handbook, 4 columns PW PW SL handbook, 4 columns higher CV/volume 051/053 PEC-PW
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1 00/0 PED-PW FEATURES Polarized aluminium electrolytic capacitors, non-solid arge types, cylindrical aluminium case, insulated with a blue sleeve Provided with keyed polarity 00 series also available in solder-lug (S) versions Pressure relief on the top of the aluminium case Charge and discharge proof Very long useful life: 000 hours at 8 C ow ESR, high ripple current capability High resistance to shock and vibration. CCB066 PW PW S Fig. Component outlines. APPICATIONS Computer, telecommunication and industrial systems Smoothing and filtering 0/0 PEC-PW higher CV/volume 00/0 PED-PW long life 0 C 6/6 P-PW Standard and switched mode power supplies CCB0 Energy storage in pulse systems. QUICK REFERENCE DATA VAUE DESCRIPTION 00 0 Case size ( D nom nom in mm) 0 to 0 00 Rated capacitance range (E6 series), C R 70 to µf 7 to 000 µf Tolerance on C R 0 to +0% Rated voltage range, U R 0 to 00 V 0 to 00 V Category temperature range 0 to +8 C Endurance test at 8 C 000 hours Useful life at 8 C 000 hours Useful life at 0 C and. I R applied 0000 hours Shelf life at 0 V, 8 C 00 hours Based on sectional specification IEC 8-/CECC 000 Detail specification DIN 90-T9, former DIN 8 Climatic category IEC 68 0/08/6 998 Jan 9 0
2 00/0 PED-PW Selection chart for C R, U R and relevant nominal case sizes ( D in mm) for 00 series Preferred types in bold. C R U R (V) (µf) Selection chart for C R, U R and relevant nominal case sizes ( D in mm) for 0 series Preferred types in bold. C R U R (V) (µf) Jan 9
3 00/0 PED-PW MECHANICA DATA AND PACKAGING QUANTITIES handbook, halfpage handbook, halfpage. D + max max.. (x). 0. MGB66 CCA97. ±0. Dimensions in mm; for see Table. = positive terminal; = negative terminal. Case D = mm. Fig. Printed wiring pin version. Dimensions in mm. Case D =mm. Fig. Mounting hole diagram viewed from component side. handbook, halfpage handbook, halfpage. D + max max.. (x) MGB67 CCA976. ±0. Dimensions in mm; for see Table. = positive terminal; = negative terminal. Case D = 0 mm. Fig. Printed wiring pin version. Dimensions in mm. Case D =0mm. Fig. Mounting hole diagram viewed from component side. 998 Jan 9
4 00/0 PED-PW handbook, halfpage handbook, halfpage. D + max max.. (x) MGB68 CCA977. ±0. Dimensions in mm; for see Table. = positive terminal; = negative terminal. Case D = mm. Fig.6 Printed wiring pin version. Dimensions in mm. Case D =mm. Fig.7 Mounting hole diagram viewed from component side. Table PW versions; physical dimensions, mass and packaging information; see Figs,, 6 and 8 NOMINA CASE SIE D (mm) D max (mm) max (mm) MASS (g) PACKAGING QUANTITIES (units per box) CARDBOARD BOX DIMENSIONS l w h (mm) Jan 9
5 Philips Components 00/0 PED-PW handbook, halfpage handbook, halfpage. D + max max (x) MGB69 CCA978. ±0. Dimensions in mm; for see Table. = positive terminal; = negative terminal. Case D = 0 mm. Fig.8 Printed wiring pin version. Dimensions in mm. Case D =0mm. Fig.9 Mounting hole diagram viewed from component side. Mounting When a number of capacitors are connected in a bank, they must not be closer together than mm, when no derating of ripple current and/or temperature is applied. Pin numbers, and (if present) must be free from the electrical circuit. 998 Jan 9
6 00/0 PED-PW handbook, halfpage 0.8 D + max. + max. T DIN 97 0 ±0. 0 ± CCA98 Dimensions in mm; for see Table. = positive terminal; = negative terminal. See this handbook, Section Mounting Accessories. Fig.0 Solder-lug version (S); only available in 00 series. Table S versions (00 series only); physical dimensions, mass and packaging information; see Fig.0 NOMINA CASE SIE D (mm) D max (mm) max (mm) MASS (g) PACKAGING QUANTITIES (units per box) CARDBOARD BOX DIMENSIONS l w h (mm) Jan 9
