4 A CAPACITY, THE VARIETY OF CONTACT ARRANGEMENTS
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1 4 A CAPACITY, THE VARIETY OF CONTACT ARRANEMENT RELAY RoH Directive compatibility information FEATURE 1. Compact with high sensitivity The highefficiency polarized electromagnetic circuits of the 4gap balanced armature and our exclusive spring alignment method achieves, with highsensitivity in a small package, a relay that can be directly controlled by a driver chip. 2. trong resistance to vibration and shock Use of 4BA technology realizes strong resistance to vibration and shock. 3. High reliability and long life Our application of 4BA technology, along with almost perfectly complete twin contact, ensures minimal contact bounce and high reliability. 4. Ability to provide wideranging control Use of 4BA technology with goldclad silver alloy contacts in a twin contact structure enables control across a broad range from microcurrents of 1 µa 1 mv DC to 4 A 25 V AC. 5. Latching types available With 4BA technology, as well as single side stable types, convenient 2 latching types for circuit memory applications are also available. 6. Wide variety of contact formations available The compact size of the 4BA mechanism enables the provision of many kinds of package, including 2a2b, 3a1b, and 4a. These meet your needs across a broad range of applications. 7. Low thermal electromotive force relay High sensitivity (low power consumption) is realized by 4BA technology. eparation of the and spring sections has resulted in a relay with extremely low levels of thermal electromotive force (approx..3 µv). 8. DIL terminal array Deployed to fit a 2.54 mm.1 inch grid, the terminals are presented in DIL arrays which match the printed circuit board terminal patterns commonly in international use. 9. Relays that push the boundaries of relay efficiency Highdensity relays take you close to the limits of relay efficiency. TYPICAL APPLICATION Telecommunications equipment, data processing equipment, facsimiles, alarm equipment, measuring equipment. 4AP BALANCED ARMATURE MECHANIM 1. Armature mechanism has excellent resistance to vibration and shock The armature structure enables free rotation around the armature center of gravity. Because the mass is maintained in balance at the fulcrum of the axis of rotation, large rotational forces do not occur even if acceleration is applied along any vector. The mechanism has proven to have excellent resistance to vibration and shock. All our relays are based on this balanced armature mechanism, which is able to further provide many other characteristics. HOW IT WORK (single side stable type) 1) When current is passed through the, the yoke becomes magnetic and polarized. 2) At either pole of the armature, repulsion on one side and attraction on the other side is caused by the interaction of the poles and the permanent magnets of the armature. 2. High sensitivity and reliability provided by 4gap balanced armature mechanism As a (polarized) balanced armature, the relay armature itself has two permanent magnets. Presenting four interfaces, the armature has a 4gap structure. As a result, the rotational axis at either end of the armature is symmetrical and, in an energized into a polarized state, the twin magnetic armature interfaces are subject to repulsion on one side and attraction on the other. This mechanism, exclusive to 3) At this time, opening and closing operates owing to the action of the simultaneously moulded balanced armature mechanism, so that when the force of the contact breaker spring closes the contact on one side, on the other side, the balanced armature opens the contact (2a2b). Matsushita Electric Works, provides a highly efficient polarized magnetic circuit structure that is both highly sensitive and has a small form factor. Moreover, suitability for provision with many types of contact array and other advantages promise to make it possible to provide many of the various characteristics that are coming to be demanded of relays. Residual plate Attraction Repulsion Permanent magnet N N Repulsion N Axis Attraction
