LBB110STR [CLARE]
DUAL POLE OptoMOS Relay; 双POLE OptoMOS继电器型号: | LBB110STR |
厂家: | CLARE |
描述: | DUAL POLE OptoMOS Relay |
文件: | 总7页 (文件大小:149K) |
中文: | 中文翻译 | 下载: | 下载PDF数据表文档文件 |
LBB110
DUAL POLE OptoMOS® Relay
Description
LBB110
350
Units
V
The LBB110 is a Dual 1 Form B solid state relay that has
two independently controlled optically coupled MOSFETs.
The efficient MOSFET switches and photovoltaic die use
Clare’s patented OptoMOS® architecture to provide 3750
VRMS of input to output isolation. The optically coupled
inputs are controlled by highly efficient GaAIAs infrared
LEDs. Dual pole OptoMOS relays provide a more compact
design solution than discrete single pole relay in a variety
of applications. The dual pole relays save board space by
incorporating both relays in a single 8-pin package.
Load Voltage
Load Current
Max RON
120
35
mA
Ω
Features
• Small 8 Pin DIP Package
• Low Drive Power Requirements (TTL/CMOS
Compatible)
• No Moving Parts
• High Reliability
Approvals
• Arc-Free With No Snubbing Circuits
• 3750VRMS Input/Output Isolation
• FCC Compatible
• VDE Compatible
• No EMI/RFI Generation
• UL Recognized: File Number E76270
• CSA Certified: File Number LR 43639-10
• BSI Certified to:
• BS EN 60950:1992 (BS7002:1992)
Certificate #: 7344
• Machine Insertable, Wave Solderable
• Surface Mount and Tape & Reel Versions Available
• BS EN 41003:1993
Certificate #: 7344
Applications
Ordering Information
• Telecommunications
• Telecom Switching
• Tip/Ring Circuits
• Modem Switching (Laptop, Notebook, Pocket Size)
• Hookswitch
Part #
LBB110
LBB110P
LBB110PTR
LBB110S
LBB110STR
Description
8 Pin DIP (50/Tube)
8 Pin Flatpack (50/Tube)
8 Pin Flatpack (1000/Reel)
8 Pin Surface Mount (50/Tube)
8 Pin Surface Mount (1000/Reel)
• Dial Pulsing
• Ground Start
• Ringer Injection
• Instrumentation
• Multiplexers
Pin Configuration
• Data Acquisition
• Electronic Switching
• I/O Subsystems
LBB110 Pinout
1
8
+ Control - Switch #1
Load - Switch #1
• Meters (Watt-Hour, Water, Gas)
• Medical Equipment—Patient/Equipment Isolation
• Security
2
3
7
6
– Control - Switch #1
Load - Switch #1
Load - Switch #2
+ Control - Switch #2
4
5
• Aerospace
– Control - Switch #2
Load - Switch #2
• Industrial Controls
Switching Characteristics of
Normally Closed (Form B) Devices
10ms
CONTROL
90%
+
+
90%
10%
+
TON
TOFF
DS-LBB110-R6
1
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LBB110
Absolute Maximum Ratings (@ 25˚ C)
Absolute Maximum Ratings are stress ratings. Stresses
in excess of these ratings can cause permanent damage
to the device. Functional operation of the device at these
or any other conditions beyond those indicated in the
operational sections of this data sheet is not implied.
Exposure of the device to the absolute maximum ratings
for an extended period may degrade the device and effect
its reliability.
Parameter
Min
Typ Max Units
Input Power Dissipation
-
-
1501 mW
Input Control Current
Peak (10ms)
-
-
-
-
50
1
mA
A
Reverse Input Voltage
Total Power Dissipation
-
-
-
-
5
V
8002 mW
Isolation Voltage
Input to Output
3750
-40
-
-
-
-
V
RMS
Operational Temperature
Storage Temperature
+85
°C
-40
+125 °C
Soldering Temperature
(10 Seconds Max.)
