Inrush current limiting and surge protection circuit and system
11489438 · 2022-11-01
Assignee
Inventors
Cpc classification
H02M1/0009
ELECTRICITY
H02M1/0038
ELECTRICITY
H02M1/32
ELECTRICITY
H02M7/062
ELECTRICITY
Y02B70/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A power conversion device is provided. The power conversion device includes a bulk capacitor, a current limiting resistor in series with the bulk capacitor, and an inrush current control device configured to bypass the current limiting resistor when activated. The power conversion device also includes a bypass device in parallel with the current limiting resistor, configured to provide a low-resistance path to the bulk capacitor during a power surge.
Claims
1. A power device comprising: a bulk capacitor; a current limiting resistor in series with the bulk capacitor; an inrush current control device in parallel with the current limiting resistor, configured to bypass the current limiting resistor when activated; and a bypass device in parallel with the current limiting resistor, configured to provide a low- resistance path to the bulk capacitor during a power surge; wherein the bypass device is selected from the group of: gas discharge tubes, spark gaps, transient voltage suppressors, and metal oxide varistors or voltage dependent resistors.
2. The power of claim 1, wherein the bypass device is a gas discharge tube.
3. The power of claim 2, wherein the gas discharge tube has a direct current breakdown voltage greater than a maximum rectified input voltage of the power device and less than a rated voltage of a power switching transistor within the power device.
4. The power of claim 1, wherein the bypass device is a spark gap.
5. The power of claim 1, wherein the bypass device is a transient voltage suppressor.
6. The power device of claim 1, wherein the bypass device is a metal oxide varistor or voltage dependent resistor.
7. The power device of claim 1, wherein the bypass device comprises two or more devices selected from the group of: gas discharge tubes, spark gaps, transient voltage suppressors, and metal oxide varistors or voltage dependent resistors.
8. The power device of claim 1, wherein the inrush current control device comprises a device selected from the group of: relays, metal-oxide-semiconductor field-effect transistors, and insulated-gate bipolar transistors.
9. The power device of claim 1, further comprising: an input metal oxide varistor electrically coupled between two input ports; an electromagnetic interference filter electrically coupled with the input ports; and a power factor correction circuit electrically coupled with the electromagnetic interference filter.
10. The power device of claim 9, wherein the bypass device is configured to protect a power switching transistor within the power factor correction circuit.
11. The power device of claim 9, wherein the current limiting resistor, inrush current control device, and bypass device are electrically coupled with the input ports between the input metal oxide varistor and the electromagnetic interference filter.
12. The power device of claim 9, wherein the power factor correction circuit comprises a bridgeless power factor correction converter.
13. The power device of claim 9, wherein the power factor correction circuit includes a bridge rectifier.
14. An inrush current limiting and surge protection circuit comprising: a bulk capacitor; a current limiting resistor in series with the bulk capacitor and configured to: receive a current from a bridge rectification device; and supply the current to the bulk capacitor; an inrush current control device in parallel with the current limiting resistor, configured to bypass the current limiting resistor and provide the current to the bulk capacitor when activated; and a bypass device in parallel with the current limiting resistor, configured to provide a low-resistance path to provide power surge energy from the bridge rectification device to the bulk capacitor during a power surge.
15. The inrush current limiting and surge protection circuit of claim 14, wherein the bypass device is a gas discharge tube.
16. The inrush current limiting and surge protection circuit of claim 15, wherein the gas discharge tube has a direct current breakdown voltage greater than a maximum rectified input voltage of the power conversion device and less than a rated voltage of a power switching transistor within the power conversion device.
17. The inrush current limiting and surge protection circuit of claim 14, wherein the bypass device is a spark gap.
18. The inrush current limiting and surge protection circuit of claim 14, wherein the bypass device is a transient voltage suppressor.
19. The inrush current limiting and surge protection circuit of claim 14, wherein the bypass device is a metal oxide varistor or voltage dependent resistor.
20. The inrush current limiting and surge protection circuit of claim 14, wherein the bypass device comprises two or more devices selected from the group of: gas discharge tubes, spark gaps, transient voltage suppressors, and metal oxide varistors or voltage dependent resistors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Many aspects of the disclosure can be better understood with reference to the following drawings. While several implementations are described in connection with these drawings, the disclosure is not limited to the implementations disclosed herein. On the contrary, the intent is to cover all alternatives, modifications, and equivalents.
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DETAILED DESCRIPTION
(9) The example embodiments described herein illustrate different methods for limiting inrush current and providing surge protection for power converter devices. These embodiments limit inrush current at power on and provide power surge protection to power conversion devices when they are connected to the AC grid but the AC power is off.
