ALSIC14520G EXXELIA | Alldatasheet

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ELECTROLYTIC ALUMINUM CAPACITORS www.exxelia.com Tel : + 33 (0)2 40 01 26 51

APPLICATIONS

  • Automotive
  • High frequency switched mode power supplies
  • High ripple current
  • Low inductance
  • Low impedance Insulating aluminum case Tin coated leads Negative pole marked Tolerance on capacitance at 20°C : ± 20 % Operating temperature : – 55°C + 145°C Dimensions in mm (inches) ر0,5 (0,008) SPECIFICATIONS NFC 83 110 - Long life CECC 30 300 IEC 60 384-4 Long life Standard endurance test at U R : 5000h / 125°C Climatic category GPF: –55°C + 145°C / 56 days MAX ESR 100 Hz, 20°C ESR max H ESR typ. x 1.3 MAX IMPEDANCE 100 kHz, 20°C Z max HZ typ. x 1.3 WITHSTAND STRENGTH OF INSULATING SLEEVE Insulation resistance at 20°C between leads and mounting hardware : 100 MΩ Test voltage at 50 Hz 1 min. between terminals and mounting hardware : 1 000 V Fire resistance : self extinguish 30 s (IEC 60 695-2-2) without PVC RESISTANCE TO VIBRATIONSDIMENSIONS in mm (inches) Standard ƒ(Hz) 10 –55 Hz Amplitude 0.75 mm Acceleration 20 g - 98 m/s 2 t (h) 3 x 2 h Ø e ±0,5 (0,020) d b c ±a ALSIC 145 20G 2 000 h / 145°C

ELECTROLYTIC ALUMINUM CAPACITORS A COMPANY www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ALSIC 145 20G 2 000 h / 145°C EXPECTED LIFE As a function of temperature and ripple current PERMISSIBLE RIPPLE CURRENT I (R.M.S. VALUE) Versus frequency ƒ: I ~: permissible r.m.s. current at 100 Hz Typical values are given for information purpose only. ƒ(Hz) 50 100 300 600 1 000 10 000 ≥ 50 000 I 0,8 x I~ I~ 1,2 x I~ 1,3 x I~ 1,35 x I~ 1,5 x I~ 1,6 x I~ Capacitance (µF) Case ESR

100 Hz +20°C

max. (mΩ) Tan /H9254 (%) Z 10 kHz+20° C Typic (mΩ) I. leak +20°C 5 min. max. (mA)

100 Hz +105°C

max. (A) Code Ø mm (inches) L mm (inches) Rated voltage / Peak voltage: 10/12V 2200 18 (0,709) 35 (1,378) 72 6 42 0,07 2,6 A776000 2200 18 (0,709) 40 (1,575) 82 7 49 0,07 2,8 A776001 Rated voltage / Peak voltage: 16/18V 1500 18 (0,709) 40 (1,575) 104 7 69 0,08 2,2 A776002 Rated voltage / Peak voltage: 40/46V 2200 18 (0,709) 30 (1,181) 65 7 50 0,27 2,5 A776003 3300 18 (0,709) 35 (1,378) 59 7 34 0,40 2,7 A776004 3300 22,5 (0,886) 40 (1,575) 62 8 36 0,40 4,0 A776005 Rated voltage / Peak voltage: 50/58V 1800 18 (0,709) 35 (1,378) 78 4 38 0,27 2,4 A776006 2200 18 (0,709) 35 (1,378) 91 5 37 0,33 2,2 A776007 2700 18 (0,709) 40 (1,575) 65 6 36 0,41 2,8 A776008 Rated voltage / Peak voltage: 63/72V 470 18 (0,709) 35 (1,378) 189 3 107 0,09 1,5 A776009 560 18 (0,709) 35 (1,378) 176 3 86 0,11 1,7 A776010 680 18 (0,709) 35 (1,378) 135 3 76 0,13 2,0 A776011 820 18 (0,709) 35 (1,378) 127 4 72 0,16 2,1 A776012 1000 18 (0,709) 30 (1,181) 112 4 64 0,19 2,1 A776013 Rated voltage / Peak voltage: 100/115V 220 18 (0,709) 25 (0,984) 624 4 301 0,07 0,7 A776014 330 18 (0,709) 25 (0,984) 585 4 227 0,10 0,7 A776015 330 18 (0,709) 35 (1,378) 507 8 380 0,10 0,9 A776016 470 18 (0,709) 35 (1,378) 390 4 147 0,15 1,1 A 776017

