden drop issue for the battery voltage can be improved.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
A power managing mechanism provided by the present invention will be described below. The power managing mechanism comprises a passive mode depicted in
As illustrated in
In one embodiment, if the performance of the electronic device is already limited as depicted in the description of
In another embodiment, if the performance of the electronic device is limited, the power managing unit 301 detects if the battery voltage falls down to a second low threshold value VL2 (as illustrated in
In one embodiment, the power managing unit 301 reduces at least one following parameter of the electronic device D1, D2, D3, D4 to limit the performance of the electronic device D1, D2, D3, and D4: an operating voltage, an operating frequency, a battery current and a data transmitting power. In such embodiment, the above-mentioned operation “to a level lower than a level of the embodiment” depicted in
Additionally, in one embodiment, the power managing unit 301 comprises a power detecting unit 305 for detecting the battery voltage Vbat, and executes a power managing program 307 to control the performances of the electronic devices, but not limited. Also, in one embodiment, the electronic device D1 is a CPU (central processing unit), the electronic device D2 is a communication device such as a modem or a Bluetooth device, the electronic device is a flash for a camera device, and the electronic device D4 is a backlight. However, the scope of the present invention is not limited to these embodiments.
Step 601
The electronic system normally operates. That is, the electronic system operates based on default settings.
Step 603
Enable low battery voltage detecting. That is, start to determine if the battery voltage is not higher than a low threshold voltage. In such case, the low threshold voltage is a first low threshold voltage VL1 (3.25 v in this example), which is set by the step 621.
Step 605
Trigger a first level low battery voltage state if the battery voltage Vbat is not higher than the first low threshold voltage VL1.
Step 607
Enable a first level low power throttling. That is, limit at least one performance of the electronic device for a first level.
Step 609
Limit the performance for the electronic devices listed in a predetermined list. In one embodiment, the predetermined list lists the electronic devices consuming a large battery current, for example, a CPU, a GPU (graphic processing unit), a flash (ex. for a camera device), a communication device, or a panel.
Step 611
Set the low threshold voltage to a second low threshold voltage VL2 (3.0 v in this example).
Step 613
Enable high battery voltage detecting. That is, start to determine if the battery voltage rises to be higher than or equal to a high threshold voltage VH. Please note the battery voltage is also detected to determine if the battery voltage falls down to be lower than or equal to the low threshold voltage, which is now the second low threshold voltage VL2.
If the battery voltage rises to be higher than or equal to (i.e. not lower) than a high threshold voltage VH, then go to the step 619. On the opposite, if the battery voltage falls down to be lower than or equal to (i.e. not higher) than the second low threshold voltage VL2, then go to the step 615.
Step 615
Trigger a second level low battery voltage state if the battery voltage Vbat is not higher than the second low threshold voltage VL2.
Step 617
Enable a second level low power throttling. That is, limit at least one performance of the electronic device for a second level. The second level is higher than the first level of the step 605. In other words, the performances of the electronic devices are limited more strictly in the step 617 than in the step 607. After the step 617, goes to the step 609.
Step 619
Trigger a high battery voltage state. That is, the battery voltage Vbat is not lower than the high threshold voltage VH.
Step 621
Set the low voltage level to the first low threshold voltage VL1 (3.25 v in this example).
Step 623
Disable low power throttling. That is, do not limit the performances for the electronic devices.
A power managing method according to above-mentioned embodiments can be summarized as: a power managing method, applied to an electronic system comprising a battery and at least one electronic device, comprising: (a) detecting a battery voltage of the battery; and (b) limiting at least one performance of the at least one electronic device when the battery voltage is not higher than a first low threshold voltage. Other detail steps can be acquired according to above-mentioned embodiments, thus are omitted for brevity here.
Embodiments for the active mode will be described as below . . .
Step 701
Acquire remaining power information of the battery.
Step 703
Electronic devices perform requested functions. For example, if the electronic device is a CPU, the electronic device process requested tasks.
Step 705
Determine if remaining power of the battery is lower than or equal to (i.e. not higher) a threshold value (ex. 15% of the full battery power). If yes, go to step 707. If not, do not change the operating frequency of the CPU and goes back to the step 703.
Step 707
Reduce the operating frequency of the CPU.
Please note the steps depicted in
The following parameters can be reduced to limit at least one performance of the at least one electronic device: an operating voltage, an operating frequency, a battery current and a data transmitting power.
The embodiment in
Step 801
A user enables a preview mode of a camera device. For example, a mobile phone comprises a camera device, and the user activates the camera, uses the screen for the mobile phone to preview a photo that the camera will shot.
Step 803
The user enables the camera device to prepare shooting. For example, the user touches the screen to focus on an object that will be shot by the camera device. A flash, such as an LED (light emitting diode) included in the mobile phone, may also emit light if a photo is shot.
Step 805
Determine if a battery current provided to the flash for emitting light will be larger than or equal to (i.e. not smaller) than a threshold current. If yes, go to step 807. If not, go to step 806.
Step 806
Do not change the performance of the communication device.
Step 807
Limit the performance of the communication device. In one embodiment, reduce the data transmitting power of the communication device to limit the performance of the communication device.
Step 809
The flash emits light.
Step 811
The camera shoots a photo.
Step 813
The flash stops emitting light.
Step 815
Recover the transmitting power of the communication device.
For the embodiment depicted in
Please note the embodiment in
In view of above-mentioned embodiments, a peak for the total battery current can be avoided since a total battery current provided to electronic devices can be well controlled. By this way, the sudden drop issue for the battery voltage can be improved.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
This application claims the benefit of U.S. Provisional Application No. 61/981,294, filed on Apr. 18, 2014, the contents of which are incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2015/076525 | 4/14/2015 | WO | 00 |
Number | Date | Country | |
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61981294 | Apr 2014 | US |