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  mic33153 4mhz pwm 1.2a internal inductor buck regulator with hyperlight load? and power good hyperlight load is a trademark of micrel, inc. mlf and micro leadframe are registered trademark amkor technology inc. micrel inc. ? 2180 fortune drive ? san jose, ca 95131 ? usa ? tel +1 ( 408 ) 944-01200 ? fax + 1 (408) 474-1000 ? http://www.micrel.com general description the mic33153 is a high-efficiency 4mhz 1.2a synchronous buck regulator with an internal inductor, hyperlight load? mode, power good (pg) output indicator, and programmable soft start. hyperlight load? provides very high efficiency at light loads and ultra-fast transient response which makes the mic33153 perfectly suited for supplying processor core voltages. an additional benefit of this proprietary architecture is very low output ripple voltage throughout the entire load range with the use of small output capacitors. the mic33153 is designed so that only two external capacitors as small as 2.2f are needed for stability. this gives the mic33153 the ease of use of an ldo with the efficiency of a hyperlight load? dc converter. the mic33153 achieves efficiency in hyperlight load tm mode as high as 85% at 1ma, with a very low quiescent current of 22a. at higher loads, the mic33153 provides a constant switching frequency up to 4mhz. the mic33153 is available in 14-pin 3.0mm x 3.5mm mlf ? package with an operating junction temperature range from ?40 c to +125 c. datasheets and support documentation can be found on micrel?s web site at: www.micrel.com . features ? internal inductor ? simplifies design to two external capacitors ? input voltage: 2.7v to 5.5v ? output voltage: fixed or adjustable (0.62v to 3.6v) ? up to 1.2 a output current ? up to 93% peak efficiency ? 85% typical efficiency at 1ma ? power good (pg) output ? programmable soft start ? 22a typical quiescent current ? 4mhz pwm operation in continuous mode ? ultra-fast transient response ? low ripple output voltage ? 35mvpp ripple in hyperlight load ? mode ? 7mv output voltage ripple in full pwm mode ? 0.01a shutdown current ? thermal shutdown and current limit protection ? 14-pin 3.0 x 3.5 x 1.1mm mlf ? package ? ?40 c to +125 c junction temperature range applications ? solid state drives (ssd) ? mobile handsets ? portable media/mp3 players ? portable navigation devices (gps) ? wifi/wimax/wibro modules ? wireless lan cards ? portable applications ____________________________________________________________________________________________________________ typical application fixed output voltage adjustable output voltage september 2010 m9999-092910-a
micrel inc. mic33153 september 2010 2 m9999-092910-a ordering information part number 1 marking code nominal output voltage junction temperature range package 2 MIC33153-4YHJ ? 4 33153 1.2v ?40c to +125c 14-pi n 3.0 x 3.5 x 1.1mm mlf ? mic33153yhj mic 33153 adjustable ?40c to +125c 14-pin 3.0 x 3.5 x 1.1mm mlf ? notes: 1. other options available (1v - 3.3v). contact micrel marketing for details. 2. mlf ? is green rohs compliant package. lead finish is nipdau. mold compound is halogen free. pin configuration 14- pin 3.0mm x 3.5mm mlf ? (hj) fixed output voltage (top view) 14- pin 3.0mm x 3.5mm mlf ? (hj) adjustable output voltage (top view) pin description pin number (fixed) pin number (adjustable) pin name pin function 1 1 ss soft start: place a capacitor from this pin to ground to program the soft start time. do not leave floating, 100pf minimum c ss is required. 2 2 agnd analog ground: connect to central ground point where all high current paths meet (c in , c out , pgnd) for best operation. 3 3 vin input voltage: connect a capaci tor to ground to decouple the noise. 4 4 pgnd power ground. 5,6,7 5,6,7 out output voltage: the output of the regulator. connect to sns pin. for adjustable option, connect to feedback resistor network. 8,9,10 8,9,10 sw switch: internal power mosfet output switches before inductor 11 11 en enable: logic high enables operation of the regul ator. logic low will shut down the device. do not leave floating. 12 12 sns sense: connect to v out as close to output capacitor as possible to sense output voltage. 13 13 pg power good: open drain output for the power g ood (pg) indicator. use a pull up resistor from this pin to a voltage source to detect a power good condition. 14 ? nc not internally connected. ? 14 fb feedback: connect a resistor divider from the output to ground to set the output voltage.
