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  ? semiconductor components industries, llc, 2002 may, 2002 rev. 5 1 publication order number: cs52011/d cs5201-1 1.0 a adjustable linear regulator the cs52011 linear regulator provides 1.0 a with an output voltage accuracy of 1.0 %. the device uses two external resistors to set the output voltage within a 1.25 v to 5.5 v range. this regulator is intended for use as a post regulator and microprocessor supply. the fast loop response and low dropout voltage make this regulator ideal for applications where low voltage operation and good transient response are important. the circuit is designed to operate with dropout voltages less than 1.2 v at 1.0 a output current. device protection includes overcurrent and thermal shutdown. the cs5201 is pin compatible with the lt1086 family of linear regulators. the regulator is available in to220, surface mount d 2 , and sot223 packages. features ? output current to 1.0 a ? output accuracy to 1.0% over temperature ? dropout voltage (typical) 1.0 v @ 1.0 a ? fast transient response ? fault protection current limit thermal shutdown figure 1. applications diagram cs52011 v in v out adj 10 m f 5.0 v 5.0 v 0.1 m f 5.0 v tant 124 w 1.0% 200 w 1.0% 3.3 v @ 1.0 a 22 m f 5.0 v d 2 pak 3pin dp suffix case 418e sot223 st suffix case 318e to220 three lead t suffix case 221a 1 2 3 1 2 3 tab = v out pin 1. adj 2. v out 3. v in device package shipping ordering information* 2 cs52011gt3 to2203 50 units/rail cs52011gdp3 d 2 pak3 50 units/rail cs52011gdpr3 d 2 pak3 750 tape & reel cs52011gst3 sot2233 80 units/rail cs52011gstr3 sot2233 2500 tape & reel *additional ordering information can be found on page 7 of this data sheet. 2consult your local sales representative for fixed output voltage versions. 3to220 are all 3pin, straight leaded. d 2 pak and sot223 are all 3pin. see general marking information in the device marking section on page 7 of this data sheet. device marking information 1 2 3 http://onsemi.com
cs52011 http://onsemi.com 2 maximum ratings* parameter value unit supply voltage, v cc 7.0 v operating temperature range 40 to +70 c junction temperature 150 c storage temperature range 60 to +150 c lead temperature soldering: wave solder (through hole styles only) note 1 reflow (smd styles only) note 2 260 peak 230 peak c c esd damage threshold (human body model) 2.0 kv 1. 10 second maximum. 2. 60 second maximum above 183 c *the maximum package power dissipation must be observed. electrical characteristics (c in = 10 m f, c out = 22 m f tantalum, v out + v dropout < v in < 7.0 v, 0 c t a 70 c, t j +150 c, unless otherwise specified, i full load = 1.0 a) characteristic test conditions min typ max unit adjustable output voltage reference voltage (notes 3 and 4) v in v out = 1.5 v; v adj = 0 v 10 ma i out 1.0 a 1.241 (1.0%) 1.254 1.266 (+1.0%) v line regulation 1.5 v v in v out 5.75 v; i out = 10 ma 0.02 0.20 % load regulation (notes 3 and 4) v in v out = 1.5 v; 10 ma i out 1.0 a 0.04 0.40 % dropout voltage (note 5) i out = 1.0 a 1.0 1.2 v current limit v in v out = 3.0 v; t j 25 c 1.1 3.1 a minimum load current (note 6) v in = 7.0 v, v adj = 0 v 0.6 2.0 ma adjust pin current v in v out = 3.0 v; i out = 10 ma 50 100 m a thermal regulation (note 7) 30 ms pulse, t a = 25 c 0.002 0.020 %/w ripple rejection (note 7) f = 120 hz; i out = 1.0 a; v in v out = 3.0 v; v ripple = 1.0 v pp 80 db thermal shutdown (note 8) 150 180 210 c thermal shutdown hysteresis (note 8) 25 c 3. load regulation and output voltage are measured at a constant junction temperature by low duty cycle pulse testing. changes i n output voltage due to temperature changes must be taken into account seperately. 4. specifications apply for an external kelvin sense connection at a point on the output pin 1/4o from the bottom of the package . 5. dropout voltage is a measurement of the minimum input/output differential at full load. 6. the minimum load current is the minimum current required to maintain regulation. normally the current in the resistor divider used to set the output voltage is selected to meet the minimum load requirement. 7. guaranteed by design, not 100% tested in production. 8. thermal shutdown is 100% functionally tested in production. package pin description package pin number to220 d 2 pak sot223 pin symbol function 1 1 1 adj adjust pin (low side of the internal reference). 2 2 2 v out regulated output voltage (case). 3 3 3 v in input voltage.
