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500kHz Synchronous Buck Control MIC2169A high-efficiency, simple
Top Searches for this datasheetMIC2169A 500kHz Synchronous Buck Control MIC2169A high-efficiency, simple 500kHz synchronous buck control housed small MSOP10 package. MIC2169A allows compact DC/DC solutions with minimal external component count cost. MIC2169A operates from 14.5V input, without need additional bias voltage. output voltage precisely regulated down 0.8V. adaptive N-Channel MOSFET drive scheme allows efficiencies over across wide load range. MIC2169A senses current across high-side NChannel MOSFET, eliminating need expensive lossy current-sense resistor. Current limit accuracy maintained positive temperature coefficient that tracks increasing RDS(ON) external MOSFET. Further cost space saved internal in-rush-current limiting digital soft-start. MIC2169A available 10-pin MSOP package, with wide junction operating range -40°C +125°C. support documentation found Micrel's site www.micrel.com. Features 14.5V input voltage range Adjustable output voltage down 0.8V efficiency 500kHz operation Adjustable current limit senses high-side N-Channel MOSFET current external current-sense resistor Adaptive gate drive increases efficiency Ultra-fast response with hysteretic transient recovery mode Overvoltage protection protects load fault conditions Dual mode current limit speeds recovery time Hiccup mode short-circuit protection Internal soft-start Dual function COMP allows low-power shutdown Small size MSOP 10-lead package Point-of-load DC/DC conversion Set-top boxes Graphic cards power supplies Telecom power supplies Networking power supplies Cable modems routers Applications Typical Application 100F 4.7F IRF7821 IRF7821 2.5H 1000pF 150F 3.24k 3.3V SD103BWS 0.1F 0.1F MIC2169A Efficiency EFFICIENCY VOUT 3.3V ILOAD MIC2169A 150pF 100nF COMP/EN 0.1µF MIC2169A Adjustable Output 500kHz Converter Micrel, Inc. 2180 Fortune Drive Jose, 95131 (408) 944-0800 (408) 474-1000 http://www.micrel.com June 2005 M9999-111803 MIC2169A Micrel Pb-Free Part Number MIC2169AYMM Frequency 500kHz Junction Temp. Range -40°C +125°C Package 10-lead MSOP Ordering Information Part Number MIC2169ABMM Configuration COMP/EN 10-Pin MSOP (MM) Description Number Name Function Supply Voltage (Input): 14.5V. Internal Linear Regulator (Output): external MOSFET gate drive supply voltage internal supply When <5V, this regulator operates dropout mode. Current Sense Enable (Input): Current-limit comparator noninverting input. current limit sensed across MOSFET during time. current resistor series with pin. Compensation (Input): Dual function pin. external compensation. this pulled below 0.2V, with reference fully device shuts down (50µA typical current draw). Feedback (Input): Input error amplifier. Regulates error amplifier 0.8V. Ground (Return). Low-Side Drive (Output): High-current driver output external synchronous MOSFET. Switch (Return): High-side MOSFET driver return. High-Side Drive (Output): High-current output-driver high-side MOSFET. When between 3.0V 2.5V threshold MOSFETs should used. threshold MOSFETs should used. Boost (Input): Provides drive voltage high-side MOSFET driver. gate-drive voltage higher than source voltage minus diode drop. COMP/EN M9999-111803 June 2005 MIC2169A Micrel Absolute Maximum Ratings(1) Supply Voltage (VIN) 15.5V Booststrapped Voltage (VBST) .VIN Junction Temperature (TJ) .-40°C +125°C Storage Temperature (TS) -65°C +150°C Operating Ratings(2) Supply Voltage (VIN) +14.5V Output Voltage Range 0.8V DMAX Package Thermal Resistance 10-lead MSOP 180°C/W Electrical Characteristics(3) 25°C, bold values indicate -40°C +125°C; unless otherwise specified. Parameter Condition over temp) Feedback Voltage Reference Feedback Voltage Reference Feedback Bias Current Output Voltage Line Regulation Output Voltage Load Regulation Output Voltage Total Regulation Oscillator Section Oscillator Frequency Maximum Duty Cycle Minimum On-Time(4) -0.25V; 0.7V (output switching excluding external MOSFET gate current.) VCOMP/EN CCOMP 100nF Input Supply 14.5V; IOUT 10A; (VOUT 