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1 4/5 PED-ST FEATURES Polarized aluminium electrolytic capacitors, non-solid Large types, cylindrical aluminium case, insulated with a blue sleeve Also available in bolt version (PED-STB) Pressure relief in the sealing Charge and discharge proof Extremely low ESR and ESL allowing very high ripple current load, achieved by a special construction with multiple internal anode and cathode connections Very long useful life: 0000 hours at 85 C High resistance to shock and vibration achieved by longitudinal rills and special internal construction. MBC4 - ST STB Fig. Component outlines. 086/087 PS-ST APPLICATIONS Computer, telecommunications and industrial systems Smoothing and filtering Standard and switched mode power supplies Energy storage in pulse systems. larger case sizes smaller handbook, 050/05 4 columns PEC-PW higher CV-values 4/5 PED-ST CV/volume 54/55 PEC-ST in DIN PW CCB08 larger case sizes high ripple 05 C 088/089 PHC-ST QUICK REFERENCE DATA VALUE DESCRIPTION 4 5 Case size ( D nom L nom in mm) 5 60 to Rated capacitance range (E6 series), C R 50 to 0000 µf Tolerance on C R 0 to +0% Rated voltage range, U R 0 to 00 V 50 to 400 V Category temperature range 40 to +85 C Endurance test at 85 C 8000 hours (400 V: 000 hours) Useful life at 85 C 0000 hours (400 V: 5000 hours) Useful life at 40 C,.4 I R applied hours (400 V: hours) Shelf life at 0 V, 85 C 500 hours Based on sectional specification IEC 84-4/CECC 000 Climatic category IEC 68 40/085/ Mar 6

2 4/5 PED-ST Selection chart for C R, U R and relevant nominal case sizes ( D L in mm) for 4 series Preferred types in bold. C R U R (V) (µf) Selection chart for C R, U R and relevant nominal case sizes ( D L in mm) for 5 series Preferred types in bold. C R U R (V) (µf) Mar 6

3 4/5 PED-ST MECHANICAL DATA AND PACKAGING QUANTITIES A handbook, full pagewidth L D 0. P d M d MGB0 - Dimensions in mm. For dimensions see Table. Maximum permissible torque which may be applied to the termination screws: Nm. For accessories refer to this handbook, Section Mounting Accessories. The capacitors are delivered with screws and washers. Fig. Screw terminal (ST); screw terminal bolt (STB). Table Physical dimensions, mass and packaging information; see Fig. NOMINAL CASE SIE D L D max L max P ±0. A d ±0. d l MASS (g) PACKAGING QUANTITIES (per box) CARDBOARD BOX DIMENSIONS l w h M M M M M M M MARKING The capacitors are marked (where possible) with the following information: Rated capacitance (in µf) Tolerance code on rated capacitance (M for ±0%) Rated voltage (in V) Climatic category in accordance with IEC 68 Date code (year and week) in accordance with IEC 6 Code for factory of origin Name of manufacturer Code number (last 8 digits) Code for basic specification in accordance with IEC and CECC Mar 6

4 998 Mar 6 4 ELECTRICAL DATA AND ORDERING INFORMATION Unless otherwise specified, all electrical values in Tables and apply at T amb =0 C, P = 86 to 06 kpa, RH = 45 to 75%. SYMBOL DESCRIPTION C R rated capacitance at 00 Hz, tolerance 0 to +0% I R rated RMS ripple current at 00 Hz, 85 C and 0 khz, 70 C I L max. leakage current after minute at U R I L5 max. leakage current after 5 minutes at U R ESR typical equivalent series resistance at 00 Hz impedance at 0 khz Tan δ max. dissipation factor at 00 Hz Table U R (V) Electrical data and ordering information for the 4 series; preferred types in bold C R 00 Hz (µf) NOMINAL CASE SIE D L I R 00 Hz 85 C (A) I R 0 khz 70 C (A) I L min (ma) I L5 5 min (ma) ESR TYP. 00 Hz Tan δ MAX. 00 Hz Ordering example Electrolytic capacitor 4 series 0000 µf/5 V; 0/+0% Nominal case size: 5 80 mm; ST version Catalogue number: TYP. 0 khz MAX. 0 khz CATALOGUE NUMBER (see Table, note ) /5 PED-ST Philips Components

