FLUX LED SPECIFICATION

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FLUX LED SPECIFICATION LED-8-7514 Fatures Single color High bright output High Current Operation Low power consumption High reliability and long life? 3.±.2 1.5mm CATHODE Descriptions Dice material Emitting ColorWhite Device Outline7.6mmX7.6mm Lens TypeWater Clear NOTE: All dimensions are millimetres. Tolerance is +/-.25mm unless otherivise Relative Luminous Intensity 1..5 Ta=25 C IF=2mA DIRECTIVITY 3 6 9 9 6 3.5 1. Radiation Angle Page: 1

LED SPECIFICATION Absolute maximum ratingsta = 25 Parameter Symbol Test Condition Min. Value Max. Unit Reverse Voltage VR IR = 3A 5 -- V Forward Current IF ---- 3 ma Power Dissipation Pd ---- ---- 75 mw Pulse Current Ipeak Duty=.1mS1kHz ---- 1 ma Operating Temperature Topr ---- -4 +85 Storage Temperature Tstr ---- -4 +1 Electrical and optical characteristics Ta = 25 Parameter Symbol Test Condition Value Min. Typ. Max. Unit Forward Voltage VF IF = 3mA V9~V12 Reverse Current IR VR = 5V ---- ---- 3 A Color d IF =3mA WA~WD Spectral Line half-width IF =3mA --- nm Luminous Flux IV IF = 3mA L,M Viewing Angle 21/2 IF = 3mA 7 8 Deg. Page: 2

FLUX BIN FOR PIRANHA (UFO) LEDS Bin Code LM Bin Code LM Bin Code LM Bin Code LM A <=.46 E 1.-1.3 J 2.8-3.6 N 7.8-1. B.46-.6 F 1.3-1.7 K 3.6-4.7 P 1-13 C.6-.77 G 1.7-2.2 L 4.7-6. Q 13-17 D.77-1. H 2.2-2.8 M 6.-7.8 R 17-22 FOR WHITE COLOR BINS SEE PAGE 3B Placing of white color BINs on CIE table B1 45-455 YG1 555-558 B2 455-46 YG2 558-561 BLUE B3 46-465 YG3 561-564 B4 465-47 YG4 564-567 B5 47-475 YG5 567-57 B6 475-48 YG6 57-573 G1 491-494 YG7 573-576 G2 494-497 Y1 582-585 G3 497-5 Y2 585-588 G4 5-53 Y3 588-591 G5 53-56 Y4 591-594 G6 56-59 Y5 594-597 G7 59-512 YO1 597-6 G8 512-515 YO2 6-63 G9 515-518 YO3 63-66 G1 518-521 YO4 66-69 G11 521-524 O1 69-612 G12 524-527 O2 612-615 G13 527-53 O3 615-618 PURE G14 53-533 R1 618-621 GREEN G15 533-536 R2 621-624 G16 536-539 R3 624-627 RED G17 539-542 R4 627-63 G18 542-545 R5 63-633 G19 545-548 R6 633-636 FORWARD VOLTAGE (VF) BIN Bin Code VF (V) Bin Code VF (V) Bin Code VF (V) Bin Code VF (V) V1 1.6-1.8 V5 2.4-2.6 V9 3.2-3.4 V13 4.-4.2 V2 1.8-2. V6 2.6-2.8 V1 3.4-3.6 V14 4.2-4.4 V3 2.-2.2 V7 2.8-3. V11 3.6-3.8 V15 4.4-4.6 V4 2.2-2.4 V8 3.-3.2 V12 3.8-4. V16 4.6-4.8 Page: 3A

Color ranking for white LEDs Chromaticity Coordinates Ranks (IF=2mA Ta=25) Wa1 Wa3 Wb2 Wc2 Wc4 Wd2 X.243.215.23.263 X.263.246.264.28 Wa2 Y.2.23.25.22 Y.22.236.267.248 X.246.23.248.264 X.28.264.283.296 Wb1 Y.236.25.286.267 Y.248.267.35.276 X.264.248.275.283 X.296.287.33.33 Wc1 Y.267.286.321.35 Y.276.295.339.318 X.287.283.33.33 X.283.275.298.36 Wc3 Y.295.35.36.339 Y.35.321.35.332 X.36.298.321.33 X.33.33.361.356 Wd1 Y.332.35.379.36 Y.318.36.385.351 X.33.321.366.361 X.356.366.391.38 Wf Y.36.379.419.385 Y.351.419.436.381 Y IF=2mATa=25 C Wf x Page: 3B

LED SPECIFICATION Typical electrical/optical characteristic curves 5 FORWARD CURRENT Vs FORWARD VOLTAGE 2.5 LUMINOUS INTENSITY Vs. FORWARD CURRENT Forward Current(mA) 4 3 2 1 Luminous Intensity Relative Value at IF=2mA 2. 1.5 1..5 2. 2.4 2.8 3.2 3.6 4. Forward Voltage(V) 1 2 3 4 5 IF-Forward Current (ma) Forward Current(mA) 5 4 3 2 1 FORWARD CURRENT DERATING CURVE Relative Luminous Intensity 2.5 2. 1.5 1..5 LUMINOUS INTENSITY Vs. AMBIENT TEMPERATURE 2 4 6 8 1-4 -2 2 4 6 8 Ambient Temperature TA ( ) Ambient Temperature TA ( ) 1 Page: 4