micrel inc. mic33153 september 2010 3 m9999-092910-a absolute maximum ratings (1) supply voltage (v in ) .......................................... ? 0.3v to 6v sense voltage (v sns ) ........................................ ? 0.3v to v in output switch voltage (v sw ) ............................. ? 0.3v to v in enable input voltage (v en )................................ ? 0.3v to v in power good (pg) voltage (v pg ) ....................... ? 0.3v to v in storage temperature range ..????? ? 65 c to +150 c lead temperature (solde ring, 10 se c.)...................... 260 c esd rating (3) ................................................. esd sensitive operating ratings (2) supply voltage (v in )... ??????????..2.7v to 5.5v enable input voltage (v en ) .. ?????????.0v to v in sense voltage (v sns ) ..................................... 0.62v to 3.6v junction temperature range (t j ).. ?. ? 40 c t j +125 c thermal resistance 3.0mm x 3.5mm mlf ? -14 ( ja )..........................55c/w electrical characteristics (4) t a = 25c; v in = v en = 3.6v; c out = 4.7f unless otherwise specified. bold values indicate ?40c t j +125c, unless noted. parameter condition min. typ. max. units supply voltage range 2.7 5.5 v under-voltage lockout threshold (turn-on) 2.45 2.55 2.65 v under-voltage lockout hysteresis 75 mv quiescent current i out = 0ma , sns > 1.2 * v out nominal 22 45 a shutdown current v en = 0v; v in = 5.5v 0.01 5 a v in = 3.6v if v outnom < 2.5v, i load = 20ma output voltage accuracy v in = 4.5v if v outnom 2.5v, i load = 20ma ? 2.5 +2.5 % feedback regulation voltage i load = 20ma 0.6045 0.62 0.6355 v current limit sns = 0.9*v outnom 2.2 3.3 a v in = 3.6v to 5.5v if v outnom < 2.5v, i load = 20ma output voltage line regulation v in = 4.5v to 5.5v if v outnom 2.5v, i load = 20ma 0.3 %/v 1ma < i load < 1a, v in = 3.6v if v outnom < 2.5v 0.8 output voltage load regulation 1ma < i load < 1a, v in = 5.0v if v outnom 2.5v 0.85 %/a pwm switch on-resistance i sw = 100ma pmos i sw = ? 100ma nmos 0.2 0.19 maximum switching frequency i out = 300ma 4 mhz soft start time v out = 90%, c ss = 470pf 320 s soft start current v ss = 0v 2.7 a pg threshold (rising) 86 92 96 % pg threshold hysteresis 7 % pg delay time rising 68 s enable threshold turn-on 0.5 0.9 1.2 v enable input current 0.1 2 a over-temperature shutdown 160 c over-temperature shutdown hysteresis 20 c notes: 1. exceeding the absolute maximum rating may damage the device. 2. the device is not guaranteed to function outside its operating rating. 3. devices are esd sensitive. handling precautions recommended. human body model, 1.5k ? in series with 100pf. 4. specification for packaged product only.