ELECTROLYTIC ALUMINUM CAPACITORS Revision 01/19www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ELECTROLYTIC ALUMINUM CAPACITORS

6 Revision 01/19

www.exxelia.com Tel : + 33 (0)2 40 01 26 51 1. BASIC CONSTRUCTION Structure of an electrolytic aluminum capacitor is shown hereunder: 1. Anode: aluminum foil 2. Dielectric: aluminum oxide 3. Papers spacers impregnated with electrolyte 4. Ionic conduction assumed by electrolyte 5. Cathode: aluminum foil The positive plate is an etched aluminum foil covered with alumina which is the dielectric of the capacitor. The negative plate is constituted by a second aluminum foil which serves as a current supply, and by electrolyte-impregnated papers layers. The metal used for anode is a ≥ 99,98 % grade aluminum. The dielectric has a thickness of 13 Å / V. The aluminum used for the cathode is a ≥ 98 % grade aluminum covered with a dielectric layer with a thickness of about 40 Å. 2. DIAGRAM OF THE EQUIVALENT CIRCUIT CA = Capacitance of the anode CK = Capacitance of the cathode Rp = Parallel resistance due to the aluminum oxide f Ilms. RL = Series resistance of connections, plates and impregnated spacer. Ls = Inductance of winding and connections. A standard simplifi ed diagram is. Cs is the series capacitance of both anode and cathode capacitances. Electrolytic aluminum capacitors are naturally polarized because of the insulating f Ilm on the anode. Given the very thin aluminum oxide layer, a reversed voltage should not exceed 1.5 V when there is energy supply. Short duration reverse voltages can be absorbed by special construction, second anode replacing the former cathode. 3. CAPACITORS MARKING 3.1. ARTICLE CODE (ON EACH PACKAGING) A followed by 6 fi gures number. First 3 positions are specifi c of the range. (Ex. A 745xxx for a FELSIC 85 BD) In FELSIC ranges, article code without fi rst letter A, is printed on each capacitor. a Figure 9 in fourth position shows a special product. 3.2. BATCH (ON EACH CAPACITOR). 3 fi gures or 6 fi gures 3.3. DATE (ON EACH CAPACITOR IF APPLICABLE) 4 fi gures (year-week) 4. ELECTRICAL CHARACTERISTICS 4.1. RATED CAPACITANCE C R The rated capacitance is defi ned at 100 Hz and at ambient temperature. 4.2. RATED VOLTAGE U R U R is the maximum DC voltage which may be applied in continuous operation. When applying a superimposed alternating voltage, the peak value of the resulting waveform should not exceed the rated voltage. 4.3. PEAK VOLTAGE U P Up is the maximum repetitive voltage which can be applied within short periods. Defi ned in CECC 30 300 and IEC 60 384-4: 1000 cycles of 30 s charge followed by a no load period of 5 min. 30 s with upper category temperature. Up ≤ 1,15 U R (U R ≤ 315 V) Up ≤ 1,10 U R (U R > 315 V) General technical data

140 FELSIC in bank

701 PRORELSIC 125

703 PRORELSIC 125

704 SNAPSIC

705 SNAPSIC 105

706 FELSIC HP BC – BD

708 PRORELSIC 145

722 CI FRS

723 CI FRS

728 FELSIC 039 (ex 727)

738 FELSIC 037 (ex 737)

740 FELSIC 125 FRS BC

(ex 731)

741 FELSIC 125 FRS BD

(ex 731)

