B72530V0600K062 [EPCOS]

RESISTOR, VOLTAGE DEPENDENT, 85V, 2J, SURFACE MOUNT, CHIP;
B72530V0600K062
型号: B72530V0600K062
厂家: EPCOS    EPCOS
描述:

RESISTOR, VOLTAGE DEPENDENT, 85V, 2J, SURFACE MOUNT, CHIP

PC 电阻器
文件: 总82页 (文件大小:1373K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
Ceramic transient voltage suppressors  
SMD multilayer transient voltage suppressors,  
standard series  
The following products presented in this data sheet are being withdrawn.  
Ordering Code  
Substitute Product  
Date of  
Withdrawal  
Deadline Last  
Orders  
Last Shipments  
B72580V0110K062 B72580T0110K062 2012-11-09  
B72580V0080L062 B72580T0080L062 2012-11-09  
B72580V0060M062 B72580T0040M062 2012-11-09  
2013-03-01  
2013-03-01  
2013-03-01  
2013-06-01  
2013-06-01  
2013-06-01  
© EPCOS AG 2015. Reproduction, publication and dissemination of this publication, enclosures hereto and the  
information contained therein without EPCOS' prior express consent is prohibited.  
EPCOS AG is a TDK Group Company.  
Ordering Code  
Substitute Product  
Date of  
Withdrawal  
Deadline Last  
Orders  
Last Shipments  
B72580V0040M062 B72580T0040M062 2012-11-09  
B72540V0080L062 B72540T0080L062 2012-11-09  
2013-03-01  
2013-03-01  
2013-06-01  
2013-06-01  
For further information please contact your nearest EPCOS sales office, which will also support  
you in selecting a suitable substitute. The addresses of our worldwide sales network are  
presented at www.epcos.com/sales.  
Multilayer varistors (MLVs)  
Standard series  
EPCOS type designation system for standard series  
CT  
0603  
K
17  
G
K2  
Construction:  
CT Single chip with nickel barrier  
termination (AgNiSn)  
CN Single chip with silver-palladium  
termination (AgPd)  
CN...K2 Single chip with silver-platinum  
termination (AgPt)  
Case sizes:  
0201  
0402  
0603  
0805  
1206  
1210  
1812  
2220  
Tolerance of the varistor voltage:  
K ±10%  
L ±15%  
M ±20%  
S Special tolerance  
Maximum RMS operating voltage (VRMS):  
17 17 V  
Taping mode:  
G 180-mm reel  
AgPt termination  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 2 of 81  
Multilayer varistors (MLVs)  
Standard series  
Features  
Single chip  
ESD acc. to IEC 61000-4-2 level 4  
(8 kV contact, 15 kV air discharge)  
Surge current up to 1200 A  
Bidirectional protection  
Internal circuit  
No derating up to 125°C (for case sizes 0603)  
Fast response (< 0.5 ns)  
RoHS-compatible  
CT version suitable for lead-free soldering  
PSpice simulation models available  
Available case sizes:  
EIA  
Metric  
Applications  
0201  
0402  
0603  
0805  
1206  
1210  
1812  
2220  
0603  
1005  
1608  
2012  
3216  
3225  
4532  
5750  
ESD protection in mobile phones, cordless phones  
and accessories  
ESD protection in data bus applications  
ESD protection in control electronics, detectors and  
sensors, touch screens, plug-in cards, remote  
controls  
Design  
Multilayer technology  
Lack of plastic or epoxy encapsulation for  
flammability rating better than UL 94 V-0  
Termination (see “Soldering directions”):  
CT types with nickel barrier terminations (AgNiSn),  
recommended for lead-free soldering, and  
compatible with tin/lead solder.  
CN types with silver-palladium terminations  
(AgPd) only suitable for reflow and wave soldering  
with solder on tin/lead basis.  
CN...K2 types with silver-platinum terminations  
(AgPt) suitable for reflow lead-free soldering.  
V/I characteristics and derating curves  
V/I and derating curves are attached to the data sheet.  
The curves are sorted by VRMS and then by case size,  
which is included in the type designation.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 3 of 81  
Multilayer varistors (MLVs)  
Standard series  
General technical data  
Maximum RMS operating voltage  
Maximum DC operating voltage  
Maximum surge current  
Maximum energy absorption  
Maximum power dissipation  
Maximum clamping voltage  
Operating temperature  
VRMS,max  
VDC,max  
Isurge,max  
Wmax  
Pdiss,max  
Vclamp,max  
4 ... 60  
V
V
A
mJ  
mW  
V
°C  
°C  
°C  
°C  
5.5 ... 85  
10 ... 1200  
7.5 ... 12000  
3 ... 20  
17 ... 165  
40/+85  
55/+125  
(8/20 µs)  
(2 ms)  
(8/20 µs)  
for case size 0201, 0402 Top  
for case size 0603 Top  
for case size 0201, 0402 LCT/UCT 40/+125  
Storage temperature  
for case size 0603  
LCT/UCT 55/+150  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 4 of 81  
Multilayer varistors (MLVs)  
Standard series  
Temperature derating  
Climatic category:  
40/+85 °C for case size 0201 and 0402  
Climatic category:  
55/+125 °C for case size 0603  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 5 of 81  
Multilayer varistors (MLVs)  
Standard series  
Electrical specifications and ordering codes  
Maximum ratings (Top,max  
)
VRMS,max VDC,max Isurge,max  
(8/20 µs) (2 ms)  
mJ  
Wmax  
Pdiss,max Top,max  
Type  
Ordering code  
V
V
A
mW  
°C  
CN standard series  
CN1812M4G  
CN2220M4G  
CN1812M6G  
CN2220M6G  
CN1812L8G  
CN2220L8G  
B72580V0040M062  
B72540V0040M062  
B72580V0060M062  
B72540V0060M062  
B72580V0080L062  
B72540V0080L062  
4
5.5  
5.5  
8
8
11  
500  
1000  
500  
1200  
800  
1200  
800  
1200  
800  
800  
1200  
800  
1200  
800  
1200  
1200  
800  
1200  
1200  
800  
800  
15  
20  
15  
20  
15  
20  
15  
20  
15  
15  
20  
15  
20  
15  
20  
20  
15  
20  
20  
15  
15  
20  
20  
15  
20  
20  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
4
6
6
8
8
1400  
1000  
3600  
1800  
4200  
1900  
5400  
2300  
2300  
5800  
2700  
7200  
3000  
7800  
7800  
3700  
9600  
9600  
4200  
4200  
12000  
12000  
4000  
7700  
9000  
11  
14  
14  
18  
18  
18  
22  
22  
26  
26  
26  
31  
31  
31  
38  
38  
38  
38  
45  
45  
56  
CN1812K11G  
CN2220K11G  
CN1812K14G  