2.5V)(4) 0.25 0.792 0.784 0.03 0.808 0.816 Units Mode Supply Current Shutdown Quiescent Current VCOMP Shutdown Threshold VCOMP Shutdown Blanking Period Digital Supply Voltage (VDD) Notes: Absolute maximum ratings indicate limits beyond which damage component occur. Electrical specifications apply when operating device outside operating ratings. maximum allowable power dissipation function maximum junction temperature, TJ(max), junction-to-ambient thermal resistance, ambient temperature, maximum allowable power dissipation will result excessive temperature, regulator will into thermal shutdown. Devices sensitive, handling precautions required. Specification packaged product only. Guaranteed design. June 2005 M9999-111803 MIC2169A Micrel Electrical Characteristics(5) Parameter Error Amplifier Gain Transconductance Soft-Start Soft-Start Current Current Sense Over Current Trip Point Temperature Coefficient ppm/°C Output Fault Correction Thresholds Upper Threshold, VFB_OVT Lower Threshold, VFB_UVT Gate Drivers Rise/Fall Time Output Driver Impedance (relative VFB) Into 3000pF Sink, Sink, Note Source, (relative VFB) -0.25V +1800 After timeout internal timer. "Soft-Start" section. Condition Units Source, Driver Non-Overlap Time Notes: Specification packaged product only. Guaranteed design. M9999-111803 June 2005 MIC2169A Micrel Typical Characteristics 100120140 TEMPERATURE Mode Supply Current Temperature QUIESCENT CURRENT (mA) Mode Supply Current Supply Voltage 0.8010 0.8005 Line Regulation (mA) 0.8000 0.7995 0.7990 0.7985 0.7980 SUPPLY VOLTAGE 0.804 0.802 REGULATOR VOLTAGE 0.806 Temperature Line Regulation 5.02 5.00 4.98 4.96 4.94 4.92 4.90 Load Regulation 0.800 0.798 0.796 0.794 0.792 TEMPERATURE LOAD CURRENT (mA) LINE REGULATION TEMPERATURE FREQUENCY (kHz) TEMPERATURE FREQUENCY VARIATION Line Regulation Temperature Oscillator Frequency Temperature -0.5 -1.0 -1.5 Oscillator Frequency Supply Voltage VOUT Current Limit Foldback Overcurrent Trip Point Temperature TEMPERATURE MOSFET Si4800 ILOAD June 2005 M9999-111803 MIC2169A Micrel Functional Diagram Current Limit Comparator High-Side Driver Bandgap Reference 0.8V Valid Current Limit Reference BOOST CBST VOUT Soft-Start Digital Delay Counter Clamp Startup Current Driver Logic 1000pF COUT Ramp Clock Enable Error Loop 0.8V Low-Side Driver Comparator VREF Error VREF Comparator MIC2169A COMP/EN MIC2169A Block Diagram Functional Description MIC2169A voltage mode, synchronous step-down switching regulator controller designed high power without external sense resistor. includes internal soft-start function which reduces power supply input surge current start-up controlling output voltage rise time, generator, reference voltage, MOSFET drivers, short-circuit current limiting circuitry form complete 500kHz switching regulator. Theory Operation MIC2169A voltage mode step-down regulator. figure above illustrates block diagram voltage control loop. output voltage variation load line changes will sensed inverting input transconductance error amplifier feedback resistors compared reference voltage non-inverting input. This will cause small change voltage level output error amplifier which input comparator. other input comparator triangular waveform. comparator generates rectangular waveform whose width equal time from start clock cycle until time triangle crosses output waveform error amplifier. illustrate control loop, assume output voltage drops sudden load turn-on, this would cause inverting input error amplifier which divided down M9999-111803 version VOUT slightly less than reference voltage causing output voltage error amplifier high. This will cause comparator increase time side MOSFET, causing output voltage bringing VOUT back regulation. Soft-Start COMP/EN MIC2169A used following three functions: Disables part grounding this External compensation stabilize voltage control loop Soft-start better understanding soft-start feature, let's assume 12V, MIC2169A allowed power-up un-grounding COMP/EN pin. COMP internal 8.5µA current source that charges external compensation capacitor. soon this voltage rises 180mV Cap_COMP 