micrel inc. mic33153 september 2010 4 m9999-092910-a typical characteristics efficiency (v out = 3.3v) 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 output current (ma) efficiency (%) c out = 4.7f v in = 4.2v v in = 5.0v v in = 5.5v efficiency (v out = 2.5v) 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 output current (ma) efficiency (%) c out = 4.7f v in = 3.6v v in = 4.2v v in = 5.5v efficiency (v out = 1.8v) 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 output current (ma) efficiency (%) c out = 4.7f v in = 3.0v v in = 3.6v v in = 4.2v efficiency (v out = 1.5v) 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 output current (ma) efficiency (%) c out = 4.7f v in = 3.0v v in = 3.6v v in = 4.2v efficiency (v out = 1.2v) 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 output current (ma) efficiency (%) c out = 4.7f v in = 3.0v v in = 3.6v v in = 4.2v efficiency (v out = 1.0v) 0 10 20 30 40 50 60 70 80 90 100 1 10 100 1000 10000 output current (ma) efficiency (%) c out = 4.7f v in = 3.0v v in = 3.6v v in = 4.2v current limit vs. input voltage 0.00 0.50 1.00 1.50 2.00 2.50 3.00 3.50 4.00 4.50 5.00 2.7 3.2 3.7 4.2 4.7 5.2 5.7 input voltage (v) current limit (a) quiescent current vs. input voltage 0 5 10 15 20 25 30 35 40 2.7 3.2 3.7 4.2 4.7 5.2 5.7 input voltage (v) quiescent current (a) no switching sns > 1.2 * v outnom c out = 4.7f t = 125c t = 20c t = - 45c shutdown current v s. input voltage 0 5 10 15 20 25 30 2.5 3.0 3.5 4.0 4.5 5.0 5.5 input voltage (v) shutdown current (na) line regulation (light load) 1.700 1.720 1.740 1.760 1.780 1.800 1.820 1.840 1.860 1.880 1.900 2.533.544.555.5 input voltage (v) output voltage (v) v outnom = 1.8v c out = 4.7f i out = 160ma i out = 40ma i out = 1ma line regulation (heavy load) 1.700 1.720 1.740 1.760 1.780 1.800 1.820 1.840 1.860 1.880 1.900 2.5 3 3.5 4 4.5 5 5.5 input voltage (v) output voltage (v) v outnom = 1.8v c out = 4.7f i out = 500ma i out = 300ma i out = 1000ma load regulation 1.100 1.150 1.200 1.250 1.300 0 200 400 600 800 1000 1200 output current (ma) output voltage (v) v outnom = 1.2v c out = 4.7f v in = 4.2v v in = 3.6v v in = 3.0v
micrel inc. mic33153 september 2010 5 m9999-092910-a typical characteristics feedback voltage vs. temperature 0.59 0.60 0.61 0.62 0.63 0.64 0.65 -40 -20 0 20 40 60 80 100 120 temperature (c) fb voltage (v ) v in = 3.6v uvlo threshold vs. temperature 2.46 2.47 2.48 2.49 2.50 2.51 2.52 2.53 2.54 2.55 2.56 -40 -20 0 20 40 60 80 100 120 temperature (c) uvlo threshold (v) on off enable threshold vs. temperature 0 0.2 0.4 0.6 0.8 1 1.2 1.4 1.6 1.8 2 -40 -20 0 20 40 60 80 100 120 temperature (%) ven threshold (v) v out = 3.6v turn on turn off enable voltage v s. input voltage 0 0.2 0.4 0.6 0.8 1 1.2 1.4 1.6 1.8 2 2.7 3.2 3.7 4.2 4.7 5.2 5.7 input voltage (v) enable voltage (v ) c out = 4.7f i out = 150ma enable on enable off v out rise time vs. c ss 1 10 100 1000 10000 100000 1000000 100 1000 10000 100000 1000000 css (pf) rise time (s) sw frequency vs. temperature 0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5 5.5 6 -40 -20 0 20 40 60 80 100 120 temperature (c) sw frequency (mhz) v in = 3.6v c out = 4.7f load = 400ma switching frequency vs. output current 0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5 0.1 1 10 100 1000 10000 output current (ma) sw frequency (mhz) v in = 3.6v v in = 4.2v
micrel inc. mic33153 september 2010 6 m9999-092910-a functional characteristics
micrel inc. mic33153 september 2010 7 m9999-092910-a functional characteristics (continued)
micrel inc. mic33153 september 2010 8 m9999-092910-a functional characteristics (continued)
micrel inc. mic33153 september 2010 9 m9999-092910-a functional diagram figure 1. simplified mic33153 functional block diagram ? fixed output voltage figure 2. simplified mic33153 functional block diagram ? adjustable output voltage
micrel inc. mic33153 september 2010 10 m9999-092910-a functional description vin the input supply (vin) provides power to the internal mosfets for the switch mode regulator along with the internal control circuitry. t he vin operating range is 2.7v to 5.5v so an input capacitor, with a minimum voltage rating of 6.3v, is recommended. due to the high switching speed, a minimum 2.2f bypass capacitor placed close to vin and the power ground (pgnd) pin is required. refer to the layout recommendations for details. en a logic high signal on the enable pin activates the output voltage of the device. a logic low signal on the enable pin deactivates the output and reduces supply current to 0.01a. mic33153 features ex ternal soft start circuitry via the soft start (ss) pin that reduces in rush current and prevents the output volt age from overshooting at start up. do not leave the en pin floating. sw the switch (sw) connects directly to one end of the inductor and provides the current path during switching cycles. the other end of the inductor is connected to the load, sns pin and output capacitor. due to the high speed switching on this pin, the switch node should be routed away from sensitive nodes whenever possible. sns the sense (sns) pin is connected to the output of the device to provide feedback to the control circuitry. the sns connection should be placed