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lm2576/lm2576hv series simple switcher ? 3a step-down voltage regulator general description the lm2576 series of regulators are monolithic integrated circuits that provide all the active functions for a step-down (buck) switching regulator, capable of driving 3a load with excellent line and load regulation. these devices are avail- able in fixed output voltages of 3.3v, 5v, 12v, 15v, and an adjustable output version. requiring a minimum number of external components, these regulators are simple to use and include internal frequency compensation and a fixed-frequency oscillator. the lm2576 series offers a high-efficiency replacement for popular three-terminal linear regulators. it substantially re- duces the size of the heat sink, and in some cases no heat sink is required. a standard series of inductors optimized for use with the lm2576 are available from several different manufacturers. this feature greatly simplifies the design of switch-mode power supplies. other features include a guaranteed 4 % tolerance on out- put voltage within specified input voltages and output load conditions, and 10 % on the oscillator frequency. external shutdown is included, featuring 50 a (typical) standby cur- rent. the output switch includes cycle-by-cycle current limit- ing, as well as thermal shutdown for full protection under fault conditions. features n 3.3v, 5v, 12v, 15v, and adjustable output versions n adjustable version output voltage range, 1.23v to 37v (57v for hv version) 4 % max over line and load conditions n guaranteed 3a output current n wide input voltage range, 40v up to 60v for hv version n requires only 4 external components n 52 khz fixed frequency internal oscillator n ttl shutdown capability, low power standby mode n high efficiency n uses readily available standard inductors n thermal shutdown and current limit protection n p+ product enhancement tested applications n simple high-efficiency step-down (buck) regulator n efficient pre-regulator for linear regulators n on-card switching regulators n positive to negative converter (buck-boost) typical application (fixed output voltage versions) simple switcher ? is a registered trademark of national semiconductor corporation. ds011476-1 figure 1. june 1999 lm2576/lm2576hv series simple switcher 3a step-down voltage regulator ? 1999 national semiconductor corporation ds011476 www.national.com
block diagram ordering information temperature range output voltage ns package package type 3.3 5.0 12 15 adj number ?40c t a 125c lm2576hvs-3.3 lm2576hvs-5.0 lm2576hvs-12 lm2576hvs-15 lm2576hvs-adj ts5b to-263 lm2576s-3.3 lm2576s-5.0 lm2576s-12 lm2576s-15 lm2576s-adj lm2576hvsx-3.3 lm2576hvsx-5.0 lm2576hvsx-12 lm2576hvsx-15 lm2576hvsx-adj ts5b tape & reel lm2576sx-3.3 lm2576sx-5.0 lm2576sx-12 lm2576sx-15 lm2576sx-adj lm2576hvt-3.3 lm2576hvt-5.0 lm2576hvt-12 lm2576hvt-15 lm2576hvt-adj t05a to-220 lm2576t-3.3 lm2576t-5.0 lm2576t-12 lm2576t-15 lm2576t-adj lm2576hvt-3.3 lm2576hvt-5.0 lm2576hvt-12 lm2576hvt-15 lm2576hvt-adj t05d flow lb03 flow lb03 flow lb03 flow lb03 flow lb03 lm2576t-3.3 lm2576t-5.0 lm2576t-12 lm2576t-15 lm2576t-adj flow lb03 flow lb03 flow lb03 flow lb03 flow lb03 ds011476-2 3.3v r2 = 1.7k 5v, r2 = 3.1k 12v, r2 = 8.84k 15v, r2 = 11.3k for adj. version r1 = open, r2 = 0 w patent pending www.national.com 2 absolute maximum ratings (note 1) if military/aerospace specified devices are required, please contact the national semiconductor sales office/ distributors for availability and specifications. maximum supply voltage lm2576 45v lm2576hv 63v on /off pin input voltage ?0.3v v +v in output voltage to ground (steady state) ?1v power dissipation internally limited storage temperature range ?65c to +150c maximum junction temperature 150c minimum esd rating (c = 100 pf, r = 1.5 k w )2kv lead temperature (soldering, 10 seconds) 260c operating ratings temperature range lm2576/lm2576hv ?40c t j +125c supply voltage lm2576 40v lm2576hv 60v lm2576-3.3, lm2576hv-3.3 electrical characteristics specifications with standard type face are for t j = 25c, and those with boldface type apply over full operating temperature range. symbol parameter conditions lm2576-3.3 units (limits) lm2576hv-3.3 typ limit (note 2) system parameters (note 3) test circuit figure 2 v out output voltage v in = 12v, i load = 0.5a 3.3 v circuit of figure 2 3.234 v(min) 3.366 v(max) v out output voltage 6v v in 40v, 0.5a i load 3a 3.3 v lm2576 circuit of figure 2 3.168/ 3.135 v(min) 3.432/ 3.465 v(max) v out output voltage 6v v in 60v, 0.5a i load 3a 3.3 v lm2576hv circuit of figure 2 3.168/ 3.135 v(min) 3.450/ 3.482 v(max) h efficiency v in = 12v, i load = 3a 75 % lm2576-5.0, lm2576hv-5.0 electrical characteristics specifications with standard type face are for t j = 25c, and those with figure 2 boldface type apply over full operating temperature range. symbol parameter conditions lm2576-5.0 units (limits) lm2576hv-5.0 typ limit (note 2) system parameters (note 3) test circuit figure 2 v out output voltage v in = 12v, i load = 0.5a 5.0 v circuit of figure 2 4.900 v(min) 5.100 v(max) v out output voltage 0.5a i load 3a, 5.0 v lm2576 8v v in 40v 4.800/ 4.750 v(min) circuit of figure 2 5.200/ 5.250 v(max) v out output voltage 0.5a i load 3a, 5.0 v lm2576hv 8v v in 60v 4.800/ 4.750 v(min) circuit of figure 2 5.225/ 5.275 v(max) h efficiency v in = 12v, i load = 3a 77 % www.national.com 3 lm2576-12, lm2576hv-12 electrical characteristics specifications with standard type face are for t j = 25c, and those with boldface type apply over full operating temperature range. symbol parameter conditions lm2576-12 units (limits) lm2576hv-12 typ limit (note 2) system parameters (note 3) test circuit figure 2 v out output voltage v in = 25v, i load = 0.5a 12 v circuit of figure 2 11.76 v(min) 12.24 v(max) v out output voltage 0.5a i load 3a, 12 v lm2576 15v v in 40v 11.52/ 11.40 v(min) circuit of figure 2 12.48/ 12.60 v(max) v out output voltage 0.5a i load 3a, 12 v lm2576hv 15v v in 60v 11.52/ 11.40 v(min) circuit of figure 2 12.54/ 12.66 v(max) h efficiency v in = 15v, i load = 3a 88 % lm2576-15, lm2576hv-15 electrical characteristics specifications with standard type face are for t j = 25c, and those with boldface type apply over full operating temperature range. symbol parameter conditions lm2576-15 units (limits) lm2576hv-15 typ limit (note 2) system parameters (note 3) test circuit figure 2 v out output voltage v in = 25v, i load = 0.5a 15 v circuit of figure 2 14.70 v(min) 15.30 v(max) v out output voltage 0.5a i load 3a, 15 v lm2576 18v v in 40v 14.40/ 14.25 v(min) circuit of figure 2 15.60/ 15.75 v(max) v out output voltage 0.5a i load 3a, 15 v lm2576hv 18v v in 60v 14.40/ 14.25 v(min) circuit of figure 2 15.68/ 15.83 v(max) h efficiency v in = 18v, i load = 3a 88 % lm2576-adj, lm2576hv-adj electrical characteristics specifications with standard type face are for t j = 25c, and those with boldface type apply over full operating