Product Overview
The HE Series Miniature Aluminum Electrolytic Capacitors are designed for high-reliability applications, offering endurance at 125 for 2000 hours with ripple current. These capacitors are RoHS 2.0 compliant and suitable for a wide range of operating temperatures and voltages. Key features include tight capacitance tolerance, low leakage current, low dissipation factor, and excellent low-temperature characteristics. They are ideal for applications requiring stable performance under demanding conditions.
Product Attributes
- Product Series: HE Series
- Product Type: Miniature Aluminum Electrolytic Capacitors
- Compliance: RoHS 2.0 Compliant
- Endurance: 125, 2000 hours with ripple current
Technical Specifications
| Item | Characteristic | Details |
|---|---|---|
| Category Temperature Range | Operating Temperature Range | -40 ~ +125 (6.3 ~ 100V.DC) -25 ~ +125 (160~450V.DC) |
| Rated Voltage Range | 10 ~ 450V.DC | |
| Capacitance Tolerance | 20%(M) (at 20, 120Hz) | |
| Leakage Current (at 20) | (After 2 minutes application of rated voltage) | 10 ~ 100V.DC: I 0.01CV or 3A, whichever is greater 160 ~ 450V.DC: I 0.02CV + 10(A) |
| Dissipation Factor (tan) (at 20, 120Hz) | tan (Max.) | 10-100V.DC: 0.20 (10V), 0.16 (16V), 0.14 (25V), 0.12 (35V), 0.10 (50V, 63V, 80V, 100V) 160-250V.DC: 0.20 350-450V.DC: 0.24 Note: For nominal capacitance exceeding 1000F, add 0.02 for each 1000F increase. |
| Low Temperature Characteristics (Max. Impedance Ratio) | (at 120Hz) | Z(-25)/Z(+20): 4 (10V), 3 (16V), 2 (25-100V), 3 (160-250V), 6 (350-450V) Z(-40)/Z(+20): 8 (10V), 6 (16V), 4 (25-100V), 6 (160-250V) |
| Endurance | (at 125) | 2000 hours with maximum allowable ripple current. Capacitance change: 20% of initial value. D.F.(tan): 200% of initial specified value. Leakage current: Initial specified value. |
| Shelf Life | (at 125, without voltage) | 1000 hours (350-450V: 500 hours). Capacitance change: 30% (10-100V.DC), 20% (160-450V.DC). D.F.(tan): 300% (10-100V.DC), 200% (160-450V.DC) of initial specified value. Leakage current: Initial specified value (10-100V.DC), 200% (160-450V.DC) of initial specified value. |
Dimensions (Unit: mm)
| D | d | F | (L < 20) | (L 20) |
|---|---|---|---|---|
| 8, 10, 13, 16 | 0.5, 0.6, 0.8 | 3.5, 5.0, 7.5 | 1.5 | 2.0 |
Ripple Current Coefficient
| Rated Voltage (V) | Frequency Coefficient | |||
|---|---|---|---|---|
| 120 Hz | 1 kHz | 10 kHz | 100 kHz | |
| 10~100 | 0.20 (4.7~100F) / 0.40 (220~470F) / 0.60 (1000F) / 0.20 (2200~3300F) / 0.30 (4700F) | 0.66 (4.7~100F) / 0.76 (220~470F) / 0.84 (1000F) / 0.60 (2200~3300F) / 0.65 (4700F) | 0.90 (4.7~100F) / 0.93 (220~470F) / 0.96 (1000F) / 0.88 (2200~3300F) / 0.90 (4700F) | 1.00 (all capacitance values) |
| 160 ~ 450 | 0.25 (4.7~33F) / 0.35 (47~150F) | 0.61 (4.7~33F) / 0.66 (47~150F) | 0.88 (4.7~33F) / 0.89 (47~150F) | 1.00 (all capacitance values) |
Standard Ratings
| WV(V) | Cap.(F) | Case Size DL (mm) | Max. ESR at 20 /100kHz () | Max. Allowable Ripple Current at 125/100kHz (mA.r.m.s) | |
|---|---|---|---|---|---|
| 10(1A) | 22 | 5X11 | - | 120 | |
| 33 | 5X11 | - | 205 | ||
| 47 | 5X11 | - | 220 | ||
| 100 | 8X12 | 0.31 | 345 | ||
| 220 | 8X12 | 0.32 | 345 | ||
| 330 | 10X13 | 0.15 | 624 | ||