CN1812K14GK2  
CN2220K14G  
CN1812K17G  
CN2220K17G  
CN1812K20G  
CN2220K20G  
CN2220K20GK2  
CN1812K25G  
CN2220K25G  
CN2220K25GK2  
CN1812K30G  
CN1812K30GK2  
CN2220K30G  
CN2220K30GK2  
CN1812K35GK2  
CN2220K35GK2  
CN2220K40GK2  
CT standard series  
B72580V0110K062 11  
B72540V0110K062 11  
B72580V0140K062 14  
B72582V0140K062 14  
B72540V0140K062 14  
B72580V0170K062 17  
B72540V0170K062 17  
B72580V0200K062 20  
B72540V0200K062 20  
B72542V0200K062 20  
B72580V0250K062 25  
B72540V0250K062 25  
B72542V0250K062 25  
B72580V0300K062 30  
B72582V0300K062 30  
B72540V0300K062 30  
B72542V0300K062 30  
B72582V0350K062 35  
B72542V0350K062 35  
B72542V0400K062 40  
800  
1200  
1200  
500  
1000  
1000  
CT0201S4AG  
CT0402M4G  
CT0603M4G  
CT0805M4G  
CT1206M4G  
CT1210M4G  
CT0603M6G  
B72440T0040S160  
B72590T0040M060  
B72500T0040M060  
B72510T0040M062  
B72520T0040M062  
B72530T0040M062  
B72500T0060M060  
4
4
4
4
4
4
6
5.5  
-
-
-
+85  
+85  
5.5  
5.5  
5.5  
5.5  
5.5  
8
20  
30  
100  
150  
250  
30  
7.5  
3
3
5
8
10  
3
100  
100  
300  
400  
100  
+125  
+125  
+125  
+125  
+125  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 6 of 81  
Multilayer varistors (MLVs)  
Standard series  
Characteristics (TA = 25 °C)  
VV  
(1 mA)  
V
VV  
Vclamp,max  
V
Iclamp  
(8/20 µs)  
A
Ctyp  
(1 kHz, 1 V)  
pF  
Type  
%
CN standard series  
CN1812M4G  
CN2220M4G  
CN1812M6G  
CN2220M6G  
CN1812L8G  
CN2220L8G  
8
8
±20  
±20  
±20  
±20  
±15  
±15  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
17  
17  
25  
25  
30  
30  
33  
33  
38  
38  
38  
44  
44  
54  
54  
54  
65  
65  
65  
77  
77  
77  
77  
90  
90  
110  
5
10  
5
10  
5
10  
5
10  
5
5
10  
5
10  
5
10  
10  
5
10000  
24000  
8000  
20000  
6000  
16000  
5000  
12000  
4500  
4500  
10000  
4000  
9000  
3000  
7000  
7000  
2500  
5000  
5000  
2000  
2000  
4000  
4000  
1200  
2500  
2000  
11  
11  
15  
15  
18  
18  
22  
22  
22  
27  
27  
33  
33  
33  
39  
39  
39  
47  
47  
47  
47  
56  
56  
68  
CN1812K11G  
CN2220K11G  
CN1812K14G  
CN1812K14GK2  
CN2220K14G  
CN1812K17G  
CN2220K17G  
CN1812K20G  
CN2220K20G  
CN2220K20GK2  
CN1812K25G  
CN2220K25G  
CN2220K25GK2  
CN1812K30G  
CN1812K30GK2  
CN2220K30G  
CN2220K30GK2  
CN1812K35GK2  
CN2220K35GK2  
CN2220K40GK2  
CT standard series  
10  
10  
5
5
10  
10  
5
10  
10  
CT0201S4AG  
CT0402M4G  
CT0603M4G  
CT0805M4G  
CT1206M4G  
CT1210M4G  
CT0603M6G  
15  
10  
8
8
8
±20  
±20  
±20  
±20  
±20  
±20  
±20  
35  
24  
19  
19  
17  
17  
27  
1
1
1
1
1
2.5  
1
221)  
2001)  
200  
700  
1500  
5000  
200  
8
11  
1) Measured @ 1 MHz, 1 V  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 7 of 81  
Multilayer varistors (MLVs)  
Standard series  
Electrical specifications and ordering codes  
Maximum ratings (Top,max  
)
VRMS,max VDC,max Isurge,max  
(8/20 µs) (2 ms)  
mJ  
Wmax  
Pdiss,max Top,max  
Type  
Ordering code  
V
V
A
mW  
°C  
CT standard series  
CT0805M6G  
CT1206M6G  
CT1210M6G  
CT0603K7G  
CT0603M7G  
CT0603L8G  
CT0805L8G  
CT1206L8G  
CT1210L8G  
B72510T0060M062  
B72520T0060M062  
B72530T0060M062  
B72500T0070K060  
B72500T0070M060  
B72500T0080L060  
B72510T0080L062  
B72520T0080L062  
B72530T0080L062  
6
8
8
8
9
9
120  
200  
5
8
10  
3
3
3
5
8
10  
3
3
5
8
10  
3
3
3
3
5
8
10  
3
3
5
8
10  
3
5
8
10  
3
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+85  
+125  
+125  
+125  
+125  
+85  
6
6
7
7
8
8
8
8
200  
300  
30  
30  
30  
120  
200  
400  
20  
400  
700  
100  
100  
100  
200  
500  
1000  
11  
11  
11  
11  
14  
14  
14  
14  
14  
16  
16  
18  
18  
18  
18  
18  
19  
22  
22  
22  
22  
26  
26  
26  
26  
31  
31  
31  
31  
38  
CT0402S11AG  
CT0603K11G  
CT0805K11G  
CT1206K11G  
CT1210K11G  
CT0402L14G  
CT0402L14UG  
CT0603K14G  
CT0603S14BG  
CT0805K14G  
CT1206K14G  
CT1210K14G  
CT0402S17AG  
CT0603K17G  
CT0805K17G  
CT1206K17G  
CT1210K17G  
CT0603K20G  
CT0805K20G  
CT1206K20G  
CT1210K20G  
CT0603K25G  
CT0805K25G  
CT1206K25G  
CT1210K25G  
CT0805K30G  
B72590T0110S160 11  
B72500T0110K060 11  
B72510T0110K062 11  
B72520T0110K062 11  
B72530T0110K062 11  
B72590T0140L060 14  
B72590T0140L960 14  
B72500T0140K060 14  
B72500T0140S160 14  
B72510T0140K062 14  
B72520T0140K062 14  
B72530T0140K062 14  
B72590T0170S160 17  
B72500T0170K060 17  
B72510T0170K062 17  
B72520T0170K062 17  
B72530T0170K062 17  
B72500T0200K060 20  
B72510T0200K062 20  
B72520T0200K062 20  
B72530T0200K062 20  
B72500T0250K060 25  
B72510T0250K062 25  
B72520T0250K062 25  
B72530T0250K062 25  
B72510T0300K062 30  
7.5  
30  
200  
200  
500  
1200  
10  
120  
200  
400  
20  
10  
30  
10  
+85  
200  
200  
300  
500  
1500  
10  
200  
300  
600  
1700  
200  
300  
700  
1900  
300  
300  
1000  
1700  
300  
+125  
+125  
+125  
+125  
+125  
+85  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
30  
120  
200  
400  
20  
30  
120  
200  
400  
30  
80  
200  
400  
30  
80  
5
8
10  
5
200  
300  
80  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 8 of 81  
Multilayer varistors (MLVs)  
Standard series  
Characteristics (TA = 25 °C)  
VV  
(1 mA)  
V
VV  
Vclamp,max  
V
Iclamp  
(8/20 µs)  
A
Ctyp  
(1 kHz, 1 V)  
pF  
Type  
%
CT standard series  
CT0805M6G  
CT1206M6G  
CT1210M6G  
CT0603K7G  
CT0603M7G  
CT0603L8G  
CT0805L8G  
CT1206L8G  
CT1210L8G  
11  
11  
11  
12.5  
12.5  
15  
15  
15  
15  
18.4  
18  
18  
18  
±20  
±20  
±20  
±10  
±20  
±15  
±15  
±15  
±15  
±10  
±10  
±10  
±10  
±10  
±15  
±15  
±10  
+23/0  
±10  
±10  
±10  
±25  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
27  
25  
25  
27  
30  
33  
33  
30  
30  
35  
35  
35  
33  
33  
46  
46  
40  
42  
40  
38  
38  
59  
46  
46  
44  
44  
56  
56  
54  
54  
67  