742 PRORELSIC 105 TFRS

743 PRORELSIC 105 TFRS

744 FELSIC 85 BC

745 FELSIC 85 BD

746 FELSIC 85 M BC

747 FELSIC 85 M BD

748 SICAL CO 42 - SICAL

749 SICAL CO 42 - SICAL

750 CUBISIC 125

756 FELSIC 105 BC

757 FELSIC 105 BD

760 FELSIC HC BC

762 FELSIC 105 TFRS BC

763 FELSIC 105 TFRS BD

764 FELSIC HV BC

765 FELSIC HV BD

775 VACSIC

774 VACSIC 150

776 ALSIC 20G

ELECTROLYTIC ALUMINUM CAPACITORS GENERAL TECHNICAL DATA Revision 01/19www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ELECTROLYTIC ALUMINUM CAPACITORS

7 Revision 01/19

www.exxelia.com Tel : + 33 (0)2 40 01 26 51 4.4. DISSIPATION FACTOR TAN /H9254 The dissipation or loss factor is defi ned by its tangent Tan /H9254 4.5. EQUIVALENT SERIES RESISTANCE ESR The relation between ESR and dissipation factor Tan/H9254 is given in § 4.4. 4.6. IMPEDANCE Z - INDUCTANCE L The impedance is given by: Z = g R 2 + (L/H9275 –1 ) 2 C/H9275 L inductance. Generally L = 5 to 20 nH Z and ESR as function of frequency typically follows the chart: The current is defi ned at the maximum climatic category and at 100 Hz. It is the root mean square value r.m.s. The value I 0 is the rated value for calculations of expected life up to3 I 0 . 4.8. LEAKAGE CURRENT Il Il is measured at 20°C after a 5 min. polarization under rated voltage. For C R in µF and U R in V: Il ≤ 0,01 C R U R or 1 µA* when C R U R ≤ 1000 µC Il ≤ 0,006 C R U R + 4 µA when C R U R > 1000 µC For U R > 350 V DC it can be specifi ed: with K = 4, 6 or 8 or Il ≤ 0,3 (C R U R ) 0,7 + 4 µA (CECC 30 300) * Whichever is the greater 4.9. CHARACTERISTICS Versus temperature (typical values). 4.9.1. Capacitance drift Versus temperature 4.9.2. ESR and Z drifts at 100 Hz Versus temperature

4.9.3 Leakage current drift

ELECTROLYTIC ALUMINUM CAPACITORS Revision 01/19www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ELECTROLYTIC ALUMINUM CAPACITORS

8 Revision 01/19

www.exxelia.com Tel : + 33 (0)2 40 01 26 51 5. SPECIFICATION TO APPLY Electrolytic aluminum capacitors are defi ned in:

  • NF and UTE French national standard
  • CECC European specifi cations
  • IEC international specifi cations Quality insurance procedures are described in these specifi cations. 6. ENDURANCE TESTS / LIFE TIME 6.1. STANDARD ENDURANCE TEST at max category temperature: Standard endurance tests do not exceed 2000 hours at 125°C. However, present EXXELIA technologies concerning liquid electrolytes have led to endurance tests up to 5000 hours at 125°C (PRORELSIC 125 - FELSIC

125 RS) and even 20000 hours at 125°C (PRORELSIC 145 - ALSIC 145)

6.2. PERFORMANCE REQUIREMENTS ON STANDARD ENDURANCE TESTS. Permissible capacitance drift ∆C/C (%) Permissible increase factors on Tan /H9254, ESR, Z and Il initial values (1) Tan/H9254 or ESR: for initial value, take standard value. (2) Z: for initial value, take specifi ed value (see data sheet ). Specifi c requirements can be taken into consideration with regards to initial values of dissipation factor or equivalent series resistance and impedance. French European International Generic specifi cation Fixed capacitors NF C 83 100 CECC 30 000 EN 130 000 IEC 60 384 -1 QC 300 000 Sectional specifi cation Electrolytic aluminum capacitors NF C 83 110 CECC 30 300 IEC 60 384 - 4 C 300 300 Blank deta Il specifi cation - Electrolytic aluminum capacitors with non solid electrolyte. UTE 83 110 CECC 30 301 IEC 60 384 - 4 -1 QC 300 301 Blank deta Il specifi cations CECC 30 301 - 017 to CECC 30 301 - 062 CO 31 to CO 55 CECC 30 301 - 017 to CECC 30 301 - 062 CECC 30 301 - 802 to CECC 30 301 - 811 Temperature Endurance test Grade I - Long life Grade II - General purpose 10 000 h 5 000 h 2 000 h 1 000 h 125°C • 105°C • • • 85°C • • • • U R Endurance test Grade I Grade II 10 000 h 5 000 h 2 000 h 1 000 h 6,3 V +15 –30 +25 –40