temperature range. symbol parameter conditions lm2576-adj units (limits) lm2576hv-adj typ limit (note 2) system parameters (note 3) test circuit figure 2 v out feedback voltage v in = 12v, i load = 0.5a 1.230 v v out = 5v, 1.217 v(min) circuit of figure 2 1.243 v(max) www.national.com 4 lm2576-adj, lm2576hv-adj electrical characteristics (continued) specifications with standard type face are for t j = 25c, and those with boldface type apply over full operating temperature range. symbol parameter conditions lm2576-adj units (limits) lm2576hv-adj typ limit (note 2) system parameters (note 3) test circuit figure 2 v out feedback voltage 0.5a i load 3a, 1.230 v lm2576 8v v in 40v 1.193/ 1.180 v(min) v out = 5v, circuit of figure 2 1.267/ 1.280 v(max) v out feedback voltage 0.5a i load 3a, 1.230 v lm2576hv 8v v in 60v 1.193/ 1.180 v(min) v out = 5v, circuit of figure 2 1.273/ 1.286 v(max) h efficiency v in = 12v, i load = 3a, v out = 5v 77 % all output voltage versions electrical characteristics specifications with standard type face are for t j = 25c, and those with boldface type apply over full operating temperature range. unless otherwise specified, v in = 12v for the 3.3v, 5v, and adjustable version, v in = 25v for the 12v version, and v in = 30v for the 15v version. i load = 500 ma. symbol parameter conditions lm2576-xx units (limits) lm2576hv-xx typ limit (note 2) device parameters i b feedback bias current v out = 5v (adjustable version only) 50 100/ 500 na f o oscillator frequency (note 11) 52 khz 47/ 42 khz (min) 58/ 63 khz (max) v sat saturation voltage i out = 3a (note 4) 1.4 v 1.8/ 2.0 v(max) dc max duty cycle (on) (note 5) 98 % 93 % (min) i cl current limit (notes 4, 11) 5.8 a 4.2/ 3.5 a(min) 6.9/ 7.5 a(max) i l output leakage current (notes 6, 7): output = 0v 2 ma(max) output = ?1v 7.5 ma output = ?1v 30 ma(max) i q quiescent current (note 6) 5 ma 10 ma(max) i stby standby quiescent on /off pin = 5v (off) 50 a current 200 a(max) q ja thermal resistance t package, junction to ambient (note 8) 65 q ja t package, junction to ambient (note 9) 45 c/w q jc t package, junction to case 2 q ja s package, junction to ambient (note 10) 50 www.national.com 5 all output voltage versions electrical characteristics (continued) specifications with standard type face are for t j = 25c, and those with boldface type apply over full operating temperature range. unless otherwise specified, v in = 12v for the 3.3v, 5v, and adjustable version, v in = 25v for the 12v version, and v in = 30v for the 15v version. i load = 500 ma. symbol parameter conditions lm2576-xx units (limits) lm2576hv-xx typ limit (note 2) on /off control test circuit figure 2 v ih on /off pin v out = 0v 1.4 2.2/ 2.4 v(min) v il logic input level v out = nominal output voltage 1.2 1.0/ 0.8 v(max) i ih on /off pin input on /off pin = 5v (off) 12 a current 30 a(max) i il on /off pin = 0v (on) 0a 10 a(max) note 1: absolute maximum ratings indicate limits beyond which damage to the device may occur. operating ratings indicate conditions for which the device is i n- tended to be functional, but do not guarantee specific performance limits. for guaranteed specifications and test conditions, see the electrical ch aracteristics. note 2: all limits guaranteed at room temperature (standard type face) and at temperature extremes (bold type face). all room temperature limits are 100 % produc- tion tested. all limits at temperature extremes are guaranteed via correlation using standard statistical quality control (sqc) methods. note 3: external components such as the catch diode, inductor, input and output capacitors can affect switching regulator system performance. when the lm25 76/ lm2576hv is used as shown in the figure 2 test circuit, system performance will be as shown in system parameters section of electrical characteristics. note 4: output pin sourcing current. no diode, inductor or capacitor connected to output. note 5: feedback pin removed from output and connected to 0v. note 6: feedback pin removed from output and connected to +12v for the adjustable, 3.3v, and 5v versions, and +25v for the 12v and 15v versions, to force the output transistor off. note 7: v in = 40v (60v for high voltage version). note 8: junction to ambient thermal resistance (no external heat sink) for the 5 lead to-220 package mounted vertically, with 1 2 inch leads in a socket, or on a pc board with minimum copper area. note 9: junction to ambient thermal resistance (no external heat sink) for the 5 lead to-220 package mounted vertically, with 1 4 inch leads soldered to a pc board containing approximately 4 square inches of copper area surrounding the leads. note 10: if the to-263 package is used, the thermal resistance can be reduced by increasing the pc board copper area thermally connected to the package. using 0.5 square inches of copper area, q ja is 50c/w, with 1 square inch of copper area, q ja is 37c/w, and with 1.6 or more square inches of copper area, q ja is 32c/w. note 11: the oscillator frequency reduces to approximately 11 khz in the event of an output short or an overload which causes the regulated output voltage to dro p approximately 40 % from the nominal output voltage. this self protection feature lowers the average power dissipation of the ic by lowering the minimum duty cycle from 5 % down to approximately 2 % . typical performance characteristics (circuit of figure 2 ) normalized output voltage ds011476-27 line regulation ds011476-28 dropout voltage ds011476-29 www.national.com 6 typical performance characteristics (circuit of figure 2 ) (continued) current limit ds011476-30 quiescent current ds011476-31 standby quiescent current ds011476-32 oscillator frequency ds011476-33 switch saturation voltage ds011476-34 efficiency ds011476-35 minimum operating voltage ds011476-36 quiescent current vs duty cycle ds011476-37 feedback voltage vs duty cycle ds011476-38 www.national.com 7 typical performance characteristics (circuit of figure 2 ) (continued) feedback pin current ds011476-4 maximum power dissipation (to-263) (see note 10) ds011476-24 switching waveforms ds011476-6 v out = 15v a: output pin voltage, 50v/div b: output pin current, 2a/div c: inductor current, 2a/div d: output ripple voltage, 50 mv/div, ac-coupled horizontal time base: 5 s/div load transient response ds011476-5 www.national.com 8 test circuit and layout guidelines as in any switching regulator, layout is very important. rap- idly switching currents associated with wiring inductance generate voltage transients which can cause problems. for minimal inductance and ground loops, the length of the leads indicated by heavy lines should be kept as short as possible. single-point grounding (as indicated) or ground plane con- struction should be used for best results. when using the ad- justable version, physically locate the programming resistors near the regulator, to keep the sensitive feedback wiring short. fixed output voltage versions ds011476-7 c in e 100 f, 