67  
65  
65  
77  
1
1
2.5  
1
1
1
1
1
2.5  
1
1
1
1
2.5  
1
1
1
1
1
1
2.5  
1
1
1
1
2.5  
1
1
1
2.5  
1
1
1
2.5  
1
600  
1200  
4000  
130  
200  
150  
500  
1000  
3000  
1201)  
100  
400  
800  
2400  
471)  
471)  
100  
120  
350  
700  
2000  
331)  
100  
400  
650  
1800  
90  
CT0402S11AG  
CT0603K11G  
CT0805K11G  
CT1206K11G  
CT1210K11G  
CT0402L14G  
CT0402L14UG  
CT0603K14G  
CT0603S14BG  
CT0805K14G  
CT1206K14G  
CT1210K14G  
CT0402S17AG  
CT0603K17G  
CT0805K17G  
CT1206K17G  
CT1210K17G  
CT0603K20G  
CT0805K20G  
CT1206K20G  
CT1210K20G  
CT0603K25G  
CT0805K25G  
CT1206K25G  
CT1210K25G  
CT0805K30G  
18  
23.5  
23.5  
22  
22  
22  
22  
22  
32  
27  
27  
27  
27  
33  
33  
33  
33  
39  
300  
600  
1500  
901)  
250  
550  
1200  
200  
39  
39  
39  
47  
1) Measured @ 1 MHz, 1 V  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 9 of 81  
Multilayer varistors (MLVs)  
Standard series  
Electrical specifications and ordering codes  
Maximum ratings (Top,max  
)
VRMS,max VDC,max Isurge,max  
(8/20 µs) (2 ms)  
mJ  
Wmax  
Pdiss,max Top,max  
Type  
Ordering code  
V
V
A
mW  
°C  
CT standard series  
CT1206K30G  
CT1210K30G  
CT1206K35G  
CT1210K35G  
CT1206K40G  
CT1210K40G  
CT1206K50G  
CT1210K50G  
CT1206K60G  
CT1210K60G  
B72520T0300K062 30  
B72530T0300K062 30  
B72520T0350K062 35  
B72530T0350K062 35  
B72520T0400K062 40  
B72530T0400K062 40  
B72520T0500K062 50  
B72530T0500K062 50  
B72520T0600K062 60  
B72530T0600K062 60  
38  
38  
45  
45  
56  
56  
65  
65  
85  
85  
200  
1100  
2000  
400  
2000  
500  
2300  
600  
1600  
700  
2000  
8
10  
8
10  
8
10  
8
10  
8
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
+125  
300  
100  
250  
100  
250  
100  
200  
100  
200  
10  
Characteristics (TA = 25 °C)  
VV  
VV  
Vclamp,max  
Iclamp  
Ctyp  
Type  
(1 mA)  
V
(8/20 µs)  
A
(1 kHz, 1 V)  
pF  
%
V
CT standard series  
CT1206K30G  
CT1210K30G  
CT1206K35G  
CT1210K35G  
CT1206K40G  
CT1210K40G  
CT1206K50G  
CT1210K50G  
CT1206K60G  
CT1210K60G  
47  
47  
56  
56  
68  
68  
82  
82  
100  
100  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
±10  
77  
77  
90  
1
2.5  
1
2.5  
1
2.5  
1
2.5  
1
2.5  
500  
1000  
200  
600  
250  
500  
120  
250  
100  
200  
90  
110  
110  
135  
135  
165  
165  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 10 of 81  
Multilayer varistors (MLVs)  
Standard series  
Dimensional drawing  
Dimensions in mm  
Case size  
EIA / mm  
l
w
h
k
0201 / 0603  
0402 / 1005  
0603 / 1608  
0805 / 2012  
1206 / 3216  
1210 / 3225  
1812 / 4532  
2220 / 5750  
0.6 ±0.03  
1.0 ±0.15  
1.6 ±0.15  
2.0 ±0.20  
3.2 ±0.30  
3.2 ±0.30  
4.5 ±0.40  
5.7 ±0.40  
0.30 ±0.03  
0.50 ±0.10  
0.80 ±0.10  
1.25 ±0.15  
1.60 ±0.20  
2.50 ±0.25  
3.20 ±0.30  
5.00 ±0.40  
0.33 max.  
0.6 max.  
0.9 max.  
1.4 max.  
1.7 max.  
1.7 max.  
2.5 max.  
2.5 max.  
0.15 ±0.05  
0.10 ... 0.30  
0.10 ... 0.40  
0.13 ... 0.75  
0.25 ... 0.75  
0.25 ... 0.75  
0.25 ... 1.00  
0.25 ... 1.00  
Recommended solder pad layout  
Dimensions in mm  
Case size  
EIA / mm  
A
B
C
0201 / 0603  
0402 / 1005  
0603 / 1608  
0805 / 2012  
1206 / 3216  
1210 / 3225  
1812 / 4532  
2220 / 5750  
0.30  
0.60  
1.00  
1.40  
1.80  
2.80  
3.60  
5.50  
0.25  
0.60  
1.00  
1.20  
1.20  
1.20  
1.50  
1.50  
0.30  
0.50  
1.00  
1.00  
2.10  
2.10  
3.00  
4.20  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 11 of 81  
Multilayer varistors (MLVs)  
Standard series  
Delivery mode  
EIA case size Taping  
Reel size Packing unit Type  
Ordering code  
mm  
pcs.  
0201  
0402  
0402  
0402  
0402  
0402  
0603  
0603  
0603  
0603  
0603  
0603  
0603  
0603  
0603  
0603  
0603  
0805  
0805  
0805  
0805  
0805  
0805  
0805  
0805  
0805  
1206  
1206  
1206  
1206  
1206  
1206  
1206  
1206  
1206  
1206  
1206  
1206  
1206  
1210  
1210  
1210  
Cardboard 180  
15000  
10000  
10000  
10000  
10000  
10000  
4000  
4000  
4000  
4000  
4000  
4000  
4000  
4000  
4000  
4000  
4000  
3000  
3000  
3000  
3000  
3000  
3000  
3000  
3000  
3000  
3000  
3000  
3000  
3000  
2000  
2000  
2000  
2000  
2000  
2000  
3000  
3000  
3000  
3000  
3000  
3000  
CT0201S4AG  
CT0402L14G  
CT0402L14UG  
CT0402M4G  
CT0402S11AG  
CT0402S17AG  
CT0603K11G  
CT0603K14G  
CT0603K17G  
CT0603K20G  
CT0603K25G  
CT0603K7G  
CT0603L8G  
CT0603M4G  
CT0603M6G  
CT0603M7G  
CT0603S14BG  
CT0805K11G  
CT0805K14G  
CT0805K17G  
CT0805K20G  
CT0805K25G  
CT0805K30G  
CT0805L8G  
CT0805M4G  
CT0805M6G  
CT1206K11G  
CT1206K14G  
CT1206K17G  
CT1206K20G  
CT1206K25G  
CT1206K30G  
CT1206K35G  
CT1206K40G  
CT1206K50G  
CT1206K60G  
CT1206L8G  
B72440T0040S160  
B72590T0140L060  
B72590T0140L960  
B72590T0040M060  
B72590T0110S160  
B72590T0170S160  
B72500T0110K060  
B72500T0140K060  
B72500T0170K060  
B72500T0200K060  
B72500T0250K060  
B72500T0070K060  
B72500T0080L060  
B72500T0040M060  
B72500T0060M060  
B72500T0070M060  
B72500T0140S160  
B72510T0110K062  
B72510T0140K062  
B72510T0170K062  
B72510T0200K062  
B72510T0250K062  
B72510T0300K062  
B72510T0080L062  
B72510T0040M062  
B72510T0060M062  
B72520T0110K062  
B72520T0140K062  
B72520T0170K062  
B72520T0200K062  
B72520T0250K062  
B72520T0300K062  
B72520T0350K062  
B72520T0400K062  
B72520T0500K062  
B72520T0600K062  
B72520T0080L062  
B72520T0040M062  
B72520T0060M062  
B72530T0110K062  
B72530T0140K062  
B72530T0170K062  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Cardboard 180  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
CT1206M4G  
CT1206M6G  
CT1210K11G  
CT1210K14G  
CT1210K17G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 12 of 81  
Multilayer varistors (MLVs)  
Standard series  
EIA case size Taping  
Reel size Packing unit Type  
mm pcs.  