10 V - 35 V +15 –20 ±15 ±15 ±30

40 V - 160 V ±15 ±15 ±15 ±30

10 000 h 5 000 h 2 000 h 1 000 h Tan /H9254 or ESR (1) 1,5 1,3 1,3 1,5 Z (2) 3 2 2 3 Il Standard values 6.3. FAILURE CRITERIA FOR ELECTROLYTIC CAPACITORS. Failure criteria are defi ned in CECC 30 301

  • Non measurable defaults leading to complete failure.
  • Measurable defaults leading to adjustment losses of the load circuit (failure due to variations). 6.3.1. Non measurable defaults. They might be summed up as:
  • Open circuit
  • Short circuit
  • Operation of pressure relief device
  • Severely damaged insulation
  • Unusable terminations 6.3.2. Measurable defaults. Variations exceeding the values given below characterize a default.
  • Capacitance drift ∆C/C (%): 3 times the limit for standard endurance testing or 50 % (whichever is the smallest).
  • Tan/H9254 or ESR: 3 times standard max initial values.
  • Z: 3 times standard max initial values.
  • Il: initial limit (under load conditions). Specifi c requirements can be taken into consideration with regards to lower drifts. 6.4. INFLUENCE OF MAIN PARAMETER ON OPERATIONAL LIFE. 6.4.1. Temperature. The capacitors operational life is highly dependent upon its internal temperature /H9052i and therefore upon the ambient temperature and the ripple current. Knowing ESR and dissipated power values (§ 6.4.3.) one can fi gure out, the internal temperature rise and then determine the capacitors expected life. With present high boiling point electrolytes (§ 8.6) /H9052i max = 125 to 185°C depending on styles. 6.4.2. Ripple current. The ripple current fl owing through the capacitor increase the internal temperature through power dissipation. Standards defi ne the permissible current at 100 Hz and generally consider a temperature rise of 5 to 10°C of max category temperature. Current waveforms and frequencies make it diffi cult to clearly determine the capacitors internal temperature rise, which defi nes the operationally life. Experiments confi rm following relationship: /H9052i = /H9052a + (/H9052c - /H9052a) K Where:
  • /H9052i = Internal hot spot temperature
  • /H9052a = Ambient temperature
  • /H9052c = Case temperature
  • K = Parameter depending upon case diameter and cooling Ø ≥ 51 k = 2 ± 0,5 Ø < 51 k = 1,5 ± 0,5 (air cooling - 0,2 m/s) General technical data

ELECTROLYTIC ALUMINUM CAPACITORS GENERAL TECHNICAL DATA Revision 01/19www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ELECTROLYTIC ALUMINUM CAPACITORS

