| Motor de Búsqueda de Datasheet de Componentes Electrónicos |
|
PRORELSIC125 Datasheet(PDF) 9 Page - Exxelia Group |
|
|
|||||||||||||||||||||||||||||
PRORELSIC125 Datasheet(HTML) 9 Page - Exxelia Group |
|
9 / 15 page ![]() 8 ELECTROLYTIC ALUMINUM CAPACITORS Revision 01/19 www.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 defined in: • NF and UTE French national standard • CECC European specifications • IEC international specifications Quality insurance procedures are described in these specifications. 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 , ESR, Z and Il initial values (1) Tan or ESR: for initial value, take standard value. (2) Z: for initial value, take specified value (see data sheet ). Specific requirements can be taken into consideration with regards to initial values of dissipation factor or equivalent series resistance and impedance. French European International Generic specification Fixed capacitors NF C 83 100 CECC 30 000 EN 130 000 IEC 60 384 -1 QC 300 000 Sectional specification Electrolytic aluminum capacitors NF C 83 110 CECC 30 300 IEC 60 384 - 4 C 300 300 Blank deta Il specification - Electrolytic aluminum capacitors with non solid electrolyte. UTE 83 110 CECC 30 301 IEC 60 384 - 4 -1 QC 300 301 Blank deta Il specifications 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 • • • • UR 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 > 160 V ±15 ±10 ±10 ±15 Endurance test Grade I Grade II 10 000 h 5 000 h 2 000 h 1 000 h Tan 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 defined 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 or ESR: 3 times standard max initial values. • Z: 3 times standard max initial values. • Il: initial limit (under load conditions). Specific 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 i and therefore upon the ambient temperature and the ripple current. Knowing ESR and dissipated power values (§ 6.4.3.) one can figure out, the internal temperature rise and then determine the capacitors expected life. With present high boiling point electrolytes (§ 8.6) i max = 125 to 185°C depending on styles. 6.4.2. Ripple current. The ripple current flowing through the capacitor increase the internal temperature through power dissipation. Standards define 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 difficult to clearly determine the capacitors internal temperature rise, which defines the operationally life. Experiments confirm following relationship: i = a + ( c - a) K Where: • i = Internal hot spot temperature • a = Ambient temperature • c = 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 |
|
|
Enlace URL |
| ¿ALLDATASHEET es útil para Ud.? [ DONATE ] |
Todo acerca de Alldatasheet | Publicidad | Contáctenos | Política de Privacidad | Enlace a la hoja de datos | Intercambio de Enlaces | Lista de Fabricantes All Rights Reserved©Alldatasheet.com |
| Russian : Alldatasheetru.com | Korean : Alldatasheet.co.kr | Spanish : Alldatasheet.es | French : Alldatasheet.fr | Italian : Alldatasheetit.com Portuguese : Alldatasheetpt.com | Polish : Alldatasheet.pl | Vietnamese : Alldatasheet.vn Indian : Alldatasheet.in | Mexican : Alldatasheet.com.mx | British : Alldatasheet.co.uk | New Zealand : Alldatasheet.co.nz |
|
Family Site : ic2ic.com |
icmetro.com |