5 998 Mar 6 5 U R (V) C R 00 Hz (µf) NOMINAL CASE SIE D L I R 00 Hz 85 C (A) I R 0 khz 70 C (A) I L min (ma) I L5 5 min (ma) ESR TYP. 00 Hz Tan δ MAX. 00 Hz TYP. 0 khz MAX. 0 khz CATALOGUE NUMBER (see Table, note ) /5 PED-ST Philips Components

6 998 Mar 6 6 U R (V) Table U R (V) C R 00 Hz (µf) Electrical data and ordering information for the 5 series; preferred types in bold C R 00 Hz (µf) NOMINAL CASE SIE D L NOMINAL CASE SIE D L I R 00 Hz 85 C (A) I R 00 Hz 85 C (A) I R 0 khz 70 C (A) I R 0 khz 70 C (A) I L min (ma) I L min (ma) I L5 5 min (ma) ESR TYP. 00 Hz Tan δ MAX. 00 Hz TYP. 0 khz MAX. 0 khz CATALOGUE NUMBER (see note ) I L5 5 min (ma) ESR TYP. 00 Hz Tan δ MAX. 00 Hz TYP. 0 khz MAX. 0 khz CATALOGUE NUMBER (see Table, note ) /5 PED-ST Philips Components

7 998 Mar 6 7 U R (V) C R 00 Hz (µf) NOMINAL CASE SIE D L I R 00 Hz 85 C (A) I R 0 khz 70 C (A) I L min (ma) I L5 5 min (ma) ESR TYP. 00 Hz Tan δ MAX. 00 Hz TYP. 0 khz MAX. 0 khz Note. Catalogue number applies to the ST version; for STB version (not preferred) replace 8 th digit by 5 ( 4/5 5...). CATALOGUE NUMBER (see note ) /5 PED-ST Philips Components

8 4/5 PED-ST Additional electrical data PARAMETER CONDITIONS VALUE Voltage Surge voltage for short periods 50 V versions U s =.5 U R 50 V versions U s =. U R Reverse voltage U rev V Current Leakage current after minute at U R I L 0.006C R U R +4µA after 5 minutes at U R I L5 0.00C R U R +4µA Inductance Equivalent series inductance (ESL) case D = 5 mm typ. nh case D = 50 mm typ. 6 nh case D = 65 mm typ. 9 nh case D = 75 mm typ. 0 nh 998 Mar 6 8

9 4/5 PED-ST Equivalent series resistance (ESR) 0 MGB04 ESR (m Ω) 0 Curve : case D L=5 60 mm. Curve : case D L=5 80 mm. Curve : case D L=5 05 mm. Curve 4: case D L=50 80 mm. Curve 5: case D L=50 05 mm. Curve 6: case D L=65 05 mm; µf. Curve 7: case D L=65 05 mm; µf. Curve 8: case D L=75 05 mm. ESR at 00 Hz and U R =0V Tamb ( o C) Fig. Typical ESR as a function of temperature. 0 MGB05 ESR (m Ω) 0 Curve : case D L=5 60 mm; 00 µf. Curve : case D L=5 60 mm; 00 µf. Curve : case D L=5 80 mm. Curve 4: case D L=5 05 mm. Curve 5: case D L=50 80 mm. Curve 6: case D L=50 05 mm. Curve 7: case D L=65 05 mm; 000 µf. Curve 8: case D L=65 05 mm; 000 µf. Curve 9: case D L=75 05 mm. ESR at 00 Hz and U R =6V o T amb ( C) Fig.4 Typical ESR as a function of temperature. 998 Mar 6 9