0.18V/8.5µA), MIC2169A allows internal linear regulator power soon crosses undervoltage lockout 2.6V, chip's internal oscillator starts switching. this point time, COMP current source increases 40µA internal 11-bit counter starts counting which takes approximately complete. During counting, COMP voltage clamped 0.65V. After this counting cycle COMP current source June 2005 MIC2169A reduced 8.5µA COMP voltage rises from 0.65V 0.95V, bottom edge saw-tooth oscillator. This beginning duty cycle increases slowly causing output voltage rise slowly. MIC2169A hysteretic comparators that enabled when VOUT within steady state. When output voltage reaches programmed output voltage then error amplifier enabled along with hysteretic comparator. This point onwards, voltage control loop error amplifier) fully control will regulate output voltage. Soft-start time calculated approximately adding following four time frames: Cap_COMP 0.18V/8.5µA counter, approx Cap_COMP 0.3V/8.5µA Cap_COMP Soft-Start Time(Cap_COMP=100nF) 2.1ms 3.5ms 1.8ms 10ms Current Limit MIC2169A uses RDS(ON) power MOSFET measure output current. Since uses drain source resistance power MOSFET, very accurate. This MOSFET scheme adequate protect power supply external components during fault condition cutting back time MOSFET feedback voltage greater than 0.67V. case hard short when feedback voltage less than 0.67V, MIC2169A discharges COMP capacitor 0.65V, resets digital counter automatically shuts gate drive, error amplifier hysteretic comparators completely disabled soft-start cycles restarts. This mode operation called "hiccup mode" purpose protect down stream load case hard short. circuit Figure illustrates MIC2169A current limiting circuit. 0.1µF MOSFET Inductor Micrel RDS(ON) 200A Equation LOAD Inductor Ripple Current where: Inductor Ripple Current VOUT FSWITCHING VOUT MOSFET VOUT COUT 1000pF 200A Figure MIC2169A Current Limiting Circuit current limiting resistor calculated following equation: FSWITCHING 500kHz 200µA internal sink current program MIC2169A current limit. MOSFET RDS(ON) varies with temperature; therefore, recommended margin load current (ILOAD) above equation avoid false current limiting increased MOSFET junction temperature rise. also recommended connect resistor directly drain MOSFET resistor source accurately sense MOSFETs RDS(ON). make MIC2169A insensitive board layout noise generated switch node, resistor 1000pF capacitor recommended between switch node GND. 0.1µF capacitor parallel with should connected filter some switching noise. Internal Supply MIC2169A controller internally generates self biasing provide power gate drives. This supply generated through low-dropout regulator generates from supply greater than supply voltage less than linear regulator approximately 200mV dropout. Therefore, recommended short supply input supply through resistor input supplies between 2.9V MOSFET Gate Drive MIC2169A high-side drive circuit designed switch N-Channel MOSFET. block diagram page shows bootstrap circuit, consisting CBST, supplies energy high-side drive circuit. Capacitor CBST charged while low-side MOSFET voltage approximately When high-side MOSFET driver turned energy from CBST used turn MOSFET MOSFET turns voltage increases approximately VIN. Diode reversed biased CBST floats high while continuing keep high-side MOSFET When low-side switch turned back CBST recharged through drive voltage derived from internal bias supply. nominal low-side gate drive voltage nominal high-side gate drive voltage approximately 4.5V voltage drop across approximate 20ns delay between high- low-side driver transitions used prevent current from simultaneously flowing unimpeded through both MOSFETs. MOSFET Selection MIC2169A controller works from input voltages 13.2V internal regulator provide power turn external N-Channel power MOSFETs high- M9999-111803 June 2005 MIC2169A low-side switches. applications where internal regulator operates dropout mode, necessary that power MOSFETs used sub-logic level full conduction mode 2.5V. applications when logic-level MOSFETs, whose operation specified 4.5V must used. important note on-resistance MOSFET increases with increasing temperature. 