2 ORDERIN INFORMATION Contact arrangement 2: 2 Form A 2 Form B 3: 3 Form A 1 Form B 4: 4 Form A Operating function Nil: ingle side stable L: 1 latching* L2: Coil (DC) 3, 5, 6, 12, 24, 48 V EB Notes: 1. *1 latching type are manufactured by lot upon receipt of order. 2. UL/CA approved type is standard. TYPE Contact arrangement 2 Form A 2 Form B 3 Form A 1 Form B 4 Form A tandard packing: Tube: 5 pcs.; Case: 5 pcs. RATIN 1. Coil data 1) ingle side stable Type tandard Nominal Nominal ingle side stable Part No. Part No. 3V DC 2EB3V 2EBL23V 5V DC 2EB5V 2EBL25V 6V DC 2EB6V 2EBL26V 12V DC 2EB12V 2EBL212V 24V DC 2EB24V 2EBL224V 48V DC 2EB48V 2EBL248V 3V DC 3EB3V 3EBL23V 5V DC 3EB5V 3EBL25V 6V DC 3EB6V 3EBL26V 12V DC 3EB12V 3EBL212V 24V DC 3EB24V 3EBL224V 48V DC 3EB48V 3EBL248V 3V DC 4EB3V 4EBL23V 5V DC 4EB5V 4EBL25V 6V DC 4EB6V 4EBL26V 12V DC 4EB12V 4EBL212V 24V DC 4EB24V 4EBL224V 48V DC 4EB48V 4EBL248V Pickup (at 2 C 68 F) Dropout (at 2 C 68 F) current [±1%] (at 2 C 68 F) Coil resistance [±1%] (at 2 C 68 F) power Coil inductance Max. allowable (at 4 C 14 F) 3V DC 66.7mA 45Ω 2mW 23mH 5.5V DC 5V DC 7%V or less 1%V or more 38.5mA 13Ω 192mW 65mH 9.V DC 6V DC of nominal of nominal 33.3mA 18Ω 2mW 93mH 11.V DC 12V DC 16.7mA 72Ω 2mW 37mH 22.V DC 24V DC (Initial) (Initial) 8.4mA 2,85Ω 22mW 1,427mH 44.V DC 48V DC 5.6mA 8,5Ω 271mW 3,41mH 75.V DC
3 2) Type tandard Nominal 3V DC 2. pecifications et (at 2 C 68 F) (at 2 C 68 F) current [±1%] (at 2 C 68 F) et Coil resistance [±1%] (at 2 C 68 F) power (at 2 C 68 F) Coil inductance Max. allowable (at 4 C 14 F) Notes: *1 This value can change due to the switching frequency, environmental conditions, and desired reliability level, therefore it is recommended to check this with the actual load. *2 Refer to 6. Conditions for operation, transport and storage mentioned in AMBIENT ENVIRONMENT. et et et 66.7mA 66.7mA 45Ω 45Ω 2mW 2mW 1mH 5V DC 38.5mA 38.5mA 13Ω 13Ω 192mW 192mW 31mH 6V DC 7%V or less 7%V or less 33.7mA 33.7mA 18Ω 18Ω 2mW 2mW of nominal of nominal 4mH 12V DC (Initial) (Initial) 16.7mA 16.7mA 72Ω 72Ω 2mW 2mW 17mH 24V DC 8.4mA 8.4mA 2,85Ω 2,85Ω 22mW 22mW 68mH 48V DC 7.4mA 7.4mA 6,5Ω 6,5Ω 355mW 355mW 1,25mH Characteristics Item pecifications Contact Rating Electrical characteristics Mechanical characteristics Expected life Conditions Unit weight 1mH 31mH 4mH 17mH 68mH 1,25mH 5.5V DC 9.V DC 11.V DC 22.V DC 44.V DC 65.V DC Arrangement 2 Form A 2 Form B, 3 Form A 1 Form B, 4 Form A Initial contact resistance, max. Max. 5 mω (By drop 6 V DC 1A) Electrostatic capacitance (initial) 3pF Contact material Au clad Ag alloy (Cd free) Thermal electromotive force (at nominal ) (initial) 3µV Nominal switching capacity (resistive load) 4 A 25 V AC, 3 A 3 V DC Max. switching power (resistive load) 1, VA, 9 W Max. switching 25 V AC, 48 V DC (3 to 48 V DC at less than.5 A) Max. switching current 4 A (AC), 3 A (DC) Minimum operating power 1 mw (ingle side stable, ) power 2 mw (ingle side stable, ) Min. switching capacity (Reference value)* 1 1µA 1 m V DC Insulation resistance (Initial) Min. 1,MΩ (at 5V DC) Measurement at same location as Initial breakdown section. Between open contacts 75 Vrms for 1min. (Detection current: 1mA.) Breakdown (Initial) Between contact sets 1, Vrms for 1min. (Detection current: 1mA.) Between contact and 1,5 Vrms for 1min. (Detection current: 1mA.) Temperature rise (at 2 C 68 F) Max. 35 C (By resistive method, nominal applied to the ; contact carrying current: 4A.) Operate time [et time] (at 2 C 68 F) Max. 15 ms [15 ms] (Nominal applied to the, excluding contact bounce time.) Release time [ time] (at 2 C 68 F) Max. 1 ms [15 ms] (Nominal applied to the, excluding contact bounce time.) (without diode) hock resistance Functional Min. 49 m/s 2 (Halfwave pulse of sine wave: 11 ms; detection time: 1µs.) Destructive Min. 98 m/s 2 (Halfwave pulse of sine wave: 6 ms.) Vibration resistance Functional 1 to 55 Hz at double amplitude of 3 mm (Detection time: 1µs.) Destructive 1 to 55 Hz at double amplitude of 4 mm Mechanical Min. 1 8 (at 5 cps) Electrical Min. 1 5 (4 A 25 V AC), Min (3 A 3 V DC) (at 2 cpm) Conditions for operation, transport and storage* 2 Ambient temperature: 55 C to 65 C 67 F to 149 F Humidity: 5 to 85% R.H. (Not freezing and condensing at low temperature) Max. operating speed 2 cpm for maximum load, 5 cps for lowlevel load (1 ma 1 V DC) 8 g.28 oz
