Protective circuit for loads
Granted 5 May 2015 · no office action yet
Current assignee: Hongfujin Precision Electronics (Tianjin) Co., Ltd. · originally Foxconn Technology Group
Law firm: Law firm · Log in to unlock
Attorney: Attorney · Log in to unlock
Inventors: Hong-Ru Zhu, Wan-Hong Zhang · Examiner: Dharti Patel · AU 2836 · TC 2800
Life of the application
7 dated eventsAbstract
A protective circuit includes a first jack, a second jack, a first control unit, a detecting circuit, and a logic control circuit. The first jack is connected to a power supply, and includes a grounding wire and a live wire. The second jack is connected to a load, and includes a grounding wire and a live wire. The first control unit includes a first relay, the first relay is connected to the live wire of the first jack and the live wire of the second jack. The detecting circuit detects whether the grounding wire of the first jack is grounded, and outputs indication signals accordingly. The logic control circuit outputs a control signal to the first control unit according to the indication signals to turn on/off the first relay, for allowing the live wire of the first jack to be connected to/disconnected from the live wire of the second jack.
Description
5 parts›BACKGROUND
1. Technical Field
The disclosure generally relates to protective circuits, and particularly to a protective circuit for a load.
2. Description of the Related Art
Live wires, neutral wires, and grounding wires are electronically connected between a power supply and a load (e.g., a personal computer) to power the load. A first group of capacitors are electronically connected between the neutral wire and the grounding wire, and a second group of capacitors are electronically connected between the live wire and the grounding wire. When the grounding wire is grounded, the first and second groups of capacitors can filter voltage output from the power supply. When the grounding wire is not grounded, the first and second group of capacitors may generate alternating current (AC) having a high voltage (for example, 110V) because of capacitive coupling, and this may damage the load.
Therefore, there is room for improvement within the art.
›BRIEF DESCRIPTION OF THE DRAWINGS
Many aspects of the present embodiment can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present embodiment.
FIGS. 1-2 are a circuit diagram of a protective circuit for a load, according to a first exemplary embodiment.
FIG. 3 is a circuit diagram of a protective circuit for a load, according to a second exemplary embodiment.
›DETAILED DESCRIPTION · 1 of 3
FIGS. 1-2 show a protective circuit 100 , according to a first exemplary embodiment. The protective circuit 100 is electronically connected between a power supply 200 and a load (e.g., a personal computer) 300 .
The protective circuit 100 includes a first jack J 1 , a second jack J 2 , a first control unit 10 , a second control unit 20 , a detecting circuit 30 , a logic control circuit 40 , and a filtering circuit 50 .
The first jack J 1 is electronically connected to the power supply 200 to receive power (a voltage of the power is about 220V in one example). In addition, a neutral wire N 1 , a grounding wire G 1 , and a live wire L 1 are electronically connected to the first jack J 1 . The second jack J 2 is electronically connected to the load 300 , and a neutral wire N 2 , a grounding wire G 2 , and a live wire L 2 are electronically connected to the second jack J 2 . The grounding wires G 1 and G 2 are interconnected, both of the live wires L 1 and L 2 are electronically connected to the first control unit 10 . Both of the neutral wires N 1 and N 2 are electronically connected to the second control unit 20 .
The first control unit 10 controls the live wire L 1 to be electronically connected to/disconnected from the live wire L 2 . The first control unit 10 includes a first metal oxide semiconductor field effect transistor (MOSFET) Q 1 , a first diode DOL and a first relay RLY 1 . The first MOSFET Q 1 includes a gate G 1 , a source S 1 , and a drain D 1 . The gate G 1 is electronically connected to the logic control circuit 40 , the source S 1 is connected to ground, the drain D 1 is electronically connected to an anode of the first diode DO 1 and a cathode of the first diode DO 1 is electronically connected to a power V of about 5V. The first relay RLY 1 includes an induction coil LO 1 and a switch SW 1 . The first diode DO 1 is further electronically connected between two ends of the induction coil LO 1 , and the switch SW 1 is electronically connected between the live wires L 1 and L 2 . When the first MOSFET Q 1 is turned on, the induction coil LO 1 is activated to allow the switch SW 1 to turn on, and then the live wires L 1 and L 2 are interconnected. When the first MOSFET Q 1 is turned off, the induction coil LO 1 is inactivated to allow the switch SW 1 to turn off, and then the live wires L 1 and L 2 are disconnected from each other.