9 Revision 01/19

www.exxelia.com Tel : + 33 (0)2 40 01 26 51 r.m.s. value according to current waveform. 6.4.3. Dissipated power versus case dimension For calculations of ripple currents, considering an internal temperature rise of 10°C P = ESR.I ² P = Dissipated power (mW) ESR: Equivalent series resistance (100 Hz 20°C) I: Ripple current (r.m.s. value at 100 Hz) For different frequencies from 100 Hz, I must be multiplied by the factor F , according to above chart.: 6.4.4. Thermal resistance Rth and air cooling Rth is static thermal resistance (without cooling) between capacitor central hot spot and ambient temperature measured at a distance of one capacitor diameter Forced or not cooling air can lead to a signifi cant decrease of these values. Consequently, r.m.s. ripple current can be increased as a function of air cooling speed: Ø mm (inches) ≤ 0,5 m/s 1 m/s 2 m/s 3 m/s ≥ 4 m/s This parameter shall be applied to one capacitor alone. For capacitors in bank, ambient temperature must be strictly equal around all capacitors. 6.4.5. Quality guaranty We guarantee products manufactured during 2 years from the data of shipment against defaults of material and assembly. This guaranty can be involved by the buyer only if our products are used within normal conditions, always according to the state of the art and taking in account storage conditions. The equipment design should take into consideration possible failures of our capacitors and related effects in order to avoid them. Guaranty is not applicable for damages occurred by surge voltage, irregular use, polarity inversion or maintenance default. Guaranty is exclusively limited to the replacement of individual defective capacitors within the terms of delivery. This rule applied to all cases and particularly to any further consequence of failures. 6.4.6. Reliability Failure rate: FR = Number of components tested x test duration Number of failures Failure rate is measured in FIT (failure in time = 10 –9 / hour). The failure rate is set up during the life time of the capacitor (phase II) I. Early failure phase (generally excluded during ageing process). II. Operational life time of the capacitors III. End of life Function Mean value R.m.s. value A (t 0 /T) A gt 0 /T A (t 1 /T) A g2t 1 /3T A/2 (t 0 /T) A gt 0 /3T Function Mean value R.m.s. value A /2 A g3 2A//H9266 (t0 /T) A gt 0 /2T A/2 (t 0 /T) A gt 0 /3T Function Mean value R.m.s. value 2A//H9266 A / g2 A /2 A / g3 0 A General technical data

ELECTROLYTIC ALUMINUM CAPACITORS Revision 01/19www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ELECTROLYTIC ALUMINUM CAPACITORS www.exxelia.com Tel : + 33 (0)2 40 01 26 51 Mean time between failures MTBF = 1/FR mesured in years Multiplying factor of FR with voltage and temperature 7 . MANUFACTURING FLOW CHART Process controls Range Failure rate for a failure percentage not exceeding 1% with a confi dence level of 60 % FELSIC 85 >350 V FELSIC HC > 350 V SNAPSIC - SNAPSIC HC > 350 V SNAPSIC 4P > 350 V PROMISIC 031 Ø = 6,5 SICAL CO 42 - SICAL > 350 V

50 FIT - (MTBF = 2280)

FELSIC 85 ≤ 350 V FELSIC HC ≤ 350 V CUBISIC CI FRS SNAPSIC 105 - SNAPSIC 105 4P SNAPSIC 105 LP - SNAPSIC HV SNAPSIC - SNAPSIC 4P ≤ 350 V SNAPSIC HC ≤ 350 V ALSIC IR - ALSIC 145 - ALSIC HV - VACSIC 150 - VACSIC SICAL CO 42 - SICAL ≤ 350 V PRORELSIC 125 Ø = 6,5 RELSIC 033 PROMISIC 031 Ø > 6,5

25 FIT - (MTBF = 4560)

FELSIC 125 FRS - SNAPSIC 125 FELSIC HV - FELSIC 105 10 FIT - (MTBF = 11410) PRORELSIC 125 Ø > 6,5 PRORELSIC 145 5 FIT - (MTBF = 22820) Temperature (°C) ≤ 40 50 60 70 85 105 (1) 125 (1) 145 (1) Factor 1 1,5 2,3 3,4 6,3 14 32 72 (1) Only for permitted capacitors Percentage of rated voltage (2) 100 % 80 % 50 % Factor 1 0,8 0,5 (2) This voltage has to be constant Environ- ment Without vibration Ground with vibrations or mob Ile Ground, fi x Controlled air Ground, fi x PRORELSIC SNAPSIC 20 g FELSIC 20 g FELSIC 10 g PROMISIC SICAL Ø ≤14 CI FRS - SNAPSIC RELSIC SICAL Ø >14 ALSIC Factor 1 2 2 4 6 12 General technical data

ELECTROLYTIC ALUMINUM CAPACITORS GENERAL TECHNICAL DATA Revision 01/19www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ELECTROLYTIC ALUMINUM CAPACITORS www.exxelia.com Tel : + 33 (0)2 40 01 26 51 8. INFORMATION ON APPLICATION 8.1. CLEANING SOLVENTS Use aliphatic alcohols, such as denatured ethyl alcohol, isopropanol, or butylacetate, or else alkaline d Iluted solutions. Avoid incompatible solvents (halogenous for example). 8.2. SHELF LIFE There is no electrical characteristics variation for long periods of stor- age except leakage current which can increase. It is caused by chemical reactions between the dielectric alumina and the electrolyte. These reactions are reversible when switched on. Capacitors can generally be stored at temperature between –5° and +50°C without reforming for the following periods of time:

  • For U (up to 10 years under specifi c conditions) Generally when these periods are overstepped, one hour at rated volt- age causes the decrease of leakage current under the specifi ed lim- its. An other way to avoid this leakage current increase problem is to always limit ava Ilable power through capacitor during fi rst seconds or minutes after storage or transport, according to the following chart: 8.3. LOW PRESSURE RESISTANCE EXXELIA capacitors can be used with ambient low pressure decreas- ing up to 10 mbar (altitude 28000 m – 92000 feet). 8.4. MOUNTING SCREW TERMINALS CAPACITORS (FELSIC) Capacitors may be used vertically (terminals on top) or horizontally. When used horizontally, the following position in relation to the safety vent, is recommended: Mounting capacitors in series may be used for operating voltage ex- ceeding U R . See FELSIC in bank. 8.5. MOUNTING SOLDER TYPE CAPACITORS. They may be used in any position. During mounting, avoid applying excessive force to capacitor pins or wires. There is a risk of damaging internal connections. After soldering and for the same reasons, do not try to move the ca- pacitor's body. 8.6. ELECTROLYTES: SAFETY RULES. Electrolytes used in EXXELIA capacitors are manufactured by EXXELIA. Main solvents are generally /H9253 butyrolactone and ethylene glycol, very stable high boiling point solvents. Ionic conductive salts in electrolyte induce a very weak acidity (pH 5 to 7). 8.7 . ENVIRONMENT. In aluminium capacitors with liquid electrolyte there is no component showing a pollution risk, in small amounts, of air or water. EXXELIA is always involved in this security fi eld particularly in using chemicals for electrolyte, without well-known risks.
  • Dimethylformamide (DMF) dangerous solvent forbidden in sev- eral uses is completely excluded by EXXELIA,since 1990.
  • There is no halogen compound such as chlorofl uorocarbon (CFC or FCKW in german) or polychlorobiphenyl (PCBPyralene) or pentabromodiphenylether or octabromodiphenylether. There is neither benzene, toluene or phenyl compound nor explosive such as picric acid, nor asbestos in plastic covers. All the capacitors made by EXXELIA since 1991, can be scrapped or used in raw materi- als recycling processes without special care in compliance with Com- munity rules. EXXELIA aluminium capacitors with non-solid electrolyte are particu- larly suitable for different kinds of environment taking in account se- verity increasing laws. European directives 2003/11/EC, 2002/96/EC (WEEE) and 2002/95/ EC (RoHS) applies to all EXXELIA capacitors including every solder type, manufactured with pure tin coated pins or wires, since at least January 2006. Prominent negative polarity indicator [except Ø90 (3,543)] General technical data

ELECTROLYTIC ALUMINUM CAPACITORS Revision 01/19www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ELECTROLYTIC ALUMINUM CAPACITORS www.exxelia.com Tel : + 33 (0)2 40 01 26 51 STUD FIXING: FELSIC BD Steel nut, spring washer and insulating washer are delivered loosely with the capacitor. STANDARD MOUNTING WITH: Insulating washer and steel nut Insulating plastic nut with or without insulating washer Ring - clip mounting: FELSIC LP Ring clips shall be ordered separately. Tightening screws and nuts are supplied loosely. Perforated framework at Ø C±0,1(0,004) 3 (0,118) 1,3 (0,051)Perforated framework at Ø C±0,1(0,004) 3 (0,118) 1,3 (0,051) Ø Capacitor DIMENSIONS in mm (inches) M Ø A Ø B Ø C Code 36 8 8,4 25 18,5 A 691060 51 - 77 12 12,5 30 21, 5 A 69106 1 90 12 12,5 35 21, 5 A 691062 Perforated framework at Ø C±0,1(0,004) 1 (0,039) Ø 17 (0,669) Perforated framework at Ø C±0,1(0,004) 1 (0,039) Ø 17 (0,669) DIMENSIONS in mm (inches) M Ø A H L Max. torque Code 8 (0,315) 25 (0,984) 15 (0,591) 17 (0,669) 3 Nm A 691070 12 (0,472) 30 (1,181) 20 (0,787) 19 (0,748) 7 Nm A 69107 1 FELSIC 85 LP FELSIC 105 LP Code Metal bracket A691055 Plastic cap A691065 Ø 4,5 (0,177) 11 (0,433) 1 (0,039) 63±1 (2,480±0,039) 18 (0,709) 106 (4,173) Mounting and insulating parts