close to the output capacitor. refer to the layout recommendations for more details. agnd the analog ground (agnd) is the ground path for the biasing and control circuitry. the current loop for the signal ground should be separate from the power ground (pgnd) loop. refer to the layout recommendations for more details. pgnd the power ground pin is the ground path for the high current in pwm mode. the current loop for the power ground should be as small as possible and separate from the analog ground (agnd) loop as applicable. refer to the layout recommendations for more details. power good pg the power good (pg) pin is an open drain output which indicates logic high when the output voltage is typically above 92% of its steady state voltage. when the output voltage is below 86%, the pg pin indicates logic low. a pull up resistor of more than 10k ? should be connected from pg to v out . ss the soft start (ss) pin is used to control the output voltage ramp up time. the approximate equation for the ramp time in milliseconds is: t(ms) = 270x10 3 x ln (10) x c ss where: t is the time in milliseconds and c ss is the external soft start capacitance (in farads). for example, for a c ss = 470pf, t rise ~ 0.3ms or 300s. see the typical characterist ics curve for a graphical guide. the minimum recommended value for c ss is 100pf. fb the feedback (fb) pin is provided for the adjustable voltage option (no internal connection for fixed options). this is the control input for programming the output voltage. a resistor divider network is connected to this pin from the output and is compared to the internal 0.62v reference within the regulation loop. the output voltage can be programmed between 0.65v and 3.6v using the following equation: ? ? ? ? ? ? += r2 r1 1vv ref out where: r1 is the top resistor, r2 is the bottom resistor. example feedback resistor values: v out r1 r2 1.2v 274k 294k 1.5v 316k 221k 1.8v 301k 158k 2.5v 324k 107k 3.3v 309k 71.5k
micrel inc. mic33153 september 2010 11 m9999-092910-a application information the mic33153 is a high performance dc-to-dc step down regulator offering a small solution size. with the hyperlight load? switching scheme, the mic33153 is able to maintain high efficiency throughout the entire load range while providing ultra-fast load transient response. the following sections provide additional device application information. input capacitor a 2.2f ceramic capacitor or greater should be placed close to the vin pin and pgnd pin for bypassing. a murata grm188r60j475me84d, size 0603, 4.7f ceramic capacitor is recommended based upon performance, size, and cost. a x5r or x7r temperature rating is recommended for the input capacitor. y5v temperature rating capacitors, aside from losing most of their capacitance over temperature, can also become resistive at high fre quencies. this reduces their ability to filter out high frequency noise. output capacitor the mic33153 is designed fo r use with a 2.2f or greater ceramic output capaci tor. increasing the output capacitance will lower output ripple and improve load transient response but could also increase solution size or cost. a low equivalent series resistance (esr) ceramic output capacitor such as the murata grm188r60j475me84d, size 0603, 4.7f ceramic capacitor is recommended based upon performance, size, and cost. both the x7r or x5r temperature rating capacitors are recommended. the y5v and z5u temperature rating capacitors are not recommended due to their wide variation in capacitance over temperature and increased resistance at high frequencies. compensation the mic33153 is designed to be stable with a 4.7f ceramic (x5r) output capacitor. duty cycle the typical maximum duty cycle of the mic33153 is 80%. efficiency considerations efficiency is defined as the amount of useful output power, divided by the amount of power supplied: 100 iv iv % efficiency inin out out ? ? ? ? ? ? ? ? = maintaining high efficiency serves two purposes. it reduces power dissipation in the power supply, reducing the need for heat sinks and thermal design considerations and it reduces consumption of current for battery powered applications. reduced current draw from a battery increases the devices operating time and is critical in hand held devices. there are two types of losses in switching converters; dc losses and switching losses. dc losses are simply the power dissipation of i 2 r. power is dissipated in the high side switch during the on cycle. power loss is equal to the high side mosfet r dson multiplied by the switch current squared. during the off cycle, the low side n- channel mosfet conducts, also dissipating power. device operating current also reduces efficiency. the product of the quiescent (operating) current and the supply voltage represents anot her dc loss. the current required driving the gates on and off at a constant 4mhz frequency and the switching transitions make up the switching losses. figure 3. efficiency under load figure 3 shows an efficiency curve. from no load to 100ma, efficiency losses are dominated by quiescent current losses, gate drive and transition losses. by using the hyperlight load? mode, the mic33153 is able to maintain high efficiency at low output currents.