The second control unit 20 controls the neutral wire N 1 to be electronically connected to/disconnected from the neutral wire N 2 . The second control unit 20 includes a second MOSFET Q 2 , a second diode D 02 , and a second relay RLY 2 . The second MOSFET Q 2 includes a gate G 2 , a source S 2 , and a drain D 2 . The gate G 2 is electronically connected to the logic control circuit 40 , the source S 2 is connected to ground, the drain D 2 is electronically connected to an anode of the second diode D 02 , and a cathode of the second diode DO 2 is electronically connected to the power V. The second relay RLY 2 includes an induction coil LO 2 and a switch SW 2 . The second diode DO 2 is further electronically connected between two ends of the induction coil L 02 , and the switch SW 2 is electronically connected between the neutral wires N 1 and N 2 . When the second MOSFET Q 2 is turned on, the induction coil LO 2 is activated to allow the switch SW 2 to turn on, and then the neutral wires N 1 and N 2 are interconnected. When the second MOSFET Q 2 is turned off, the induction coil LO 2 is inactivated to allow the switch SW 2 to turn off, and then the neutral wires N 1 and N 2 are disconnected from each other.
The detecting circuit 30 detects whether the grounding wire G 1 is grounded. If the grounding wire G 1 is grounded, the detecting circuit 30 outputs an indication signal ID 1 . If the grounding wire G 1 is not grounded, the detecting circuit 30 outputs an indication signal ID 2 . The detecting circuit 30 includes a third diode D 03 , a fourth diode D 04 , a fifth diode D 05 , and sixth diode D 06 , a first optical coupler U 1 , a second optical coupler U 2 , a first capacitor C 1 , a second capacitor C 2 , and resistors R 1 -R 4 .
An anode of the third diode DO 3 is connected to ground, and is electronically connected to the grounding wire G 1 . The first optical coupler U 1 includes a lighting component (not labeled) and a photoreceptor (not labeled). A first end of the lighting component of the first optical coupler U 1 is electronically connected to the live wire L 1 , and a second end of the lighting component of the first optical coupler U 1 is electronically connected to a cathode of the third diode DO 3 via the resistor R 1 . A first end of the photoreceptor of the first optical coupler U 1 is electronically connected to the power V, the first capacitor C 1 , the resistor R 2 , and the fourth diode DO 4 are electronically connected between a second end of the photoreceptor of the first optical coupler U 1 and ground in parallel. The first capacitor C 1 is configured to output the indication signal D 1 .
An anode of the fifth diode DO 5 is connected to ground, and is electronically connected to the grounding wire G 1 . The second optical coupler U 2 includes a lighting component (not labeled) and a photoreceptor (not labeled). A first end of the lighting component of the second optical coupler U 2 is electronically connected to the neutral wire L 1 , and a second end of the lighting component of the second optical coupler U 2 is electronically connected to a cathode of the fifth diode DO 5 via the resistor R 3 . A first end of the photoreceptor of the second optical coupler U 2 is electronically connected to the power V, the second capacitor C 2 , the resistor R 4 , and the sixth diode DO 6 are electronically connected between a second end of the photoreceptor of the second optical coupler U 2 and ground in parallel. The second capacitor C 2 is configured to output the indication signal D 2 .
