Data Sheet No. PD94173 revD IRU3037/IRU3037A & (PbF) 8-PIN SYNCHRONOUS PWM CONTROLLER DESCRIPTION FEATURES Synchronous Controller in 8-Pin Package Operating with single 5V or 12V supply voltage Internal 200KHz Oscillator (400KHz for IRU3037A) Soft-Start Function Fixed Frequency Voltage Mode 500mA Peak Output Drive Capability Protects the output when control FET is shorted SOIC 8-Lead also available LEAD-FREE The IRU3037 controller IC is designed to provide a low cost synchronous Buck regulator for on-board DC to DC converter applications. With the migration of today's ASIC products requiring low supply voltages such as 1.8V and lower, together with currents in excess of 3A, traditional linear regulators are simply too lossy to be used when input supply is 5V or even in some cases with 3.3V input supply. The IRU3037 together with dual N-channel MOSFETs such as IRF7313, provide a low cost solution for such applications. This device features an internal 200KHz oscillator (400KHz for "A" version), under-voltage lockout for both Vcc and Vc supplies, an external programmable soft-start function as well as output under-voltage detection that latches off the device when an output short is detected. APPLICATIONS DDR memory source sink Vtt application Low cost on-board DC to DC such as 5V to 3.3V, 2.5V or 1.8V Graphic Card Hard Disk Drive TYPICAL APPLICATION 5V 12V C4 1uF C3 1uF Vcc C9 2200pF C2 10TPB100M, 100uF, 55m 1uH C1 47uF Vc HDrv C8 0.1uF L1 SS/SD U1 IRU3037 LDrv Q1 1/2 of IRF7313 L2 D05022P-562, 5.6uH, 5.3A Q2 1/2 of IRF7313 1.5V/5A C7 2x 6TPC150M, 150uF, 40m R3 Comp Fb Gnd 249, 1% R5 1.24K, 1% R4 24k Figure 1 - Typical application of IRU3037 or IRU3037A. PACKAGE ORDER INFORMATION TA (C) 0 To 70 0 To 70 0 To 70 0 To 70 DEVICE IRU3037CF IRU3037CS IRU3037ACF IRU3037ACS LEADFREE DEVICE PACKAGE IRU3037CFPbF 8-Pin Plastic TSSOP (F) IRU3037CSPbF 8-Pin Plastic SOIC NB (S) IRU3037ACFPbF 8-Pin Plastic TSSOP (F) IRU3037ACSPbF 8-Pin Plastic SOIC NB (S) www.irf.com FREQUENCY 200KHz 200KHz 400KHz 400KHz 1 IRU3037/IRU3037A & (PbF) ABSOLUTE MAXIMUM RATINGS Vcc Supply Voltage .................................................. 25V Vc Supply Voltage ...................................................... 30V (not rated for inductive load) Storage Temperature Range ...................................... -65C To 150C Operating Junction Temperature Range ..................... 0C To 125C CAUTION: Stresses above those listed in "Absolute Maximum Ratings" may cause permanent damage to the device. PACKAGE INFORMATION 8-PIN PLASTIC TSSOP (F) Fb 1 Vcc 2 8-PIN PLASTIC SOIC (S) 8 SS/SD Fb 1 8 SS/SD 7 Comp Vcc 2 7 Comp LDrv 3 6 Vc LDrv 3 6 Vc Gnd 4 5 HDrv Gnd 4 5 HDrv JA=160C/W (Also available LEAD-FREE) JA=124C/W ELECTRICAL SPECIFICATIONS Unless otherwise specified, these specifications apply over Vcc=5V, Vc=12V and TA=0 to 70C. Typical values refer to TA=25C. Low duty cycle pulse testing is used which keeps junction and case temperatures equal to the ambient temperature. PARAMETER Reference Voltage Fb Voltage Fb Voltage Line Regulation UVLO UVLO Threshold - Vcc UVLO Hysteresis - Vcc UVLO Threshold - Vc UVLO Hysteresis - Vc UVLO Threshold - Fb UVLO Hysteresis - Fb Supply Current