cs52011 http://onsemi.com 3 figure 2. block diagram + thermal shutdown bandgap reference output current limit error amplifier v out adj v in typical performance characteristics 200 i out (ma) t j ( c) figure 3. dropout voltage vs. output current figure 4. reference voltage vs. temperature output current (a) v in v out (v) figure 5. load regulation vs. output current figure 6. minimum load current vs. v in v out 0.10 10 v dropout (v) output voltage deviation (%) 0.65 output voltage deviation (%) minimum load current (ma) 0.100 2 0 1.00 0.95 0.90 0.85 0.80 0.75 0 400 600 800 1000 0.08 0.06 0.04 0.02 0.00 0.02 0.04 0.06 0.08 0.10 0.12 0 20 30 40 50 60 70 80 90 100 110 120 130 0.075 0.050 0.025 0.000 12 0.60 0.55 0.50 0.45 0.40 134567 t case = 0 c t case = 125 c t case = 25 c t case = 0 c t case = 25 c t case = 125 c t case = 125 c t case = 25 c t case = 0 c c in = c out = 22 m f tantalum
cs52011 http://onsemi.com 4 10 temperature ( c) frequency (hz) figure 7. adjust pin current vs. temperature figure 8. ripple rejection vs. frequency time ( m s) v in v out (v) figure 9. transient response figure 10. short circuit current vs. v in v out 85 10 1 adjust pin current ( m a) ripple rejection (db) 3.5 load step (ma) i sc (a) 300 0 70 65 60 55 50 45 40 0 20 30 40 50 60 70 80 90 100 110 120 130 75 65 55 45 35 25 15 10 2 10 3 10 4 10 5 10 6 3.3 3.1 2.9 2.7 2.5 2.3 2.1 1.9 1.7 1.5 1.0 1.5 2.0 2.5 3.0 3.5 4.0 200 100 0 100 200 1000 500 0 12345678910 voltage deviation (mv) i o = 10 ma t case = 25 c i out = 1.0 a (v in v out ) = 3.0 v v ripple = 1.0 v pp c adj = 0.1 m f v out = 3.3 v c out = c in = 22 m f tantalum c adj = 0.1 m f applications information the cs52011 linear regulator provides adjustable voltages at currents up to 1.0 a. the regulator is protected against overcurrent conditions and includes thermal shutdown. the cs52011 has a composite pnpnpn output transistor and requires an output capacitor for stability. a detailed procedure for selecting this capacitor is included in the stability considerations section. adjustable operation the cs52011 has an output voltage range of 1.25 v to 5.5 v. an external resistor divider sets the output voltage as shown in figure 11. the regulator maintains a fixed 1.25v (typical) reference between the output pin and the adjust pin. a resistor divider network r1 and r2 causes a fixed current to flow to ground. this current creates a voltage across r2 that adds to the 1.25 v across r1 and sets the overall output voltage. the adjust pin current (typically 50 m a) also flows through r2 and adds a small error that should be taken into account if precise adjustment of v out is necessary. the output voltage is set according to the formula: v out  v ref   r1  r2 r1   i adj  r2 the term i adj r2 represents the error added by the adjust pin current.
