Not Recommended for New Designs, Use 150 CRZ
150 CLZ
www.vishay.com
Vishay BCcomponents
Aluminum Capacitors
SMD (Chip), High Temperature
FEATURES
• Polarized aluminum electrolytic
non-solid electrolyte, self healing
capacitors,
• SMD-version with base plate, reflow solderable
• Very low impedance, very high ripple current
• Very long useful life: 3000 h at 105 °C
• Charge and discharge proof, no peak current limitation
140 CLH
125 °C
• ATTENTION: for maximum safe soldering conditions refer
to Fig. 4
high temperature
153 CRV
Lead (Pb)-free
153 CLV
low Z
150 CLZ
APPLICATIONS
• SMD technology, for high mounting density
• Industrial and professional applications
• Automotive, general industrial
• Smoothing, filtering, buffering
Fig. 1
QUICK REFERENCE DATA
DESCRIPTION
Nominal case sizes
(L x W x H in mm)
Rated capacitance range, C
R
Tolerance on C
R
Rated voltage range, U
R
Category temperature range
Endurance test at 105 °C
Useful life at 105 °C:
case size
10 x 10 x 10
case size 10 x 10 x 14
Useful life at 40 °C;
1.8 x l
R
applied:
case size
10 x 10 x 10
case size 10 x 10 x 14
Shelf life at 0 V, 105 °C
Based on sectional
specification
Climatic category IEC 60068
VALUE
8 x 8 x 10 to 10 x 10 x 14
33 μF to 1000 μF
± 20 %
6.3 V to 63 V
-55 °C to +105 °C
2000 h
2500 h
3000 h
125 000 h
150 000 h
1000 h
IEC 60384-18 / CECC32300
55/105/56
MARKING
• Rated capacitance (in μF)
• Rated voltage (in V)
• Date code, in accordance with IEC 60062
• Black mark or “-” sign indicating the cathode (the anode is
identified by bevelled edges)
• Code indicating group number (Z)
PACKAGING
Supplied in blister tape on reel.
SELECTION CHART FOR C
R
, U
R
, AND RELEVANT NOMINAL CASE SIZES
(L x W x H in mm)
C
R
(μF)
33
47
68
100
150
220
330
470
680
1000
6.3
-
-
-
-
-
-
-
-
8 x 8 x 10
-
10 x 10 x 10
10
-
-
-
-
-
-
-
8 x 8 x 10
8 x 8 x 10
10 x 10 x 10
10 x 10 x 14
16
-
-
-
-
-
-
8 x 8 x 10
8 x 8 x 10
10 x 10 x 10
10 x 10 x 14
-
U
R
(V)
25
-
-
-
-
-
8 x 8 x 10
8 x 8 x 10
10 x 10 x 10
10 x 10 x 14
-
-
35
-
-
-
-
8 x 8 x 10
-
10 x 10 x 10
10 x 10 x 14
-
-
-
50
-
-
-
8 x 8 x 10
10 x 10 x 10
-
10 x 10 x 14
-
-
-
-
63
8 x 8 x 10
8 x 8 x 10
10 x 10 x 10
10 x 10 x 10
10 x 10 x 14
-
-
-
-
-
-
Revision: 19-Jan-15
Document Number: 28304
1
For technical questions, contact:
aluminumcaps1@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
Not Recommended for New Designs, Use 150 CRZ
150 CLZ
www.vishay.com
Table 1
Vishay BCcomponents
DIMENSIONS
in millimeters
AND MASS
NOMINAL CASE SIZE
LxWxH
8 x 8 x 10
10 x 10 x 10
10 x 10 x 14
CASE
CODE
0810
1010
1014
L
max.
8.5
10.5
10.5
0.4 ± 0.2
W
max.
8.5
10.5
10.5
L
H
max.
10.5
10.5
14.3
ØD
8.0
10.0
10.0
B
max.
1.0
1.0
1.0
S
3.1
4.5
4.5
L
1 max.
9.9
11.8
11.8
MASS
(g)
1.0
1.3
1.5
WB
C
S
C
0.3 max.
Fig. 2 - Dimensional outline
Table 2
TAPE AND REEL DIMENSIONS
in millimeters,
PACKAGING QUANTITIES
NOMINAL CASE SIZE
LxWxH
8 x 8 x 10
10 x 10 x 10
10 x 10 x 14
CASE
CODE
0810
1010
1014
PITCH
P
1
16
16
16
TAPE WIDTH
W
24
24
24
TAPE THICKNESS
T
2
11.3
11.3
14.8
REEL DIA.
380
380
330
PACKAGING QUANTITY
PER REEL
500
500
250
Note
• Detailed tape dimensions see section “PACKAGING”.
MOUNTING
The capacitors are designed for automatic placement on to
printed-circuit boards.