75v, aluminum electrolytic c out e 1000 f, 25v, aluminum electrolytic d 1 e schottky, mbr360 l 1 e 100 h, pulse eng. pe-92108 r 1 e 2k, 0.1 % r 2 e 6.12k, 0.1 % adjustable output voltage version ds011476-8 where v ref = 1.23v, r1 between 1k and 5k. figure 2. www.national.com 9 lm2576 series buck regulator design procedure procedure (fixed output voltage versions) example (fixed output voltage versions) given: v out = regulated output voltage (3.3v, 5v, 12v, or 15v) v in (max) = maximum input voltage i load (max) = maximum load current given: v out = 5v v in (max) = 15v i load (max) = 3a 1. inductor selection (l1) a. select the correct inductor value selection guide from figures 3, 4, 5 or figure 6 . (output voltages of 3.3v, 5v, 12v or 15v respectively). for other output voltages, see the design procedure for the adjustable version. b. from the inductor value selection guide, identify the in- ductance region intersected by v in (max) and i load (max), and note the inductor code for that region. c. identify the inductor value from the inductor code, and select an appropriate inductor from the table shown in figure 3 . part numbers are listed for three inductor manu- facturers. the inductor chosen must be rated for opera- tion at the lm2576 switching frequency (52 khz) and for a current rating of 1.15 x i load . for additional inductor in- formation, see the inductor section in the application hints section of this data sheet. 1. inductor selection (l1) a. use the selection guide shown in figure 4 . b. from the selection guide, the inductance area inter- sected by the 15v line and 3a line is l100. c. inductor value required is 100 h. from the table in figure 3 . choose aie 415-0930, pulse engineering pe92108, or renco rl2444. 2. output capacitor selection (c out ) a. the value of the output capacitor together with the in- ductor defines the dominate pole-pair of the switching regulator loop. for stable operation and an acceptable output ripple voltage, (approximately 1 % of the output voltage) a value between 100 f and 470 f is recom- mended. b. the capacitor's voltage rating should be at least 1.5 times greater than the output voltage. for a 5v regulator, a rating of at least 8v is appropriate, and a 10v or 15v rating is recommended. higher voltage electrolytic capacitors generally have lower esr numbers, and for this reason it may be neces- sary to select a capacitor rated for a higher voltage than would normally be needed. 2. output capacitor selection (c out ) a. c out = 680 f to 2000 f standard aluminum electro- lytic. b. capacitor voltage rating = 20v. 3. catch diode selection (d1) a. the catch-diode current rating must be at least 1.2 times greater than the maximum load current. also, if the power supply design must withstand a continuous output short, the diode should have a current rating equal to the maximum current limit of the lm2576. the most stressful condition for this diode is an overload or shorted output condition. b. the reverse voltage rating of the diode should be at least 1.25 times the maximum input voltage. 3. catch diode selection (d1) a. for this example, a 3a current rating is adequate. b. use a 20v 1n5823 or sr302 schottky diode, or any of the suggested fast-recovery diodes shown in figure 8 . 4. input capacitor (c in ) an aluminum or tantalum electrolytic bypass capacitor lo- cated close to the regulator is needed for stable opera- tion. 4. input capacitor (c in ) a 100 f, 25v aluminum electrolytic capacitor located near the input and ground pins provides sufficient bypassing. www.national.com 10 lm2576 series buck regulator design procedure (continued) inductor value selection guides (for continuous mode operation) ds011476-9 figure 3. lm2576(hv)-3.3 ds011476-10 figure 4. lm2576(hv)-5.0 ds011476-11 figure 5. lm2576(hv)-12 ds011476-12 figure 6. lm2576(hv)-15 www.national.com 11 lm2576 series buck regulator design procedure (continued) procedure (adjustable output voltage versions) example (adjustable output voltage versions) given: v out = regulated output voltage v in (max) = maximum input voltage i load (max) = maximum load current f = switching frequency (fixed at 52 khz) given: v out = 10v v in (max) = 25v i load (max) = 3a f = 52 khz 1. programming output voltage (selecting r1 and r2, as shown in figure 2) use the following formula to select the appropriate resis- tor values. r 1 can be between 1k and 5k. (for best temperature co- efficient and stability with time, use 1 % metal film resis- tors) 1. programming output voltage (selecting r1 and r2) r 2 = 1k (8.13 ? 1) = 7.13k, closest 1 % value is 7.15k ds011476-13 figure 7. lm2576(hv)-adj www.national.com 12 lm2576 series buck regulator design procedure (continued) procedure (adjustable output voltage versions) example (adjustable output voltage versions) 2. inductor selection (l1) a. calculate the inductor volt microsecond constant, e t(v s), from the following formula: b. use the e t value from the previous formula and match it with the e t number on the vertical axis of the inductor value selection guide shown in figure 7 . c. on the horizontal axis, select the maximum load cur- rent. d. identify the inductance region intersected by the e t value and the maximum load current value, and note the inductor code for that region. e. identify the inductor value from the inductor code, and select an appropriate inductor from the table shown in figure 9 . part numbers are listed for three inductor manu- facturers. the inductor chosen must be rated for opera- tion at the lm2576 switching frequency (52 khz) and for a current rating of 1.15 x i load . for additional inductor in- formation, see the inductor section in the application hints section of this data sheet. 2. inductor selection (l1) a. calculate e t(v s) b. e t = 115 v s c. i load (max) = 3a d. inductance region = h150 e. inductor value = 150 h choose from aie part # 415-0936 pulse engineering part # pe-531115, or renco part # rl2445. 3. output capacitor selection (c out ) a. the value of the output capacitor together with the in- ductor defines the dominate pole-pair of the switching regulator loop. for stable operation, the capacitor must satisfy the following requirement: the above formula yields capacitor values between 10 f and 2200 f that will satisfy the loop requirements for stable operation. but to achieve an acceptable output ripple voltage, (approximately 1 % of the output voltage) and transient response, the output capacitor may need to be several times larger than the above formula yields. b. the capacitor's voltage rating should be at last 1.5 times greater than the output voltage. for a 10v regulator, a rating of at least 15v or more is recommended. higher voltage electrolytic capacitors generally have lower esr numbers, and for this reason it may be necessary to se- lect a capacitor rate for a higher voltage than would nor- mally be needed. 