PKF5611SI ERICSSON | Alldatasheet
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5–6 W DC/DC Power Modules Wide Input Series
- SMD and through-hole versions with ultra low component height 8 mm (0.315 in.) 18–72 V input voltage range 82% efficiency (typ at 5 V) 1,500 Vdc isolation voltage Switching frequency syncronization MTBF > 4.9 million hours at +55°C case temperature (+40 °C ambient) Low EMI measured according to CISPR 22 and FCC part 15J The MacroDens™ PKF 5000 I series true component level on-board DC/DC power modules are intended as distributed power sources in decentralized 24, 48 and 60VDC power systems. Utilization of thick film technology and a high degree of silicon integration has made it possible to achieve a MTBF of more than 4.9 million hour. The highly reliable and rugged over-moulded design and the ultra low height of these DC/DC power modules makes them particularly suited for Informa- tion Technology and Telecom (IT&T) and other demanding industrial applications, with board spacing down to 15 mm or 0.6 in. These DC/DC power modules are optimized for free convection cooling and have an operational ambient temperature range in compliance with present and future application needs, including non temperature con- trolled environments. The mechanical design offers the choice of surface mount or through-hole versions, delivered in ready- to-use tubes, trays or tape & reel package, and compatibility with semi and fully aqueous cleaning processes. The PKF series is manufactured using highly automated manufacturing lines with a world-class quality commitment and a five-year warranty. Ericsson Microelectronics AB has been an ISO 9001 certified supplier since 1991. For a complete product program please reference the back cover. Patents US: D357901 DE: M94022763 /G69 PKF 5000 I
EN/LZT 146 32 R1A (Replaces EN/LZT 137 27 R3) ©Ericsson Microelectronics, June 2000 General The input voltage range 18…72 Vdc meets the European Telecom Standard ETS 300 132-2 Nominal input voltage range in 48 V and 60 Vdc power systems, –40.5… –57.0 V and –50.0…–72.0 V respectively. At input voltages exceeding 72 V (abnormal voltage) the power loss will be higher than at normal input voltage and T C must be limited to max +90°C. Absolute max continuous input voltage is 75 Vdc. Output characteristics will be marginally affected at input voltages exceeding 72 V. The test is applicable for through-hole versions. Stress in excess of Absolute Maximum Rat- ings may cause permanent damage. Absolute Maximum Ratings, sometimes referred to as no destruction limits, are normally tested with one parameter at a time exceeding the limits of Output data or Electrical Charac- teristics. If exposed to stress above these limits, function and performance may de- grade in an unspecified manner. Absolute Maximum Ratings Characteristics Unit Isolation voltage (input to output test voltage)V ISO T C Case temperature at full output power –45 min max +100 °C T S Storage temperature –55 +125 °C V I Continuous input voltage –0.5 +75 V dc 1,500 Vdc W tr Transient input energy 0.01 Ws V RC Remote control voltage pin 10,11 +16 Vdc–5 V adj Output adjust voltage pin 8, 9 +40 Vdc–5 Input T C < T Cmax unless otherwise specified Characteristics max Unit mW mW Input stand-by powerP RC Conditions min typ V I Input voltage range
72 V18
V Ioff Turn-off input voltage 16 V15 (See typical characteristics) V Ion Turn-on input voltage 17.4 V 17.9 (See typical characteristics) C I Input capacitance 1.4 /G109F I = 27V) I = 53V) 244 240I O =0,T C = –30…+90°CP Ii Input idling power T C = –30…+90°C RC connected to pin 17 I = 27V) I = 53V) Environmental Characteristics Characteristics Frequency 10…500 Hz Amplitude 0.75 mm Acceleration 10 g Number of cycles 10 in each axis Vibration (Sinusoidal) JESD 22-B103 (IEC 68-2-6 F c Test procedure & conditions Frequency 10…500 Hz Acceleration density spectrum 0.5 g /Hz Duration 10 min in 3 directions Reproducability medium (IEC 62-2-36) MIL-STD-883 Method 2026 (IEC 68-2-34 E d Random vibration Peak acceleration 200 g Shock duration 3 ms Shock (Half sinus) JESD 22-B104 (IEC 68-2-27 E a Temperature 85°C Humidity 85% RH Duration 1000 hours Temperature –40°C…+125°C Number of cycles 500 Temperature, solder 260°C Duration 10…13 s Temperature change Accelerated damp heat Solder resistability JESD 22-A104 (IEC 68-2-14 N a JESD 22-A101 (IEC 68-2-3 C a with bias) JESD 22-B106 (IEC 68-2-20 T b 1A) Duration 96 h Temperature 35°C Concentration 5 % IEC 68-2-11 K a Aggressive environment NOTES:
3EN/LZT 146 32 R1A (Replaces EN/LZT 137 27 R3) ©Ericsson Microelectronics, June 2000 Connections Case The case consists of semiconductor grade epoxy with embedded pins. Coefficient of thermal expansion (CTE) is typ. 15 ppm/°C. Weight Maximum 20 g (0.71 oz). Connection Pins Base material is copper (Cu), first plating is nickel (Ni) and second (outer) plating is palladium (Pd). Pin Designation Function 1 Out 1 Output 1. Positive voltage ref. to Rtn. 2 Rtn Output return. 3–6 NC Not connected. 7 Sync Synchronization input. adj Output voltage adjust. To set typical output voltage (V Oi) connect pin 8 to pin 9. 9 NOR Connection of Nominal Output voltage Resistor. (See output voltage adjust p. 12). 10 Aux Internally connected to pin 11. 11 RC Remote control and turn-on/off input voltage adjust. Used to turn-on and turn-off output. 12–16 NC Not connected. 17 –In Negative input. 18 +In Positive input. Mechanical Data Through-hole version Foot print Component side Dimensions in mm (in) 2.8 [0.110] 12 3456789 101112131415161718 40.0 [1.575] Dimensions in mm (in) Surface-mount version /G52/G48/G46/G48/G32/G91/G49/G46/G53/G55/G53/G93 Foot print Component side
