An LLC Converter with Capacitive Insulation
Abstract
:1. Introduction
1.1. Safety Capacitors
1.2. Test Methods and Requirements of Electrical Safety
1.3. Prior Arts of Capacitive Insulation in Power Converters
2. Proposed Circuit Configuration
3. Design Considerations
3.1. Design of Transformer T1
3.2. Design of Resonant Tank
3.3. Voltage Gain for Light and Full Load
3.4. Loss Breakdown Analysis
4. Experimental Results
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
Q1, Q2 | Main switches |
Q3, Q4 | SR switches |
Co | Output capacitor |
T1 | Main transformer |
NP | Primary winding of T1 |
NS1, NS2 | Secondary windings of T1 |
n | Turn ration of T1 |
Lr | Resonance inductor |
Llk | Leakage inductance of Np of T1 |
Lr-ext | Additional resonance inductor |
Cr | Resonant capacitor |
Cr1 | High-side resonant capacitor |
Cr2 | Low-side resonant capacitor |
Dmax | Maxima duty cycle |
Bmax | Maxima flux density of T1 |
fp | Resonant frequency of Lr, Lm, and Cr |
fs | Resonant frequency of Lr and Cr |
fsw | Switching frequency (Hz) |
QFL, QLL | Quality factor of full load and light load, respectively |
Ro | Equivalent resistance of output load |
Rac-FL, Rac-LL | Reflected load resistance of output load at full load and light load, respectively |
ω | Switching frequency (rad/sec) |
ωp | Resonance frequency of parallel resonant converter |
ωs | Resonance frequency of series resonant converter |
MFL, MLL | Voltage gain of the output and input at full load and light load, respectively |
Ae | Effective core area |
vCr | Voltage cross Cr |
vCr(min) | Minima voltage of Cr |
vCr(max) | Maxima voltage of Cr |
iCr1(pk) | Peak current of Cr1 |
vCr1 | Voltage cross Cr1 |
vCr1(min) | Minima voltage of Cr1 |
vCr1(max) | Maxima voltage of Cr1 |
iCr2(pk) | Peak current of Cr2 |
vCr2 | Voltage cross Cr2 |
vCr2(min) | Minima voltage of Cr2 |
vCr2(max) | Maxima voltage of Cr2 |
Np(min) | Minima required turns of Np |
iNp(rms) | RMS current of Np |
iNs1(rms), iNs2(rms) | RMS current of Ns1 and Ns2, respectively |
Bmax-Lm | Maxima flux density of Lm |
iLm(pk) | Peak current of Lm |
DCRNp | DCRNp resistance of Np |
DCRNs1, DCRNs2 | DCRNp resistance of Ns1 and Ns2 |
Ae(T1) | Effective core area of T1 |
Ve(T1) | Effective core volume of T1 |
Pcopp-Np | Copper loss of Np |
Pcopp-Ns | Copper loss of Ns |
Pcore-T1 | Core loss of T1 |
PCV(T1) | Unit core loss of T1 |
PT1 | Total loss of T1 |
iLr(pk) | Peak current of Lr |
NLr-ext | Winding turns of Lr-ext |
Lr-ext | Additional resonant inductor |
Ae(Lr-ext) | Effective core area of Lr-ext |
Bmax-Lr | Maxima flux density of Lr-ext |
Ve(Lr-ext) | Effective core volume of Lr-ext |
PCV(Lr-ext) | Core loss of unit volume of Lr-ext |
DCRLr | DC resistance of Lr-ext |
iLr(rms) | RMS current of Lr-ext |
Pcore-Lr-ext | Core loss of Lr-ext |
Pcopp-Lr-ext | Copper loss of Lr-ext |
PLr-ext | Total loss of Lr-ext |
Ron(Q1,Q2) | Conduction resistance of Q1 and Q2 |
Pcond(Q1,Q2) | Conduction loss of Q1 and Q2 |
Vgs(Q1,Q2) | Maxima driving voltage of Q1 and Q2 |
Qg(Q1,Q2) | Gate charge of Q1 and Q2 |
Pdriving(Q1,Q2) | Driving loss of Q1 and Q2 |
PQ1,Q2 | Total loss of Q1 and Q2 |
Ron(SR) | Conduction resistance of Q3 and Q4 |
iSR(rms) | RMS current of Q3 and Q4 |
Pcond(SR) | Conduction loss of Q3 and Q4 |
Qg(SR) | Gate charge of Q3 and Q4 |
Vgs(SR) | Maximum driving voltage of Q3 and Q4 |
Pdriving(SR) | Driving loss of Q3 and Q4 |
Pcond(SR) | Conduction loss of Q3 and Q4 |
PSR | Total loss of Q3 and Q4 |