3. output capacitor selection (c out ) however, for acceptable output ripple voltage select c out 3 680 f c out = 680 f electrolytic capacitor 4. catch diode selection (d1) a. the catch-diode current rating must be at least 1.2 times greater than the maximum load current. also, if the power supply design must withstand a continuous output short, the diode should have a current rating equal to the maximum current limit of the lm2576. the most stressful condition for this diode is an overload or shorted output. see diode selection guide in figure 8 . b. the reverse voltage rating of the diode should be at least 1.25 times the maximum input voltage. 4. catch diode selection (d1) a. for this example, a 3.3a current rating is adequate. b. use a 30v 31dq03 schottky diode, or any of the sug- gested fast-recovery diodes in figure 8 . 5. input capacitor (c in ) an aluminum or tantalum electrolytic bypass capacitor lo- cated close to the regulator is needed for stable opera- tion. 5. input capacitor (c in ) a 100 f aluminum electrolytic capacitor located near the input and ground pins provides sufficient bypassing. www.national.com 13 lm2576 series buck regulator design procedure (continued) to further simplify the buck regulator design procedure, national semiconductor is making available computer design software to be used with the simple switcher line of switching regulators. switchers made simple (version 3.3) is available on a (3 1 2 ") diskette for ibm compatible computers from a national semiconductor sales office in your area. v r schottky fast recovery 3a 4a6a 3a 4a6a 20v 1n5820 1n5823 the following diodes are all rated to 100v 31df1 her302 the following diodes are all rated to 100v 50wf10 mur410 her602 mbr320p sr302 30v 1n5821 50wq03 mbr330 1n5824 31dq03 sr303 40v 1n5822 mbr340 mbr340 50wq04 31dq04 1n5825 sr304 50v mbr350 50wq05 31dq05 sr305 60v mbr360 50wr06 dq06 50sq060 sr306 figure 8. diode selection guide inductor inductor schott pulse eng. renco code value (note 12) (note 13) (note 14) l47 47 h 671 26980 pe-53112 rl2442 l68 68 h 671 26990 pe-92114 rl2443 l100 100 h 671 27000 pe-92108 rl2444 l150 150 h 671 27010 pe-53113 rl1954 l220 220 h 671 27020 pe-52626 rl1953 l330 330 h 671 27030 pe-52627 rl1952 l470 470 h 671 27040 pe-53114 rl1951 l680 680 h 671 27050 pe-52629 rl1950 h150 150 h 671 27060 pe-53115 rl2445 h220 220 h 671 27070 pe-53116 rl2446 h330 330 h 671 27080 pe-53117 rl2447 h470 470 h 671 27090 pe-53118 rl1961 h680 680 h 671 27100 pe-53119 rl1960 h1000 1000 h 671 27110 pe-53120 rl1959 h1500 1500 h 671 27120 pe-53121 rl1958 h2200 2200 h 671 27130 pe-53122 rl2448 note 12: schott corporation, (612) 475-1173, 1000 parkers lake road, wayzata, mn 55391. note 13: pulse engineering, (619) 674-8100, p.o. box 12235, san diego, ca 92112. note 14: renco electronics incorporated, (516) 586-5566, 60 jeffryn blvd. east, deer park, ny 11729. figure 9. inductor selection by manufacturer's part number www.national.com 14 application hints input capacitor (c in ) to maintain stability, the regulator input pin must be by- passed with at least a 100 f electrolytic capacitor. the ca- pacitor's leads must be kept short, and located near the regulator. if the operating temperature range includes temperatures below ?25c, the input capacitor value may need to be larger. with most electrolytic capacitors, the capacitance value decreases and the esr increases with lower tempera- tures and age. paralleling a ceramic or solid tantalum ca- pacitor will increase the regulator stability at cold tempera- tures. for maximum capacitor operating lifetime, the capacitor's rms ripple current rating should be greater than inductor selection all switching regulators have two basic modes of operation: continuous and discontinuous. the difference between the two types relates to the inductor current, whether it is flowing continuously, or if it drops to zero for a period of time in the normal switching cycle. each mode has distinctively different operating characteristics, which can affect the regulator per- formance and requirements. the lm2576 (or any of the simple switcher family) can be used for both continuous and discontinuous modes of op- eration. the inductor value selection guides in figure 3 through fig- ure 7 were designed for buck regulator designs of the con- tinuous inductor current type. when using inductor values shown in the inductor selection guide, the peak-to-peak in- ductor ripple current will be approximately 20 % to 30 % of the maximum dc current. with relatively heavy load currents, the circuit operates in the continuous mode (inductor current always flowing), but under light load conditions, the circuit will be forced to the discontinuous mode (inductor current falls to zero for a period of time). this discontinuous mode of operation is perfectly acceptable. for light loads (less than approximately 300 ma) it may be desirable to operate the regulator in the discontinuous mode, primarily because of the lower inductor values required for the discontinuous mode. the selection guide chooses inductor values suitable for continuous mode operation, but if the inductor value chosen is prohibitively high, the designer should investigate the pos- sibility of discontinuous operation. the computer design soft- ware switchers made simple will provide all component values for discontinuous (as well as continuous) mode of op- eration. inductors are available in different styles such as pot core, toriod, e-frame, bobbin core, etc., as well as different core materials, such as ferrites and powdered iron. the least ex- pensive, the bobbin core type, consists of wire wrapped on a ferrite rod core. this type of construction makes for an inex- pensive inductor, but since the magnetic flux is not com- pletely contained within the core, it generates more electro- magnetic interference (emi). this emi can cause problems in sensitive circuits, or can give incorrect scope readings be- cause of induced voltages in the scope probe. the inductors listed in the selection chart include ferrite pot core construction for aie, powdered iron toroid for pulse en- gineering, and ferrite bobbin core for renco. an inductor should not be operated beyond its maximum rated current because it may saturate. when an inductor be- gins to saturate, the inductance decreases rapidly and the inductor begins to look mainly resistive (the dc resistance of the winding). this will cause the switch current to rise very rapidly. different inductor types have different saturation characteristics, and this should be kept in mind when select- ing an inductor. the inductor manufacturer's data sheets include current and energy limits to avoid inductor saturation. inductor ripple current when the switcher is operating in the continuous mode, the inductor current waveform ranges from a triangular to a saw- tooth type of waveform (depending on the input voltage). for a given input voltage and output voltage, the peak-to-peak amplitude of this inductor current waveform remains con- stant. as the load current rises or falls, the entire sawtooth