7 998 Jan 9 6
8 00/0 PED-PW U R (V) C R 00 Hz (µf) NOMINA CASE SIE D (mm) I R 00 Hz 8 C (A) I R 0 khz 70 C (A) I min (ma) I min (ma) ESR 00 Hz (mω) 0 khz (mω) CATAOGUE NUMBER (note ) Note. Catalogue number applies to the PW versions; for S versions (not preferred) available in 00 series only (case size 0 0 mm not available) replace the 8th digit by : S versions: Jan 9 7
9 00/0 PED-PW Table Electrical data and ordering information for 0 series; preferred types in bold U R (V) C R 00 Hz (µf) NOMINA CASE SIE D (mm) I R 00 Hz 8 C (A) I R 0 khz 70 C (A) I min (ma) I min (ma) ESR 00 Hz (mω) 0 khz (mω) CATAOGUE NUMBER Jan 9 8
10 00/0 PED-PW Additional electrical data PARAMETER CONDITIONS VAUE Voltage Surge voltage for short periods 0 V versions U s =. U R 8 V versions U s =. U R Reverse voltage U rev V Current eakage current after minute at U R I 0.006C R U R +µa after minutes at U R I 0.00C R U R +µa Inductance Equivalent series inductance (ES) case D = mm max. nh case D = 0 and mm max. 0 nh case D = 0 mm max. nh Capacitance (C). C C 0. MGB Curve : U R =0V. Curve : U R =V. Curve : U R =6V. Curve : U R = 00 V, 0 V and 8 V. C 0 = capacitance at 0 C, 00 Hz o T amb ( C) Fig. Typical multiplier of capacitance as a function of ambient temperature. 998 Jan 9 9
11 00/0 PED-PW Equivalent series resistance (ESR) 0 ESR (m Ω) MGB Curve : case D = 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve 6: case D = 0 mm. Curve 7: case D =0 0 mm. Curve 8: case D =0 70 mm. Curve 9: case D =0 00 mm. ESR at 00 Hz and U R =0V Tamb ( o C) Fig. Typical ESR as a function of temperature. 0 ESR (m Ω) MGB Curve : case D = 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve 6: case D = 0 mm. Curve 7: case D =0 0 mm. Curve 8: case D =0 70 mm. Curve 9: case D =0 00 mm. ESR at 00 Hz and U R =6V o T amb ( C) Fig. Typical ESR as a function of temperature. 998 Jan 9 0
12 00/0 PED-PW 0 MGB88 ESR (m Ω) 0 Curve : case D = 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve 6: case D = 0 mm. Curve 7: case D =0 0 mm. Curve 8: case D =0 70 mm. Curve 9: case D =0 00 mm. ESR at 00 Hz and U R = 00 V o Tamb ( C) Fig. Typical ESR as a function of temperature. 0 ESR (m Ω) MGB89 0 Curve : case D = 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve 6: case D = 0 mm. Curve 7: case D =0 0 mm. Curve 8: case D =0 70 mm. ESR at 00 Hz and U R = 8 V o T amb ( C) Fig. Typical ESR as a function of temperature. 998 Jan 9
13 00/0 PED-PW Impedance () 0 MGB90 (m Ω) Curve : case D = 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve : case D = 0 mm. Curve : case D = 0 and 0 0 mm. Curve 6: case D =0 0 mm. Curve 7: case D =0 70 mm. Curve 8: case D =0 00 mm. at 0 khz and U R =0V Tamb ( o C) Fig.6 Typical impedance as a function of temperature. 0 MGB9 (m Ω) Curve : case D = 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve : case D = 0 mm. Curve : case D = 0 and 0 0 mm. Curve 6: case D =0 0 mm. Curve 7: case D =0 70 mm. Curve 8: case D =0 00 mm. at 0 khz and U R =6V T amb ( o C) Fig.7 Typical impedance as a function of temperature. 998 Jan 9
14 00/0 PED-PW 0 (m Ω) MGB9 0 Curve : case D = 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve : case D = 0 mm. Curve : case D = 0 and 0 0 mm. Curve 6: case D =0 0 mm. Curve 7: case D =0 70 mm. Curve 8: case D =0 00 mm. at 0 khz and U R = 00 V Tamb ( o C) Fig.8 Typical impedance as a function of temperature. 0 (m Ω) MGB9 0 0 Curve : case D = 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve : case D = 0 mm. Curve : case D =0 0 mm. Curve 6: case D = 0 mm. Curve 7: case D =0 0 mm. Curve 8: case D =0 70 mm. at 0 khz and U R = 8 V o T amb ( C) Fig.9 Typical impedance as a function of temperature. 998 Jan 9