Vcc Dynamic Supply Current Vc Dynamic Supply Current Vcc Static Supply Current Vc Static Supply Current Soft-Start Section Charge Current 2 SYM V FB LREG TEST CONDITION IRU3037 IRU3037A 5 FESR and FO (1/5 ~ 1/10)x fS Use the following equation to calculate R4: R4 = 8 1 VOSC FoxFESR R5 + R6 x x x gm VIN FLC2 R5 C9 = 698pF Choose C9 = 680pF One more capacitor is sometimes added in parallel with C9 and R4. This introduces one more pole which is mainly used to supress the switching noise. The additional pole is given by: 1 FP = C9 x CPOLE 2 x R4 x C9 + CPOLE The pole sets to one half of switching frequency which results in the capacitor CPOLE: CPOLE = ---(12) www.irf.com 1 xR4xfS - 1 C9 fS for FP << 2 1 xR4xfS IRU3037/IRU3037A & (PbF) For a general solution for unconditionally stability for any type of output capacitors, in a wide range of ESR values we should implement local feedback with a compensation network. The typically used compensation network for voltage-mode controller is shown in Figure 7. VOUT ZIN R7 Zf Fb E/A R5 Comp Ve VREF Gain(dB) H(s) dB FZ1 FZ2 FP2 FP3 FP3 = In such configuration, the transfer function is given by: 1 - gmZf Ve = VOUT 1 + gmZIN gmZIN >>1 ---(14) By replacing ZIN and Zf according to Figure 7, the transformer function can be expressed as: 1 x sR6(C12+C11) (1+sR7C11)x[1+sC10(R6+R8)] C12xC11 1+sR7 x(1+sR8C10) C12+C11 [ ( ) C12xC11 2xR7x C12+C11 1 2xR7xC12 1 2xR7xC11 1 FZ2 = 2xC10x(R6 + R8) 1 2xC10xR6 Cross Over Frequency: VIN 1 FO = R7xC10x x VOSC 2xLoxCo Where: VIN = Maximum Input Voltage VOSC = Oscillator Ramp Voltage Lo = Output Inductor Co = Total Output Capacitors ---(15) The stability requirement will be satisfied by placing the poles and zeros of the compensation network according to following design rules. The consideration has been taken to satisfy condition (14) regarding transconductance error amplifier. 1) Select the crossover frequency: Fo < FESR and Fo (1/10 ~ 1/6)x fS The error amplifier gain is independent of the transconductance under the following condition: and 1 Frequency Figure 7 - Compensation network with local feedback and its asymptotic gain plot. H(s)= 1 2xR8xC10 FZ1 = C11 R6 gmZf >> 1 FP2 = C12 C10 R8 FP1 = 0 ( )] As known, transconductance amplifier has high impedance (current source) output, therefore, consider should be taken when loading the E/A output. It may exceed its source/sink output current capability, so that the amplifier will not be able to swing its output voltage over the necessary range. 2) Select R7, so that R7 >> 2 gm 3) Place first zero before LC's resonant frequency pole. FZ1 75% FLC 1 C11 = 2 x FZ1 x R7 4) Place third pole at the half of the switching frequency. fS FP3 = 2 1 C12 = 2 x R7 x FP3 C12 > 50pF If not, change R7 selection. 5) Place R7 in (15) and calculate C10: The compensation network has three poles and two zeros and they are expressed as follows: C10 www.irf.com VOSC 2 x Lo x Fo x Co x VIN R7 9 IRU3037/IRU3037A & (PbF) 6) Place second pole at the ESR zero. FP2 = FESR 1 R8 = 2 x C10 x FP2 Check if R8 > 1 gm If R8 is too small, increase R7 and start from step 2. 