current waveform also rises or falls. the average dc value of this waveform is equal to the dc load current (in the buck regulator configuration). if the load current drops to a low enough level, the bottom of the sawtooth current waveform will reach zero, and the switcher will change to a discontinuous mode of operation. this is a perfectly acceptable mode of operation. any buck switching regulator (no matter how large the inductor value is) will be forced to run discontinuous if the load current is light enough. output capacitor an output capacitor is required to filter the output voltage and is needed for loop stability. the capacitor should be located near the lm2576 using short pc board traces. standard alu- minum electrolytics are usually adequate, but low esr types are recommended for low output ripple voltage and good stability. the esr of a capacitor depends on many factors, some which are: the value, the voltage rating, physical size and the type of construction. in general, low value or low voltage (less than 12v) electrolytic capacitors usually have higher esr numbers. the amount of output ripple voltage is primarily a function of the esr (equivalent series resistance) of the output ca- pacitor and the amplitude of the inductor ripple current ( d i ind ). see the section on inductor ripple current in applica- tion hints. the lower capacitor values (220 f1000 f) will allow typi- cally 50 mv to 150 mv of output ripple voltage, while larger-value capacitors will reduce the ripple to approxi- mately 20 mv to 50 mv. output ripple voltage = ( d i ind ) (esr of c out ) to further reduce the output ripple voltage, several standard electrolytic capacitors may be paralleled, or a higher-grade capacitor may be used. such capacitors are often called ahigh-frequency,o alow-inductance,o or alow-esr.o these will reduce the output ripple to 10 mv or 20 mv. however, when operating in the continuous mode, reducing the esr below 0.03 w can cause instability in the regulator. www.national.com 15 application hints (continued) tantalum capacitors can have a very low esr, and should be carefully evaluated if it is the only output capacitor. be- cause of their good low temperature characteristics, a tanta- lum can be used in parallel with aluminum electrolytics, with the tantalum making up 10 % or 20 % of the total capacitance. the capacitor's ripple current rating at 52 khz should be at least 50 % higher than the peak-to-peak inductor ripple cur- rent. catch diode buck regulators require a diode to provide a return path for the inductor current when the switch is off. this diode should be located close to the lm2576 using short leads and short printed circuit traces. because of their fast switching speed and low forward volt- age drop, schottky diodes provide the best efficiency, espe- cially in low output voltage switching regulators (less than 5v). fast-recovery, high-efficiency, or ultra-fast recovery diodes are also suitable, but some types with an abrupt turn-off characteristic may cause instability and emi prob- lems. a fast-recovery diode with soft recovery characteristics is a better choice. standard 60 hz diodes (e.g., 1n4001 or 1n5400, etc.) are also not suitable. see figure 8 for schot- tky and asofto fast-recovery diode selection guide. output voltage ripple and transients the output voltage of a switching power supply will contain a sawtooth ripple voltage at the switcher frequency, typically about 1 % of the output voltage, and may also contain short voltage spikes at the peaks of the sawtooth waveform. the output ripple voltage is due mainly to the inductor saw- tooth ripple current multiplied by the esr of the output ca- pacitor. (see the inductor selection in the application hints.) the voltage spikes are present because of the the fast switching action of the output switch, and the parasitic induc- tance of the output filter capacitor. to minimize these voltage spikes, special low inductance capacitors can be used, and their lead lengths must be kept short. wiring inductance, stray capacitance, as well as the scope probe used to evalu- ate these transients, all contribute to the amplitude of these spikes. an additional small lc filter (20 h & 100 f) can be added to the output (as shown in figure 15 ) to further reduce the amount of output ripple and transients. a 10 x reduction in output ripple voltage and transients is possible with this filter. feedback connection the lm2576 (fixed voltage versions) feedback pin must be wired to the output voltage point of the switching power sup- ply. when using the adjustable version, physically locate both output voltage programming resistors near the lm2576 to avoid picking up unwanted noise. avoid using resistors greater than 100 k w because of the increased chance of noise pickup. on /off input for normal operation, the on /off pin should be grounded or driven with a low-level ttl voltage (typically below 1.6v). to put the regulator into standby mode, drive this pin with a high-level ttl or cmos signal. the on /off pin can be safely pulled up to +v in without a resistor in series with it. the on /off pin should not be left open. grounding to maintain output voltage stability, the power ground con- nections must be low-impedance (see figure 2 ). for the 5-lead to-220 and to-263 style package, both the tab and pin 3 are ground and either connection may be used, as they are both part of the same copper lead frame. heat sink/thermal considerations in many cases, only a small heat sink is required to keep the lm2576 junction temperature within the allowed operating range. for each application, to determine whether or not a heat sink will be required, the following must be identified: 1. maximum ambient temperature (in the application). 2. maximum regulator power dissipation (in application). 3. maximum allowed junction temperature (125c for the lm2576). for a safe, conservative design, a tempera- ture approximately 15c cooler than the maximum tem- peratures should be selected. 