75°C rise junction temperature will increase channel resistance MOSFET resistance specified 25°C. This change resistance must accounted when calculating MOSFET power dissipation calculating value current-sense (CS) resistor. Total gate charge charge required turn MOSFET under specified operating conditions (VDS VGS). gate charge supplied MIC2169A gate-drive circuit. 500kHz switching frequency above, gate charge significant source power dissipation MIC2169A. output load, this power dissipation noticeable reduction efficiency. average current required drive high-side MOSFET IG[high-side](avg) where: IG[high-side](avg) average high-side MOSFET gate current. total gate charge high-side MOSFET taken from manufacturer's data sheet low-side MOSFET turned because freewheeling diode conducting during this time. switching loss low-side MOSFET usually negligible. Also, gate-drive current low-side MOSFET more accurately calculated using CISS instead gate charge. low-side MOSFET: IG[low-side](avg) CISS Since current from gate drive comes from input voltage, power dissipated MIC2169A gate drive PGATEDRIVE IG[high-side](avg) IG[low-side](avg) Micrel conduction losses during on-time (PCONDUCTION) switching losses that occur during period time when MOSFETs turn (PAC). CONDUCTION where: PCONDUCTION SW(rms)2 AC(off) PAC(on) on-resistance MOSFET switch duty cycle Making assumption turn-on turn-off transition times equal; transition times approximated CISS COSS where: CISS COSS measured gate-drive current MIC2169A) total high-side MOSFET switching loss (VIN where: switching transition time (typically 20ns 50ns) freewheeling diode drop, typically 0.5V switching frequency, nominally 500kHz low-side MOSFET switching losses negligible ignored these calculations. Inductor Selection Values inductance, peak, currents required select output inductor. input output voltages inductance value determine peak-to-peak inductor ripple current. Generally, higher inductance values used with higher input voltages. Larger peak-to-peak ripple currents will increase power dissipation inductor MOSFETs. Larger output ripple currents will also require more output capacitance smooth larger ripple current. Smaller peak-to-peak ripple currents require larger inductance value therefore larger more expensive inductor. good compromise between size, loss cost inductor ripple current equal maximum output current. inductance value calculated equation below. convenient figure merit switching MOSFETs resistance times total gate charge RDS(ON) Lower numbers translate into higher efficiency. gate-charge logic-level MOSFETs good choice with MIC2169A. Parameters that important MOSFET switch selection are: Voltage rating On-resistance Total gate charge voltage ratings bottom MOSFET essentially equal input voltage. safety factor should added VDS(max) MOSFETs account voltage spikes circuit parasitics. power dissipated switching transistor M9999-111803 VOUT (VIN VOUT IOUT where: switching frequency, 500kHz ratio ripple current output current VIN(max) maximum input voltage peak-to-peak inductor current ripple current) June 2005 MIC2169A Micrel VOUT (VIN VOUT RESR VOUT peak inductor current equal average output current plus half peak-to-peak inductor ripple current. IOUT inductor current used calculate losses inductor. where: VOUT peak-to-peak output voltage ripple peak-to-peak inductor ripple current total output ripple combination output capacitance. total ripple calculated below: VOUT RESR COUT IINDUCTOR(rms) IOUT IOUT Maximizing efficiency requires proper selection core material minimizing winding resistance. high frequency operation MIC2169A requires ferrite materials most cost sensitive applications. Lower cost iron powder cores used increase core loss will reduce efficiency power supply. This especially noticeable output power. winding resistance decreases efficiency higher output current levels. winding resistance must minimized although this usually comes expense larger inductor. power dissipated inductor equal core copper losses. higher output