3000  
Ordering code  
1210  
1210  
1210  
1210  
1210  
1210  
1210  
1210  
1210  
1210  
1812  
1812  
1812  
1812  
1812  
1812  
1812  
1812  
1812  
1812  
1812  
1812  
2220  
2220  
2220  
2220  
2220  
2220  
2220  
2220  
2220  
2220  
2220  
2220  
2220  
2220  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
Blister  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
180  
CT1210K20G  
CT1210K25G  
CT1210K30G  
CT1210K35G  
CT1210K40G  
CT1210K50G  
CT1210K60G  
CT1210L8G  
B72530T0200K062  
B72530T0250K062  
B72530T0300K062  
B72530T0350K062  
B72530T0400K062  
B72530T0500K062  
B72530T0600K062  
B72530T0080L062  
B72530T0040M062  
B72530T0060M062  
B72580V0110K062  
B72580V0140K062  
B72582V0140K062  
B72580V0170K062  
B72580V0200K062  
B72580V0250K062  
B72580V0300K062  
B72582V0300K062  
B72582V0350K062  
B72580V0080L062  
B72580V0040M062  
B72580V0060M062  
B72540V0110K062  
B72540V0140K062  
B72540V0170K062  
B72540V0200K062  
B72542V0200K062  
B72540V0250K062  
B72542V0250K062  
B72540V0300K062  
B72542V0300K062  
B72542V0350K062  
B72542V0400K062  
B72540V0080L062  
B72540V0040M062  
B72540V0060M062  
2000  
2000  
2000  
2000  
2000  
2000  
3000  
3000  
3000  
1500  
1500  
1500  
1500  
1500  
1000  
1000  
1000  
1000  
1500  
1500  
1500  
1500  
1500  
1500  
1500  
1500  
1000  
1000  
1000  
1000  
1000  
1000  
1500  
1500  
1500  
CT1210M4G  
CT1210M6G  
CN1812K11G  
CN1812K14G  
CN1812K14GK2  
CN1812K17G  
CN1812K20G  
CN1812K25G  
CN1812K30G  
CN1812K30GK2  
CN1812K35GK2  
CN1812L8G  
CN1812M4G  
CN1812M6G  
CN2220K11G  
CN2220K14G  
CN2220K17G  
CN2220K20G  
CN2220K20GK2  
CN2220K25G  
CN2220K25GK2  
CN2220K30G  
CN2220K30GK2  
CN2220K35GK2  
CN2220K40GK2  
CN2220L8G  
CN2220M4G  
CN2220M6G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 13 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0201S4AG  
CT0402M4G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 14 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0402S11AG  
CT0402L14G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 15 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0402L14UG  
CT0402S17AG  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 16 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0603M4G  
CT0603M6G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 17 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0603K7G  
CT0603M7G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 18 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0603L8G  
CT0603K11G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 19 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0603K14G  
CT0603S14BG  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 20 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0603K17G  
CT0603K20G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 21 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0603K25G  
CT0805M4G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 22 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0805M6G  
CT0805L8G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 23 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0805K11G  
CT0805K14G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 24 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0805K17G  
CT0805K20G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 25 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT0805K25G  
CT0805K30G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 26 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1206M4G  
CT1206M6G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 27 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1206L8G  
CT1206K11G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 28 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1206K14G  
CT1206K17G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 29 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1206K20G  
CT1206K25G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 30 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1206K30G  
CT1206K35G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 31 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1206K40G  
CT1206K50G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 32 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1206K60G  
CT1210M4  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 33 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1210M6G  
CT1210L8G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 34 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1210K11G  
CT1210K14G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 35 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1210K17G  
CT1210K20G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 36 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1210K25G  
CT1210K30G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 37 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1210K35G  
CT1210K40G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 38 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CT1210K50G  
CT1210K60G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 39 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN1812M4G  
CN1812M6G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 40 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN1812L8G  
CN1812K11G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 41 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN1812K14G(K2)  
CN1812K17G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 42 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN1812K20G  
CN1812K25G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 43 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN1812K30G(K2)  
CN2220M4G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 44 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN1812K35GK2  
CN2220M6G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 45 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN2220L8G  
CN2220K11G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 46 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN2220K14G  
CN2220K17G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 47 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN2220K20G(K2)  
CN2220K25G(K2)  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 48 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN2220K30G(K2)  
CN2220K35GK2  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 49 of 81  
Multilayer varistors (MLVs)  
Standard series  
V/I characteristics  
CN2220K40GK2  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 50 of 81  
Multilayer varistors (MLVs)  
Standard series  
Derating curves  
Maximum surge current Isurge,max = f (tr, pulse train)  
For explanation of the derating curves refer to "General technical information", chapter 2.7.2  
CT0402M4G ... S17AG  
CT0402L14UG  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 51 of 81  
Multilayer varistors (MLVs)  
Standard series  
Derating curves  
Maximum surge current Isurge,max = f (tr, pulse train)  
For explanation of the derating curves refer to "General technical information", chapter 2.7.2  
CT0603M4G ... K25G  
CT0805M4G  
CT1206K35G ... K60G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 52 of 81  
Multilayer varistors (MLVs)  
Standard series  
Derating curves  
Maximum surge current Isurge,max = f (tr, pulse train)  
For explanation of the derating curves refer to "General technical information", chapter 2.7.2  
CT0805M6G ... K17G  
CT0805K20G ... K30G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 53 of 81  
Multilayer varistors (MLVs)  
Standard series  
Derating curves  
Maximum surge current Isurge,max = f (tr, pulse train)  
For explanation of the derating curves refer to "General technical information", chapter 2.7.2  
CT1206M4G  
CT1206M6G ... K30G  
CT1210K50G ... K60G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 54 of 81  
Multilayer varistors (MLVs)  
Standard series  
Derating curves  
Maximum surge current Isurge,max = f (tr, pulse train)  
For explanation of the derating curves refer to "General technical information", chapter 2.7.2  
CT1210M4G  
CT1210K35G ... K40G  
CT1210M6G  
CT1210K25G ... K30G  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 55 of 81  
Multilayer varistors (MLVs)  
Standard series  
Derating curves  
Maximum surge current Isurge,max = f (tr, pulse train)  
For explanation of the derating curves refer to "General technical information", chapter 2.7.2  
CT1210L8G ... K20G  
CN1812M4G ... M6G  
CN1812K35GK2  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 56 of 81  
Multilayer varistors (MLVs)  
Standard series  
Derating curves  
Maximum surge current Isurge,max = f (tr, pulse train)  
For explanation of the derating curves refer to "General technical information", chapter 2.7.2  
CN1812L8G ... K30G(K2)  
CN2220M4G  
CN2220K35GK2, CN2220K40GK2  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 57 of 81  
Multilayer varistors (MLVs)  
Standard series  
Derating curves  
Maximum surge current Isurge,max = f (tr, pulse train)  
For explanation of the derating curves refer to "General technical information", chapter 2.7.2  
CN2220M6G ... K30G(K2)  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 58 of 81  
Multilayer varistors (MLVs)  
Standard series  
Taping and packing  
1
Taping and packing for SMD components  
Blister tape (the taping to IEC 60286-3)  
1.1  
Dimensions in mm  
8-mm tape  
12-mm tape  
16-mm tape  
Case size (inch/mm)  
Case size  
(inch/mm)  
Case size  
(inch/mm)  
Tolerance  
0508/  
1220  
0612/  
1632  
1012/  
2532  
0603/  
1608  
0506/  
1216  
0805/  
2012  
1206/  
3216  
1210/  
3225  
1812/  
4532  
2220/  
5750  
3225 4032  
A0  
B0  
K0  
T
0.9 ±0.10  
1.75 ±0.10  
1.0  
1.50  
1.80  
0.80  
1.60  
2.40  
1.90  
3.50  
1.80  
2.80  
3.50  
3.50  
4.80  
5.10  
6.00  
7.00 8.60 ±0.20  
8.70 10.60 ±0.20  
2.60  
5.00  
0.30  
5.50  
1.50  
1.50  
4.00  
2.00  
12.00  
16.00  
1.75  
7.50  
0.75  
max.  
0.30  
0.30  
3.50  
1.50  
1.50  
4.00  
2.00  
8.00  
12.00  
1.75  
5.50  
0.75  
max.  