4. lm2576 package thermal resistances q ja and q jc . total power dissipated by the lm2576 can be estimated as follows: p d = (v in )(i q )+(v o /v in )(i load )(v sat ) where i q (quiescent current) and v sat can be found in the characteristic curves shown previously, v in is the applied minimum input voltage, v o is the regulated output voltage, and i load is the load current. the dynamic losses during turn-on and turn-off are negligible if a schottky type catch di- ode is used. when no heat sink is used, the junction temperature rise can be determined by the following: d t j = (p d )( q ja ) to arrive at the actual operating junction temperature, add the junction temperature rise to the maximum ambient tem- perature. t j = d t j +t a if the actual operating junction temperature is greater than the selected safe operating junction temperature determined in step 3, then a heat sink is required. when using a heat sink, the junction temperature rise can be determined by the following: d t j = (p d )( q jc + q interface + q heat sink ) the operating junction temperature will be: t j = t a + d t j as above, if the actual operating junction temperature is greater than the selected safe operating junction tempera- ture, then a larger heat sink is required (one that has a lower thermal resistance). included on the switcher made simple design software is a more precise (non-linear) thermal model that can be used to determine junction temperature with different input-output parameters or different component values. it can also calcu- late the heat sink thermal resistance required to maintain the regulators junction temperature below the maximum operat- ing temperature. additional applications inverting regulator figure 10 shows a lm2576-12 in a buck-boost configuration to generate a negative 12v output from a positive input volt- age. this circuit bootstraps the regulator's ground pin to the www.national.com 16 additional applications (continued) negative output voltage, then by grounding the feedback pin, the regulator senses the inverted output voltage and regu- lates it to ?12v. for an input voltage of 12v or more, the maximum available output current in this configuration is approximately 700 ma. at lighter loads, the minimum input voltage required drops to approximately 4.7v. the switch currents in this buck-boost configuration are higher than in the standard buck-mode design, thus lowering the available output current. also, the start-up input current of the buck-boost converter is higher than the standard buck-mode regulator, and this may overload an input power source with a current limit less than 5a. using a delayed turn-on or an undervoltage lockout circuit (described in the next section) would allow the input voltage to rise to a high enough level before the switcher would be allowed to turn on. because of the structural differences between the buck and the buck-boost regulator topologies, the buck regulator de- sign procedure section can not be used to to select the in- ductor or the output capacitor. the recommended range of inductor values for the buck-boost design is between 68 h and 220 h, and the output capacitor values must be larger than what is normally required for buck designs. low input voltages or high output currents require a large value output capacitor (in the thousands of micro farads). the peak inductor current, which is the same as the peak switch current, can be calculated from the following formula: where f osc = 52 khz. under normal continuous inductor cur- rent operating conditions, the minimum v in represents the worst case. select an inductor that is rated for the peak cur- rent anticipated. also, the maximum voltage appearing across the regulator is the absolute sum of the input and output voltage. for a ?12v output, the maximum input voltage for the lm2576 is +28v, or +48v for the lm2576hv. the switchers made simple (version 3.0) design software can be used to determine the feasibility of regulator designs using different topologies, different input-output parameters, different components, etc. negative boost regulator another variation on the buck-boost topology is the negative boost configuration. the circuit in figure 11 accepts an input voltage ranging from ?5v to ?12v and provides a regulated ?12v output. input voltages greater than ?12v will cause the output to rise above ?12v, but will not damage the regulator. because of the boosting function of this type of regulator, the switch current is relatively high, especially at low input volt- ages. output load current limitations are a result of the maxi- mum current rating of the switch. also, boost regulators can not provide current limiting load protection in the event of a shorted load, so some other means (such as a fuse) may be necessary. undervoltage lockout in some applications it is desirable to keep the regulator off until the input voltage reaches a certain threshold. an under- voltage lockout circuit which accomplishes this task is shown in figure 12 , while figure 13 shows the same circuit applied to a buck-boost configuration. these circuits keep the regu- lator off until the input voltage reaches a predetermined level. v th ? v z1 +2v be (q1) ds011476-14 figure 10. inverting buck-boost develops ?12v ds011476-15 typical load current 400 ma for v in = ?5.2v 750 ma for v in = ?7v note: heat sink may be required. figure 11. negative boost ds011476-16 note: complete circuit not shown. figure 12. undervoltage lockout for buck circuit www.national.com 17 additional applications (continued) delayed startup the on /off pin can be used to provide a delayed startup feature as shown in figure 14 . with an input voltage of 20v and for the part values shown, the circuit provides approxi- mately 10 ms of delay time before the circuit begins switch- ing. increasing the rc time constant can provide longer de- lay times. but excessively large rc time constants can cause problems with input voltages that are high in 60 hz or 120 hz ripple, by coupling the ripple into the on /off pin. adjustable output, low-ripple power supply a 3a power supply that features an adjustable output voltage is shown in figure 15 . an additional l-c filter that reduces the output ripple by a factor of 10 or more is included in this circuit. definition of terms buck regulator a switching regulator topology in which a higher voltage is converted to a lower voltage. also known as a step-down switching regulator. buck-boost regulator a switching regulator topology in which a positive voltage is converted to a negative voltage without a transformer. duty cycle (d) ratio of the output switch's on-time to the oscillator period. catch diode or current steering diode the diode which provides a return path for the load current when the lm2576 switch is off. efficiency ( h ) the proportion of input power actually delivered to the load. capacitor equivalent series resistance (esr) the purely resistive component of a real capacitor's imped- ance (see figure 16 ). it causes power loss resulting in ca- pacitor heating, which directly affects the capacitor's operat- ing lifetime. when used as a switching regulator output filter, higher esr values result in higher output ripple voltages. ds011476-17 note: complete circuit not shown (see figure 10 ). figure 13. undervoltage lockout for buck-boost circuit ds011476-18 note: complete circuit not shown. figure 14. delayed startup ds011476-19 figure 15. 