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IRU1015 1.5A DROPOUT POSITIVE ADJUSTABLE REGULATOR DESCRIPTION
Top Searches for this datasheetData Sheet PD94122 IRU1015 1.5A DROPOUT POSITIVE ADJUSTABLE REGULATOR DESCRIPTION IRU1015 dropout three-terminal adjustable regulator with minimum 1.5A output current capability. This product specifically designed provide well regulated supply voltage applications such 486DX4 processor, P55CI/O supply well high speed termination current 3.3V logic supply. IRU1015 also well suited other applications such sound card. IRU1015 guaranteed have <1.3V dropout full load current making ideal provide well regulated outputs 2.5V 3.3V with 4.75V input supply. FEATURES Guaranteed 1.3V Dropout Full Load Current Fast Transient Response Voltage Reference Initial Accuracy Output Current Limiting Built-In Thermal Shutdown APPLICATIONS 486DX4 Supply Voltage Supply Voltage Sound Card Applications Voltage High Speed Termination Applications Standard 3.3V Chip Logic Applications TYPICAL APPLICATION 1500uF IRU1015 VOUT 3.3V 1.5A 1500uF Figure Typical application IRU1015 3.3V regulator. Note: P55C trademark Intel Corp. PACKAGE ORDER INFORMATION (°C) 2-PIN PLASTIC TO-252 (D-Pak) IRU1015CD 3-PIN PLASTIC TO-263 IRU1015CM 3-PIN PLASTIC TO-220 IRU1015CT Rev. 08/20/02 www.irf.com IRU1015 ABSOLUTE MAXIMUM RATINGS Input Voltage Power Dissipation Storage Temperature Range Operating Junction Temperature Range Internally Limited -65°C 150°C 150°C PACKAGE INFORMATION 2-PIN PLASTIC TO-252 (D-Pak) FRONT VIEW 3-PIN PLASTIC TO-263 FRONT VIEW 3-PIN PLASTIC TO-220 FRONT VIEW VOUT VOUT VOUT VOUT VOUT JA=70°C/W 0.5" Square JA=35°C/W Square JT=2.7°C/W JA=60°C/W ELECTRICAL SPECIFICATIONS Unless otherwise specified, these specifications apply over CIN=1mF, COUT=10mF, TJ=0 1508C. Typical values refer TJ=258C. PARAMETER Reference Voltage Line Regulation Load Regulation (Note Dropout Voltage (Note Current Limit Minimum Load Current (Note Thermal Regulation Ripple Rejection Adjust Current Adjust Current Change Temperature Stability Long Term Stability Output Noise VREF TEST CONDITION Io=10mA, TJ=258C, IN-Vo)=1.5V Io=10mA, IN-Vo)=1.5V Io=10mA, 1.3V<(V IN-Vo)<7V VIN=3.3V, VADJ=0, 10mA<Io<1.5A Note Io=1.5A VIN=3.3V, DVo=100mV VIN=3.3V, ADJ=0V 30ms Pulse, VIN-Vo=3V, Io=1.5A f=120Hz, Co=25mF Tantalum, Io=0.75A, VIN-Vo=3V Io=10mA, VIN-Vo=1.5V, TJ=258C, Io=10mA, VIN-Vo=1.5V Io=10mA, VIN-Vo=1.5V, TJ=258C VIN=3.3V, VADJ=0V, Io=10mA TJ=1258C, 1000Hrs TJ=258C, 10Hz<f<10KHz 1.238 1.225 1.250 1.250 1.262 1.275 0.02 UNITS 0.01 0.003 IADJ Note duty cycle pulse testing with Kelvin connections required order maintain accurate data. Note Dropout voltage defined minimum differential voltage between VOUT required maintain regulation VOUT. measured when output voltage drops below nominal value. Note Minimum load current defined minimum current required output order output voltage maintain regulation. Typically resistor dividers selected such that automatically maintains this current. www.irf.com Rev. 08/20/02 IRU1015 DESCRIPTIONS SYMBOL VOUT DESCRIPTION resistor divider from this VOUT ground sets output voltage. output regulator. minimum 10mF capacitor must connected from this ground insure stability. input regulator. Typically large storage capacitor connected from this ground insure that input voltage does below minimum drop voltage during load transient response. This must always 1.3V higher than order device regulate properly. BLOCK DIAGRAM VOUT 1.25V CURRENT LIMIT THERMAL SHUTDOWN Figure Simplified block diagram IRU1015. APPLICATION INFORMATION Introduction IRU1015 adjustable Dropout (LDO) regulator three-terminal device which easily programmed with addition external resistors voltages within range 1.25 V.This regulator unlike first generation three-terminal regulators such LM117 that required differential between input regulated output, only needs 1.3V differential maintain output regulation. This requirement today's microprocessors that need typically 3.3V supply often generated from supply. Another major requirement these microprocessors need switch load current from zero full load tens nanoseconds their pins, which translates approximately 500ns current step regulator. addition, output voltage tolerances sometimes tight they include transient response part specification. IRU1015 specifically designed meet fast current transient needs well provide accurate initial voltage, reducing overall system cost with need fewer output capacitors. Rev. 08/20/02 www.irf.com IRU1015 Output