| 470 | 10X13 | 0.15 | 624 | ||
| 1000 | 10X20 | 0.075 | 953 | ||
| 16(1C) | 22 | 5X11 | - | 206 | |
| 33 | 6.3X11 | - | 175 | ||
| 47 | 6.3X11 | - | 200 | ||
| 100 | 8X12 | 0.31 | 345 | ||
| 220 | 10X13 | 0.14 | 622 | ||
| 330 | 10X13 | 0.14 | 622 | ||
| 470 | 10X16 | 0.094 | 793 | ||
| 25(1E) | 22 | 5X11 | - | 206 | |
| 33 | 6.3X11 | - | 175 | ||
| 47 | 6.3X11 | - | 200 | ||
| 100 | 8X12 | 0.30 | 344 | ||
| 220 | 10X13 | 0.14 | 624 | ||
| 330 | 10X13 | 0.14 | 622 | ||
| 470 | 10X16 | 0.094 | 793 | ||
| 35(1V) | 22 | 6.3X11 | - | 175 | |
| 33 | 6.3X11 | - | 200 | ||
| 47 | 8X12 | 0.49 | 298 | ||
| 100 | 10X13 | 0.18 | 518 | ||
| 220 | 10X20 | 0.098 | 878 | ||
| 330 | 13X20 | 0.080 | 987 | ||
| 470 | 13X25 | 0.057 | 1148 | ||
| 50(1H) | 4.7 | 8X12 | 2.0 | 132 | |
| 10 | 8X12 | 1.48 | 153 | ||
| 22 | 8X12 | 0.49 | 249 | ||
| 33 | 8X12 | 0.49 | 278 | ||
| 47 | 8X12 | 0.49 | 298 | ||
| 100 | 10X13 | 0.18 | 518 | ||
| 220 | 10X20 | 0.098 | 878 | ||
| 63(1J) | 4.7 | 8X12 | 1.6 | 120 | |
| 10 | 8X12 | 1.49 | 152 | ||
| 22 | 8X12 | 1.6 | 120 | ||
| 33 | 8X12 | 1.4 | 152 | ||
| 47 | 10X13 | 0.79 | 483 | ||
| 100 | 10X16 | 0.40 | 692 | ||
| 220 | 13X20 | 0.15 | 1053 | ||
| 80(1K) | 4.7 | 8X12 | 1.48 | 153 | |
| 10 | 8X12 | 1.49 | 152 | ||
| 22 | 10X13 | 0.79 | 482 | ||
| 33 | 10X13 | 0.79 | 483 | ||
| 47 | 10X13 | 0.79 | 483 | ||
| 100 | 10X20 | 0.38 | 792 | ||
| 220 | 13X25 | 0.16 | 1242 | ||
| 100(2A) | 22 | 8X12 | 0.49 | 249 | |
| 33 | 8X12 | 0.49 | 278 | ||
| 47 | 8X12 | 0.49 | 298 | ||
| 100 | 10X13 | 0.18 | 518 | ||
| 220 | 10X20 | 0.098 | 878 | ||
| 330 | 13X20 | 0.080 | 987 | ||
| 470 | 13X25 | 0.057 | 1148 | ||
| 160(2C) | 4.7 | 10X20 | - | 54 | |
| 10 | 10X20 | - | 79 | ||
| 22 | 10X20 | - | 116 | ||
| 33 | 10X25 | - | 156 | ||
| 47 | 13X20 | - | 189 | ||
| 68 | 13X25 | - | 247 | ||
| 100 | 16X26 | - | 329 | ||
| 200(2D) | 4.7 | 10X20 | - | 54 | |
| 10 | 10X20 | - | 79 | ||
| 22 | 10X25 | - | 125 | ||
| 33 | 13X20 | - | 158 | ||
| 47 | 13X25 | - | 205 | ||
| 68 | 16X21 | - | 255 | ||
| 100 | 16X26 | - | 330 | ||
| 250(2E) | 4.7 | 10X25 | - | 86 | |
| 10 | 10X25 | - | 87 | ||
| 22 | 13X20 | - | 127 | ||
| 33 | 13X25 | - | 172 | ||
| 47 | 16X25 | - | 226 | ||
| 68 | 16X32 | - | 293 | ||
| 100 | 16X26 | - | 330 | ||
| 350(2V) | 4.7 | 10X20 | - | 79 | |
| 10 | 10X20 | - | 79 | ||
| 22 | 13X20 | - | 127 | ||
| 33 | 13X25 | - | 172 | ||
| 47 | 16X25 | - | 226 | ||
| 68 | 16X32 | - | 293 | ||
| 100 | 16X26 | - | 330 | ||
| 400(2G) | 4.7 | 10X25 | - | 87 | |
| 10 | 10X25 | - | 87 | ||
| 22 | 13X25 | - | 125 | ||
| 33 | 16X26 | - | 190 | ||
| 47 | 16X32 | - | 245 | ||
| 68 | 16X32 | - | 244 | ||
| 100 | 16X26 | - | 330 | ||
| 450(2W) | 4.7 | 10X25 | - | 59 | |
| 10 | 13X20 | - | 88 | ||
| 22 | 16X26 | - | 155 | ||
| 33 | 16X32 | - | 205 | ||
| 47 | 16X32 | - | 244 | ||
| 68 | 16X32 | - | 244 | ||
| 100 | 16X32 | - | 330 | ||
Note: The endurance of capacitors is reduced with internal heating produced by ripple current at the rate of halving the lifetime with every 5 rise. When long life performance is required in actual use, the RMS ripple current has to be reduced.
2410121317_BERYL-Electronic-Tech-HE400M2R2LO8-12TH-2A1E_C2837984.pdf
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