1.2v to 55v adjustable 3a power supply with low output ripple ds011476-20 figure 16. simple model of a real capacitor www.national.com 18 definition of terms (continued) most standard aluminum electrolytic capacitors in the 100 f1000 f range have 0.5 w to 0.1 w esr. higher-grade capacitors (alow-esro, ahigh-frequencyo, or alow-inductanceo) in the 100 f1000 f range generally have esr of less than 0.15 w . equivalent series inductance (esl) the pure inductance component of a capacitor (see figure 16 ). the amount of inductance is determined to a large ex- tent on the capacitor's construction. in a buck regulator, this unwanted inductance causes voltage spikes to appear on the output. output ripple voltage the ac component of the switching regulator's output volt- age. it is usually dominated by the output capacitor's esr multiplied by the inductor's ripple current ( d i ind ). the peak-to-peak value of this sawtooth ripple current can be de- termined by reading the inductor ripple current section of the application hints. capacitor ripple current rms value of the maximum allowable alternating current at which a capacitor can be operated continuously at a speci- fied temperature. standby quiescent current (i stby ) supply current required by the lm2576 when in the standby mode (on /off pin is driven to ttl-high voltage, thus turn- ing the output switch off). inductor ripple current ( d i ind ) the peak-to-peak value of the inductor current waveform, typically a sawtooth waveform when the regulator is operat- ing in the continuous mode (vs. discontinuous mode). continuous/discontinuous mode operation relates to the inductor current. in the continuous mode, the inductor current is always flowing and never drops to zero, vs. the discontinuous mode, where the inductor current drops to zero for a period of time in the normal switching cycle. inductor saturation the condition which exists when an inductor cannot hold any more magnetic flux. when an inductor saturates, the induc- tor appears less inductive and the resistive component domi- nates. inductor current is then limited only by the dc resis- tance of the wire and the available source current. operating volt microsecond constant (e t op ) the product (in voit s) of the voltage applied to the inductor and the time the voltage is applied. this e t op constant is a measure of the energy handling capability of an inductor and is dependent upon the type of core, the core area, the num- ber of turns, and the duty cycle. connection diagrams (note 15) note 15: (xx indicates output voltage option. see ordering information table for complete part number.) straight leads 5-lead to-220 (t) top view ds011476-21 lm2576t-xx or lm2576hvt-xx ns package number t05a to-263 (s) 5-lead surface-mount package top view ds011476-25 lm2576s-xx or lm2576hvs-xx ns package number ts5b lm2576sx-xx or lm2576hvsx-xx ns package number ts5b, tape and reel bent, staggered leads 5-lead to-220 (t) top view ds011476-22 lm2576t-xx flow lb03 or lm2576hvt-xx flow lb03 ns package number t05d www.national.com 19 physical dimensions inches (millimeters) unless otherwise noted 5-lead to-220 (t) order number lm2576t-3.3, lm2576hvt-3.3, lm2576t-5.0, lm2576hvt-5.0, lm2576t-12, lm2576hvt-12, lm2576t-15, lm2576hvt-15, lm2576t-adj or lm2576hvt-adj ns package number t05a www.national.com 20 physical dimensions inches (millimeters) unless otherwise noted (continued) bent, staggered 5-lead to-220 (t) order number lm2576t-3.3 flow lb03, lm2576t-xx flow lb03, lm2576hvt-3.3 flow lb03, lm2576t-5.0 flow lb03, lm2576hvt-5.0 flow lb03, lm2576t-12 flow lb03, lm2576hvt-12 flow lb03, lm2576t-15 flow lb03, lm2576hvt-15 flow lb03, lm2576t-adj flow lb03 or lm2576hvt-adj flow lb03 ns package number t05d www.national.com 21 physical dimensions inches (millimeters) unless otherwise noted (continued) life support policy national's products are not authorized for use as critical components in life support devices or systems without the express written approval of the president and general counsel of national semiconductor corporation. as used herein: 1. life support devices or systems are devices or systems which, (a) are intended for surgical implant into the body, or (b) support or sustain life, and whose failure to perform when properly used in accordance with instructions for use provided in the labeling, can be reasonably expected to result in a significant injury to the user. 2. a critical component is any component of a life support device or system whose failure to perform can be reasonably expected to cause the failure of the life support device or system, or to affect its safety or effectiveness. national semiconductor corporation americas tel: 1-800-272-9959 fax: 1-800-737-7018 email: support@nsc.com national semiconductor europe fax: +49 (0) 1 80-530 85 86 email: europe.support@nsc.com deutsch tel: +49 (0) 1 80-530 85 85 english tel: +49 (0) 1 80-532 78 32 fran?ais tel: +49 (0) 1 80-532 93 58 italiano tel: +49 (0) 1 80-534 16 80 national semiconductor asia pacific customer response group tel: 65-2544466 fax: 65-2504466 email: sea.support@nsc.com national semiconductor japan ltd. tel: 81-3-5639-7560 fax: 81-3-5639-7507 www.national.com 5-lead to-263 (s) order number lm2576s-3.3, lm2576s-5.0, lm2576s-12,lm2576s-15, lm2576s-adj, lm2576hvs-3.3, lm2576hvs-5.0, lm2576hvs-12, lm2576hvs-15, or lm2576hvs-adj ns package number ts5b 5-lead to-263 in tape & reel (sx) order number lm2576sx-3.3, lm2576sx-5.0, lm2576sx-12, lm2576sx-15, lm2576sx-adj, lm2576hvsx-3.3, lm2576hvsx-5.0, lm2576hvsx-12, lm2576hvsx-15, or lm2576hvsx-adj ns package number ts5b lm2576/lm2576hv series simple switcher 3a step-down voltage regulator national does not assume any responsibility for use of any circuitry described, no circuit patent licenses are implied and national reserves the righ t at any time without notice to change said circuitry and specifications. national p/n lm2576 - simple switcher 3a step-down voltage regulator see wireless products products > analog - regulators > simple switchers > lm2576 lm2576 product folder simple switcher 3a step-down voltage regulator see also: lm2596 - low cost & more efficient lm2599 - improved switching frequency, and efficiency. lm2673 - much improved switching frequency lm2676 - more improved efficiency and switching frequency. generic p/n 2576 general description features datasheet package & models samples & pricing design tools application notes webench live simulation! lm2576 webench? custom design/analyze/build it 6.0 <= v in lower v <= v in upper v <= 40.0 v out 1.2 <= v <= 37.0 i out a <= 3.00 ambient temperature c <= 100 what is webench? parametric table multiple output capability no on/off pin yes error flag no input voltage, min (volt) 4 input voltage, max (volt) 40, 60 output current, max 3000 ma output voltage (volt) 12, 15, 3.30, 5, 1.20 adjustable output voltage no, yes switching frequency (hz) 52000 adjustable switching frequency no sync pin no efficiency (%) 88, 75, 77 flyback no inverting yes step-up no step-down yes - datasheet title size in kbytes date view online download receive via email lm2576 lm2576hv series simple switcher 3a step- down voltage regulator 639 kbytes 29- jun- 99 view online download receive via email file:///h|/imaging/bitting/cpl/20020808_1/08062002_10/natl/08062002_html/lm2576.html (1 of 5) [aug-09-2002 2:05:44 pm] national p/n lm2576 - simple switcher 3a step-down voltage regulator lm2576 lm2576hv series simple switcher 3a step- down voltage