15 00/0 PED-PW 0 ( Ω) MGB9 0 0 Curve : 7 µf, 8 V. Curve : 00 µf, 0 V. Curve : 70 µf, 00 V. Curve : 000 µf, 6 V. Curve : 700 µf, 0 V. Case D = 0 mm. T amb =0 C f (Hz) 0 7 Fig.0 Typical impedance as a function of frequency. 0 ( Ω) MGB9 0 0 Curve : 68 µf, 8 V. Curve : 0 µf, 0 V. Curve : 680 µf, 00 V. Curve : 00 µf, 6 V. Curve : 6800 µf, 0 V. Case D = 0 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 998 Jan 9
16 00/0 PED-PW 0 MGB96 ( Ω) 0 0 Curve : 00 µf, 8 V. Curve : 0 µf, 0 V. Curve : 000 µf, 00 V. Curve : 00 µf, 6 V. Curve : 0000 µf, 0 V. Case D =0 0 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 0 MGB97 ( Ω) 0 0 Curve : 0 µf, 8 V. Curve : 0 µf, 0 V. Curve : 00 µf, 00 V. Curve : 00 µf, 6 V. Curve : 000 µf, 0 V. Case D = 0 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 998 Jan 9
17 00/0 PED-PW 0 ( Ω) MGB Curve : 0 µf, 8 V. Curve : 70 µf, 0 V. Curve : 00 µf, 00 V. Curve : 700 µf, 6 V. Curve : 000 µf, 0 V. Case D = 0 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 0 MGB99 ( Ω) 0 0 Curve : 0 µf, 8 V. Curve : 70 µf, 0 V. Curve : 00 µf, 00 V. Curve : 700 µf, 6 V. Curve : 000 µf, 0 V. Case D =0 0 mm. T amb =0 C f (Hz) 0 7 Fig. Typical impedance as a function of frequency. 998 Jan 9 6
18 00/0 PED-PW 0 ( Ω) MGB Curve : 0 µf, 8 V. Curve : 680 µf, 0 V. Curve : 00 µf, 00 V. Curve : 6800 µf, 6 V. Curve : 000 µf, 0 V. Case D =0 0 mm. T amb =0 C f (Hz) 0 7 Fig.6 Typical impedance as a function of frequency. 0 MGB0 ( Ω) 0 0 Curve : 70 µf, 8 V. Curve : 000 µf, 0 V. Curve : 700 µf, 00 V. Curve : 0000 µf, 6 V. Curve : 7000 µf, 0 V. Case D =0 70 mm. T amb =0 C f (Hz) 0 7 Fig.7 Typical impedance as a function of frequency. 998 Jan 9 7
19 00/0 PED-PW 0 MGB0 ( Ω) 0 0 Curve : 6800 µf, 00 V. Curve : 000 µf, 6 V. Curve : µf, 0 V. Case D =0 00 mm. T amb =0 C f (Hz) 0 7 Fig.8 Typical impedance as a function of frequency. MARKING The capacitors are marked (where possible) with the following information: Rated capacitance (in µf) Tolerance on rated capacitance (Q for 0/+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 Polarity of the terminals and sign to indicate the negative terminal, visible from the top and/or side of the capacitor Code number Code for basic specification in accordance with IEC 8-- and CECC Jan 9 8
20 00/0 PED-PW RIPPE CURRENT AND USEFU IFE Table Multiplier of ripple current (I R ) as a function of frequency FREQUENCY (Hz) I R MUTIPIER handbook, full pagewidth. MGA I A I R life multiplier () T amb ( oc). I A = actual ripple current at 00 Hz and 8 C. I R = rated ripple current at 00 Hz and 8 C. () Useful life at 8 C and I R applied: 000 hours. Fig.9 Multiplier of useful life as a function of ambient temperature and ripple current load. 998 Jan 9 9
21 00/0 PED-PW SPECIFIC TESTS AND REQUIREMENTS General tests and requirements are specified in this handbook, Section Tests and Requirements. Table 6 Test procedures and requirements TEST NAME OF TEST REFERENCE Endurance IEC 8-/ CECC 000 subclause. Useful life CECC 00 subclause.8. Shelf life (storage at high temperature) IEC 8-/ CECC 000 subclause.7 PROCEDURE (quick reference) T amb =8 C; U R applied; 000 hours T amb =8 C; U R and I R applied; 000 hours T amb =8 C; no voltage applied; 00 hours after test: U R to be applied for 0 minutes, to 8 hours before measurement REQUIREMENTS U R 00 V; C/C: ±% U R > 00 V; C/C: ±0% spec. limit I spec. limit U R 00 V; C/C: ±% U R > 00 V; C/C: ±0% spec. limit I 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 spec. limit 998 Jan 9 60
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