Optimum dimensions of soldering pads depend amongst
others on soldering method, mounting accuracy, print
layout and / or adjacent components.
For recommended soldering pad dimensions, refer to Fig. 3
and Table 3.
b
a
c
a
Fig. 3 - Recommended solder pad dimensions
SOLDERING
Soldering conditions are defined by the curve, temperature
versus time, where the temperature is that measured on the
soldering pad during processing.
For maximum conditions refer to Fig. 4.
Any temperature versus time curve which does not exceed
the specified maximum curves may be applied.
Table 3
AS A GENERAL PRINCIPLE, TEMPERATURE AND
DURATION SHALL BE THE
MINIMUM
NECESSARY
REQUIRED
TO
ENSURE
GOOD
SOLDERING
CONNECTIONS. HOWEVER, THE SPECIFIED MAXIMUM
CURVES SHOULD NEVER BE EXCEEDED.
T
PAD
280
(°C) 260
240
220
200
180
160
140
120
100
80
0
50
100
150
200 t (s) 250
RECOMMENDED SOLDERING PAD
DIMENSIONS
in millimeters
CASE CODE
0810
1010
1014
a
3.5
4.3
4.3
b
2.5
2.5
2.5
c
3.0
4.0
4.0
Fig. 4 - Maximum temperature load during infrared reflow
soldering measured on the soldering pad
Revision: 19-Jan-15
Document Number: 28304
2
For technical questions, contact:
aluminumcaps1@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
Not Recommended for New Designs, Use 150 CRZ
150 CLZ
www.vishay.com
Vishay BCcomponents
ORDERING EXAMPLE
Electrolytic capacitor 150 CLZ series
220 μF/50 V; ± 20 %
Nominal case size: 10 mm x 10 mm x 14 mm; taped on reel
Ordering code: MAL215095102E3
Former 12NC: 2222 150 95102
ELECTRICAL DATA
SYMBOL
C
R
I
R
I
L2
tan
Z
DESCRIPTION
Rated capacitance at 100 Hz, tolerance ± 20 %
Rated RMS ripple current at 100 kHz, 105 °C
Max. leakage current after 2 min at U
R
Max. dissipation factor at 100 Hz
Max. impedance at 100 kHz
Note
• Unless otherwise specified, all electrical values in Table 4 apply
at T
amb
= 20 °C, P = 86 kPa to 106 kPa, RH = 45 % to 75 %.
Table 4
ELECTRICAL DATA AND ORDERING INFORMATION
U
R
(V)
6.3
C
R
(μF)
470
1000
330
470
680
1000
220
330
470
680
150
220
330
470
100
220
330
68
100
220
33
47
47
68
100
NOMINAL CASE SIZE
LxWxH
(mm)
8x8 x10
10 x10 x10
8 x8 x10
8 x8 x10
10 x 10 x10
10 x 10 x 14
8 x8 x10
8 x8 x10
10 x10 x10
10 x10 x14
8 x8 x10
8 x8 x10
10 x 10 x 10
10 x10 x14
8 x8 x10
10 x 10 x10
10 x 10 x 14
8 x8 x10
10 x10 x10
10 x 10 x 14
8 x8 x10
8 x8 x10
10 x10 x10
10 x 10 x 10
10 x10 x14
I
R
105 °C
100 kHz
(mA)
435
670
435
435
670
850
435
435
670
850
420
420
640
820
405
630
790
333
490
620
270
270
390
390
507
I
L2
2 min.
(mA)
30
63
33
47
68
100
35
53
75
109
38
55
83
118
35
77
116
34
50
110
21
30
30
43
63
tan
100 Hz
0.24
0.24
0.20
0.20
0.20
0.20
0.16
0.16
0.16
0.16
0.14
0.14
0.14
0.14
0.12
0.12
0.12
0.12
0.12
0.12
0.10
0.10
0.10
0.10
0.10
Z
100 kHz
()
0.25
0.13
0.25
0.25
0.13
0.10
0.25
0.25
0.13
0.10
0.28
0.28
0.14
0.11
0.30
0.15
0.12
0.48
0.24
0.19
0.65
0.65
0.38
0.38
0.29
ORDERING CODE
MAL2150.......
95311E3
95301E3
95411E3
95412E3
95401E3
95402E3
95511E3
95512E3
95501E3
95502E3
95611E3
95612E3
95601E3
95602E3
95011E3
95001E3
95002E3
95111E3
95101E3
95102E3
95812E3
95811E3
95801E3
95802E3
95803E3
10
16
25
35
50
63
ADDITIONAL ELECTRICAL DATA
PARAMETER
Voltage
Surge voltage for short periods
Reverse voltage for short periods
Current
Leakage current
Inductance
Equivalent series inductance (ESL)
Resistance
Equivalent series resistance (ESR) at 100 Hz
Revision: 19-Jan-15
CONDITIONS
IEC 60384-18, subclause 4.14
IEC 60384-18, subclause 4.16
After 2 min at U
R
VALUE
U
s
1.15 x U
R
U
rev.