ELECTROLYTIC ALUMINUM CAPACITORS GENERAL TECHNICAL DATA Revision 01/19www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ELECTROLYTIC ALUMINUM CAPACITORS www.exxelia.com Tel : + 33 (0)2 40 01 26 51 Ring - clip mounting: FELSIC BC Ring clips shall be ordered separately. Tightening screws and nuts are supplied loosely. Stirrup mounting: CUBISIC LP Stirrups shall be ordered separately. Tightening screws and nuts are supplied loosely Salt mist endurance of screws and mounting accessories: minimum 96 h (IEC 600 68-2-11) PACKAGING 1. PACKAGING AND WEIGHT UNITS. 1.1. Capacitor with screw terminals * Unit weight = typical values Possible variations of = ± 25 % according to different voltage and capacitance. 1.2. Radial solder types * Unit weight = typical values Possible variations of = ± 25 % according to different voltage and capacitance. 1.3. Axial types * Unit weight = typical values Possible variations of = ± 25 % according to different voltage and capacitance. FELSIC BC - Metal ring-clips 10,5 ±1 (0,41 3 ±0,039 12 (0,472) 1 2,5 ±0,5 (0,492 ±0,020 4,5 ±0,2 (0,1 77 ±0,008 20±0,4 (0,787±0,016) 27±0,8 C±0,5 (0,020) Ø A Cap. B C Code Ø A Cap. B C Code 36(1,417) 54(2,126) 63(2,480) A 691901 51(2,008) 33,5(1,319) 11,8(0,465) A 691905 66(2,598) 39(1,535) 10,5(0,413) A 691913 73(2,874) 44(1,732) 10,5(0,413) A 691914 CUBISIC /CUBISIC LP - Metal bracket R 1,5 (0,059) 1 (0,039) 5 (0,197) 7(0,276) Ø 4,2 (0,165) 8,5 (0,335) Dimensions in mm (inches) 15 (0,591) 4,2 (0,165) +1 (0,039) Ø A Cap. A B C Code 45x12 (1,772x 0,472) 69 (2,7 17) 45 (1,772) 10 (0,394) A 691057 35x16 (1,378x 0,630) 59 (2,323) 35 (1,378) 14 (0,551) A 691059 Can DIMENSIONS in mm (inches) Unit weight * Ø H (g) 36 (1,417) 36 (1,417) 36 (1,417) 36 (1,417) 51 (2,008) 51 (2,008) 51 (2,008) 51 (2,008) 51 (2,008) 51 (2,008) 47 (1,850) 60 (2,362) 80 (3,150) 104 (4,094) 47 (1,850) 62 (2,441) 81 (3,189) 104 (4,094) 112 (4,409) 144 (5,669) 52 (2,047) 81 (3,189) 105 (4,134) 63 (2,480) 82 (3,228) 105 (4,134) 53 (2,087) 70 100 120 105 190 260 270 370 66 (2,598) 66 (2,598) 104 (4,094) 112 (4,409) 105 (4,134) 430 460 73 (2,874) 73 (2,874) 104 (4,094) 144 (5,669) 112 (4,409) 600 680 77 (3,031) 77 (3,031) 77 (3,031) 77 (3,031) 104 (4,094) 144 (5,669) 200 (7 ,874) 220 (7 ,874) 105 (4,134) 145 (5,709) 22 1 (8,701) 620 860 1300 1400 90 (3,543) 90 (3,543) 90 (3,543) 67 (2,638) 144 (5,669) 200 (7 ,874) 145 (5,709) 600 1400 1800 Can dimensions mm (inches) ALSIC SNAP- SIC Ø H Weight* (g) 12,5 (0,492) 12,5 (0,492) 2 1 (0,827) 24 (0,945) 4,5 5 - 22 (0,866) 22 (0,866) 22 (0,866) 25 (0,984) 30 (1,181) 40 (1,575) 25 (0,984) 25 (0,984) 25 (0,984) 25 (0,984) 25 (0,984) 25 (0,984) 25 (0,984) 30 (1,181) 35 (1,378) 40 (1,575) 45 (1,772) 50 (1,969) 30 (1,181) 30 (1,181) 30 (1,181) 30 (1,181) 30 (1,181) 30 (1,181) 25 (0,984) 30 (1,181) 35 (1,378) 40 (1,575) 45 (1,772) 50 (1,969) Can dimensions ALSIC SNAP- SIC Ø H Weight* (g) 35 (1,378) 35 (1,378) 35 (1,378) 35 (1,378) 35 (1,378) 35 (1,378) 30 (1,181) 40 (1,575) 45 (1,772) 50 (1,969) 75 (2,953) 100 (3,937) 125 40 (1,575) 40 (1,575) 40 (1,575) 40 (1,575) 40 (1,575) 50 (1,969) 75 (2,953) 100 (3,937) 100 130 170 45 (1,772) 45 (1,772) 45 (1,772) 45 (1,772) 45 (1,772) 45 (1,772) 45 (1,772) 2 1 (0,827) (0,984) 30 (1,181) 35 (1,378) 45 (1,772) 75 (2,953) 100 (3,937) 110 180 240 Can DIMENSIONS in mm (inches) CUBISIC I L H weight (g) 35 (1,378) 35 (1,378) 35 (1,378) 50 (1,969) 16 (0,630) 16 (0,630) 45 (1,772) 45 (1,772) 45 (1,772) 35 (1,378) 50 (1,969) 75 (2,953) 12 (0,472) 12 (0,472) 12 (0,472) Can DIMENSIONS in mm (inches) PRORELSIC RELSIC PRORELSIC PROMISIC SICAL CO 42 SICAL Ø H Unit weight * (g) Unit weight * (g) Unit weight * (g) 6,5 (0,256) 6,5 (0,256) 15 (0,591) 19 (0,748) 1,6 1,8 1,8 10 (0,394) 10 (0,394) 10 (0,394) 19 (0,748) 25 (0,984) 28 (1,102) 2,8 3,5 3,8 2,8 3,5 12 (0,472) 12 (0,472) 25 (0,984) 30 (1,181) 5,4 5,4 14 (0,551) 14 (0,551) 30 (1,181) 41 (1,6 14) 6,9 9,5 6,9 18 (0,709) 18 (0,709) 35 (1,378) 40 (1,575) 13,6 15,3 15,3 25 (0,984) 25 (0,984) 25 (0,984) 40 (1,575) 50 (1,969) 75 (2,953) General technical data