cs52011 http://onsemi.com 5 r1 is chosen so that the minimum load current is at least 2.0 ma. r1 and r2 should be the same type, e.g. metal film for best tracking over temperature. while not required, a bypass capacitor from the adjust pin to ground will improve ripple rejection and transient response. a 0.1 m f tantalum capacitor is recommended for afirst cuto design. type and value may be varied to obtain optimum performance vs. price. figure 11. resistor divider scheme v in cs52011 v out adj v ref r 1 r 2 v out v in c 1 c 2 c adj i adj short circuit protection the cs52011 linear regulator has an absolute maximum specification of 7.0 v for the voltage dif ference between v in and v out . however, the ic may be used to regulate voltages in excess of 7.0 v. the main considerations in such a design are powerup and short circuit capability. in most applications, rampup of the power supply to v in is fairly slow, typically on the order of several tens of milliseconds, while the regulator responds in less than one microsecond. in this case, the linear regulator begins charging the load as soon as the v in to v out differential is large enough that the pass transistor conducts current. the load at this point is essentially at ground, and the supply voltage is on the order of several hundred millivolts, with the result that the pass transistor is in dropout. as the supply to v in increases, the pass transistor will remain in dropout, and current is passed to the load until v out reaches the point at which the ic is in regulation. further increase in the supply voltage brings the pass transistor out of dropout. the result is that the output voltage follows the power supply rampup, staying in dropout until the regulation point is reached. in this manner, any output voltage may be regulated. there is no theoretical limit to the regulated voltage as long as the v in to v out differential of 7.0 v is not exceeded. however, the possibility of destroying the ic in a short circuit condition is very real for this type of design. short circuit conditions will result in the immediate operation of the pass transistor outside of its safe operating area. overvoltage stresses will then cause destruction of the pass transistor before overcurrent or thermal shutdown circuitry can become active. additional circuitry may be required to clamp the v in to v out differential to less than 7.0 v if failsafe operation is required. one possible clamp circuit is illustrated in figure 12; however, the design of clamp circuitry must be done on an application by application basis. care must be taken to ensure the clamp actually protects the design. components used in the clamp design must be able to withstand the short circuit condition indefinitely while protecting the ic. figure 12. short circuit protection circuit for high voltage application. v in v out v adj external supply v out stability considerations the output compensation capacitor helps determine three main characteristics of a linear regulator: startup delay, load transient response, and loop stability. the capacitor value and type is based on cost, availability, size and temperature constraints. a tantalum or aluminum electrolytic capacitor is best, since a film or ceramic capacitor with almost zero esr can cause instability. the aluminum electrolytic capacitor is the least expensive solution. however, when the circuit operates at low temperatures, both the value and esr of the capacitor will vary considerably. the capacitor manufacturer's data sheet provides this information. a 22 m f tantalum capacitor will work for most applications, but with high current regulators such as the cs52011 the transient response and stability improve with higher values of capacitance. the majority of applications for this regulator involve large changes in load current so the output capacitor must supply the instantaneous load current. the esr of the output capacitor causes an immediate drop in output voltage given by:  v   i  esr for microprocessor applications it is customary to use an output capacitor network consisting of several tantalum and ceramic capacitors in parallel. this reduces the overall esr and reduces the instantaneous output voltage drop under transient load conditions. the output capacitor network should be as close to the load as possible for the best results.