LED LAMP APPLICATION SOLDERING METHOD SOLDERING CONDITIONS REMARK DIP SOLDERING Bath temperature: 26±5 Immersion time: with 5 sec Solder no closer than 3mm from the base of the package Using soldering flux, RESIN FLUX is recommended. During soldering, take care not to press the tip of iron against the Soldering iron: 3W or smaller lead. SOLDERING Temperature at tip of iron: 26 or lower (To prevent heat from being IRON Soldering time: within 5 sec. transferred directly to the lead, hold the lead with a pair of tweezers while soldering 1) When soldering the lead of LED in a condition that the package is fixed with a panel (See Fig.1), be careful not to stress the leads with iron tip. 2) When soldering wire to the lead, work with a Fig (See Fig.2) to avoid stressing the package. Page : 5

LED LAMP APPLICATION 3) Similarly, when a jig is used to solder the LED to PC board, take care as much as possible to avoid steering the leads (See Fig.3). 4) Repositioning after soldering should be avoided as much as possible. If inevitable, be sure to preserve the soldering conditions with irons stated above: select a best-suited method that assures the least stress to the LED. 5) Lead cutting after soldering should be performed only after the LED temperature has returned to normal temperature. LED MOUNTING METHOD 1) When mounting the LED by using a case, as shown Fig.4, ensure that the mounting holds on the PC board match the pitch of the leads correctly-tolerance of dimensions of the respective components including the LED should be taken into account especially when designing the case, PC board, etc. to prevent pitch misalignment between the leads and board holes, the diameter of the board holes should be slightly larger than the size of the lead. Alternatively, the shape of the holes should be made oval. (See Fig.4) case pc board Fig.4 Page : 6

LED LAMP APPLICATION 2) Use LEDs with stand-off (Fig.5) or the tube or spacer made of resin (Fig.6) to position the LEDs. Stand-off Tube Fig.5 Fig.6 FORMED LEAD 1) The lead should be bent at a point located at least 2mm away from the package. Bending should be performed with base fixed means of a jig or pliers (Fig.7) 2) Forming lead should be carried our prior to soldering and never during or after soldering. 3) Form the lead to ensure alignment between the leads and the hole on board, so that stress against the LED is prevented. (Fig.8) Page : 7

LED LAMP APPLICATION LEAD STRENGTH 1) Bend strength Do not bend the lead more than twice. (Fig.9) Fig.9 2) Tensile strength (@Room Temperature) If the force is 1kg or less, there will be no problem. (Fig.1) Fig.1 HANDLING PRECAUTIONS Although rigid against vibration, the LEDs may damaged or scratched if dropped. So take care when handling. CHEMICAL RESISTANCE 1) Avoid exposure to chemicals as it may attack the LED surface and cause discoloration. 2) When washing is required, refer to the following table for the proper chemical to be sued. (Immersion time: within 3 minutes at room temperature.) SOLVENT ADAPTABILITY Freon TE NOTE: Influences of ultrasonic cleaning of the LED Chlorothene resin body differ depending on such factors Isopropyl Alcohol as the oscillator output, size of the PC board Thinner and the way in which the LED is mounted. Acetone Therefore, ultrasonic cleaning should only be Trichloroethylene performed after confirming there is no problem by --Usable --Do not use. conducting a test under practical. Page : 8

LED LAMP PASSED TESTS Experiment Item: Item OPERATION LIFE HIGH TEMPERATURE HIGH HUMIDITY STORAGE TEMPERATURE CYCLING Test Condition Lamp & IR Ta 255 IF= 2mA RH=6%RH DYNAMIC:1mA 1ms 1/1 duty STATIC STATE: IF2mA TEST TIME: 168HRS-24HRS+24HRS 5HRS-24HRS+24HRS 1HRS-24HRS+72HRS Ta 655 RH 995%RH TEST TIME24HRS2HRS 1525-5525 3min 5min 3min 5min 1CYCLES Reference Standard MIL-STD-75126 MIL-STD-88315 JIS C 721B-1 MIL-STD-2213B JIS C 721 B-1 MIL-STD-2217D MIL-STD-75151 MIL-STD-88311 JIS C 721 A-4 THERMAL SHOCK SOLDER RESISTANCE SOLDERABILITY Drive Method Circuit model A 155-555 1min 1min 1CYCLES Tsol265 DWELL TIME1lsec Tsol235 DWELL TIME5lsec Circuit model B MIL-STD-2217D MIL-STD-75151 MIL-SYD-883111 MIL-STD-2221A MIL-STD-75-231 JIS C 721A-1 MIL-STD-2228D MIL-STD-75226 MIL-STD-88323 JIS C 721 A-2 (A)Recommended circuit. Page : 9 (B)The difference of brightness between LED`s could be found due to the Vf-If characteristics of LED.