7) Place second zero around the resonant frequency. FZ2 = FLC 1 R6 = - R8 2 x C10 x FZ2 8) Use equation (1) to calculate R5. VREF R5 = x R6 VOUT - VREF These design rules will give a crossover frequency approximately one-tenth of the switching frequency. The higher the band width, the potentially faster the load transient speed. The gain margin will be large enough to provide high DC-regulation accuracy (typically -5dB to 12dB). The phase margin should be greater than 45) for overall stability. Start to place the power components, make all the connection in the top layer with wide, copper filled areas. The inductor, output capacitor and the MOSFET should be close to each other as possible. This helps to reduce the EMI radiated by the power traces due to the high switching currents through them. Place input capacitor directly to the drain of the high-side MOSFET, to reduce the ESR replace the single input capacitor with two parallel units. The feedback part of the system should be kept away from the inductor and other noise sources, and be placed close to the IC. In multilayer PCB use one layer as power ground plane and have a control circuit ground (analog ground), to which all signals are referenced. The goal is to localize the high current path to a separate loop that does not interfere with the more sensitive analog control function. These two grounds must be connected together on the PC board layout at a single point. Figure 8 shows a suggested layout for the critical components, based on the schematic on page 14. PGnd PGnd C2A, B C1 Vin L1 Vout 8 IC Quiescent Power Dissipation Power dissipation for IC controller is a function of applied voltage, gate driver loads and switching frequency. The IC's maximum power dissipation occurs when the IC operating with single 12V supply voltage (Vcc=12V and Vc24V) at 400KHz switching frequency and maximum gate loads. Layout Consideration The layout is very important when designing high frequency switching converters. Layout will affect noise pickup and can cause a good design to perform with less than expected results. 10 www.irf.com 7 6 5 L2 Q1 1 D D D C 3 2 1 5 2 5 C4 6 PGnd Figures 9 and 10 show voltage vs. current, when the gate drivers loaded with 470pF, 1150pF and 1540pF capacitors. The IC's power dissipation results to an excessive temperature rise. This should be considered when using IRU3037A for such application. C7A, B PGnd R4 C9 7 3 Single Point Analog Gnd Connect to Power Ground plane 4 U1 IRU3037 4 3 2 C3 Analog Gnd R5 C8 8 1 R6 Analog Gnd Figure 8 - Suggested layout. (Topside shown only) IRU3037/IRU3037A & (PbF) TYPICAL PERFORMANCE CHARACTERISTICS IR U 3037A V cc vs. Icc TA = 25)C Icc (m A ) @ 470P F , 1150P F and 1540P F G ate Load 14 12 10 8 6 4 2 0 CLOAD=1540pF CLOAD=1150pF CLOAD=470pF 0 2 4 6 8 10 12 14 V cc (V ) Figure 9 - Vcc vs. Icc IRU3037A Vc vs. Ic TA = 25)C @470PF, 1150PF and 1540PF Gate Load 30 Ic (ma) 25 CLOAD=1540pF 20 CLOAD=1150pF 15 10 CLOAD=470pF 5 0 0 2 4 6 8 10 12 14 16 18 20 22 24 26 Vc (V) Figure 10 - Vc vs. Ic www.irf.com 11 IRU3037/IRU3037A & (PbF) TYPICAL PERFORMANCE CHARACTERISTICS IR U 3 0 3 7 O u tp u t V o lta g e IR U 3 0 3 7 O u tp u t F re q u e n c y 240 1 .3 230 1 .2 8 Max 220 Max 210 Volts Kilo Hertz 1 .2 6 200 1 .2 4 190 Min Min 180 1 .2 2 170 1 .2 160 -4 0 C 0C O u tp u t Vo lta g e + 50 C + 100C S p e c M a x. -4 0 C + 150C 0 C S p e c M in . O s c illa tio n F r e q u e n c y Figure 11 - Output Voltage 92.0% 90.0% Percent Duty Cycle 88.0% 86.0% 84.0% 82.0% 80.0% -25C 0C +25C +50C +75C +100C +125C Max Duty Cycle Figure 13 - Maximum Duty Cycle 12 + 10 0 C S p ec Max. Figure 12 - Output Frequency IRU3037 Maximum Duty Cycle -40C + 50C www.irf.com +150C S p e c M in . + 15 0 C IRU3037/IRU3037A & (PbF) TYPICAL PERFORMANCE CHARACTERISTICS IR U 3 0 3 7 A O u tp u t V o lta g e IR U 3 0 3 7 A O u tp u t F re q u e n c y 820 460 Max 440 Max 810 420 800 Kilo Hertz 790 380 360 Min Min 780 340 770 320 760 300 -4 0 C -2 5 C 0C + 25 C O u tp u t Vo lta g e + 50 C + 75 C S p e c M a x. + 100C + 150C -4 0 C -2 5 C S p e c M in . 0 C + 25C O s c illa tio n F re q u e n c y Figure 14 - Output Voltage + 50C + 75C S p ec Max. + 10 0 C + 15 0 C S p e c M in . Figure 15 - Output Frequency IRU3037 / IRU3037A Transconductance ( GM ) 1000 900 800 700 600 micro Mho's milli Volts 400 500 400 300 200 100 0 -40C -25C 0C +25C Positive load GM +50C +75C +100C Negative load GM Figure 16 - Transconductance www.irf.com 13 IRU3037/IRU3037A & (PbF) TYPICAL APPLICATION Single Supply 5V Input 5V D1 1N4148 D3 1N4148 1uH D2 1N4148 C3 1uF C4 1uF Vcc L1 C2 2x 10TPB100ML, 100uF, 55m C5 0.1uF Vc Q1 1/2 of IRF7301 HDrv C8 0.1uF C9 680pF R4 105K SS/SD U1 L2 D05022P-103, 10uH, 4.3A IRU3037 Q2 1/2 of IRF7301 LDrv R6 Comp Fb 1.65K, 1% Gnd R5 1K, 1% Figure 17 - Typical application of IRU3037 in an on-board DC-DC converter using a single 5V supply. 14 C1 47uF Tantalum www.irf.com 3.3V @ 4A C7 2x 6TPC150M, 150uF, 40m IRU3037/IRU3037A & (PbF) TYPICAL APPLICATION Dual Supply, 5V Bus and 12V Bias Input 5V L1 12V C4 1uF 1uH C2 10TPB100M, 100uF, 55m , 1.5A rms C1 1uF C1 47uF 1.8V/1A IRU1206-18 Q1 1/2 of IRF7752 HDrv C7 0.1uF C8 2200pF C3 47uF Vc Vcc U1 IRU3037 SS/SD 2.5V/2A L2 CTX5-2P, 3.5uH @ 2.5A Q2 1/2 of IRF7752 LDrv C6 6TPB150M, 150uF, 55m R1 Comp Fb 1K, 1% R3 1K 1% Gnd R2 14K L2 C6 CTX5-2P, 3.5uH @ 2.5A 6TPB150M, 150uF, 55m (Qty 2) CTX10-5P, 5.7uH @ 2.5A 6TPB150M, 150uF, 55m (Qty 1) C9 10TPB100M, 100uF, 55m , 1.5A rms C10 1uF C11 1uF Vc Vcc Q3 1/2 of IRF7752 HDrv U2 IRU3037 SS/SD C13 0.1uF C14 2200pF R5 14K CTX5-1P, 3.4uH @ 2A Q4 1/2 of IRF7752 LDrv Comp C12 6TPB150M, 150uF, 55m R4 Fb Gnd 3.3V/1.8A L3 1.65K, 1% R6 1K, 1% Figure 18 - Typical application of IRU3037 or IRU3037A in an on-board DC-DC converter providing the Core, GTL+, and Clock supplies for the Pentium II microprocessor. www.irf.com 15 IRU3037/IRU3037A & (PbF) TYPICAL APPLICATION 1.8V to 7.5V / 0.5A Boost Converter L1 1uH (CoilTronics UP2B-1R0) Vpwr (1.5V Min) C1 2x 68uF Vc/Vcc C5 1uF D1 1N5817 R1 20K Q3 IRF7402 Q2 2N2222 R2 10K Q1 2N2222 C10 100pF C4 0.01uF VOUT (7.5V / 0.5A) C9 2x 47uF C5 0.1uF R4 25K SS/SD Comp Vc U1 HDrv IRU3037 R3 20K Fb Vcc LDrv Gnd C8 1uF R5 R6 1K, 1% 5K, 1% Figure 19 - Typical application of IRU3037 as a boost converter. 