T2  
D0  
D1  
P0  
P2  
P1  
W
E
1.3  
1.20  
2.50  
max.  
1.50  
1.00  
4.00  
2.00  
4.00  
8.00  
1.75  
3.50  
0.75  
+0.10/0  
min.  
±0.101)  
±0.05  
±0.10  
±0.30  
±0.10  
±0.05  
min.  
F
G
1) ≤±0.2 mm over 10 sprocket holes.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 59 of 81  
Multilayer varistors (MLVs)  
Standard series  
Part orientation in tape pocket for blister tape  
For discrete chip, case sizes 0603, 0805,  
1206, 1210, 1812 and 2220  
For array, case sizes 0612  
For arrays 0506 and 1012  
For filter array, case size 0508  
Additional taping information  
Reel material  
Polystyrol (PS)  
Tape material  
Polystyrol (PS) or Polycarbonat (PC) or PVC  
Tape break force  
Top cover tape strength  
Top cover tape peel force  
min. 10 N  
min. 10 N  
0.2 to 0.6 N for 8-mm tape and 0.2 to 0.8 N for  
12-mm tape at a peel speed of 300 mm/min  
Tape peel angle  
Cavity play  
Angle between top cover tape and the direction of feed  
during peel off: 165° to 180°  
Each part rests in the cavity so that the angle between  
the part and cavity center line is no more than 20°  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 60 of 81  
Multilayer varistors (MLVs)  
Standard series  
1.2  
Cardboard tape (taping to IEC 60286-3)  
Dimensions in mm  
8-mm tape  
Case size  
(inch/mm)  
Case size (inch/mm)  
Tolerance  
0201/0603 0402/1005 0405/1012 0603/1608 1003/2508 0508/1220  
A0  
B0  
T
0.38 ±0.05  
0.68 ±0.05  
0.35 ±0.02  
0.4 min.  
0.60  
1.15  
0.60  
0.70  
1.05  
1.60  
0.75  
0.90  
0.95  
1.80  
0.95  
1.10  
1.00  
2.85  
1.00  
1.10  
1.60  
2.40  
0.95  
1.12  
1.50  
±0.20  
±0.20  
max.  
T2  
D0  
P0  
P2  
P1  
W
E
max.  
1.50 ±0.1  
1.50  
4.00  
2.00  
+0.10/0  
±0.102)  
±0.05  
±0.10  
±0.30  
±0.10  
±0.05  
min.  
2.00 ±0.05  
2.00  
4.00  
4.00  
0.75  
4.00  
4.00  
8.00  
1.75  
3.50  
F
G
1.35  
2) 0.2 mm over 10 sprocket holes.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 61 of 81  
Multilayer varistors (MLVs)  
Standard series  
Part orientation in tape pocket for cardboard tape  
For discrete chip case sizes 0201, 0402, 0603  
and 1003  
For array case size 0405  
For array case size 0508  
For filter array, case size 0405  
Additional taping information  
Reel material  
Polystyrol (PS)  
Tape material  
Cardboard  
min. 10 N  
min. 10 N  
Tape break force  
Top cover tape strength  
Top cover tape peel force  
Tape peel angle  
0.1 to 0.65 N at a peel speed of 300 mm/min  
Angle between top cover tape and the direction of feed  
during peel off: 165° to 180°  
Cavity play  
Each part rests in the cavity so that the angle between  
the part and cavity center line is no more than 20°  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 62 of 81  
Multilayer varistors (MLVs)  
Standard series  
1.3  
Reel packing  
Dimensions in mm  
8-mm tape  
180-mm reel 330-mm reel  
12-mm tape  
16-mm tape  
330-mm reel  
330 2.0  
180-mm reel  
330-mm reel  
330 2.0  
A
180 3/+0  
8.4 +1.5/0  
14.4 max.  
330 2.0  
8.4 +1.5/0  
14.4 max.  
180 3/+0  
12.4 +1.5/0  
18.4 max.  
W1  
W2  
12.4 +1.5/0  
18.4 max.  
16.4 +1.5/0  
22.4 max.  
Leader, trailer  
Please read Cautions and warnings and  
Page 63 of 81  
Important notes at the end of this document.  
Multilayer varistors (MLVs)  
Standard series  
1.4  
Packing units for discrete chip and array chip  
Case size Chip thickness  
Cardboard tape Blister tape  
180-mm reel  
330-mm reel  
inch/mm  
th  
0.33 mm  
0.6 mm  
0.7 mm  
0.5 mm  
0.9 mm  
0.9 mm  
0.9 mm  
0.7 mm  
0.9 mm  
1.3 mm  
0.9 mm  
1.0 mm  
0.9 mm  
1.3 mm  
1.4 mm  
1.6 mm  
0.9 mm  
1.3 mm  
1.4 mm  
1.6 mm  
1.3 mm  
1.4 mm  
1.6 mm  
2.3 mm  
1.3 mm  
1.4 mm  
2.0 mm  
2.3 mm  
3.2 mm  
4.5 mm  
3.2 mm  
4.5 mm  
W
8 mm  
8 mm  
8 mm  
W
pcs.  
15000  
10000  
5000  
4000  
4000  
4000  
3000  
3000  
3000  
3000  
4000  
2000  
3000  
3000  
2000  
2000  
3000  
3000  
2000  
2000  
1500  
1000  
pcs.  
0201/0603  
0402/1005  
0405/1012  
0506/1216  
0508/1220  
0603/1608  
0612/1632  
0805/2012  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
16000  
12000  
1003/2508  
1012/2532  
1206/3216  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
8 mm  
12 mm  
12 mm  
12 mm  
12 mm  
12 mm  
12 mm  
12 mm  
12 mm  
16 mm  
16 mm  
16 mm  
16 mm  
1210/3225  
1812/4532  
2220/5750  
4000  
3000  
1500  
1000  
3000  
3000  
1000  
1000  
1000  
1000  
3225  
4032  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 64 of 81  
Multilayer varistors (MLVs)  
Standard series  
2
Delivery mode for leaded SHCV varistors  
Standard delivery mode for SHCV types is bulk. Alternative taping modes (AMMO pack or taped  
on reel) are available upon request.  
Packing units for:  
Type  
Pieces  
2000  
SR6  
SR1 / SR2  
1000  
For types not listed in this data book please contact EPCOS.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 65 of 81  
Multilayer varistors (MLVs)  
Standard series  
Soldering directions  
1
Terminations  
1.1  
Nickel barrier termination  
The nickel barrier layer of the silver/nickel/tin termination prevents leaching of the silver base met-  
allization layer. This allows great flexibility in the selection of soldering parameters. The tin pre-  
vents the nickel layer from oxidizing and thus ensures better wetting by the solder. The nickel bar-  
rier termination is suitable for all commonly-used soldering methods.  
Multilayer CTVS: Structure of nickel barrier termination  
1.2  
Silver-palladium termination  
Silver-palladium terminations are used for the large case sizes 1812 and 2220 and for chips in-  
tended for conductive adhesion. This metallization improves the resistance of large chips to ther-  
mal shock.  
In case of conductive adhesion, the silver-palladium metallization reduces susceptibility to corro-  
sion. Silver-palladium termination can be used for smaller case sizes (only chip) for hybrid appli-  
cations as well. The silver-palladium termination is not approved for lead-free soldering.  
Multilayer varistor: Structure of silver-palladium termination  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 66 of 81  
Multilayer varistors (MLVs)  
Standard series  
1.3  
Silver-platinum termination  
Silver-platinum terminations are mainly used for the large case sizes 1812 and 2220. The silver-  
platinum termination is approved for reflow soldering, SnPb soldering and lead-free soldering with  
a silver containing solder paste. In case of SnPb soldering, a solder paste Sn62Pb36Ag2 is rec-  
ommended. For lead-free reflow soldering, a solder paste SAC, e.g. Sn95.5Ag3.8Cu0.7, is rec-  
ommended.  