FIG. 2 shows that the logic control circuit 40 is electronically connected to the detecting circuit 30 , and outputs a control signal CT to the first control unit 10 and the second control unit 20 according to the indication signals ID 1 and ID 2 . In the first exemplary embodiment, the logic control circuit 40 includes a third MOSFET Q 3 , a fourth MOSFET Q 4 , a fifth MOSFET Q 5 , a sixth MOSFET Q 6 , a seventh MOSFET Q 7 , and resistors R 5 -R 15 . The third MOSFET Q 3 includes a gate G 3 , a source S 3 , and a drain D 3 . The fourth MOSFET Q 4 includes a gate G 4 , a source S 4 , and a drain D 4 . The fifth MOSFET Q 5 includes a gate G 5 , a source S 5 , and a drain D 5 . The sixth MOSFET Q 6 includes a gate G 6 , a source S 6 , and a drain D 6 . The seventh MOSFET Q 7 includes a gate G 7 , a source S 7 , and a drain D 7 .
›DETAILED DESCRIPTION · 2 of 3
The gate G 3 is electronically connected to a cathode of the fourth diode DO 4 via the resistor R 5 , the source S 3 is connected to ground, and the drain D 3 is electronically connected to the power V via the resistor R 6 . The gate G 4 is electronically connected to the drain D 3 via the resistor R 7 , the source S 4 is connected to ground, and the drain D 4 is electronically connected to the power V via the resistor R 8 . The gate G 5 is electronically connected to a cathode of the sixth diode DO 6 via the resistor R 9 , the source S 5 is connected to ground, and the drain D 5 is electronically connected to the power V via the resistor R 10 . The gate G 6 is electronically connected to the drain D 5 via the resistor R 11 , the source S 6 is connected to ground, and the drain D 6 is electronically connected to the power V via the resistor R 12 . The gate G 7 is electronically connected to the drain D 4 and the drain D 6 via the resistor R 13 , the source S 7 is connected to ground, the drain D 7 is electronically connected to the power V via the resistor R 14 , and is electronically connected to the gate G 1 of the first MOSFET Q 1 and the gate G 2 of the second MOSFET Q 2 . A node W 1 is formed between the drain D 4 , the drain D 6 , and the gate G 7 .
The filtering circuit 50 includes a third capacitor C 3 and a fourth capacitor C 4 . The third capacitor C 3 is electronically connected between the neutral wire N 1 and the grounding wire G 1 . The fourth capacitor C 4 is electronically connected between the live wire L 1 and the grounding wire G 1 .
When the grounding wire G 1 is grounded, the lighting component of the first optical coupler U 1 is turned on by a voltage difference between the live wire L 1 and the grounding wire G 1 (a voltage of the live wire L 1 is about +220V, and a voltage of the grounding wire L 1 is about 0V), and then the first capacitor C 1 is charged. When the first capacitor C 1 is discharging, the first capacitor C 1 outputs the indication signal ID 1 with high voltage (e.g., 3V). On the other hand, the second optical coupler U 2 is disabled (turned off) because of no voltage difference between the neutral wire N 1 and the grounding wire G 1 , thus, the second capacitor C 2 outputs the indication signal ID 2 with a low voltage (e.g., 0.3V). Then, the third MOSFET Q 3 receives the indication signal ID 1 , and is turned on accordingly, and the fourth MOSFET Q 4 is turned off. The fifth MOSFET Q 5 receives the indication signal ID 2 , and is turned off accordingly, and the sixth MOSFET Q 6 is turned on. Thus, a voltage of the node W 1 may be pulled down (for example, the voltage of the node W 1 is about 0.5V), and then the seventh MOSFET Q 7 is turned off. Therefore, the control signal CT is a high voltage (e.g., 3V), and both the first MOSFET Q 1 and the second MOSFET Q 2 are turned on. The switch SW 1 of the first relay RLY 1 is turned on, and the live wires L 1 and L 2 are interconnected. The switch SW 2 of the second relay RLY 2 is turned on, and the neutral wires N 1 and N 2 are interconnected. Thus, the load 300 can be powered by the power supply 200 .