iCo(rms) | RMS ripple current of Co at low line and high line Vin |
ESRCo | Equivalent series resistance of Co |
PCo | Total loss of Co |
Ptotal | Total loss of system |
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Subclass | Type of Insulation Bridged | Range of Rated Voltages | Peak Impulse Voltage before Endurance Test |
---|---|---|---|
Y1 | Double insulation or reinforced insulation | ≤500 V | 8.0 kV |
Y2 | Basic insulation or supplementary insulation | ≥150 V ≤300 V | 5.0 kV |
Y3 | Basic insulation or supplementary insulation | ≥150 V ≤250 V | None |
Y4 | Basic insulation or supplementary insulation | ≤150 V | 2.5 kV |
Type of Equipment | Maximum Touch Current |
---|---|
Information equipment without earth ground connection | 0.25 mA |
Hand-held information equipment with earth ground connection | 0.75 mA |
Stationary, pluggable information equipment with earth ground connection | 3.5 mA |
Insulation Level | Creepage Distance | Clearance Distance |
---|---|---|
Basic or supplementary insulation | 3.2 mm | 2.0 mm |
Double or reinforced insulation | 6.4 mm | 4.0 mm |
Parameter | Specification |
---|---|
Rated input voltage (Vin) | 370 V~390 V |
Rated output voltage (Vo) | 12 V |
Rated output current (Io) | 10 A |
Resonant frequency (fs) | 230 kHz |
Minimum switching frequency (fsw(min)) | 210 kHz |
Magnetizing inductance divided by resonant inductance (k) | 4 |
Maxima duty cycle (Dmax) | 0.42 |
Estimated efficiency (η) | 96% |
Symbols | Description |
---|---|
Cr1, Cr2 | 4.7 nF//4.7 nF, DE1E3KX472M, Murata, Kyoto, Japan, 300 Vac Class Y1 Reinforced Insulation Capacitors with IEC384-14 Safety Recognized |
Lr-ext | RM6, 142.4 μH, JPP95, A-core Inc., Jiangmen, China |
T1 | LP22, 640 μH, 28:2:2, JPP95, A-core Inc., Jiangmen, China |
Q1, Q2 | IPD60R360P7S, DPAK, Infineon AG, Warstein, Germany |
Q3, Q4 | BSC028N06NS, TDSON8, Infineon AG, Warstein, Germany |
Co | 470 μF//470 μF; Conductive Polymer Aluminum Cap, APAQ Co., Maioli, Taiwan |
LLC Controller IC | HR1001A, Monolithic Power Systems Inc., Kirkland, WA, USA |
SR Controller IC | MP6924, Monolithic Power Systems Inc., Kirkland, WA, USA |
[18] | [17] | Conventional LLC | Proposed Method | |
---|---|---|---|---|
Rated power | 36 W (12 V, 3 A) | 85 W (165 V, 0.51 A) | 150 W (12 V, 12.5 A) | 120 W (12 V, 10 A) |
Efficiency at full load | 94.5% | 85.5% | 94.1% | 94.3% |
Efficiency at half load | 94.5% | 84% | 94.3% | 93.7% |
Switching frequency at full load | 1.4 MHz | 65 kHz | ~100 kHz | ~240 kHz |
Active switches | GaN FET | Si-MOSFET | Si-MOSFET | Si-MOSFET |
Power density | 18.3 W/cm3 | Not available | 1.81 W/cm3 | 2.71 W/cm3 |
Touch current test (264 Vac, 60 Hz) | Not available | 734 μA | 10 μA | 80 μA |
High pot test (3 kVac, 60 Hz, 60 s) | Fail (Y3 cap) | Not available | Pass | Pass |
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Yau, Y.-T.; Hung, T.-L. An LLC Converter with Capacitive Insulation. Appl. Sci. 2022, 12, 4950. https://doi.org/10.3390/app12104950
Yau Y-T, Hung T-L. An LLC Converter with Capacitive Insulation. Applied Sciences. 2022; 12(10):4950. https://doi.org/10.3390/app12104950
Chicago/Turabian StyleYau, Yeu-Torng, and Tsung-Liang Hung. 2022. "An LLC Converter with Capacitive Insulation" Applied Sciences 12, no. 10: 4950. https://doi.org/10.3390/app12104950
APA StyleYau, Y. -T., & Hung, T. -L. (2022). An LLC Converter with Capacitive Insulation. Applied Sciences, 12(10), 4950. https://doi.org/10.3390/app12104950