Multilayer varistor: Structure of silver-platinum termination  
2
Recommended soldering temperature profiles  
Reflow soldering temperature profile  
2.1  
Recommended temperature characteristic for reflow soldering following  
JEDEC J-STD-020D  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 67 of 81  
Multilayer varistors (MLVs)  
Standard series  
Profile feature  
Sn-Pb eutectic assembly Pb-free assembly  
Preheat and soak  
- Temperature min  
- Temperature max  
- Time  
Tsmin  
Tsmax  
100 °C  
150 °C  
150 °C  
200 °C  
tsmin to tsmax 60 ... 120 s  
60 ... 180 s  
Average ramp-up rate  
Tsmax to Tp 3 °C/ s max.  
3 °C/ s max.  
Liquidous temperature  
Time at liquidous  
TL  
tL  
183 °C  
217 °C  
60 ... 150 s  
60 ... 150 s  
1)  
Peak package body temperature Tp  
220 °C ... 235 °C2)  
245 °C ... 260 °C2)  
Time (tP)3) within 5 °C of specified  
classification temperature (Tc)  
20 s3)  
30 s3)  
Average ramp-down rate  
Tp to Tsmax 6 °C/ s max.  
6 °C/ s max.  
Time 25 °C to peak temperature  
maximum 6 min  
maximum 8 min  
1) Tolerance for peak profile temperature (TP) is defined as a supplier minimum and a user maximum.  
2) Depending on package thickness. For details please refer to JEDEC J-STD-020D.  
3) Tolerance for time at peak profile temperature (tP) is defined as a supplier minimum and a user maximum.  
Note: All temperatures refer to topside of the package, measured on the package body surface.  
Number of reflow cycles: 3  
2.2  
Wave soldering temperature profile  
Temperature characteristics at component terminal with dual-wave soldering  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 68 of 81  
Multilayer varistors (MLVs)  
Standard series  
2.3  
Lead-free soldering processes  
EPCOS multilayer CTVS with AgNiSn termination are designed for the requirements of lead-free  
soldering processes only.  
Soldering temperature profiles to JEDEC J-STD-020D, IEC 60068-2-58 and ZVEI recommenda-  
tions.  
3
Recommended soldering methods - type-specific releases by EPCOS  
Overview  
3.1  
Reflow soldering  
SnPb  
Wave soldering  
SnPb  
Type  
Case size  
Lead-free  
Approved  
Approved  
No  
Lead-free  
No  
CT... / CD...  
CT... / CD...  
CN...  
0201/ 0402  
Approved  
No  
0603 ... 2220 Approved  
0603 ... 2220 Approved  
Approved  
Approved  
No  
Approved  
No  
CN...K2  
Arrays  
1812, 2220  
Approved  
Approved  
Approved  
Approved  
Approved  
No  
No  
0405 ... 1012 Approved  
No  
No  
ESD/EMI filters 0405, 0508  
Approved  
Approved  
No  
No  
No  
CU  
3225, 4032  
-
Approved  
Approved  
Approved  
Approved  
SHCV  
3.2  
Nickel barrier and AgPt terminated multilayer CTVS  
All EPCOS MLVs with nickel barrier and AgPt termination are suitable and fully qualiyfied for lead-  
free soldering. The nickel barrier layer is 100% matte tin-plated.  
3.3  
Silver-palladium terminated MLVs  
AgPd-terminated MLVs are mainly designed for conductive adhesion technology on hybrid materi-  
al. Additionally MLVs with AgPd termination are suitable for reflow and wave soldering with SnPb  
solder.  
Note:  
Lead-free soldering is not approved for MLVs with AgPd termination.  
3.4  
Silver-platinum terminated MLVs  
The silver-platinum termination is approved for reflow soldering, SnPb soldering and lead-free  
with a silver containing solder paste. In case of SnPb soldering, a solder paste Sn62Pb36Ag2 is  
recommended. For lead-free reflow soldering, a solder paste SAC, e.g. Sn95.5Ag3.8Cu0.7, is  
recommended.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 69 of 81  
Multilayer varistors (MLVs)  
Standard series  
3.5  
Tinned copper alloy  
All EPCOS CU types with tinned termination are approved for lead-free and SnPb soldering.  
3.6  
Tinned iron wire  
All EPCOS SHCV types with tinned termination are approved for lead-free and SnPb soldering.  
4
Solder joint profiles / solder quantity  
Nickel barrier termination  
4.1  
If the meniscus height is too low, that means the solder quantity is too low, the solder joint may  
break, i.e. the component becomes detached from the joint. This problem is sometimes interpret-  
ed as leaching of the external terminations.  
If the solder meniscus is too high, i.e. the solder quantity is too large, the vise effect may occur.  
As the solder cools down, the solder contracts in the direction of the component. If there is too  
much solder on the component, it has no leeway to evade the stress and may break, as in a vise.  
The figures below show good and poor solder joints for dual-wave and infrared soldering.  
4.1.1 Solder joint profiles for nickel barrier termination - dual-wave soldering  
Good and poor solder joints caused by amount of solder in dual-wave soldering.  
4.1.2 Solder joint profiles for nickel barrier termination / silver-palladium / silver-platinum  
termination - reflow soldering  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 70 of 81  
Multilayer varistors (MLVs)  
Standard series  
Good and poor solder joints caused by amount of solder in reflow soldering.  
5
Conductive adhesion  
Attaching surface-mounted devices (SMDs) with electrically conductive adhesives is a commer-  
cially attractive method of component connection to supplement or even replace conventional sol-  
dering methods.  
Electrically conductive adhesives consist of a non-conductive plastic (epoxy resin, polyimide or  
silicon) in which electrically conductive metal particles (gold, silver, palladium, nickel, etc) are em-  
bedded. Electrical conduction is effected by contact between the metal particles.  
Adhesion is particularly suitable for meeting the demands of hybrid technology. The adhesives  
can be deposited ready for production requirements by screen printing, stamping or by dis-  
pensers. As shown in the following table, conductive adhesion involves two work operations fewer  
than soldering.  
Reflow soldering  
Screen-print solder paste  
Mount SMD  
Wave soldering  
Apply glue dot  
Mount SMD  
Cure glue  
Conductive adhesion  
Screen-print conductive adhesive  
Mount SMD  
Predry solder paste  
Reflow soldering  
Wash  
Cure adhesive  
Wave soldering  
Wash  
Inspect  
Inspect  
Inspect  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 71 of 81  
Multilayer varistors (MLVs)  
Standard series  
A further advantage of adhesion is that the components are subjected to virtually no temperature  
shock at all. The curing temperatures of the adhesives are between 120 °C and 180 °C, typical  
curing times are between 30 minutes and one hour.  
The bending strength of glued chips is, in comparison with that of soldered chips, higher by a fac-  
tor of at least 2, as is to be expected due to the elasticity of the glued joints.  
The lower conductivity of conductive adhesive may lead to higher contact resistance and thus re-  
sult in electrical data different to those of soldered components. Users must pay special attention  
to this in RF applications.  
6
Solderability tests  
Test  
Standard  
Test conditions  
Sn-Pb soldering  
Test conditions  
Pb-free soldering  
Criteria/ test results  
Covering of 95% of  
Wettability  
IEC  
Immersion in  
Immersion in  
60068-2-58 60/40 SnPb solder Sn96.5Ag3.0Cu0.5 end termination,  
using non-activated solder using non- or checked by visual  
flux at 215 ± 3 °C  
for 3 ± 0.3 s  
low activated flux  
at 245 ± 5 °C  
for 3 ± 0.3 s  
inspection  
Leaching  
IEC  
Immersion in  
Immersion in  
No leaching of  
resistance  
60068-2-58 60/40 SnPb  
solder using  
Sn96.5Ag3.0Cu0.5 contacts  
solder using non- or  
mildly activated flux low activated flux  
without preheating without preheating  
at 260 ± 5 °C  
for 10 ±1 s  
at 255 ± 5 °C  
for 10 ±1 s  
Thermal shock  
(solder shock)  
Dip soldering at  
300 °C/5 s  
Dip soldering at  
300 °C/5 s  
No deterioration of  
electrical parameters.  