1 V
I
L2
0.01 x C
R
x U
R
Typ. 16 nH
Calculated from tan
max.
and C
R
(see Table 4)
ESR = tan
/2 f
C
R
Document Number: 28304
3
For technical questions, contact:
aluminumcaps1@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
Not Recommended for New Designs, Use 150 CRZ
150 CLZ
www.vishay.com
CAPACITANCE (C)
1.2
C
C
0
1.0
2
Vishay BCcomponents
DISSIPATION FACTOR (tan
)
100
tan
tan
δ
1
10
2
Curve 1: 10 V
Curve 2: 63 V
1
1.0
2
1
Curve 1: 10 V
Curve 2: 63 V
0.1
-60
-40
-20
0
20
40
60
80
100
120
-60
-40
-20
0
20
40
60
80
100
12
2
0.9
1
1
0.8
C
0
= capacitance at 20 °C, 100 Hz
T
amb
(°C)
tan
δ
0
= typical tan
δ
at 20 °C, 100 Hz
T
amb
(°C)
Fig. 5 - Typical multiplier of capacitance as a function
of ambient temperatures
Fig. 6 - Typical multiplier of dissipation factor (tan
)
as a function
of ambient temperatures
EQUIVALENT SERIES RESISTANCE (ESR)
10
ESR
ESR
0
1
2
Curve 1: 10 V
Curve 2: 63 V
IMPEDANCE (Z)
1000
Z
(
Ω
)
100
U
R
= 10 V
Curve 1: case code 0810, 470 µF
Curve 2: case code 1010, 680 µF
Curve 3: case code 1014, 1000 µF
1
1
2
10
1
2
1
3
0.1
10
1
0.1
10
2
10
3
10
4
f (Hz)
10
5
10
1
10
2
10
3
10
4
f (Hz)
10
5
ESR
0
= typical at 20 °C, 100 Hz
T
amb
= 20 °C
Fig. 7 -
Typical multiplier of ESR as a function of frequency
10
2
Z
(
Ω
)
10
10
2
Z
(
Ω
)
10
Fig. 8 -
Typical impedance as a function of frequency
1
1
1
2
3
0.1
U
R
= 63 V
Curve 1: case code 0810, 47 µF
Curve 2: case code 1010, 68 µF
Curve 3: case code 1014, 100 µF
10
1
10
2
10
3
10
4
10
5
0.1
U
R
= 35 V
Curve 1: case code 0810, 100 µF
Curve 2: case code 1010, 220 µF
Curve 3: case code 1014, 330 µF
10
1
1
2
3
0.01
10
2
0.01
10
3
10
4
f (Hz)
10
5
f (Hz)
T
amb
(20 °C)
T
amb
(20 °C)
Fig. 9 -
Typical impedance as a function of frequency
Revision: 19-Jan-15
Fig. 10 -
Typical impedance as a function of frequency
Document Number: 28304
4
For technical questions, contact:
aluminumcaps1@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
Not Recommended for New Designs, Use 150 CRZ
150 CLZ
www.vishay.com
RIPPLE CURRENT AND USEFUL LIFE
CCC206
Vishay BCcomponents
3.8
3.7
I
A
I
R
3.6
3.5
3.4
3.3
3.2
3.1
3.0
2.8
2.6
Lifetime multiplier
1.0
2.4
1.5
2.0
2.2
3.0
2.0
1.8
1.6
4.0
6.0
8.0 2
1
20
30
I
A
= actual ripple current at 100 kHz
I
R
= rated ripple current at 100 kHz, 105 °C
(1)
Useful life at 105 °C and I
R
applied:
case code ≤ 1010: 2500 h
case code = 1014: 3000 h
1.4
1.2
1.0
0.8
0.5
0.0
40
Fig. 11 -
Multiplier of useful life as a function of ambient temperature and ripple current load
MULTIPLIER OF RIPPLE CURRENT (I
R
) AS A FUNCTION OF FREQUENCY
FREQUENCY
(Hz)
100
300
1000
3000
10 000
30 000
100 000
I
R
MULTIPLIER
U
R
= 6.3 V TO 25 V
0.70
0.80
0.85
0.93
0.95
0.97
1.00
U
R
= 35 V
0.65
0.80
0.85
0.93
0.95
0.97
1.00
U
R
= 50 V TO 63 V
0.60
0.75
0.85
0.93
0.95
0.97
1.00
60
0
10 0
15 0
20
50
60
70
80
90
(1)
100
110
T
amb
(°C)
Revision: 19-Jan-15
Document Number: 28304
5
For technical questions, contact:
aluminumcaps1@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000