cs52011 http://onsemi.com 6 protection diodes when large external capacitors are used with a linear regulator it is sometimes necessary to add protection diodes. if the input voltage of the regulator gets shorted, the output capacitor will discharge into the output of the regulator. the discharge current depends on the value of the capacitor, the output voltage and the rate at which v in drops. in the cs52011 linear regulator, the discharge path is through a large junction and protection diodes are not usually needed. if the regulator is used with large values of output capacitance and the input voltage is instantaneously shorted to ground, damage can occur. in this case, a diode connected as shown in figure 13 is recommended. figure 13. protection diode for large output capacitors v in cs52011 v out adj r 1 r 2 v out v in c 1 c 2 c adj in4002 (optional) output voltage sensing since the cs52011 is a three terminal regulator, it is not possible to provide true remote load sensing. load regulation is limited by the resistance of the conductors connecting the regulator to the load. for the adjustable regulator, the best load regulation occurs when r1 is connected directly to the output pin of the regulator as shown in figure 14. if r1 is connected to the load, rc is multiplied by the divider ratio and the effective resistance between the regulator and the load becomes. r c   r1  r2 r1  where r c = conductor parasitic resistance. figure 14. grounding scheme for adjustable output regulator to minimize parasitic resistance effects v in v in v out adj cs52011 conductor parasitic resistance r 1 r load r 2 r c calculating power dissipation and heat sink requirements the cs52011 linear regulator includes thermal shutdown and current limit circuitry to protect the device. high power regulators such as these usually operate at high junction temperatures so it is important to calculate the power dissipation and junction temperatures accurately to ensure that an adequate heat sink is used. the case is connected to v out on the cs52011, electrical isolation may be required for some applications. thermal compound should always be used with high current regulators such as these. the thermal characteristics of an ic depend on the following four factors: 1. maximum ambient temperature t a ( c) 2. power dissipation p d (watts) 3. maximum junction temperature t j ( c) 4. thermal resistance junction to ambient r q ja ( c/w) these four are related by the equation t j  t a  p d  r  ja (1) the maximum ambient temperature and the power dissipation are determined by the design while the maximum junction temperature and the thermal resistance depend on the manufacturer and the package type. the maximum power dissipation for a regulator is: p d(max)  { v in(max)  v out(min) } i out(max)  v in(max) i q (2) where: v in(max) is the maximum input voltage, v out(min) is the minimum output voltage, i out(max) is the maximum output current, for the application i q is the maximum quiescent current at i out(max) . a heat sink effectively increases the surface area of the package to improve the flow of heat away from the ic and into the surrounding air. each material in the heat flow path between the ic and the outside environment has a thermal resistance. like series electrical resistances, these resistances are summed to determine r q ja , the total thermal resistance between the junction and the surrounding air. 1. thermal resistance of the junction to case, r q jc ( c/w) 2. thermal resistance of the case to heat sink, r q cs ( c/w) 3. thermal resistance of the heat sink to the ambient air, r q sa ( c/w) these are connected by the equation: r  ja  r  jc  r  cs  r  sa (3)
cs52011 http://onsemi.com 7 the value for r q ja is calculated using equation (3) and the result can be substituted in equation (1). the value for r q jc is 3.5 c/w for a given package type based on an average die size. for a high current regulator such as the cs52011 the majority of the heat is generated in the power transistor section. the value for r q sa depends on the heat sink type, while r q cs depends on factors such as package type, heat sink interface (is an insulator and thermal grease used?), and the contact area between the heat sink and the package. once these calculations are complete, the maximum permissible value of r q ja can be calculated and the proper heat sink selected. for further discussion on heat sink selection, see application note athermal management,o document number and8036/d, available through the literature distribution center or via our website at http://onsemi.com. additional ordering information orderable part number type description cs52011gt3 1.0 a, adj. output to220 three lead, straight cs52011gdp3 1.0 a, adj. output d 2 pak 3pin cs52011gdpr3 1.0 a, adj. output d 2 pak 3pin (tape & reel) cs52011gst3 1.0 a, adj. output sot223 cs52011gstr3 1.0 a, adj. output sot223 (tape & reel) marking diagrams cs52011 awlyww 1 ayw 52011 1 cs52011 awlyww 1 d 2 pak 3pin dp suffix case 418e sot223 st suffix case 318e to220 three lead t suffix case 221a a = assembly location wl, l = wafer lot yy, y = year ww, w = work week