When the grounding wire G 1 is not grounded, the lighting component of the first optical coupler U 1 is turned on by the voltage difference between the live wire L 1 and the grounding wire G (the voltage of the live wire L 1 is about −220V, and the voltage of the grounding wire L 1 is about +110V), and then the first capacitor C 1 is charged. When the first capacitor C 1 is discharging, the first capacitor C 1 outputs the indication signal ID 1 with high voltage (e.g., 3V). On the other hand, the second optical coupler U 2 is turned on by a voltage difference between the neutral wire N 1 and the grounding wire G 1 (the voltage of the neutral wire N 1 is about 0V, and the voltage of the grounding wire L 1 is about +110V), and then the second capacitor C 2 is charged. When the second capacitor C 2 is discharging, the second capacitor C 2 outputs the indication signal ID 2 with high voltage (e.g., 3V). Then, the third MOSFET Q 3 and the fifth MOSFET Q 5 are turned on, and the fourth MOSFET Q 4 and the sixth MOSFET Q 6 are turned off. Thus, the voltage of the node W 1 may be pulled up (for example, the voltage of the node W 1 is about 3V), and then the seventh MOSFET Q 7 is turned on. Therefore, the control signal CT is a low voltage (e.g., 0.5V), and both the first MOSFET Q 1 and the second MOSFET Q 2 are turned off. The switch SW 1 of the first relay RLY 1 is turned off, and the live wires L 1 and L 2 are disconnected from each other. The switch SW 2 of the second relay RLY 2 is turned off, and the neutral wires N 1 and N 2 are disconnected from each other. Thus, the power supply 200 will not power the load 300 to protect the load 300 from being damaged.
FIG. 3 shows a protective circuit 400 , according to a second exemplary embodiment. The protective circuit 400 includes a first jack J 11 , a second jack J 22 , a first control unit 410 , a second control unit 420 , a detecting circuit 430 , a logic control circuit 440 , and a filtering circuit 450 . The first control unit 410 and the second control unit 420 are substantially the same as the first control unit 10 and the second control unit 20 of the first exemplary embodiment, respectively. The detecting circuit 430 and the filtering circuit 450 are the equivalents of the detecting circuit 30 and the filtering circuit 50 of the first exemplary embodiment, respectively.
In the second exemplary embodiment, the logic control circuit 440 is different as it is a NAND gate, and includes a first input pin I 1 , a second input pin I 2 , and an output pin OUT. The first input pin I 1 is electronically connected to a cathode of the fourth diode DO 4 of the detecting circuit 430 . The second input pin I 2 is electronically connected to a cathode of the sixth diode DO 6 of the detecting circuit 430 , and the output pin OUT is electronically connected to the gate G 1 of the first MOSFET Q 1 and the gate G 2 of the second MOSFET Q 2 . A function of the logic control circuit 440 is substantially the same as the logic control circuit 40 of the first exemplary embodiment.
›DETAILED DESCRIPTION · 3 of 3
In other embodiments, the second control unit 20 / 420 can be omitted, and the neutral wires N 1 and N 2 can be directly interconnected.
The protective circuit 100 detects whether the grounding wire G 1 is grounded via the detecting circuit 30 , and outputs the indication signals ID 1 and ID 2 accordingly. The logic control circuit 40 outputs the control signal CT to the first control unit 10 and the second control unit 20 according to the indication signals ID 1 and ID 2 . Thus, the first control unit 10 can control the live wire L 1 to be electronically connected to/disconnected from the live wire L 2 , and the second control unit 20 can control the neutral wire N 1 to be electronically connected to/disconnected from the neutral wire N 2 . Therefore, if the grounding wire G 1 is grounded, the power supply 200 can power the load 300 . If the grounding wire G 1 is not grounded, the power supply 200 will not power the load 300 to protect the load 300 from being damaged.
Although numerous characteristics and advantages of the exemplary embodiments have been set forth in the foregoing description, together with details of the structures and functions of the exemplary embodiments, the disclosure is illustrative only, and changes may be made in detail, especially in the matters of arrangement of parts within the principles of disclosure to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
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6 codes- H02H5/10
- H02H9/04
- H02H3/20
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