DIP Package
Flatpack/Surface Mount
Package
-
-
-
-
+260 °C
+220 °C
1 Derate Linearly 1.33 mw/˚C
2 Derate Linearly 6.67 mw/˚C
Electrical Characteristics
Parameter
Conditions
Symbol
Min
Typ
Max
Units
Output Characteristics @ 25°C
Load Voltage (Peak)
Load Current* (Continuous)
Peak Load Current
-
-
V
-
-
-
-
-
-
-
350
120
350
35
V
mA
mA
Ω
L
IL
ILPK
RON
-
10ms
IL=120mA
-
On-Resistance
25
-
Off-State Leakage Current
V =350V
1
µA
L
Switching Speeds
Turn-On
Turn-Off
IF=5mA,V =10V
TON
TOFF
-
-
-
-
3
3
ms
ms
L
IF=5mA,V =10V
L
Output Capacitance
50V; f=1MHz
COUT
-
25
-
pF
Input Characteristics @ 25°C
Input Control Current
Input Dropout Current
Input Voltage Drop
IL=120mA
IF
IF
5
0.4
0.9
-
-
0.7
1.2
-
50
-
mA
mA
V
-
IF=5mA
-
V
1.4
5
F
Reverse Input Voltage
Reverse Input Current
Input to Output Capacitance
Input to Output Isolation
V
V
R
V =5V
IL
-
-
10
-
µA
pF
R
-
V
-
3
C/O
-
V
3750
-
-
V
I/O
RMS
*Note: If both poles operate simulataneously load current must be derated so as not to exceed the package power dissipation value.
Rev. 6
2
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LBB110
PERFORMANCE DATA*
LBB110
LBB110
LBB110
Typical LED Forward Voltage Drop
(N=50 Ambient Temperature = 25°C)
Typical On-Resistance Distribution
(N=50 Ambient Temperature = 25°C)
(Load Current = 120mADC)
Typical Blocking Voltage Distribution
(N=50 Ambient Temperature = 25°C)
IF = 5mADC
I
= 5mADC
F
35
30
25
20
15
10
5
0
1.17
1.19
1.21
1.23
1.25
Blocking Voltage (V)
LED Forward Voltage Drop (V)
On-Resistance (Ω)
LBB110
LBB110
LBB110
Typical I for Switch Operation
F
Typical Turn-On Time
Typical I for Switch Dropout
F
(N=50 Ambient Temperature = 25°C)
(N=50 Ambient Temperature = 25°C)
(Load Current = 120mADC; I = 5mADC)
F
(N=50 Ambient Temperature = 25°C)
)
(Load Current = 120mADC)
(Load Current = 120mADC
25
20
15
10
5
25
25
20
15
10
5
20
15
10
5
0
0
0
0.33 0.55 0.77 0.99 1.21 1.43 1.65
0.09
0.27
0.45
0.63
0.81
0.99
0.11 0.33 0.55 0.77 0.99 1.21 1.43
LED Current (mA)
Turn-On (ms)
LED Current (mA)
LBB110
Typical Turn-Off Time
LBB110
(N=50 Ambient Temperature = 25°C)
(Load Current = 120mADC; I = 5mADC)
Typical Leakage vs. Temperature
LBB110
Typical Load Current vs. Temperature
(Measured across Pins 5 & 6 or 7 & 8)
F
25
0.045
0.040
0.035
0.030
0.025
0.020
0.015
0.010
0.005
0
20
15
10
5
0
0.27 0.45 0.63 0.81 0.99 1.17 1.35
-40
-20
0
20
40
60
80
100
Temperature (°C)
Turn-Off (ms)
Temperature (°C)
LBB110
LBB110
LBB110
Typical Turn-Off vs. Temperature
(Load Current = 120mADC)
Typical Blocking Voltage vs. Temperature
IF = 5mADC
Typical Turn-On vs. Temperature
(Load Current = 120mADC)
2.0
0.6
0.5
0.4
0.3
0.2
0.1
0
5mA
1.8
1.6
1.4
1.2
1.0
0.8
0.6
0.4
0
10mA
5mA
-40
-20
0
20
40
60
80
100
-40
-20
0
20
40
60
80
100
Temperature (°C)
Temperature (°C)
Temperature (°C)
The Performance data shown in the graphs above is typical of device performance. For guaranteed parameters not indicated in the written specifications, please contact
our application department.
