C2 10uF. Figure 1 - Typical application of IRU1175. TJ ( C) 5-PIN PLASTIC 5-PIN PLASTIC TO-263 (M) Ultra Thin-Pak TM (P) 0 To 125 IRU1175CM IRU1175CP

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1 FETURES 0. Dropout at 7. (Equivalent of 67mΩ) Fast Transient Response % oltage Reference Initial ccuracy Built-In Thermal Shutdown LICTIONS. to.7 Intel I70 Chip Set TYICL LICTION Data Sheet No. D9 IRU7 7. ULTR LOW DROOUT OSITIE DJUSTBLE REGULTOR DESCRITION The IRU7 is a 7. regulator with extremely low dropout voltage using a proprietary bipolar process that achieves comparable equivalent on resistance to that of discrete OSFETs. This product is specifically designed to provide well regulated supply for applications requiring very low dropout such as.8 from. TX power supplies where the same efficiency as the switcher can be achieved without the cost and complexity associated with switching regulators. One such application is the new graphic chip sets that require.7 supply such as the Intel I70 chip set.. C 00uF IRU7.7 C 0uF R 00 % R % C 00uF Figure - Typical application of IRU7. CKGE ORDER INFORTION TJ ( C) -IN LSTIC -IN LSTIC TO-6 () Ultra Thin-ak T () 0 To IRU7C IRU7C 0/09/0

2 IRU7 BSOLUTE XIU RTINGS Input oltage ()... 6 Control Input oltage ()... ower Dissipation... Internally Limited Storage Temperature Range C To 0 C Operating Junction Temperature Range... 0 C To 0 C CKGE INFORTION -IN LSTIC TO-6 () -IN LSTIC ULTR THIN-K T () θj= C/W for 0." square pad θj= C/W for 0." square pad ELECTRICL SECIFICTIONS Unless otherwise specified, these specifications apply over CIN=µF, COUT=0µF, and TJ=0 to C. Typical values refer to TJ= C. =. RETER SY TEST CONDITION IN TY X UNITS Reference oltage REF =.7, =, Io=0m, TJ= C, DJ= Line Regulation Load Regulation (Note ) Dropout oltage (Note ) ( - ) Dropout oltage (Note ) ( - ) Current Limit inimum Load Current (Note ) Thermal Regulation Ripple Rejection =.7 to, =.0 to., Io=0m to 7., DJ=0 =. to 7, =.7 to., Io=0m, DJ=0 =.7, =., Io=0m to 7., DJ=0 DJ=0 for all conditions below: =.0, Io=. =.0, Io= =.0, Io= =.0, Io=7. DJ=0 for all conditions below: =.7, Io=. =.7, Io= =.7, Io= =.7, Io=7. =.7, =.0, o=00m, DJ=0 =, =., DJ=0 0ms ulse =, =, Io=, DJ=0, TJ= C, RILE= at 0Hz m m m %/W db 0/09/0

3 IRU7 RETER SY TEST CONDITION IN TY X UNITS Control in Current ust in Current IDJ DJ=0 for all below conditions: =.7, =.0, Io=. =.7, =.0, Io= =.7, =.0, Io= =.7, =.0, Io=7. =.7, =.0, DJ= m µ Note : Low duty cycle pulse testing with Kelvin connections are required in order to maintain accurate data. Note : Dropout voltage is defined as the minimum differential between and required to maintain regulation at. It is measured when the output voltage drops % below its nominal value. Note : inimum load current is defined as the minimum current required at the output in order for the output voltage to maintain regulation. Typically the resistor dividers are selected such that it automatically maintains this current. IN DESCRITIONS IN # IN SYBOL IN DESCRITION This pin is the positive side of the reference which allows remote load sensing to achieve excellent load regulation. resistor divider from this pin to the pin and ground sets the output voltage. The output of the regulator. minimum of 0µF capacitor must be connected from this pin to ground to insure stability. This pin is the supply pin for the internal control circuitry as well as the base drive for the pass transistor. This pin must always be higher than the pin in order for the device to regulate. (See specifications) The input pin of the regulator. Typically a large storage capacitor is connected from this pin to ground to insure that the input voltage does not sag below the minimum drop out voltage during the load transient response. This pin must always be higher than in order for the device to regulate. (See specifications) 0/09/0

