LH1505AB/ AAC/ AACTR. Pb Pb-free. Dual 1 Form A Solid State Relay. Vishay Semiconductors
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1 LH155AB/ AAC/ AACTR Dual 1 Form A Solid State Relay Features Two Independent Relays Current Limit Protection Isolation Test Voltage 53 V RMS Typical R ON 15 Ω Load Voltage 25 V Load Current 12 ma High Surge Capability Clean Bounce Free Switching Low Power Consumption High Reliability Monolithic Receptor SMD Lead Available on Tape and Reel Lead-free component Component in accordance to RoHS 22/95/EC and WEEE 22/96/EC Agency Approvals UL1577, File No. E52744 System Code H or J, Double Protection CSA - Certification BSI/BABT Cert. No. 798 DIN EN (VDE884) DIN EN pending FIMKO Approval Applications General Telecom Switching - On/off Hook Control - Ring Delay - Dial Pulse - Ground Start - Ground Fault Protection i17934 DIP S1 S2 Instrumentation Industrial Controls S1' S2' SMD S1 S1' S2 S2' e3 Pb Pb-free Description The LH155 contains two normally open switches that can be used as two independent SPST relays or as one DPST relay. The relay is constructed using a GaAlAs LED for actuation control and integrated monolithic dies for the switch outputs. The die, fabricated in a high-voltage dielectrically isolated technology, is comprised of a photodiode array, switch control circuity, and DMOS switches. In addition, the LH155 relay employs current limiting circuitry, enabling it to pass FCC and other regulatory voltage surge requirements when overvoltage protection is provided. Order Information Part LH155AAC LH155AACTR LH155AB Remarks Tubes, SMD-8 Tape and Reel, SMD-8 Tubes, SMD-8 Document Number 8389 Rev. 1.3, 26-Oct-4 1
2 LH155AB/ AAC/ AACTR Absolute Maximum Ratings, T amb = 25 C Stresses in excess of the absolute Maximum Ratings can cause permanent damage to the device. Functional operation of the device is not implied at these or any other conditions in excess of those given in the operational sections of this document. Exposure to absolute Maximum Ratings for extended periods of time can adversely affect reliability. SSR Parameter Test condition Symbol Value Unit LED continuous forward current I F 5 ma LED reverse voltage I R 1 µa V R 8. V DC or peak AC load voltage I L 5 µa V L 25 V Continuous DC load current, I L 13 ma one pole operating Continuous DC load current, I L 12 ma two poles operating Peak load current (single shot), Form B t = 1 ms I P 2) Ambient operating temperature T amb - 4 to + 85 C range Storage temperature range T stg - 4 to + 15 C Pin soldering temperature t = 1 s max T sld 26 C Input/output isolation test voltage t = 1. s, I ISO = 1 µa max V ISO 53 V RMS Pole-to-pole isolation voltage (S1 to S2) 1), (dry air, dust free, at sea level) Output power dissipation (continuous) 1) Breakdown occurs between the output pins external to the package. 16 V P diss 6 mw 2) Refer to Current Limit Performance Application Note for a discussion on relay operation during transient currents. Electrical Characteristics, T amb = 25 C Minimum and maximum values are testing requirements. Typical values are characteristics of the device and are the result of engineering evaluations. Typical values are for information only and are not part of the testing requirements. Input Parameter Test condition Symbol Min Typ. Max Unit LED forward current, I L = 1 ma, t = 1 ms I Fon ma switch turn-on LED forward current, V L = ± 2 V I Foff.2.9 ma switch turn-off LED forward voltage I F = 1 ma V F V Output Parameter Test condition Symbol Min Typ. Max Unit ON-resistance I F = 5. ma, I L = 5 ma R ON Ω OFF-resistance I F = ma, V L = ± 1 V R OFF.5 5 GΩ Current limit I F = 5. ma, t = 5. ms, V L = ± 6. V I LMT ma Off-state leakage current I F = ma, V L = ± 1 V I O.2 2 na I F = ma, V L = ± 25 V I O 1. µa 2 Document Number 8389 Rev. 1.3, 26-Oct-4
3 LH155AB/ AAC/ AACTR Parameter Test condition Symbol Min Typ. Max Unit Output capacitance I F = ma, V L = 1. V C O 55 pf I F = ma, V L = 5 V C O 1 pf Pole-to-pole capacitance I F = 5. ma.5 pf (S1 to S2) Switch offset I F = 5. ma V OS.15 V Transfer Parameter Test condition Symbol Min Typ. Max Unit Capacitance (input-output) V ISO = 1. V C IO 1.1 pf Turn-on time I F = 5. ma, I L = 5 ma t on 1.4 1) 4. 1) ms Turn-off time I F = 5. ma, I L = 5 ma t off.7 1) 4. 1) ms 1) I L = 1 ma Typical Characteristics (Tamb = 25 C unless otherwise specified) Load Current (ma) ilh155ab_ I Fon =5. to 2 ma I Fon =2. ma I Fon =3. ma I Fon =4. ma LED Forward Current for Switch Turn-off (%), ilh155ab_ IL= 1mA Figure 1. Recommended Operating Conditions Figure 3. LED Current for Switch Turn-on vs. Temperature LED Forward Voltage (V) ilh155ab_1 IF=2 ma IF=5 ma 1.2 IF=1. ma IF=2. ma 1.1 IF=5. ma IF=1 ma Figure 2. LED Voltage vs. Temperature Change in Current Limit (%) ilh155ab_ IF= 5.mA t=5.ms VL= SEE ELEC. CHAR Figure 4. Current Limit vs. Temperature 8 Document Number 8389 Rev. 1.3, 26-Oct-4 3