(10)
(11) In this prior art example, inrush current limiting components current limiting resistor R1 151 and relay K1 161 are placed in series with bulk capacitor C5 115. In this example relay K1 161 acts as an inrush current control device. However, other examples may use metal-oxide-semiconductor field-effect transistors (MOSFETs), insulated-gate bipolar transistors (IGBTs), and the like, alone or in combination, as inrush current control devices. Initially the voltage across bulk capacitor C5 115 is zero. When input power is applied to the power conversion device, inrush current charges bulk capacitor C5 115 until the voltage of bulk capacitor C5 115 reaches the peak of the rectified input voltage.
(12) During the positive half cycle, inrush current passes through diode D1 121, diode D5 125, and current limiting resistor R1 151 to charge bulk capacitor C5 115 and returns through diode D3 123. During the negative half cycle, inrush current passes through diode D2 122, diode D5 125, and current limiting resistor R1 151 to charge bulk capacitor C5 115 and returns through diode D4 124.
(13) Current limiting resistor R1 151 limits the inrush current. Once bulk capacitor C5 115 is fully charged, and the internal circuit starts to operate, relay K1 161 is activated to short current limiting resistor R1 151 to reduce power loss.
(14) Other components of this exemplary circuit include metal oxide varistor MOV1 107 connected between the line 102 and neutral 104 inputs to clamp voltage spikes across the inputs. Additionally, metal oxide varistors MOV2 108 and MOV3 109, along with gas discharge tube GDT1 105 are connected across the inputs in a configuration designed to clamp common mode power surges at the input lines. Typically, the metal oxide varistors (MOVs) or voltage dependent resistors (VDRs) used in power conversion devices are selected to comply with the Annex G8.2 requirements of IEC Standard IEC62368-1 or the Annex Q requirements of ITE Standard IEC61050-1, which states that the rated maximum continuous voltage of the MOV/VDR should be at least 125% of the upper rated voltage of the power conversion device.
(15) For example, if the power conversion device is rated for 100-240V AC, the MOV/VDR rating should be at least 300V AC. If the power conversion device is rated for 100-250V AC, the MOV/VDR rating should be at least 312.5V AC. To meet the ITE Standard requirement, the clamping voltage of the appropriate MOV/VDR is greater than 700V as illustrated below in Table 1.
(16) TABLE-US-00001 TABLE 1 Maximum Maximum Varistor Voltage Continuous Clamping (@ 1 mA DC) Voltage Voltage (8/20 μs) V.sub.1 mA V.sub.AC(rms) V.sub.DC V.sub.P I.sub.P (V) (V) (V) (V) (A) 470 (423~517) 300 385 775 50 510 (459~561) 320 410 845 50
(17) This exemplary circuit also includes an electromagnetic interference (EMI) filter comprising capacitors C1 111, C2 112, C3 113, and C4 114, along with inductor L2 132. Capacitors C1 111 and C4 114 are X capacitors configured to reduce differential mode noise, while capacitors C2 112 and C3 112 are Y capacitors configured to reduce common mode noise.
(18) If power conversion device 100 is connected to the AC grid, but the AC is off or disabled, then the internal circuit is not able to operate and relay K1 161 remains open. If a lightning surge couples to the AC lines when power conversion device 100 is in that state, the power surge (due to the lightning) is only clamped by the MOVs/VDRs and GDT at the input interface, and power switching transistor Q1 141 is at risk of damage.
(19) In this scenario the clamping voltage is high and the residual power surge energy is not absorbed by bulk capacitor C5 115 since relay K1 161 is open. Power switching transistor Q1 141 is exposed to that residual power surge voltage, resulting in electrical over stress failure of power switching transistor Q1 141.
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(21) During normal power up, power converter circuit 200 operates very similar to power converter circuit 100 from
(22) During the positive half cycle, inrush current passes through diode D1 121, diode D5 125, and current limiting resistor R1 151 to charge bulk capacitor C5 115 and returns through diode D3 123. During the negative half cycle, inrush current passes through diode D2 122, diode D5 125, and current limiting resistor R1 151 to charge bulk capacitor C5 115 and returns through diode D4 124.
(23) Current limiting resistor R1 151 limits the inrush current. Once bulk capacitor C5 115 is fully charged, and the internal circuit starts to operate, relay K1 161 is activated to short current limiting resistor R1 151 to reduce power loss. In this example relay K1 161 acts as an inrush current control device. However, other examples may use MOSFETs, insulated-gate bipolar transistors (IGBTs), and the like, alone or in combination as inrush current control devices.
(24) If power conversion device 200 is connected to the AC grid, but the AC is off or disabled, then the internal circuit is not able to operate and relay K1 161 remains open. If a lightning surge couples to the AC lines when power conversion device 200 is in that state, the power surge (due to the lightning) is first clamped by the MOVs/VDRs and GDT at the input interface. The residual power surge then activates bypass device BD1 210, which then provides a low-resistance path to bulk capacitor C5 115. The residual power surge energy passes through bypass device BD1 210 and is absorbed by bulk capacitor C5 115 even though relay K1 161 is open. Thus, power switching transistor Q1 141 is protected from the power surge energy.