10 4/5 PED-ST 0 4 MGB06 ESR (m Ω) 0 0 Curve : case D L=50 80 mm. Curve : case D L=50 05 mm. ESR at 00 Hz and U R = 50 V Tamb ( o C) Fig.5 Typical ESR as a function of temperature. 0 5 MGB07 ESR (m Ω) Curve : case D L=5 60 mm. Curve : case D L=5 80 mm. Curve : case D L=5 05 mm. Curve 4: case D L=50 80 mm. Curve 5: case D L=50 05 mm. Curve 6: case D L=65 05 mm; 000 µf. Curve 7: case D L=65 05 mm; 500 µf. Curve 8: case D L=75 05 mm. ESR at 00 Hz and U R = 85 V T amb ( o C) Fig.6 Typical ESR as a function of temperature. 998 Mar 6 0

11 4/5 PED-ST Impedance () 0 MGB08 (m Ω) Curve : case D L=5 60 mm. Curve : case D L=5 80 mm. Curve : case D L=5 05 mm. Curve 4: case D L=50 80 mm. Curve 5: case D L=50 05 mm. Curve 6: case D L=65 05 mm. Curve 7: case D L=75 05 mm. at 0 khz and U R =0V Tamb ( o C) Fig.7 Typical impedance as a function of temperature. 0 MGB09 (m Ω) Curve : case D L=5 60 mm; 00 µf. Curve : case D L=5 60 mm; 00 µf. Curve : case D L=5 80 mm. Curve 4: case D L=5 05 mm. Curve 5: case D L=50 80 mm. Curve 6: case D L=50 05 mm. Curve 7: case D L=65 05 mm. Curve 8: case D L=75 05 mm. at 0 khz and U R =6V o T amb ( C) Fig.8 Typical impedance as a function of temperature. 998 Mar 6

12 4/5 PED-ST 0 4 (m Ω) MGB0 0 Curve : case D L=5 60 mm. Curve : case D L=5 80 mm. Curve : case D L=5 05 mm. Curve 4: case D L=50 80 mm. Curve 5: case D L=50 05 mm. Curve 6: case D L=65 05 mm; 00 µf. Curve 7: case D L=65 05 mm; 00 µf. Curve 8: case D L=75 05 mm. at 0 khz and U R = 50 V Tamb ( o C) Fig.9 Typical impedance as a function of temperature. 0 4 (m Ω) MGB 0 Curve : case D L=5 60 mm. Curve : case D L=5 80 mm. Curve : case D L=5 05 mm. Curve 4: case D L=50 80 mm. Curve 5: case D L=50 05 mm. Curve 6: case D L=65 05 mm; 000 µf. Curve 7: case D L=65 05 mm; 500 µf. Curve 8: case D L=75 05 mm. at 0 khz and U R = 85 V o T amb ( C) Fig.0 Typical impedance as a function of temperature. 998 Mar 6

13 4/5 PED-ST 0 MGB 0 0 Curve : 00 µf, 6 V. Curve : 5000 µf, 0 V. Case D L=5 60 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 0 MGB 0 0 Curve : 4700 µf, 6 V. Curve : 000 µf, 0 V. Case D L=5 80 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 998 Mar 6

14 4/5 PED-ST 0 MGB4 0 0 Curve : 6800 µf, 6 V. Curve : 000 µf, 0 V. Case D L=5 05 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 0 MGB5 0 0 Curve : 0000 µf, 6 V. Curve : µf, 0 V. Case D L=50 80 mm. T amb =0 C f (Hz) 0 7 Fig.4 Typical impedance as a function of frequency. 998 Mar 6 4

15 4/5 PED-ST 0 MGB6 0 0 Curve : 5000 µf, 6 V. Curve : µf, 0 V. Case D L=50 05 mm. T amb =0 C f (Hz) 0 7 Fig.5 Typical impedance as a function of frequency. 0 MGB7 0 0 Curve : 000 µf, 6 V. Curve : µf, 0 V. Case D L=65 05 mm. T amb =0 C f (Hz) 0 7 Fig.6 Typical impedance as a function of frequency. 998 Mar 6 5