4 LH155AB/ AAC/ AACTR LED Forward Voltage (V) MIN. TYP. IL= 1 ma Capacitance (pf) IF= ma TA=25 C f=1. MHz ilh155ab_4 6 8 Figure 5. LED Dropout Voltage vs. Temperature ilh155ab_ Applied Voltage (V) 8 1 Figure 8. Switch Capacitance vs. Applied Voltage Change in ON-Resistance (%) IL= 5mA Insertion Loss (db) RL= 6Ω ilh155ab_ Figure 6. ON-Resistance vs. Temperature ilh155ab_ Frequency (Hz) Figure 9. Insertion Loss vs. Frequency ac/dc On-resistance Variation (%) Normalized to Data Sheet RON Specification at IF =5. ma IL= 5mA Isolation (db) VP=1V RL=5Ω ilh155ab_ LED Forward Current (ma) 16 2 Figure 7. Variation in ON-Resistance vs. LED Current ilh155ab_ Frequency (Hz) Figure 1. Output Isolation 4 Document Number 8389 Rev. 1.3, 26-Oct-4
5 LH155AB/ AAC/ AACTR Off-state Leakage Current (pa) IF= ma TA = 25 C Switch Offset Voltage (µv) IF= 5. ma ilh155ab_ Load Voltage (V) 35 4 ilh155ab_ Figure 11. Leakage Current vs. Applied Voltage Figure 14. Switch Offset Voltage vs. Temperature 3..6 Off-state Leakage Current (na) C 7 C 5 C Switch Offset Voltage (µv) ilh155ab_ Load Voltage (V) Figure 12. Leakage Current vs. Applied Voltage at Elevated Temperatures ilh155ab_ LED Forward Current (ma) Figure 15. Switch Offset Voltage vs. LED Current Change in Breakdown Voltage (%) ilh155ab_ Figure 13. Switch Breakdown Voltage vs. Temperature Change in Turn-on Time (%) ilh155ab_ IF=5. ma IL=5 ma Figure 16. Turn-on Time vs. Temperature Document Number 8389 Rev. 1.3, 26-Oct-4 5
6 LH155AB/ AAC/ AACTR Change in Turn-off Time (%) ilh155ab_ IF=5. ma IL=5 ma Figure 17. Turn-off Time vs. Temperature 1 Turn-on Time (ms) IL=5 ma -4 C 25 C 85 C ilh155ab_ LED Forward Current (ma) 5 Figure 18. Turn-on Time vs. LED Current IL=5 ma -4 C Turn-off Time (ms) C 85 C ilh155ab_ LED Forward Current (ma) Figure 19. Turn-off Time vs. LED Current 6 Document Number 8389 Rev. 1.3, 26-Oct-4
7 LH155AB/ AAC/ AACTR Package Dimensions in Inches (mm) DIP pin one ID.268 (6.81).255 (6.48) ISO Method A.45 (1.14).3 (.76) 4.39 (9.91).379 (9.63).31 (.79).15 (3.81).13 (3.3).3 (7.62).5 (1.27) 1.35 (.89).22 (.56) (.51).18 (.46).12 (.3).1 (2.54).8 (.2).25 (6.35).23 (5.84).13 (3.3).11 (2.79) i1788 Package Dimensions in Inches (mm) SMD Pin one I.D..268 (6.81).255 (6.48).1 (2.54) R.1 (.25).3 (.76).7 (1.78).39 (9.91).379 (9.63).315 (8.) min.435 (11.5).6 (1.52) ISO Method A.45 (1.14).3 (.78).31 (.79).15 (3.81).13 (3.3) Radius.395 (1.3).375 (9.52).312 (7.8).298 (7.52) 3 to7 ˇ i (1.27).8 (.25).4 (.1).1 (2.54).4 (1.2).2 (.51) 1 ˇ.315 (8.).1 (2.54) Document Number 8389 Rev. 1.3, 26-Oct-4 7
8 LH155AB/ AAC/ AACTR Ozone Depleting Substances Policy Statement It is the policy of Vishay Semiconductor GmbH to 1. Meet all present and future national and international statutory requirements. 2. Regularly and continuously improve the performance of our products, processes, distribution and operatingsystems with respect to their impact on the health and safety of our employees and the public, as well as their impact on the environment. It is particular concern to control or eliminate releases of those substances into the atmosphere which are known as ozone depleting substances (ODSs). The Montreal Protocol (1987) and its London Amendments (199) intend to severely restrict the use of ODSs and forbid their use within the next ten years. Various national and international initiatives are pressing for an earlier ban on these substances. Vishay Semiconductor GmbH has been able to use its policy of continuous improvements to eliminate the use of ODSs listed in the following documents. 1. Annex A, B and list of transitional substances of the Montreal Protocol and the London Amendments respectively 2. Class I and II ozone depleting substances in the Clean Air Act Amendments of 199 by the Environmental Protection Agency (EPA) in the USA 3. Council Decision 88/54/EEC and 91/69/EEC Annex A, B and C (transitional substances) respectively. Vishay Semiconductor GmbH can certify that our semiconductors are not manufactured with ozone depleting substances and do not contain such substances. We reserve the right to make changes to improve technical design and may do so without further notice. Parameters can vary in different applications. All operating parameters must be validated for each customer application by the customer. Should the buyer use products for any unintended or unauthorized application, the buyer shall indemnify against all claims, costs, damages, and expenses, arising out of, directly or indirectly, any claim of personal damage, injury or death associated with such unintended or unauthorized use. Vishay Semiconductor GmbH, P.O.B. 3535, D-7425 Heilbronn, Germany Telephone: 49 () , Fax number: 49 () Document Number 8389 Rev. 1.3, 26-Oct-4
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