Capacitance change:  
≤ ±15%  
Tests of resistance IEC  
Immersion in  
Immersion in  
Change of varistor  
to soldering heat  
for SMDs  
60068-2-58 60/40 SnPb for 10 s Sn96.5Ag3.0Cu0.5 voltage:  
at 260 °C  
for 10 s at 260 °C  
≤ ±5%  
Tests of resistance IEC  
Immersion  
Immersion  
of leads in  
Sn96.5Ag3.0Cu0.5 Change of  
for 10 s at 260 °C capacitance X7R:  
5/+10%  
Change of varistor  
voltage: ≤ ±5%  
to soldering heat  
for radial leaded  
components  
(SHCV)  
60068-2-20 of leads in  
60/40 SnPb  
for 10 s at 260 °C  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 72 of 81  
Multilayer varistors (MLVs)  
Standard series  
Note:  
Leaching of the termination  
Effective area at the termination might be lost if the soldering temperature and/or immersion time  
are not kept within the recommended conditions. Leaching of the outer electrode should not ex-  
ceed 25% of the chip end area (full length of the edge A-B-C-D) and 25% of the length A-B,  
shown below as mounted on substrate.  
As a single chip  
As mounted on substrate  
7
Notes for proper soldering  
Preheating and cooling  
7.1  
According to JEDEC J-STD-020D. Please refer to chapter 2.  
7.2  
Repair / rework  
Manual soldering with a soldering iron must be avoided, hot-air methods are recommended for  
rework purposes.  
7.3  
Cleaning  
All environmentally compatible agents are suitable for cleaning. Select the appropriate cleaning  
solution according to the type of flux used. The temperature difference between the components  
and cleaning liquid must not be greater than 100 °C. Ultrasonic cleaning should be carried out  
with the utmost caution. Too high ultrasonic power can impair the adhesive strength of the metal-  
lized surfaces.  
7.4  
Solder paste printing (reflow soldering)  
An excessive application of solder paste results in too high a solder fillet, thus making the chip  
more susceptible to mechanical and thermal stress. Too little solder paste reduces the adhesive  
strength on the outer electrodes and thus weakens the bonding to the PCB. The solder should be  
applied smoothly to the end surface.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 73 of 81  
Multilayer varistors (MLVs)  
Standard series  
7.5  
Adhesive application  
Thin or insufficient adhesive causes chips to loosen or become disconnected during curing.  
Low viscosity of the adhesive causes chips to slip after mounting. It is advised to consult the  
manufacturer of the adhesive on proper usage and amounts of adhesive to use.  
7.6  
Selection of flux  
Used flux should have less than or equal to 0.1 wt % of halogenated content, since flux residue  
after soldering could lead to corrosion of the termination and/or increased leakage current on the  
surface of the component. Strong acidic flux must not be used. The amount of flux applied should  
be carefully controlled, since an excess may generate flux gas, which in turn is detrimental to sol-  
derability.  
7.7  
Storage of CTVSs  
Solderability is guaranteed for one year from date of delivery for multilayer varistors, CeraDiodes  
and ESD/EMI filters (half a year for chips with AgPd and AgPt terminations) and two years for  
SHCV and CU components, provided that components are stored in their original packages.  
Storage temperature:  
Relative humidity:  
25 °C to +45 °C  
75% annual average, 95% on 30 days a year  
The solderability of the external electrodes may deteriorate if SMDs and leaded components are  
stored where they are exposed to high humidity, dust or harmful gas (hydrogen chloride, sulfurous  
acid gas or hydrogen sulfide).  
Do not store SMDs and leaded components where they are exposed to heat or direct sunlight.  
Otherwise the packing material may be deformed or SMDs/ leaded components may stick togeth-  
er, causing problems during mounting.  
After opening the factory seals, such as polyvinyl-sealed packages, it is recommended to use the  
SMDs or leaded components as soon as possible.  
7.8  
Placement of components on circuit board  
Especially in the case of dual-wave soldering, it is of advantage to place the components on the  
board before soldering in that way that their two terminals do not enter the solder bath at different  
times.  
Ideally, both terminals should be wetted simultaneously.  
7.9  
Soldering cautions  
An excessively long soldering time or high soldering temperature results in leaching of the outer  
electrodes, causing poor adhesion and a change of electrical properties of the varistor due to  
the loss of contact between electrodes and termination.  
Wave soldering must not be applied for MLVs designated for reflow soldering only.  
Keep the recommended down-cooling rate.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 74 of 81  
Multilayer varistors (MLVs)  
Standard series  
7.10  
Standards  
CECC 00802  
IEC 60068-2-58  
IEC 60068-2-20  
JEDEC J-STD-020D  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 75 of 81  
Multilayer varistors (MLVs)  
Standard series  
Symbols and terms  
Symbol  
Cline,typ  
Cmax  
Cmin  
Term  
Typical capacitance per line  
Maximum capacitance  
Minimum capacitance  
Cnom  
Cnom  
Ctyp  
Nominal capacitance  
Tolerance of nominal capacitance  
Typical capacitance  
fcut-off,min  
I
Iclamp  
Ileak  
Ileak,typ  
IPP  
Minimum cut-off frequency  
Current  
Clamping current  
Leakage current  
Typical leakage current  
Peak pulse current  
Isurge,max  
LCT  
Ltyp  
Maximum surge current (also termed peak current)  
Lower category temperature  
Typical inductance  
Pdiss,max  
PPP  
Maximum power dissipation  
Peak pulse power  
Rins  
Insulation resistance  
Rmin  
Minimum resistance  
RS  
Resistance per line  
TA  
Ambient temperature  
Top  
Operating temperature  
Storage temperature  
Tstg  
tr  
Duration of equivalent rectangular wave  
Response time  
tresp  
UCT  
V
Upper category temperature  
Voltage  
VBR,min  
Vclamp,max  
VDC,max  
VESD,air  
VESD,contact  
Vjump  
Minimum breakdown voltage  
Maximum clamping voltage  
Maximum DC operating voltage (also termed working voltage)  
Air discharge ESD capability  
Contact discharge ESD capability  
Maximum jump start voltage  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 76 of 81  
Multilayer varistors (MLVs)  
Standard series  
VRMS,max  
VV  
Maximum AC operating voltage, root-mean-square value  
Varistor voltage (also termed breakdown voltage)  
Minimum varistor voltage  
VV,min  
VV,max  
VV  
Maximum varistor voltage  
Tolerance of varistor voltage  
WLD  
Maximum load dump  
Wmax  
Maximum energy absorption (also termed transient energy)  
αtyp  
Typical insertion loss  
Lead spacing  
*ꢃ  
Maximum possible application conditions  
All dimensions are given in mm.  
The commas used in numerical values denote decimal points.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 77 of 81  
Multilayer varistors (MLVs)  
Standard series  
Cautions and warnings  
General  
Some parts of this publication contain statements about the suitability of our ceramic transient  
voltage suppressor (CTVS) components (multilayer varistors (MLVs), CeraDiodes, ESD/EMI  
filters, SMD disk varistors (CU types), leaded transient voltage/ RFI suppressors (SHCV types))  
for certain areas of application, including recommendations about incorporation/design-in of these  
products into customer applications. The statements are based on our knowledge of typical  
requirements often made of our CTVS devices in the particular areas. We nevertheless expressly  
point out that such statements cannot be regarded as binding statements about the suitability of  
our CTVS components for a particular customer application. As a rule, EPCOS is either unfamiliar  
with individual customer applications or less familiar with them than the customers themselves.  
For these reasons, it is always incumbent on the customer to check and decide whether the  
CTVS devices with the properties described in the product specification are suitable for use in a  
particular customer application.  
Do not use EPCOS CTVS components for purposes not identified in our specifications,  
application notes and data books.  
Ensure the suitability of a CTVS in particular by testing it for reliability during design-in. Always  
evaluate a CTVS component under worst-case conditions.  
