Under-voltage protection circuit for battery
Granted 8 Oct 2013 · 2 office actions
Current assignee: HONG FU JIN PRECISION INDUSTRY (SHENZHEN) CO., LTD. (Foxconn) · originally Foxconn Technology Group
Law firm: Law firm · Log in to unlock
Attorney: Attorney · Log in to unlock
Inventors: Hui Yin, Wei Huo, Yan Xu, Bo-Ching Lin +1 · Examiner: Danny Nguyen · AU 2836 · TC 2800
Life of the application
12 dated eventsAbstract
An under-voltage protection circuit has a power input terminal connected to a battery, a power output terminal connected to an electronic device, a switch circuit for switching the power supply circuit from the power input terminal to the power output terminal, a control circuit for controlling the switch circuit, and a control voltage generating circuit that generates a first control voltage when the switch circuit is cut off. The control circuit controls the switch circuit in accordance with the first control voltage. The control voltage generating circuit further generates a second control voltage when the switch circuit is conductive, and then the control circuit controls the switch circuit in accordance with the second control voltage.
Description
3 parts›BACKGROUND
1. Technical Field
The present disclosure relates to a protection circuit for a battery, and particularly, to an under-voltage protection circuit for a battery.
2. Description of Related Art
Many electronic devices use batteries as power supplies. To prevent over-discharging and damaging the batteries, an under-voltage protection circuit can be used to cut off the power supply track from the battery to the electronic device to remove the load from the battery when the battery voltage is lower than the working voltage of the electronic device, and thus protects the battery from being over-discharged.
The electronic device can be turned on when the battery voltage is higher than the working voltage, and monitors the battery voltage by software. However, the overall resistance of the power supply circuit is increased while the electronic device is turned on, making the voltage while the battery is under load lower than the working voltage of the electronic device. This condition may cause malfunction of the electronic device, and the software may not be able to detect the low-voltage to inform the user to turn off the electronic device. The low-voltage electronic device may crash or shut down, and may be turned on and off repeatedly but never be fully functional. Therefore, what is needed is an under-voltage protection circuit to control the power supply of the electronic device that can overcome the above-mentioned deficiency.
›BRIEF DESCRIPTION OF THE DRAWINGS
The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of an under-voltage protection circuit. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
FIG. 1 is a block diagram of an under-voltage protection circuit in accordance with an exemplary embodiment.
FIG. 2 is a circuit diagram of the under-voltage protection circuit of FIG. 1 .
›DETAILED DESCRIPTION
Referring to FIG. 1 , an under-voltage protection circuit 100 includes a power input terminal 6 , a power output terminal 7 , a feedback input terminal 7 a , a control voltage generating circuit 11 , a switch circuit 12 , and a control circuit 13 . The power input terminal 6 is connected to a battery (not shown), and the power output terminal 7 is connected to an electronic device (not shown). The control voltage generating circuit 11 can generate a first control voltage in accordance with the power input from the power input terminal 6 when a power supply circuit from the battery to the electronic device is cut off, or generate a second control voltage in accordance with a feedback voltage from the feedback input terminal 7 a when the battery supplies power to the electronic device.
The control voltage generating circuit 13 can compare the first control voltage or the second control voltage with a pre-set voltage reference of the control circuit 13 . If the first control voltage or the second control voltage is higher than the pre-set voltage reference, the control circuit 13 will control the switch circuit 12 to close the power supply circuit from the power input terminal 6 to the power output terminal 7 to allow the battery to provide power to the electronic device. If the first control voltage or the second control voltage is lower than the pre-set voltage reference, the control circuit 13 will control the switch circuit 12 to open the power supply circuit from the power input terminal 6 to the power output terminal 7 so as to cut off the power supply from the battery to the electronic device.
Referring to FIG. 2 , the control voltage generating circuit 11 is connected to the power input terminal 6 , and includes a resistor R 1 and a resistor R 2 connected in series. The first control voltage is formed at the node 14 between the resistors R 1 and R 2 and determined by the resistor R 1 , the resistor R 2 , and the voltage input from the power input terminal 6 .
The node 14 is connected to the control circuit 13 to determine whether the first control voltage is higher or lower than the pre-set voltage reference of the control circuit 13 and control the switch circuit 12 accordingly. In the present embodiment, the control circuit 13 is an adjustable precision shunt regulator with a pre-set voltage of 2.5V. The anode and cathode of the adjustable precision shunt regulator conducts if the first control voltage is higher than the pre-set voltage reference, and the anode and cathode of the adjustable precision shunt regulator does not conduct if the first control voltage is lower than the pre-set voltage reference.
The switch circuit 12 includes a switch Q 2 to switch the power supply circuit from the power input terminal 6 to the power output terminal 7 . In the present embodiment, the switch Q 2 is a NMOS field-effect transistor, and the gate of the NMOS field-effect transistor is connected to the adjustable precision shunt regulator; the drain and the source of the switch Q 2 is connected with the power input terminal 6 and the power output terminal 7 , respectively. The switch circuit 12 further includes a resistor R 6 and a capacitor C 1 connected in parallel, wherein the resistor R 6 is for adjusting the working current of the adjustable precision shunt regulator, and the capacitor C 1 is for applying time delay to the switch circuit 12 .
The control voltage generating circuit 11 is connected to the feedback input terminal 7 a , wherein the feedback input terminal 7 a is connected to a resistor R 4 and a resistor R 5 connected in series to control a switch Q 1 of the control voltage circuit 11 . When the first control voltage is higher than the voltage reference of the control circuit 13 , the power supply circuit from the power input terminal 6 to the power output terminal 7 conducts and the power output terminal 7 outputs to the electronic device as well as the feedback input terminal 7 a , and thus controls conductivity of the switch Q 1 to be conducted. When the switch Q 1 is conducted, a resistor R 3 connects to the resistor R 1 in parallel and then connect to the resistor R 2 in series, and thus the second control voltage is formed at the node 14 to replace the first control voltage. In other words, the first control voltage is determined by the resistor R 1 and the resistor R 2 , but the second control voltage is determined by the resistor R 1 , the resistor R 2 , and the resistor R 3 . In the present embodiment, the switch Q 1 is a NMOS field-effect transistor, and the gate of the NMOS field-effect transistor is connected between the resistor R 4 and the resistor R 5 ; the drain and the source of the switch Q 1 are connected with the resistor R 3 and the node 14 , respectively.
Therefore, the power supply from the power input terminal 6 to the power output terminal 7 is maintained while the battery is under load. The power supply will be maintained until the second control voltage is lower than the pre-set voltage reference.
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3 codes- H02H7/00
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