loads, core losses usually insignificant ignored. lower output currents, core losses significant contributor. Core loss information usually available from magnetics vendor. Copper loss inductor calculated equation below: PINDUCTORCu IINDUCTOR(rms)2 WINDING resistance copper wire, RWINDING, increases with temperature. value winding resistance used should operating temperature. WINDING(hot) WINDING(20C) 0.0042 (THOT T20C where: duty cycle COUT output capacitance value switching frequency voltage rating capacitor should twice voltage tantalum greater aluminum electrolytic. output capacitor current calculated below: OUT(rms) RESR(C power dissipated output capacitor PDISS(C OUT(rms)2 where: THOT temperature wire under operating load T20°C ambient temperature RWINDING(20°C) room temperature winding resistance (usually specified manufacturer) Output Capacitor Selection output capacitor values usually determined capacitors (equivalent series resistance). Voltage current capability other important factors selecting output capacitor. Recommended capacitors tantalum, low-ESR aluminum electrolytics, POSCAPS. output capacitor's usually main cause output ripple. output capacitor also affects overall voltage feedback loop from stability point view. "Feedback Loop Compensation" section more information. maximum value calculated: Input Capacitor Selection input capacitor should selected ripple current rating voltage rating. Tantalum input capacitors fail when subjected high inrush currents, caused turning input supply Tantalum input capacitor voltage rating should least times maximum input voltage maximize reliability. Aluminum electrolytic, OS-CON, multilayer polymer film capacitors handle higher inrush currents without voltage derating. input voltage ripple will primarily depend input capacitor's ESR. peak input current equal peak inductor current, IINDUCTOR(peak) RESR(C input capacitor must rated input current ripple. value input capacitor current determined maximum output current. Assuming peak-to-peak inductor ripple current low: ICIN (rms) IOUT PDISS(C RESR(C power dissipated input capacitor (rms) Voltage Setting Components MIC2169A requires resistors output voltage shown Figure June 2005 M9999-111803 MIC2169A Micrel body diode becomes short circuit reverse recovery period, dissipating additional power. diode recovery circuit inductance will cause ringing during high-side MOSFET turn-on. external Schottky diode conducts lower forward voltage preventing body diode MOSFET from turning lower forward voltage drop dissipates less power than body diode. lack reverse recovery mechanism Schottky diode causes less ringing less power loss. Depending circuit components operating conditions, external Schottky diode will give 1/2% improvement efficiency. Feedback Loop Compensation MIC2169A controller comes with internal transconductance error amplifier used compensating voltage feedback loop placing capacitor (C1) series with resistor (R1) another capacitor parallel from COMP ground. "Functional Block Diagram." Power Stage power stage voltage mode controller inductor, with winding resistance (DCR) connected output capacitor, COUT, with electrical series resistance (ESR) shown Figure transfer function G(s), such system COUT Error VREF 0.8V MIC2169A Figure Voltage-Divider Configuration Where: VREF MIC2169A typically 0.8V output voltage determined equation: VREF typical value between 10k. large, allow noise introduced into voltage feedback loop. small, value, will decrease efficiency power supply, especially light loads. Once selected, calculated using: VREF VREF External Schottky Diode external freewheeling diode used keep inductor current flow continuous while both MOSFETs turned off. This dead time prevents current from flowing unimpeded through both MOSFETs typically 15ns. diode conducts twice during each switching cycle. Although average current through this diode small, diode must able handle peak current. ID(avg) IOUT 80ns reverse voltage requirement diode VDIODE(rrm) power dissipated Schottky diode PDIODE ID(avg) where: forward voltage peak diode current external Schottky