ELECTROLYTIC ALUMINUM CAPACITORS Revision 01/19www.exxelia.com Tel : + 33 (0)2 40 01 26 51 ELECTROLYTIC ALUMINUM CAPACITORS www.exxelia.com Tel : + 33 (0)2 40 01 26 51 General technical data 2. PACKAGING ON TAPE 2.1. Axial types Dimensions and tolerance in accordance with IEC 60 286- (1) On tape only on request (2) n = number of capacitors per reel. White positive tape ƒ: > 20 mm (0,787 inches) P: 10 space 6±0,5 (0,236±0,020) 6±0,5 (0,236±0,020) Ø 25 (0,984) Ø 73 (2,874) 356 (14,016) 1,5 max. (0,059) 1,2 max. (0,047) DIMENSIONS in mm (inches) D L max. B A P C max. W 1 W 2 max. W n (2) 6,5 (0,256) (2,874 ± 0,059 ) 10 ±1,5 (3,346 ± 0,059 ) 1000 (39,370) 750 (29,528) 10 (0,394) (1) 12 (0,472) (1) 14 (0,551) (1) 32 (1,260) 73 ±1,5 (2,874 ± 0,059 ) 15 ±1,5 (3,346 ± 0,059 ) 400 (15,748) 400 (15,748) 200 (7 ,874)