Rev. 6
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3
LBB110
PERFORMANCE DATA*
LBB110
LBB110
LBB110
Typical Turn-On vs. LED Forward Current
(Load Current = 120mADC)
0.3000
Typical LED Forward Voltage Drop
vs. Temperature
Typical Turn-Off vs. LED Forward Current
(Load Current = 120mADC)
1.8
1.6
1.4
1.2
1.0
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
0.2500
0.2000
0.1500
0.1000
0.0500
0
50mA
10mA
5mA
-40 -20
0
20
40
60
80 100 120
0
5
10 15 20 25 30 35 40 45 50
0
5
10 15 20 25 30 35 40 45 50
Temperature (°C)
LED Forward Current (mA)
LED Forward Current (mA)
LBB110
LBB110
LBB110
Typical I for Switch Dropout
F
Typical I for Switch Operation
F
Typical On-Resistance vs. Temperature
(Load Current =Max Rated Over Temp.)
vs. Temperature
(Load Current = 120mADC)
vs. Temperature
(Load Current = 120mADC)
3.0
2.5
2.0
1.5
1.0
0.5
0
3.0
2.5
2.0
1.5
1.0
0.5
0
Dual Pole
Single Pole
Instantaneous
-40
-20
0
20
40
60
80
100
-40
-20
0
20
40
60
80
100
Temperature (°C)
Temperature (°C)
Temperature (°C)
LBB110
Typical Load Current vs. Load Voltage
(Ambient Temperature = 25°C)
LBB110
Energy Rating Curve
1.0
0.9
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
10µs 100µs 1ms 10ms 100ms 1s
10s 100s
Load Voltage (V)
Time
*The Performance data shown in the graphs above is typical of device performance. For guaranteed parameters not indicated in the written specifications, please contact
our application department.
Rev. 6
4
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LBB110
Mechanical Dimensions
8 Pin DIP Through Hole (Standard)
9.652 ± .381
(.380 ± .015)
PC Board Pattern
(Top View)
2.540 ± .127
2.540 ± .127
(.100 ± .005)
8-.800 DIA.
(.100 ± .005)
7.620 ± .254
(.300 ± .010)
(8-.031 DIA.)
7.620 ± .127
(.300 ± .005)
3.302
(.130)
9.144 ± .508
(.360 ± .020)
6.350 ± .127
(.250 ± .005)
6.350 ± .127
(.250 ± .005)
7.239 TYP.
(.285)
9.144 TYP.
(.360)
.457 ± .076
(.018 ± .003)
7.620 ± .127
(.300 ± .005)
8.077 ± .127
(.318 ± .005 )
9.652 ± .381
(.380 ± .015)
8 Pin DIP Surface Mount (“S” Suffix)
PC Board Pattern
(Top View)
2.540 ± .127
(.100 ± .005)
2.540 ± .127
(.100 ± .005)
7.620 ± .254
(.300 ± .010)
9.525 ± .254
(.375 ± .010)
3.302
(.130)
4.445 ± .127
(.175 ± .005)
6.350 ± .127
(.250 ± .005)
8.305 ± .127
(.327 ± .005)
1.905 ± .127
(.075 ± .005)
.635 TYP.
(.025)
.254 TYP.
(.010)
.457 ± .076
1.498 ± .127
(.059 ± .005)
(.018 ± .003)
8.077 ± .127
(.318 ± .005)
9.652 ± .381
8 Pin Flatpack (“P” Suffix)
PC Board Pattern
(Top View)
(.380 ± .015)
2.540 ± .127
(.100 ± .005)
2.540 ± .127
(.100 ± .005)
7.620 ± .254
2.159 TYP.
(.085)
(.300 ± .010)
6.350 ± .127
(.250 ± .005)
9.398 ± .127
(.370 ± .005)
.203
(.008)
8.763 ± .127
(.345 ± .005)
2.286 MAX.
(.090)
.635 ± .127
(.025)
1.193
(.047)
.457 ± .076
(.018 ± .003)
8.077 ± .127
(.318 ± .005)
.787
(.031)
Dimensions
mm
(inches)
Rev. 6
www.clare.com
5
LBB110
Mechanical Dimensions
Tape and Reel Packaging for 8 Pin Surface Mount Package
2.007 ± .102 1.498 ± .102 3.987 ± .102
(.079 ± .004) (.059 ± .004) (.157 ± .004)
330.2 DIA.
(13.00)
6.731 MAX.
(.265)
1.753 ± .102
(.069 ± .004)
.406 MAX.
(.016)
Top Cover
Tape Thickness
.102 MAX.
(.004)
7.493 ± .102
(.295 ± .004)
16.002 ± .305
(.630 ± .012)
1
8
12.090
(.476)
10.300
(.405)
4.877
(.192)
Top Cover
Tape
.050R TYP.