Voltage Setting IRU1015 programmed voltages range 1.25V 5.5V with addition external resistors according following formula: VOUT VREF3 load side, effective resistance between regulator load gained factor R2/R1),or effective resistance will RP(eff) =RP3(1+ R2/R1). important note that high current applications, this represent significant percentage overall load regulation must keep path from regulator load short possible minimize this effect. PARASITIC LINE RESISTANCE Where: VREF 1.25V Typically IADJ 50mA Typically shown Figure VOUT IRU1015 IRU1015 IADJ 50uA Figure Typical application IRU1015 programming output voltage. IRU1015 keeps constant 1.25V between output adjust pin. placing resistor across these pins constant current flows through adding IADJ current into resistor producing voltage equal (1.25/R1)3R2 IADJ3R2 which will added 1.25V output voltage. This summarized above equation. Since minimum load current requirement IRU1015 10mA, typically selected 121V resistor that automatically satisfies minimum current requirement. Notice that since IADJ typically range 50mA only adds small error output voltage should only considered when very precise output voltage setting required. example, typical 3.3V application where R1=121V R2=200V error IADJ only 0.3% nominal point. Load Regulation Since IRU1015 only three-terminal device, possible provide true remote sensing output voltage load. Figure shows that best load regulation achieved when bottom side connected load side resistor connected directly case VOUT regulator load. fact, connected Figure Schematic showing connection best load regulation. Stability IRU1015 requires output capacitor part frequency compensation order make regulator stable. Typical designs microprocessor applications standard electrolytic capacitors with typical range 100mV output capacitance 1000mF. Fortunately capacitance increases, decreases resulting fixed time constant. IRU1015 takes advantage this phenomena making overall regulator loop stable. most applications minimum 100mF aluminum electrolytic capacitor such Sanyo MVGX series, Panasonic series well Nichicon series insures both stability good transient response. Thermal Design IRU1015 incorporates internal thermal shutdown that protects device when junction temperature exceeds maximum allowable junction temperature. Although this device operate with junction temperatures range 1508C, recommended that selected heat sink chosen such that during maximum continuous load operation junction temperature kept below this number. example below shows steps selecting proper regulator heat sink 486DX4-120 processor. www.irf.com Rev. 08/20/02 IRU1015 Assuming following specifications: VOUT 3.45V IOUT(MAX) 1.2A 358C steps selecting proper heat sink keep junction temperature below 135°C given Calculate maximum power dissipation using: IOUT3(V VOUT) 1.23(5 3.45) 1.86W Select package from regulator data sheet record junction case Tab) thermal resistance. Selecting TO-220 package gives 2.78C/W Assuming that heat sink black anodized, calculate maximum Heat sink temperature allowed: Assume, ucs=0.05°C/W (heat-sink-to-case thermal resistance black anodized) PD3(uJC uCS) 1.863(2.7 0.05) 1298C With maximum heat sink temperature calculated previous step, heat-sink-to-air thermal resistance (uSA) calculated first calculating temperature rise above ambient follows: 948C Temperature Rise Above Ambient 508C/W 1.86 Thermalloy AAVID 6041PB 574602 Flow (LFM) Required Required Note: further information regarding above companies their latest product offerings application support contact your local representative numbers listed below: AAVID Thermalloy.PH# (603) 528-3400 Designing Microprocessor Applications mentioned before IRU1015 designed specifically provide power generation voltage processors requiring voltages range 2.5V 3.6V generated stepping down supply. These processors demand fast regulator that supports their large load current changes. worst case current step seen regulator anywhere range with slew rate 500ns which could happen when processor transitions from "Stop Clock" mode "Full Active" mode. load current step processor actually much faster, order 20ns, however, de-coupling capacitors placed cavity processor socket handle this transition until regulator responds load current levels. Because this requirement, selection high frequency output capacitor imperative design these regulator circuits. Figure shows effects fast transient output voltage regulator. shown this figure, output capacitor produces instantaneous