cs52011 http://onsemi.com 8 package dimensions to220 three lead t suffix case 221a08 issue aa notes: 1. dimensioning and tolerancing per ansi y14.5m, 1982. 2. controlling dimension: inch. a k l g d n h q f 123 4 t seating plane s r j u t c 3 pl b y m b m 0.25 (0.010) y dim min max min max millimeters inches a 0.560 0.625 14.23 15.87 b 0.380 0.420 9.66 10.66 c 0.140 0.190 3.56 4.82 d 0.025 0.035 0.64 0.89 f 0.139 0.155 3.53 3.93 g 0.100 bsc 2.54 bsc h --- 0.280 --- 7.11 j 0.012 0.045 0.31 1.14 k 0.500 0.580 12.70 14.73 l 0.045 0.060 1.15 1.52 n 0.200 bsc 5.08 bsc q 0.100 0.135 2.54 3.42 r 0.080 0.115 2.04 2.92 s 0.020 0.055 0.51 1.39 t 0.235 0.255 5.97 6.47 u 0.000 0.050 0.00 1.27 v v 0.045 --- 1.15 --- d 2 pak 3pin dp suffix case 418e01 issue o t dim min max min max millimeters inches a 0.326 0.336 8.28 8.53 b 0.396 0.406 10.05 10.31 c 0.170 0.180 4.31 4.57 d 0.026 0.036 0.66 0.91 e 0.045 0.055 1.14 1.40 f 0.090 0.110 2.29 2.79 g 0.100 bsc 2.54 bsc h 0.098 0.108 2.49 2.74 j 0.018 0.025 0.46 0.64 k 0.204 0.214 5.18 5.44 m 0.055 0.066 1.40 1.68 n 0.000 0.004 0.00 0.10 notes: 1. dimensions and tolerancing per ansi y14.5m, 1982. 2. controlling dimension: inch. b n a k m e c seating plane f h j d 3 pl g t m 0.13 (0.005) m b 123 4 l l 0.045 0.055 1.14 1.40
cs52011 http://onsemi.com 9 sot223 st suffix case 318e04 issue k h s f a b d g l 4 123 0.08 (0003) c m k j dim a min max min max millimeters 0.249 0.263 6.30 6.70 inches b 0.130 0.145 3.30 3.70 c 0.060 0.068 1.50 1.75 d 0.024 0.035 0.60 0.89 f 0.115 0.126 2.90 3.20 g 0.087 0.094 2.20 2.40 h 0.0008 0.0040 0.020 0.100 j 0.009 0.014 0.24 0.35 k 0.060 0.078 1.50 2.00 l 0.033 0.041 0.85 1.05 m 0 10 0 10 s 0.264 0.287 6.70 7.30 notes: 1. dimensioning and tolerancing per ansi y14.5m, 1982. 2. controlling dimension: inch.  package thermal data parameter to220 three lead d 2 pak 3pin sot223 unit r q jc typical 3.5 3.5 15 c/w r q ja typical 50 1050* 156 c/w * depending on thermal properties of substrate. r q ja = r q jc + r q ca
cs52011 http://onsemi.com 10 notes
cs52011 http://onsemi.com 11 notes
cs52011 http://onsemi.com 12 on semiconductor and are registered trademarks of semiconductor components industries, llc (scillc). scillc reserves the right to mak e changes without further notice to any products herein. scillc makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does scillc assume any liability arising out of the application or use of any product or circuit, and s pecifically disclaims any and all liability, including without limitation special, consequential or incidental damages. atypicalo parameters which may be provided in scillc data sheets and/or specifications can and do vary in different applications and actual performance may vary over time. all operating parameters, including atypicalso must be validated for each customer application by customer's technical experts. scillc does not convey any license under its patent rights nor the rights of others. scillc products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body , or other applications intended to support or sustain life, or for any other application in which the failure of the scillc product could create a sit uation where personal injury or death may occur. should buyer purchase or use scillc products for any such unintended or unauthorized application, buyer shall indem nify and hold scillc and its of ficers, employees, subsidiaries, affiliates, and distributors harmless against all claims, costs, damages, and expenses, and re asonable attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized u se, even if such claim alleges that scillc was negligent regarding the design or manufacture of the part. scillc is an equal opportunity/affirmative action employ er. publication ordering information japan : on semiconductor, japan customer focus center 4321 nishigotanda, shinagawaku, tokyo, japan 1410031 phone : 81357402700 email : r14525@onsemi.com on semiconductor website : http://onsemi.com for additional information, please contact your local sales representative. cs52011/d literature fulfillment : literature distribution center for on semiconductor p.o. box 5163, denver, colorado 80217 usa phone : 3036752175 or 8003443860 toll free usa/canada fax : 3036752176 or 8003443867 toll free usa/canada email : onlit@hibbertco.com n. american technical support : 8002829855 toll free usa/canada


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