11.989 ± .102
(.472 ± .004)
10.300 ± .102
(.405 ± .004)
1.549 ± .102
(.061 ± .004)
Embossed Carrier
User Direction of Feed
Embossment
Tape and Reel Packaging for 8 Pin Flatpack Package
330.2 DIA.
(13.00)
2.007 ± .102 1.498 ± .102 3.987 ± .102
(.079 ± .004) (.059 ± .004) (.157 ± .004)
6.731 MAX.
(.265)
1.753 ± 0.102
(.069 ± .004)
.406 MAX.
(.016)
Top Cover
Tape Thickness
.102 MAX.
(.004)
7.493 ± .102
(.295 ± .004)
16.002 ± .305
(.630 ± .012)
1
8
12.090
(.476)
10.287
(.405)
4.877
(.192)
Top Cover
Tape
Embossed Carrier
.050R TYP.
11.988 ± .102
(.472 ± .004)
10.287 ± .102
(.405 ± .004)
1.549 ± .102
(.061 ± .004)
Embossment
User Direction of Feed
Dimensions
mm
(inches)
Rev. 6
6
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Worldwide Sales Offices
CLARE LOCATIONS
EUROPE
ASIA PACIFIC
Clare Headquarters
78 Cherry Hill Drive
Beverly, MA 01915
Tel: 1-978-524-6700
Fax: 1-978-524-4900
Toll Free: 1-800-27-CLARE
European Headquarters
CP Clare nv
Bampslaan 17
B-3500 Hasselt (Belgium)
Tel: 32-11-300868
Fax: 32-11-300890
Asian Headquarters
Clare
Room N1016, Chia-Hsin, Bldg II,
10F, No. 96, Sec. 2
Chung Shan North Road
Taipei, Taiwan R.O.C.
Tel: 886-2-2523-6368
Fax: 886-2-2523-6369
Clare Micronix Division
145 Columbia
Aliso Viejo, CA 92656-1490
Tel: 1-949-831-4622
Fax: 1-949-831-4628
France
Clare France Sales
Lead Rep
99 route de Versailles
91160 Champlan
France
Tel: 33 1 69 79 93 50
Fax: 33 1 69 79 93 59
SALES OFFICES
AMERICAS
Germany
Clare Germany Sales
ActiveComp Electronic GmbH
Mitterstrasse 12
85077 Manching
Germany
Tel: 49 8459 3214 10
Fax: 49 8459 3214 29
Americas Headquarters
Clare
78 Cherry Hill Drive
Beverly, MA 01915
Tel: 1-978-524-6700
Fax: 1-978-524-4900
Toll Free: 1-800-27-CLARE
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C.L.A.R.E.s.a.s.
Via C. Colombo 10/A
I-20066 Melzo (Milano)
Tel: 39-02-95737160
Fax: 39-02-95738829
Eastern Region
Clare
P.O. Box 856
Mahwah, NJ 07430
Tel: 1-201-236-0101
Fax: 1-201-236-8685
Toll Free: 1-800-27-CLARE
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Clare Sales
Comptronic AB
Box 167
S-16329 Spånga
Tel: 46-862-10370
Fax: 46-862-10371
Central Region
Clare Canada Ltd.
3425 Harvester Road, Suite 202
Burlington, Ontario L7N 3N1
Tel: 1-905-333-9066
Fax: 1-905-333-1824
http://www.clare.com
United Kingdom
Clare UK Sales
Marco Polo House
Cook Way
Bindon Road
Taunton
UK-Somerset TA2 6BG
Tel: 44-1-823 352541
Fax: 44-1-823 352797
Western Region
Clare
1852 West 11th Street, #348
Tracy, CA 95376
Tel: 1-209-832-4367
Fax: 1-209-832-4732
Toll Free: 1-800-27-CLARE
Clare cannot assume responsibility for use of any circuitry other
than circuitry entirely embodied in this Clare product. No circuit
patent licenses nor indemnity are expressed or implied. Clare
reserves the right to change the specification and circuitry, with-
out notice at any time. The products described in this document
are not intended for use in medical implantation or other direct life
support applications where malfunction may result in direct phys-
ical harm, injury or death to a person.
Canada
Clare Canada Ltd.
3425 Harvester Road, Suite 202
Burlington, Ontario L7N 3N1
Tel: 1-905-333-9066
Fax: 1-905-333-1824
Specification: DS-LBB110-R6
©Copyright 2001, Clare, Inc.
OptoMOS® is a registered trademark of Clare, Inc.
All rights reserved. Printed in USA.
1/25/01
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