4 REFERENCE DATA 1. Maximum switching power 2. Life curve 3. Contact reliability Condition: 1V DC, 1mA Detection level 1 Ω Tasted ample: 4EB24V, 1pcs Contact, V 1, 1 1 DC resistive load AC resistive load Contact current, A Life, 1 4 1, V AC (cosϕ = 1.) 25 V AC (cosϕ = 1.) Contact current, A m = 1.6 µ: 79 million time σ: 51 million time 95% reliability limit: 14.6 million times (weibul probability paper) No. of operations, (1) Coil temperature rise Tested ample: 4EB24V, 4 Form A 4.(2) Coil temperature rise Tested ample: 4EB24V, 4 Form A 5. Operate and release time (ingle side stable type) Tested ample: 4EB24V, 1pcs Temperature rise, C A A Coil operating power, W Temperature rise, C Coil operating power,.2 W Contact current, A Operate/release time, ms Release time (with diode) 1 Max. 8 Min. 6 Operate time Max. 4 Max. Min. Min. 2 Release time Coil applied, %V 6. Influence of adjacent mounting (1) (2) (3) ingle side stable 3 (1) & (3) relays are energized Dropout Pickup Note: When installing an relay near another, and there is no effect from an external magnetic field, be sure to leave at least 1 mm.394 inch between relays in order to achieve the performance listed in the catalog. 3 Pickup 7. Thermal electromotive force Thermal electromotive force, µv 2 NRH 1 NF relay relay Interrelay distance, mm Interrelay distance, mm Minute 8. Effect from an external magnetic field ingle side stable 3 φ Pickup Dropout ingle side stable 3 φ Dropout Pickup Pickup Pickup
5 DIMENION (Unit: mm inch) External dimensions 28± ± chematic (Bottom view) ingle side stable (Deenergized position) ( condition) ±.5.394± a2b eneral tolerance: ±.3 ±.12 PC board pattern (Copperside view) 3a1b a dia dia Tolerance: ±.1 ±.3 NOTE 1. Based on regulations regarding insulation distance, there is a restriction on samechannel load connections between terminals No. 2, 3 and 4, 5, as well as between No. 8, 9 and 1, 11. ee the figure below for an example. 2. Please note that when this relay (1 Form A 1 Form B types) operates and releases, contacts a and b may go ON at the same time Between 2, 3 and 4, 5: different channels, therefore not possible Between 1, 11 and 8, 9: different channels, therefore not possible No good Between 2, 3 and 4, 5: same channels, therefore possible Between 1, 11 and 8, 9: same channels, therefore possible ood For Cautions for Use, see Relay Technical Information.
6 ACCEORIE RELAY OCKET DIMENION (Unit: mm inch) External dimensions PC board pattern (Copperside view) 12.4±.6.488± ±.6.72± ±.3.47± ±.3.191± ±.3.59± ±.3.2± ± ± ±.6.61± ±.3.59±.12.4±.1.16±.4 3.4±.3.134± ±.3.3±.12 Terminal width: Terminal thickness: DIA. HOLE DIA. HOLE P RoH Directive compatibility information PECIFICATION Maximum continuous current Breakdown Insulation resistance Heat resistance 4 A Note: Don t insert or remove relays while in the energized condition. 1,5 Vrms between terminals More than 1 MΩ between terminals at 5 V DC Mega 15 ±3 C (32 ±5.4 F) for 1 hour. Inserting and removing method Inserting method: Insert the relay as shown in Fig. 1 unit the rib of the relay snaps into the clip of the socket. Removing method: (1) Remove the relay straight from the socket holding the shaded portion of the relay as shown in Fig. 2. (2) When sockets are mounted in close proximity, use a slotted screw driver as shown in Fig. 3. Rib Fig. 3 Fig. 1 Fig. 2
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