16 www.irf.com Gnd IRU3037/IRU3037A & (PbF) DEMO-BOARD APPLICATION 5V or 12V to 3.3V @ 10A L1 VIN 5V or 12V 1uH C2A 47uF 16V D4 LL4148 C1 33uF 16V D1 LL4148 C2B 47uF 16V D2 Gnd LL4148 C3 1uF Vcc C19 1uF C6 0.1uF Vc C8 1uF Q1 IRF7457 HDrv L2 SS/SD C5 0.1uF VOUT 3.3V @ 10A 3.3uH U1 IRU3037 Q2 LDrv IRF7460 C7 470pF R4 4.7 C9B 150uF 6.3V C9C 150uF 6.3V C13 1uF Comp C4 2200pF Gnd R6 Gnd Fb 1.65K R5 1K R3 20K Figure 20 - Demo-board application of IRU3037. Application Parts List Ref Desig Q1 Q2 U1 D1, D2, D4 L1 L2 C1 C2A, C2B C9B, C9C C5, C6 C3 C4 C7 C8, C13, C19 R3 R4 R5 R6 Description MOSFET MOSFET Controller Diode Inductor Inductor Capacitor, Tantalum Capacitor, Poscap Capacitor, Poscap Capacitor, Ceramic Capacitor, Ceramic Capacitor, Ceramic Capacitor, Ceramic Capacitor, Ceramic Resistor Resistor Resistor Resistor Value Qty Part# 20V, 7m, 15A 1 IRF7457 20V, 10m, 12A 1 IRF7460 Synchronous PWM 1 IRU3037 Fast Switching 3 LL4148 1H, 10A 1 D03316P-102HC 3.3H, 12A 1 D05022P-332HC 33F, 16V 1 ECS-T1CD336R 47F, 16V, 70m 2 16TPB47M 150F, 6.3V, 40m 2 6TPC150M 0.1F, Y5V, 25V 2 ECJ-2VF1E104Z 1F, X7R, 25V 1 ECJ-3YB1E105K 2200pF, X7R, 50V 1 ECJ-2VB1H222K 470pF, X7R 1 ECJ-2VB2D471K 1F, Y5V, 16V 3 ECJ-2VF1C105Z 20K, 5% 1 4.7, 5% 1 1K, 1% 1 1.65K, 1% 1 www.irf.com Manuf IR IR IR Coilcraft Coilcraft Panasonic Sanyo Sanyo Panasonic Panasonic Panasonic Panasonic Panasonic 17 IRU3037/IRU3037A & (PbF) DEMO-BOARD WAVEFORMS IRU3037 V IN VIN=5.0V, VOUT=3.3V Efficiency (%) 100 90 VOUT 80 70 0 1 2 3 4 5 6 7 8 9 10 11 Output Current (A) Figure 21 - Efficiency for IRU3037 Evaluation Board. Figure 22 - Start-up time @ IOUT=5A. IRU3037 Vss IRU3037 VOUT IOUT = 5V Figure 23 - Shutdown the output by pulling down the soft-start. Figure 24 - 3.3V output voltage ripple @ IOUT=5A. IRU3037 IRU3037 2A 4A 0A 0A Figure 25 - Transient response @ IOUT = 0 to 2A. 18 Figure 26 - Transient response @ IOUT = 0 to 4A. www.irf.com IRU3037/IRU3037A & (PbF) (F) TSSOP Package 8-Pin A L Q R1 B 1.0 DIA C R E N M P O D F DETAIL A PIN NUMBER 1 DETAIL A G J H K SYMBOL DESIG A B C D E F G H J K L M N O P Q R R1 8-PIN MIN MAX NOM 0.65 BSC 4.30 4.40 6.40 BSC --1.00 1.00 3.00 --0.90 --12) REF 12) REF --1.00 REF 0.60 0.20 ----- 0.19 2.90 --0.85 0.05 0) 0.50 0.09 0.09 4.50 0.30 3.10 1.10 0.95 0.15 8) 0.75 ----- NOTE: ALL MEASUREMENTS ARE IN MILLIMETERS. www.irf.com 19 IRU3037/IRU3037A & (PbF) (S) SOIC Package 8-Pin Surface Mount, Narrow Body H A B C E DETAIL-A PIN NO. 1 L D DETAIL-A 0.38 0.015 x 45) K T F I J G 8-PIN SYMBOL A B C D E F G H I J K L T MAX MIN 4.98 4.80 1.27 BSC 0.53 REF 0.46 0.36 3.99 3.81 1.72 1.52 0.25 0.10 7) BSC 0.19 5.80 0) 0.41 1.37 0.25 6.20 8) 1.27 1.57 NOTE: ALL MEASUREMENTS ARE IN MILLIMETERS. 20 www.irf.com IRU3037/IRU3037A & (PbF) PACKAGE SHIPMENT METHOD PKG DESIG F S 1 PACKAGE DESCRIPTION TSSOP Plastic SOIC, Narrow Body 1 PIN COUNT 8 8 1 PARTS PER TUBE 100 95 1 PARTS PER REEL 2500 2500 1 T&R Orientation Fig A Fig B 1 Feed Direction Figure B Feed Direction Figure A LEADFREE PART MARKING INFORMATION Part number Date code IRxxxxxx YWW? ?XXXX Pin 1 Identifier ? P IR logo MARKING CODE Lead Free Released Non-Lead Free Released Lot Code (Prod mode - 4 digit SPN code) Assembly site code IR WORLD HEADQUARTERS: 233 Kansas St., El Segundo, CA 90245, USA Tel: (310) 252-7105 TAC Fax: (310) 252-7903 Visit us at www.irf.com for sales contact information Data and specifications subject to change without notice. 10/24/2005 www.irf.com 21