diode, necessary circuit operation since low-side MOSFET contains parasitic body diode. external diode will improve efficiency decrease high frequency noise. MOSFET body diode used, must rated handle peak average current. body diode relatively slow reverse recovery time relatively high forward voltage drop. power lost diode proportional forward voltage drop diode. high-side MOSFET starts turn Figure Output Filter Voltage Mode Buck Converter G(s) Plotting this transfer function with following assumed values (L=2 DCR=0.009, COUT=1000µF, ESR=0.050) gives insight needs compensate loop adding resistor capacitors COMP pin. Figures show gain curve phase curve above transfer function. GAIN -37.5 1.10 1000000 Figure Gain Curve G(s) M9999-111803 June 2005 MIC2169A Micrel stabilize MIC2169A voltage control loop using high value output capacitors. Error Amplifier undesirable have high error amplifier gain high frequencies because high frequency noise spikes would picked transmitted large amplitude output, thus, gain should permitted fall high frequencies. frequency, desired have high open-loop gain attenuate power line ripple. Thus, error amplifier gain should allowed increase rapidly frequencies. transfer function with internal error amplifier approximated following equation: Error Amplifier(z) PHASE 1.10 1000000 Figure Phase Curve G(s) seen from transfer function G(s) gain curve that output inductor capacitor create pole system with break frequency COUT above equation simplified assuming C2<<C1, Error Amplifier(z) From above transfer function, that introduce zero pole following frequencies: Fzero= Fpole Fpole@origin Figures show gain phase curves above transfer function with 9.3k, 1000pF, 100pF, .005-1. seen that 50kHz, error amplifier exhibits approximately phase margin. Therefore, 3.6kHz looking phase curve, seen that output capacitor (0.050) cancels poles (LCOUT) system introducing zero fZERO COUT Therefore, FZERO 6.36kHz. From point view compensating voltage loop, recommended higher output capacitors since they provide phase gain power path. comparison purposes, Figure shows same phase curve with value 0.002. PHASE ERROR AMPLIFIER GAIN 1.10 1000000 .001 1000 10000000 Figure Phase Curve with 0.002 seen from Figure that 50kHz, phase approximately -90° versus Figure where number -150°. This means that transconductance error amplifier provide phase boost about achieve closed loop phase margin crossover frequency 50kHz Figure versus 105° Figure simple compensation scheme allows maximum error amplifier phase boost about 90°. Therefore, easier June 2005 Figure Error Amplifier Gain Curve M9999-111803 MIC2169A 215.856 Micrel 71.607 OPEN LOOP GAIN MARGIN ERROR AMPLIFIER PHASE 1.10 1000000 42.933 1.10 1000000 Figure Error Amplifier Phase Curve Total Open-Loop Response open-loop response MIC2169A controller easily obtained adding power path error amplifier gains together, since they already scale. desirable have gain curve intersect zero tens kilohertz, this commonly called crossover frequency; phase margin crossover frequency should least 45°. Phase margins less cause power supply have substantial ringing when subjected transients, have little tolerance component environmental variations. Figures show open-loop gain phase margin. seen from Figure that gain curve intersects approximately 50kHz, from Figure that 50kHz, phase shows approximately margin. Figure Open-Loop Gain Margin 269.097 OPEN LOOP PHASE MARGIN 1.10 1000000 Figure Open-Loop Phase Margin M9999-111803 June 2005 MIC2169A Design Example Layout Checklist: Connect current limiting (R2) resistor directly drain MOSFET resistor from input supply MIC2169. Also, place ceramic capacitor from this GND, preferably thru via. feedback resistors R4/R5/R6 should placed close pin. side should connect directly output node. this trace away from switch node (junction L1). bottom side should connect MIC2169. compensation resistor capacitors should placed right next COMP other side should connect directly MIC2169 rather than going plane. resistor 1000pF capacitor from switch node ground pin. page Current Limiting section more detail. place holders gate resistors bottom MOSFET gate drives. necessary, gate resistors less should used. Micrel gate charge MOSFETs should used maximize efficiency, such Si4800, Si4804BDY, IRF7821, IRF8910, FDS6680A FDS6912A, etc. Compensation component GND, feedback resistor ground, chip ground should together connect output capacitor ground. demo board layout, layer. 