(25) Examples of bypass device BD1 210 are illustrated in
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(27) Here, the power factor correction circuit includes power switching transistors Q1 341 and Q2 342, along with inductor L1 331, and diodes D5 325 and D6 326.
(28) During normal power up, power converter circuit 300 operates very similar to power converter circuit 200 from
(29) During the positive half cycle, inrush current passes through diode D1 121 and current limiting resistor R1 151 to charge bulk capacitor C5 115 and returns through diode D3 123. During the negative half cycle, inrush current passes through diode D2 122 and current limiting resistor R1 151 to charge bulk capacitor C5 115 and returns through diode D4 124.
(30) Current limiting resistor R1 151 limits the inrush current. Once bulk capacitor C5 115 is fully charged, and the internal circuit starts to operate, relay K1 161 is activated to short current limiting resistor R1 151 to reduce power loss. In this example relay K1 161 acts as an inrush current control device. However, other examples may use MOSFETs, insulated-gate bipolar transistors (IGBTs), and the like, alone or in combination as inrush current control devices.
(31) If power conversion device 300 is connected to the AC grid, but the AC is off or disabled, then the internal circuit is not able to operate and relay K1 161 remains open. If a lightning surge couples to the AC lines when power conversion device 300 is in that state, the power surge (due to the lightning) is first clamped by the MOVs/VDRs and GDT at the input interface. The residual lightning surge then activates bypass device BD1 310, which then provides a low-resistance path to bulk capacitor C5 115. The residual lightning surge energy passes through bypass device BD1 310 and is absorbed by bulk capacitor C5 115 even though relay K1 161 is open. Thus, power switching transistors Q1 341 and Q2 134 are protected from the lightning surge energy.
(32) Examples of bypass device BD1 310 are illustrated in
(33) While the examples illustrated in
(34) Also, while the examples illustrated in
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(38) Note that further embodiments of the present invention may use any of these bypass devices, alone or in combination, within specific applications to provide inrush current limiting and lightning surge protection.
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(40) Here, the power factor correction circuit includes power switching transistors Q1 541 and Q2 542, along with inductor L1 531, and diodes D3 523 and D4 524.
(41) During normal power up, power converter circuit 500 operates very similar to power converter circuit 300 from
(42) During the positive half cycle, inrush current passes through diode D1 121 and current limiting resistor R1 151 to charge bulk capacitor C5 115 and returns through diode D4 524. During the negative half cycle, inrush current passes through diode D3 523 and current limiting resistor R1 151 to charge bulk capacitor C5 115 and returns through diode D2 522.
(43) Current limiting resistor R1 151 limits the inrush current. Once bulk capacitor C5 115 is fully charged, and the internal circuit starts to operate, relay K1 161 is activated to short current limiting resistor R1 151 to reduce power loss. In this example relay K1 161 acts as an inrush current control device. However, other examples may use MOSFETs, insulated-gate bipolar transistors (IGBTs), and the like, alone or in combination as inrush current control devices.
(44) If power conversion device 500 is connected to the AC grid, but the AC is off or disabled, then the internal circuit is not able to operate and relay K1 161 remains open. If a lightning surge couples to the AC lines when power conversion device 500 is in that state, the power surge (due to the lightning) is first clamped by the MOVs/VDRs and GDT at the input interface. The residual power surge then activates bypass device BD1 510, which then provides a low-resistance path to bulk capacitor C5 115. The residual power surge energy passes through bypass device BD1 510 and is absorbed by bulk capacitor C5 115 even though relay K1 161 is open. Thus, power switching transistors Q1 541 and Q2 542 are protected from the power surge energy.
(45) Examples of bypass device BD1 510 are illustrated in
(46) While the examples illustrated in
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(48) MOSFET Q2 642 is placed in parallel with bulk resistor R1 151 and bypass device BD1 610, and operates similarly to relay K1 161 of
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(50) MOSFET Q2 742 is placed in parallel with bulk resistor R1 151, bypass device BD1 710, and relay K1 761. Here both MOSFET Q2 742 and relay K1 761 operate together in parallel as an inrush current control device.
(51) The included descriptions and figures depict specific embodiments to teach those skilled in the art how to make and use the best mode. For the purpose of teaching inventive principles, some conventional aspects have been simplified or omitted. Those skilled in the art will appreciate variations from these embodiments that fall within the scope of the invention. Those skilled in the art will also appreciate that the features described above may be combined in various ways to form multiple embodiments. As a result, the invention is not limited to the specific embodiments described above, but only by the claims and their equivalents.