16 4/5 PED-ST 0 MGB8 0 0 Curve : µf, 6 V. Curve : 0000 µf, 0 V. Case D L=75 05 mm. T amb =0 C f (Hz) 0 7 Fig.7 Typical impedance as a function of frequency. 0 MGB9 0 0 Curve : 50 µf, 85 V. Curve : 0 µf, 50 V. Case D L=5 60 mm. T amb =0 C f (Hz) 0 7 Fig.8 Typical impedance as a function of frequency. 998 Mar 6 6

17 4/5 PED-ST 0 MGB0 0 0 Curve : 0 µf, 85 V. Curve : 470 µf, 50 V. Case D L=5 80 mm. T amb =0 C f (Hz) 0 7 Fig.9 Typical impedance as a function of frequency. 0 MGB 0 0 Curve : 0 µf, 85 V. Curve : 680 µf, 50 V. Case D L=5 05 mm. T amb =0 C f (Hz) 0 7 Fig.0 Typical impedance as a function of frequency. 998 Mar 6 7

18 4/5 PED-ST 0 MGB 0 0 Curve : 470 µf, 85 V. Curve : 000 µf, 50 V. Curve : 680 µf, 50 V. Case D L=50 80 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 0 MGB 0 0 Curve : 680 µf, 85 V. Curve : 000 µf, 50 V. Curve : 500 µf, 50 V. Case D L=50 05 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 998 Mar 6 8

19 4/5 PED-ST 0 4 MBC449 (m Ω) Curve : 000 µf, 85 V. Curve : 500 µf, 85 V. Curve : 00 µf, 50 V. Curve 4: 00 µf, 50 V. Case D L=65 05 mm. T amb =0 C f (Hz) 0 6 Fig. Typical impedance as a function of frequency. 0 MGB4 0 0 Curve : 00 µf, 85 V. Curve : 4700 µf, 50 V Case D L=75 05 mm. T amb =0 C f (Hz) 0 7 Fig.4 Typical impedance as a function of frequency. 998 Mar 6 9

20 4/5 PED-ST RIPPLE CURRENT AND USEFUL LIFE Table 4 Multiplier of ripple current (I R ) as a function of frequency FREQUENCY (Hz) I R MULTIPLIER handbook, full pagewidth.4 MGA45 I A I R life multiplier () T amb ( oc).5 I A = actual ripple current at 00 Hz and 85 C. I R = rated ripple current at 00 Hz and 85 C. With an absolute maximum of 50 A at 85 C () Useful life at 85 C and I R applied: 0000 hours (5000 hours for 400 V types). Fig.5 Multiplier of useful life as a function of ambient temperature and ripple current load. 998 Mar 6 0

21 4/5 PED-ST SPECIFIC TESTS AND REQUIREMENTS General tests and requirements are specified in this handbook, Section Tests and Requirements. Table 5 Test procedures and requirements TEST NAME OF TEST REFERENCE Endurance IEC 84-4/ CECC 000 subclause 4. Useful life CECC 00 subclause.8. Shelf life (storage at high temperature) IEC 84-4/ CECC 000 subclause 4.7 PROCEDURE (quick reference) T amb =85 C; U R applied; 8000 hours (400 V types: 000 hours) T amb =85 C; U R and I R applied; 0000 hours (400 V types: 5000 hours) T amb =85 C; no voltage applied; 500 hours after test: U R to be applied for 0 minutes, 4 to 48 hours before measurement REQUIREMENTS U R 00 V; C/C: ±5% U R > 00 V; C/C: ±0% spec. limit I L5 spec. limit U R 00 V; C/C: ±45% U R > 00 V; C/C: ±0% spec. limit I L5 spec. limit no short or open circuit, no visible damage total failure percentage: U R 00 V: %; U R > 00 V: % C/C: ±0% I L5 spec. limit 998 Mar 6

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