10µF ceramic capacitor should placed between drain MOSFET source bottom MOSFET. 10µF ceramic capacitor should placed right without vias. source bottom MOSFET should connect directly input capacitor with thick trace. output capacitor input capacitor should connect directly plane. Place 0.01µF 0.1µF ceramic capacitor parallel with resistor filter switching noise. TPSD686M 020R0070 68uF/20V 68uF 10uF/16V 10uF/6V 1uF/16V 0.1uF 0.1uF/25V SD103BWS RF7821 CDRH127 D-1R0-M 1.0uH 330uF/6.3V Cout=A TPSD337M 006R0045 Open C2169A 1000pF 330uF Open Open RF7821 1N5819HW 0.1uF/25V COMP/EN SHDN 100K 2N7002E Open 0.1uF 4.02K 3.16k 4.64K 11.3K 3.3V 2.5V 1.5V MIC2169BMM Evaluation Board Schematic June 2005 M9999-111803 MIC2169A Micrel Part Number IRF7821-TR SI4390DY SD103BWS 1N5819HW SL04 CMMSH1-40 Manufacturer Micrel, Inc. Vishay Vishay Diodes Inc. Vishay Central Semi Sumida Cooper Electronic Coilcraft Vishay/Sprague Vishay Victramon Vishay/Sprague Vishay Dale C2012X7R1C105K GRM21BR71C105KA01B. VJ1206S105KXJAT muRata Vishay Victramon Vishay Victramon Vishay Victramon Vishay Vishay Vishay Vishay Vishay Vishay Vishay Vishay Vishay MilMax Description Buck controller 30V, channel HEXFET Power MOSFET Schottky Diode Schottky Diode 1.0uH, inductor 10uF/16V, Ceramic cap. 68uF, Tantalum 10uF/6.3V, 0805 Ceramic cap. 0.1uF/25V Ceramic cap. 330uF, 6.3V, Tantalum Open open 1uF/16V, 0805 Ceramic cap. VJ0603A102KXXAT VJ0603Y104KXXAT CRCW06034700JRT1 CRCW08051002FRT1 CRCW08053161FRT1 CRCW08054641FRT1 CRCW08051132FRT1 CRCW06034021FRT1 CRCW12065R00FRT1 CRCW12062R00FRT1 CRCW12061R40FRT1 2551-2-00-01-00-00-07-0 1000pF /25V, 0603 0.1uF/25V Ceramic cap. 0603, 1/16W, 0805 1/10W, 3.16K /0805, 1/10W 4.64K /0805, 1/10W 11.3K 0805, 1/10W, 4.02K ,0603,1/16W, 1/8W 1206 1206 1206 Open Turret Pins Qty. MIC2169BMM Bill Materials Item MIC2169A-YMM CDRH127LDNP-1R0NC HC5-1R0 SER1360-1R0 ,C11. C3225X7R1C106M TPSD686M020R0070 594D686X0020D2T C2012X5R0J106M CM21X5R106M06AT VJ1206Y104KXXAT TPSD337M006R0045 594D337X06R3D2T Notes: Micrel.Inc Vishay corp Diodes. Sumida muRata International Rectifier Fairchild Semiconductor Cooper Electronic Coilcraft Central Semi 408-944-0800 206-452-5664 805-446-4800 408-321-9660 847-803-6100 800-831-9172 843-448-9411 847-803-6100 207-775-8100 561-752-5000 1-800-322-2645 631-435-1110 M9999-111803 June 2005 MIC2169A Micrel MIC2169A Layout MIC2169ABMM Bottom MIC2169ABMM Bottom Layer MIC2169ABMM Bottom Silkscreen MIC2169ABMM June 2005 M9999-041205 MIC2169A Micrel MIC2169ABMM Silkscreen MIC2169ABMM Layer M9999-041205 June 2005 MIC2169A Micrel Package Information 10-Pin MSOP (MM) MICREL, INC. information furnished Micrel this datasheet believed accurate reliable. However, responsibility assumed Micrel use. Micrel reserves right change circuitry specifications time without notification customer. Micrel Products designed authorized components life support appliances, devices systems where malfunction product reasonably expected result personal injury. Life support devices systems devices systems that intended surgical implant into body support sustain life, whose failure perform reasonably expected result significant injury user. Purchaser's sale Micrel Products life support appliances, devices systems Purchaser's risk Purchaser agrees fully indemnify Micrel damages resulting from such sale. 2005 Micrel, Incorporated. (408) 944-0800 (408) 474-1000 http://www.micrel.com 2180 Fortune DRIVE JOSE, 95131 June 2005 M9999-111803 Other recent searchesSi7114ADN - Si7114ADN Si7114ADN Datasheet PCF8576C - PCF8576C PCF8576C Datasheet MIC7300 - MIC7300 MIC7300 Datasheet KSN-1700A-319+ - KSN-1700A-319+ KSN-1700A-319+ Datasheet IDT74LVCH162721A - IDT74LVCH162721A IDT74LVCH162721A Datasheet
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