drop equal (VESR =ESR3I) effect will equal rate change output current times inductance capacitor =L3I/t). output capacitance effect droop output voltage proportional time takes regulator respond change current (VC=t3I/C where response time regulator. Next, heat sink with lower than calculated step must selected. this simply look graphs "Heat Sink Temp Rise Above Ambient" "Power Dissipation" select heat sink that results lower temperature rise than calculated previous step. following heat sinks from AAVID Thermalloy meet this criteria. Rev. 08/20/02 www.irf.com IRU1015 With output capacitance being 1500mF: 1.6mV 1500 Where: regulator response time 1015plt1-1.0 LOAD CURRENT output voltage, need select LOAD CURRENT RISE TIME Assuming R1=121V, Figure Typical regulator response fast load current step. example regulator design meet specification 486DX4-120MHz given below. Assume specification processor shown Table Type Processor 486DX4 Nominal 3.45 IMAX Allowed Output Tolerance ±150 -1)3R1 3.45 -1)3121 213V 1.25 Select 215V, Selecting both resistors tolerance results least amount error introduced resistor dividers leaving ±2.5% error budget IRU1015 reference which well within initial accuracy device. Finally, input capacitor selected follows: Assuming that input voltage drop 150mV before main power supply responds, that main power supply response time 50ms, then minimum input capacitance 1.2A load step given 400mF 0.15 Table GTL+ specification Pentium first step select voltage step allowed output output capacitor's ESR: Assuming regulator's initial accuracy plus resistor divider tolerance ±86mV (±2.5% 3.45V nominal), then total step allowed ESL, -64mV. Assuming that drop -10mV, remaining step will -54mV. Therefore output capacitor must 45mV Sanyo MVGX series good choice achieve both price performance goals. 6MV1500GX, 1500mF, 6.3V less than 36mV typical. Selecting single capacitor achieves design goal. next step calculate drop capacitance discharge make sure that this drop voltage less than selected drop previous step. should less than: VOUT VDROP) Where: VDROP Input voltage drop allowed step Maximum regulator dropout voltage Load current step 3.45 0.15) 0.167V Select single 1500mF same type output capacitors exceeds requirements. Figure shows completed schematic example. www.irf.com Rev. 08/20/02 IRU1015 1500uF 3.45V 1500uF IRU1015 Layout Consideration output capacitors must located close VOUT terminal device possible. recommended section layer board plane connect output capacitors prevent high frequency oscillation that result from excessive trace inductance. Figure Final schematic regulator design. WORLD HEADQUARTERS: Kansas St., Segundo, California 90245, Tel: (310) 252-7105 Fax: (310) 252-7903 Visit www.irf.com sales contact information Data specifications subject change without notice. 02/01 Rev. 08/20/02 www.irf.com IRU1015 TO-252 Package 2-Pin SYMBOL 6.477 6.731 5.004 5.207 0.686 0.838 7.417 8.179 9.703 10.084 0.635 0.889 2.286 4.521 4.623 &1.52 &1.62 2.184 2.388 0.762 0.864 1.016 1.118 5.969 6.223 1.016 1.118 0.102 0.534 0.686 R0.31 R0.51 0.428 0.588 NOTE: MEASUREMENTS MILLIMETERS. www.irf.com Rev. 08/20/02 IRU1015 TO-263 Package 3-Pin SYMBOL 10.05 10.312 8.28 8.763 4.31 4.572 0.66 0.91 1.14 1.40 2.54 14.73 15.75 1.40 1.68 0.00 0.254 2.49 2.74 0.33 0.58 2.286 2.794 2.41 2.67 6.50 7.75 NOTE: MEASUREMENTS MILLIMETERS. Rev. 08/20/02 www.irf.com IRU1015 TO-220 Package 3-Pin E-PIN (5x) SYMBOL 4.06 4.83 7.58 0.63 1.02 1.14 1.52 0.38 0.56 3.71D 3.96D 14.22 15.062 9.78 10.54 2.29 2.79 4.83 5.33 1.14 1.40 1.14 1.40 5.94 6.55 2.29 2.92 13.716 14.22 2.62 2.87 5.588 6.17 NOTE: MEASUREMENTS MILLIMETERS. www.irf.com Rev. 08/20/02 IRU1015 PACKAGE SHIPMENT METHOD DESIG TO-263 TO-220 PACKAGE DESCRIPTION TO-252, (D-Pak) COUNT PARTS TUBE PARTS REEL 2500 -T&R Orientation Feed Direction Figure Feed Direction FigureB WORLD HEADQUARTERS: Kansas St., Segundo, California 90245, Tel: (310) 252-7105 Fax: (310) 252-7903 Visit www.irf.com sales contact information Data specifications subject change without notice. 02/01 Rev. 08/20/02 www.irf.com Other recent searchesMTB52N06V - MTB52N06V MTB52N06V Datasheet IDB09E120 - IDB09E120 IDB09E120 Datasheet GN4xxx - GN4xxx GN4xxx Datasheet DS1820K - DS1820K DS1820K Datasheet DS1820s - DS1820s DS1820s Datasheet C515A3 - C515A3 C515A3 Datasheet 8mF62682 - 8mF62682 8mF62682 Datasheet 2SK3147S - 2SK3147S 2SK3147S Datasheet 2SC1213 - 2SC1213 2SC1213 Datasheet 2SC1213A - 2SC1213A 2SC1213A Datasheet
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