micrel inc. mic33153 september 2010 12 m9999-092910-a over 100ma, efficiency loss is dominated by mosfet r dson and inductor losses. higher input supply voltages will increase the gate to source threshold on the internal mosfets, thereby reducing the internal r dson . this improves efficiency by reducing dc losses in the device. all but the inductor losses are inherent to the device. in which case, inductor selection becomes increasingly critical in efficiency calculations. as the inductors are reduced in size, the dc resistance (dcr) can become quite significant. the dcr losses can be calculated as follows: p dcr = i out 2 x dcr from that, the loss in efficiency due to inductor resistance can be calculated as follows: 100 piv iv 1loss efficiency dcr out out out out ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? ? + ?= efficiency loss due to dcr is minimal at light loads and gains significance as the load is increased. inductor selection becomes a trade off between efficiency and size in this case. the effect of mosfet voltage drops and dcr losses in conjunction with the maximum duty cycle combine to limit maximum output voltage for a given input voltage. the following graph shows this relationship based on the typical resistive losses in the mic33153: v outmax vs. v in 0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5 2.5 3 3.5 4 4.5 5 5.5 input voltage (v) output voltage (v) 1.2a 800ma 400ma 100ma hyperlight load? mode mic33153 uses a minimum on and off time proprietary control loop (patented by micrel). when the output voltage falls below the regulation threshold, the error comparator begins a switching cycle that turns the pmos on and keeps it on for the duration of the minimum on time. this increases the output voltage. if the output voltage is over t he regulation threshold, then the error comparator turns the pmos off for a minimum off time until the output drops below the threshold. the nmos acts as an ideal rect ifier that conducts when the pmos is off. using a nmos switch instead of a diode allows for lower voltage drop across the switching device when it is on. the asynchronous switching combination between the pmos and the nmos allows the control loop to work in discontinuous mode for light load operations. in discontinuous mode, the mic33153 works in pulse frequency modulation (pfm) to regulate the output. as the output current increases, the off time decreases, thus provides more energy to the output. this switching scheme improves the efficiency of mic33153 during light load currents by only switching when it is needed. as the load current increases, the mic33153 goes into continuous conduction mode (ccm) and switches at a frequency centered at 4mhz. the equation to calculate the load when the mic33153 goes into continuous conduction mode may be approximated by the following formula: ? ? ? ? ? ? ? ? ? > f2l d)v(v i out in load as shown in the above equation, the load at which mic33153 transitions from hyperlight load? mode to pwm mode is a function of the input voltage (v in ), output voltage (v out ), duty cycle (d), inductance (l) and frequency (f). for example, if v in = 3.6v, v out =1.8v, d=0.5, f=4mhz and the inter nal inductance of mic33153 is 0.47 h, then the device will enter hyperlight load? mode or pwm mode at approximately 200ma.
micrel inc. mic33153 september 2010 13 m9999-092910-a as can be seen in the diagram, total thermal resistance r ja = r jc + r ca . hence this can also be written: power dissipation considerations as with all power devices, the ultimate current rating of the output is limited by the thermal properties of the package and the pcb it is mounted on. there is a simple, ohm?s law type of relationship between thermal resistance, power dissipation and temperature which is analogous to an electrical circuit: ( ) amb ja dissj tr pt + = since effectively all of the power loss in the converter is dissipated within the mic33153 package, p diss can be calculated thus: 1) 1 ( pp out diss ?= where: = efficiency taken from efficiency curves r jc and r ja are found in the operating ratings section of the datasheet. from this simple circuit, one can calculate v x if one knows i source , v z and the resistor values, r xy and r yz using the equation: example: a mic33153 is intended to driv e a 1a load at 1.8v and is placed on a printed circuit board which has a ground plane area of at least 25mm square. the voltage source is a li-ion battery with a lower operating threshold of 3v and the ambient temperature of the assembly can be up to 50 o c. () zyzxy source x vrr iv ++ = thermal circuits can be considered using these same rules and can be drawn similarly replacing current sources with power dissipation (in watts), resistance with thermal resistance (in o c/w) and voltage sources with temperature (in o c): summary of variables: i out = 1a v out = 1.8v v in = 3v to 4.2v t amb = 50 o c r ja = 55 o c/w from datasheet @ 1a = 80% (worst case with v in =4.2v from the typical characteristics efficiency vs. load graphs) 1) 0.80 1 (11.8p diss ??= = 0.45w the worst case switch and inductor resistance will increase at higher temperatures, so a margin of 20% can be added to account for this: now replacing the variables in the equation for v x , one can find the junction temperature (t j ) from power dissipation, ambient temperature and the known thermal resistance of the pcb (r ca ) and the package (r jc ): p diss = 0.45 x 1.2 = .54w () amb ca jc dissj tr r pt ++= therefore: t j = 0.54w x (55 o c/w) + 50 o c t j = 79.7 o c this is well below the maximum 125 o c.