regulator (japanese) 869 kbytes view online download receive via email if you have trouble printing or viewing pdf file(s), see printing problems. package availability, models, samples & pricing part number package status models samples & electronic orders budgetary pricing std pack size package marking type pins msl spice ibis qty $us each lm2576t-12 to 220 5 msl full production n/a n/a buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576t -12 p+ lm2576t-15 to 220 5 msl full production n/a n/a 24 hour samples buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576t -15 p+ lm2576t-3.3 to 220 5 msl full production n/a n/a 24 hour samples buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576t -3.3 p+ lm2576t-5.0 to 220 5 msl full production n/a n/a 24 hour samples buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576t -5.0 p+ lm2576t-adj to 220 5 msl full production n/a n/a 24 hour samples buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576t -adj p+ lm2576s-12 to 263 5 msl full production n/a n/a 24 hour samples buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576s -12 p+ lm2576s-15 to 263 5 msl full production n/a n/a 24 hour samples buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576s -15 p+ lm2576s-3.3 to 263 5 msl full production n/a n/a 24 hour samples buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576s -3.3 p+ lm2576s-5.0 to 263 5 msl full production n/a n/a 24 hour samples buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576s -5.0 p+ lm2576s- adj to 263 5 msl full production n/a n/a 24 hour samples buy now 1k+ $1.3600 rail of 45 [logo]uz2t lm2576s -adj p+ lm2576sx- 12 to 263 5 msl full production n/a n/a 1k+ $1.3600 reel of 500 [logo]uz2t lm2576s -12 p+ file:///h|/imaging/bitting/cpl/20020808_1/08062002_10/natl/08062002_html/lm2576.html (2 of 5) [aug-09-2002 2:05:44 pm] national p/n lm2576 - simple switcher 3a step-down voltage regulator lm2576sx- 15 to 263 5 msl full production n/a n/a 1k+ $1.3600 reel of 500 [logo]uz2t lm2576s -15 p+ lm2576sx- 3.3 to 263 5 msl full production n/a n/a buy now 1k+ $1.3600 reel of 500 [logo]uz2t lm2576s -3.3 p+ lm2576sx- 5.0 to 263 5 msl full production n/a n/a buy now 1k+ $1.3600 reel of 500 [logo]uz2t lm2576s -5.0 p+ lm2576sx- adj to 263 5 msl full production n/a n/a buy now 1k+ $1.3600 reel of 500 [logo]uz2t lm2576s -adj p+ lm2576-12 mdc die full production n/a n/a samples tray of n/a - lm2576-15 mdc die full production n/a n/a samples tray of n/a - lm2576-3.3 mdc die full production n/a n/a samples tray of n/a - lm2576-5.0 mdc die full production n/a n/a samples tray of n/a - lm2576-adj mdc die full production n/a n/a samples tray of n/a - lm2576hv-5 mdc die full production n/a n/a samples tray of n/a - lm2576-12 mwc wafer full production n/a n/a wafer jar of n/a - lm2576-15 mwc wafer full production n/a n/a wafer jar of n/a - lm2576-3.3 mwc wafer full production n/a n/a wafer jar of n/a - lm2576-5.0 mwc wafer full production n/a n/a wafer jar of n/a - lm2576-adj mwc wafer full production n/a n/a wafer jar of n/a - lm2576hv-5 mwc wafer full production n/a n/a wafer jar of n/a - general description file:///h|/imaging/bitting/cpl/20020808_1/08062002_10/natl/08062002_html/lm2576.html (3 of 5) [aug-09-2002 2:05:44 pm] national p/n lm2576 - simple switcher 3a step-down voltage regulator the lm2576 series of regulators are monolithic integrated circuits that provide all the active functions for a step-down (buck) switching regulator, capable of driving 3a load with excellent line and load regulation. these devices are available in fixed output voltages of 3.3v, 5v, 12v, 15v, and an adjustable output version. requiring a minimum number of external components, these regulators are simple to use and include internal frequency compensation and a fixed-frequency oscillator. the lm2576 series offers a high-efficiency replacement for popular three-terminal linear regulators. it substantially reduces the size of the heat sink, and in some cases no heat sink is required. a standard series of inductors optimized for use with the lm2576 are available from several different manufacturers. this feature greatly simplifies the design of switch-mode power supplies. other features include a guaranteed 4% tolerance on output voltage within specified input voltages and output load conditions, and 10% on the oscillator frequency. external shutdown is included, featuring 50 a (typical) standby current. the output switch includes cycle-by-cycle current limiting, as well as thermal shutdown for full protection under fault conditions. features l 3.3v, 5v, 12v, 15v, and adjustable output versions l adjustable version output voltage range, 1.23v to 37v (57v for hv version) 4% max over line and load conditions l guaranteed 3a output current l wide input voltage range, 40v up to 60v for hv version l requires only 4 external components l 52 khz fixed frequency internal oscillator l ttl shutdown capability, low power standby mode l high efficiency l uses readily available standard inductors l thermal shutdown and current limit protection l p+ product enhancement tested applications l simple high-efficiency step-down (buck) regulator l efficient pre-regulator for linear regulators l on-card switching regulators l positive to negative converter (buck-boost) design tools title size in kbytes date view online download receive via email simpleswitcher? dc-dc converters design software 10 kbytes 12-jun- 2002 view if you have trouble printing or viewing pdf file(s), see printing problems. application notes file:///h|/imaging/bitting/cpl/20020808_1/08062002_10/natl/08062002_html/lm2576.html (4 of 5) [aug-09-2002 2:05:44 pm] national p/n lm2576 - simple switcher 3a step-down voltage regulator title size in kbytes date view online download receive via email an-1061: an-1061 power conversion in line-powered equipment 142 kbytes 5- jan- 97 view online download receive via email an-1229: application note 1229 simple switcher pcb layout guidelines 229 kbytes 29- jul- 02 view online download receive via email an-776: application note 776 20 watt simple switcher forward converter 387 kbytes 1- may- 98 view online download receive via email an-946: high-efficiency 3a battery chargers use lm2576 regulators 109 kbytes 5- aug- 95 view online download receive via email high-efficiency 3a battery chargers use lm2576 regulators (japanese) 72 kbytes view online download receive via email if you have trouble printing or viewing pdf file(s), see printing problems. [information as of 5-aug-2002] search design purchasing quality company home about languages . website guide . about "cookies" . national is qs 9000 certified . privacy/security statement . contact us . site terms & conditions of use . copyright 2002 ? national semiconductor corporation . my preferences . feedback file:///h|/imaging/bitting/cpl/20020808_1/08062002_10/natl/08062002_html/lm2576.html (5 of 5) [aug-09-2002 2:05:44 pm] |
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