4 IRU7 BLOCK DIGR +. + CURRENT LIIT THERL SHUTDOWN Figure - Simplified block diagram of the IRU7. LICTION INFORTION Introduction The IRU7 adjustable regulator is a five-terminal device designed specifically to provide extremely low dropout voltages comparable to the N type without the disadvantage of the extra power dissipation due to the base current associated with N regulators. This is done by bringing out the control pin of the regulator that provides the base current to the power NN and connecting it to a voltage that is grater than the voltage present at the pin. This flexibility makes the IRU7 ideal for applications where dual inputs are available such as a computer mother board with an TX style power supply that provides and. to the board. One such application is the new graphic chip sets that require anywhere from. to.7 supply such as the Intel I70 chip set. The IRU7 can easily be programmed with the addition of two external resistors to any voltages within the range of. to.. nother major requirement of these graphic chips is the need to switch the load current from zero to several amps in tens of nanoseconds at the processor pins, which translates to an approximately 00 to 00ns of current step at the regulator. In addition, the output voltage tolerances are also extremely tight and they include the transient response as part of the specification. The IRU7 is specifically designed to meet the fast current transient needs as well as providing an accurate initial voltage, reducing the overall system cost with the need for fewer number of output capacitors. nother feature of the device is its true remote sensing capability which allows accurate voltage setting at the load rather than at the device. Output oltage Setting The IRU7 can be programmed to any voltages in the range of. to. with the addition of R and R external resistors according to the following formula: = REF + Where: REF =. Typically IDJ = 0µ Typically R & R as shown in Figure : ( ) R R IRU7 +IDJ R REF IDJ = 0u Figure - Typical application of the IRU7 for programming the output voltage. R R 0/09/0

5 IRU7 The IRU7 keeps a constant. between the pin and the DJ pin. By placing a resistor R across these two pins and connecting the and pin together, a constant current flows through R, adding to the IDJ current and into the R resistor producing a voltage equal to the (./R) R + IDJ R. This voltage is then added to the. to set the output voltage. This is summarized in the above equation. Since the minimum load current requirement of the IRU7 is 0m, R is typically selected to be a Ω resistor so that it automatically satisfies this condition. Notice that since the IDJ is typically in the range of 0µ it adds a small error to the output voltage and should be considered when very precise output voltage setting is required. Load Regulation Since the IRU7 has separate pins for the output () and the sense (), it is ideal for providing true remote sensing of the output voltage at the load. This means that the voltage drops due to parasitic resistance such as CB traces between the regulator and the load are compensated for using remote sensing. Figure shows a typical application of the IRU7 with remote sensing. IN CTRL IRU7 OUT R R R L For most applications a minimum of 00µF aluminum electrolytic capacitor such as Sanyo, GX series, anasonic F series as well as the Nichicon L series insures both stability and good transient response. Thermal Design The IRU7 incorporates an internal thermal shutdown that protects the device when the junction temperature exceeds the allowable maximum junction temperature. lthough this device can operate with junction temperatures in the range of 0 C, it is recommended that the selected heat sink be chosen such that during maximum continuous load operation the junction temperature is kept below this number. The example below shows the steps in selecting the proper surface mount package. ssuming, the following conditions: =.7 =. = IOUT = (DC vg) Calculate the maximum power dissipation using the following equation: D = IOUT ( - )+ ( ) ( ) IOUT 60 ( - ) D = (. -.7)+ ( -.7) =.8W 60 Using table below select the proper package and the amount of copper board needed. Figure - Schematic showing connection for best load regulation. Stability The IRU7 requires the use of an output capacitor as part of the frequency compensation in order to make the regulator stable. Typical designs for the microprocessor applications use standard electrolytic capacitors with typical ESR in the range of 0 to 00mΩ and an output capacitance of 00 to 000µF. Fortunately as the capacitance increases, the ESR decreases resulting in a fixed RC time constant. The IRU7 takes advantage of this phenomena in making the overall regulator loop stable. kg Copper θj( C/W) ax d ax d rea (T= C) (T= C) TO-6."x.".W.6W TO-6.0"x.0" 0.7W.0W TO-6 0.7"x0.7".W.6W TO-6 ad Size.W.0W Note: bove table is based on the maximum junction temperature of C. IR WORLD HEDQURTERS: Kansas St., El Segundo, California 90, US Tel: (0) -70 TC Fax: (0) -790 isit us at for sales contact information Data and specifications subject to change without notice. 0/0 0/09/0

6 IRU7 () TO-6 ackage -in E U K S B H L G D N C R C L SYBOL B C D E G H K L N R S U IN X REF 7.7 REF NOTE: LL ESUREENTS RE IN ILLIETERS. 6 0/09/0

7 IRU7 () Ultra Thin-ak T -in E U K B H L G D C N LC R SYBOL B C D E G H K L N R U IN NO X NO 7.9 NO NOTE: LL ESUREENTS RE IN ILLIETERS. 0/09/0 7

8 IRU7 CKGE SHIENT ETHOD KG DESIG TO-6 CKGE DESCRITION Ultra Thin-ak T IN COUNT RTS ER TUBE 0 7 RTS ER REEL T & R Orientation Fig Fig B Feed Direction Figure Feed Direction Figure B IR WORLD HEDQURTERS: Kansas St., El Segundo, California 90, US Tel: (0) -70 TC Fax: (0) -790 isit us at for sales contact information Data and specifications subject to change without notice. 0/0 8 0/09/0

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