micrel inc. mic33153 september 2010 14 m9999-092910-a typical application circuit (fixed output) bill of materials item part number manufacturer description qty. c1608x5r0j475k tdk (1) c1, c2 grm188r60j475ke19d murata (2) ceramic capacitor, 4.7f, 6.3v, x5r, size 0603 2 c3 c1608npo0j471k tdk (1) ceramic capacitor, 470pf, 6.3v, npo, size 0603 1 r3, r4 crcw06031002fkea vishay (3) resistor, 10k, size 0603 2 u1 mic33153-xyhj micrel, inc. (4) 4mhz 1.2a buck regulator with hyperlight load? mode and fixed output voltage 1 notes: 1. tdk: www.tdk.com . 2. murata : www.murata.com . 3. vishay: www.vishay.com . 4. micrel, inc.: www.micrel.com .
micrel inc. mic33153 september 2010 15 m9999-092910-a typical application circuit (adjustable output) bill of materials item part number manufacturer description qty. c1608x5r0j475k tdk (1) c1, c2 grm188r60j475ke19d murata (2) ceramic capacitor, 4.7f, 6.3v, x5r, size 0603 2 c3 c1608npo0j471k tdk (1) ceramic capacitor, 470pf, 6.3v, npo, size 0603 1 c4 ? ? not fitted (nf) 0 r1 crcw06033013fkea vishay (3) resistor, 301k, size 0603 1 r2 crcw06031583fkea vishay (3) resistor, 158k, size 0603 1 r3, r4 crcw06031002fkea vishay (3) resistor, 10k, size 0603 2 u1 mic33153-yhj micrel, inc. (4) 4mhz 1.2a buck regulator with hyperlight load? mode and adjustable output voltage 1 1. tdk: www.tdk.com . 2. murata : www.murata.com . 3. vishay: www.vishay.com . 4. micrel, inc.: www.micrel.com .
micrel inc. mic33153 september 2010 16 m9999-092910-a pcb layout recommendations top layer bottom layer
micrel inc. mic33153 september 2010 17 m9999-092910-a package information 14-pin 3.0mm x 3.5mm mlf ? (hj) micrel, inc. 2180 fortune drive san jose, ca 95131 usa tel +1 (408) 944-0800 fax +1 (408) 474-1000 web http://www.micrel.com micrel makes no representations or warrantie s with respect to the accuracy or comple teness of the information furnished in this data sheet. this information is not intended as a warranty and micrel does not assume responsibility for it s use. micrel reserves the right to change circuitry, specifications and descriptions at any time without notice. no license, whether express, implied, arising by estoppel or other wise, to any intellectual property rights is granted by this document. except as provided in micrel?s terms and conditions of sale for such products, mi crel assumes no liability whatsoever, and micrel disclaims any expres s or implied warranty relating to the sale and/or use of micrel products including l iability or warranties relating to fitness for a particular purpose, merchantability, or infringement of an y patent, copyright or other intellectual p roperty right micrel products are not designed or authorized for use as components in life suppor t appliances, devices or systems where malfu nction of a product reasonably be expected to result in pers onal injury. life support devices or system s are devices or systems that (a) are in tended for surgical impla into the body or (b) support or sustain life, and whose failure to perform can be reasonably expected to result in a significant injury to the user. a purchaser?s use or sale of micrel products for use in life support appliances, devices or systems is a purchaser?s own risk and purchaser agrees to fully indemnify micrel for any damages re sulting from such use or sale. can nt ? 2010 micrel, incorporated.


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