Pay special attention to the reliability of CTVS devices intended for use in safety-critical  
applications (e.g. medical equipment, automotive, spacecraft, nuclear power plant).  
Design notes  
Always connect a CTVS in parallel with the electronic circuit to be protected.  
Consider maximum rated power dissipation if a CTVS has insufficient time to cool down  
between a number of pulses occurring within a specified isolated time period. Ensure that  
electrical characteristics do not degrade.  
Consider derating at higher operating temperatures. Choose the highest voltage class  
compatible with derating at higher temperatures.  
Surge currents beyond specified values will puncture a CTVS. In extreme cases a CTVS will  
burst.  
If steep surge current edges are to be expected, make sure your design is as low-inductance  
as possible.  
In some cases the malfunctioning of passive electronic components or failure before the end of  
their service life cannot be completely ruled out in the current state of the art, even if they are  
operated as specified. In applications requiring a very high level of operational safety and  
especially when the malfunction or failure of a passive electronic component could endanger  
human life or health (e.g. in accident prevention, life-saving systems, or automotive battery line  
applications such as clamp 30), ensure by suitable design of the application or other measures  
(e.g. installation of protective circuitry or redundancy) that no injury or damage is sustained by  
third parties in the event of such a malfunction or failure. Only use CTVS components from the  
automotive series in safety-relevant applications.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 78 of 81  
Multilayer varistors (MLVs)  
Standard series  
Specified values only apply to CTVS components that have not been subject to prior electrical,  
mechanical or thermal damage. The use of CTVS devices in line-to-ground applications is  
therefore not advisable, and it is only allowed together with safety countermeasures like  
thermal fuses.  
Storage  
Only store CTVS in their original packaging. Do not open the package before storage.  
Storage conditions in original packaging: temperature 25 to +45°C, relative humidity 75%  
annual average, maximum 95%, dew precipitation is inadmissible.  
Do not store CTVS devices where they are exposed to heat or direct sunlight. Otherwise the  
packaging material may be deformed or CTVS may stick together, causing problems during  
mounting.  
Avoid contamination of the CTVS surface during storage, handling and processing.  
Avoid storing CTVS devices in harmful environments where they are exposed to corrosive  
gases for example (SOx, Cl).  
Use CTVS as soon as possible after opening factory seals such as polyvinyl-sealed packages.  
Solder CTVS components after shipment from EPCOS within the time specified:  
CTVS with Ni barrier termination, 12 months  
CTVS with AgPd and AgPt termination, 6 months  
SHCV and CU series, 24 months  
Handling  
Do not drop CTVS components and allow them to be chipped.  
Do not touch CTVS with your bare hands - gloves are recommended.  
Avoid contamination of the CTVS surface during handling.  
Mounting  
When CTVS devices are encapsulated with sealing material or overmolded with plastic  
material, electrical characteristics might be degraded and the life time reduced.  
Make sure an electrode is not scratched before, during or after the mounting process.  
Make sure contacts and housings used for assembly with CTVS components are clean before  
mounting.  
The surface temperature of an operating CTVS can be higher. Ensure that adjacent  
components are placed at a sufficient distance from a CTVS to allow proper cooling.  
Avoid contamination of the CTVS surface during processing.  
Multilayer varistors (MLVs) with AgPd termination are not approved for lead-free soldering.  
Soldering  
Complete removal of flux is recommended to avoid surface contamination that can result in an  
instable and/or high leakage current.  
Use resin-type or non-activated flux.  
Bear in mind that insufficient preheating may cause ceramic cracks.  
Rapid cooling by dipping in solvent is not recommended, otherwise a component may crack.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 79 of 81  
Multilayer varistors (MLVs)  
Standard series  
Conductive adhesive gluing  
Only multilayer varistors (MLVs) with an AgPd termination are approved for conductive  
adhesive gluing.  
Operation  
Use CTVS only within the specified operating temperature range.  
Use CTVS only within specified voltage and current ranges.  
Environmental conditions must not harm a CTVS. Only use them in normal atmospheric  
conditions. Reducing the atmosphere (e.g. hydrogen or nitrogen atmosphere) is prohibited.  
Prevent a CTVS from contacting liquids and solvents. Make sure that no water enters a CTVS  
(e.g. through plug terminals).  
Avoid dewing and condensation.  
EPCOS CTVS components are mainly designed for encased applications. Under all  
circumstances avoid exposure to:  
direct sunlight  
rain or condensation  
steam, saline spray  
corrosive gases  
atmosphere with reduced oxygen content  
EPCOS CTVS devices are not suitable for switching applications or voltage stabilization where  
static power dissipation is required.  
Multilayer varistors (MLVs) are designed for ESD protection and transient suppression.  
CeraDiodes are designed for ESD protection only, ESD/EMI filters are designed for ESD and  
EMI protection only.  
This listing does not claim to be complete, but merely reflects the experience of EPCOS AG.  
Please read Cautions and warnings and  
Important notes at the end of this document.  
Page 80 of 81  
Important notes  
The following applies to all products named in this publication:  
1. Some parts of this publication contain statements about the suitability of our products for  
certain areas of application. These statements are based on our knowledge of typical re-  
quirements that are often placed on our products in the areas of application concerned. We  
nevertheless expressly point out that such statements cannot be regarded as binding  
statements about the suitability of our products for a particular customer application.  
As a rule, EPCOS is either unfamiliar with individual customer applications or less familiar  
with them than the customers themselves. For these reasons, it is always ultimately incum-  
bent on the customer to check and decide whether an EPCOS product with the properties de-  
scribed in the product specification is suitable for use in a particular customer application.  
2. We also point out that in individual cases, a malfunction of electronic components or  
failure before the end of their usual service life cannot be completely ruled out in the  
current state of the art, even if they are operated as specified. In customer applications  
requiring a very high level of operational safety and especially in customer applications in  
which the malfunction or failure of an electronic component could endanger human life or  
health (e.g. in accident prevention or lifesaving systems), it must therefore be ensured by  
means of suitable design of the customer application or other action taken by the customer  
(e.g. installation of protective circuitry or redundancy) that no injury or damage is sustained by  
third parties in the event of malfunction or failure of an electronic component.  
3. The warnings, cautions and product-specific notes must be observed.  
4. In order to satisfy certain technical requirements, some of the products described in this  
publication may contain substances subject to restrictions in certain jurisdictions (e.g.  
because they are classed as hazardous). Useful information on this will be found in our Ma-  
terial Data Sheets on the Internet (www.epcos.com/material). Should you have any more de-  
tailed questions, please contact our sales offices.  
5. We constantly strive to improve our products. Consequently, the products described in this  
publication may change from time to time. The same is true of the corresponding product  
specifications. Please check therefore to what extent product descriptions and specifications  
contained in this publication are still applicable before or when you place an order. We also  
reserve the right to discontinue production and delivery of products. Consequently, we  
cannot guarantee that all products named in this publication will always be available. The  
aforementioned does not apply in the case of individual agreements deviating from the fore-  
going for customer-specific products.  
6. Unless otherwise agreed in individual contracts, all orders are subject to the current ver-  
sion of the "General Terms of Delivery for Products and Services in the Electrical In-  
dustry" published by the German Electrical and Electronics Industry Association  
(ZVEI).  
7. The trade names EPCOS, BAOKE, Alu-X, CeraDiode, CSMP, CSSP, CTVS, DeltaCap,  
DigiSiMic, DSSP, FormFit, MiniBlue, MiniCell, MKK, MKD, MLSC, MotorCap, PCC,  
PhaseCap, PhaseCube, PhaseMod, PhiCap, SIFERRIT, SIFI, SIKOREL, SilverCap,  
SIMDAD, SiMic, SIMID, SineFormer, SIOV, SIP5D, SIP5K, ThermoFuse, WindCap are trade-  
marks registered or pending in Europe and in other countries. Further information will be  
found on the Internet at www.epcos.com/trademarks.  
Page 81 of 81  

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