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Over-temperature protection The PKF 5000 series will automatically shut down when the internal junction temperature of the control IC in the converter reaches typ. 150°C. It will automatically re-start when the junction temperature cools below typ. 140°C. Palladium plating is used on the terminal pins. A pin temperature (T in excess of the solder fusing temperature (+183°C for Sn/Pb 63/37) for more than 25 seconds and a peak temperature above 195°C, is required to guarantee a reliable solder joint. Both pin 1 and pin 9 must be monitored. No responsibility is assumed if these recommendations are not strictly followed. Reflow Soldering Information The PKF series of DC/DC power modules are manufactured in surface mount technology. Extra precautions must therefore be taken when reflow soldering the surface mount version. Neglecting the soldering information given below may result in permanent damage or signifi- cant degradation of power module performance. The PKF series can be reflow soldered using IR, Natural Convection, Forced Convection or Combined IR/Convection Technologies. The high thermal mass of the component and its effect on /G68T (°C) requires that particular attention be paid to other temperature sensitive components. IR Reflow technology may require the overall profile time to be ex- tended to approximately 8–10 minutes to ensure an acceptable /G68T. Higher activity flux may be more suitable to overcome the increase in oxidation and to avoid flux burn-up. The general profile parameters detailed in the diagram, with this ex- tended time to reach peak temperatures, would then be suitable. Note! These are maximum parameters. Depending on process varia- tions, an appropriate margin must be added. Two-parameter model This model provides a more precise description of the thermal charac- teristics to be used for thermal calculations. Thermally the power module can be considered as a component and the case temperature can be used to characterize the properties. The thermal data for a power module with the substrate in contact with the case can be described with two thermal resistances. One from the case to ambient air and one from case to PB (Printed Board). The thermal characteristics can be calculated from the following formula: T PB = (TC–TA)×(Rth C–PB+Rth C–A)/Rth C–A–Pd×Rth C–PB+TA Where: Pd: dissipated power, calculated as P O ×(l//G104–1) TC: max average case temperature TA: ambient air temperature at the lower side of the power module TPB: temperature in the PB between the PKF connection pins Rth C-PB: thermal resistance from case to PB under the power module Rth C-A: thermal resistance from case to ambient air v: velocity of ambient air. Rth C-PB is constant and Rth C-A is dependent on the air velocity. Free convection is equal to an air velocity of approx. 0.2 – 0.3 m/s. See figure below.
5EN/LZT 146 32 R1A (Replaces EN/LZT 137 27 R3) ©Ericsson Microelectronics, June 2000 Safety The PKF Series DC/DC power modules are designed in accordance with EN 60 950, Safety of information technology equipment including electrical business equipment . SEMKO approval pending. The DC/DC power module shall be installed in an end-use equip- ment and considerations should be given to measuring the case tem- perature to comply with T Cmax when in operation. Abnormal compo- nent tests are conducted with the input protected by an external 3 A fuse. The need for repeating these tests in the end-use appliance shall be considered if installed in a circuit having higher rated devices. When the supply to the DC/DC power module meets all the require- ments for SELV (<60Vdc), the output is considered to remain within SELV limits (level 3). The isolation is an operational insulation in accordance with EN 60950. The DC/DC power module is intended to be supplied by isolated secondary circuitry and shall be installed in compliance with the requirements of the ultimate application. If they are connected to a
60 V DC system reinforced insulation must be provided in the power
supply that isolates the input from the mains. Single fault testing in the power supply must be performed in combination with the DC/DC power module to demonstrate that the output meets the requirement for SELV. One pole of the input and one pole of the output is to be grounded or both are to be kept floating. The terminal pins are only intended for connection to mating con- nectors of internal wiring inside the end-use equipment. These DC/DC power modules may be used in telephone equipment in accordance with paragraph 34 A.1 of UL 1459 (Standard for Tele- phone Equipment, second edition). The galvanic isolation is verified in an electric strength test. Test voltage (V ISO) between input and output is 1,500 Vdc for 60 s. In production the test duration is decreased to 1 s. The capacitor between input and output has a value of 1 nF and the leakage current is less than 1µA @ 53 Vdc. The case is designed in non-conductive epoxy. Its flammability rating meets UL 94V-0. The oxygen index is 34%. Fundamental circuit diagrams Single output Electrical Data Transient input voltage Single voltage pulse at +25 °C ambient temperature .
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0 1.5 A PKF 5510 PI, SI Characteristics Conditions Output 1 min typ max Unit Output voltage initial setting and accuracyVOi Output voltage tolerance band VO Idling voltage IO = 0 A Load regulation IO = 0.15…1.5 A, V I = 53 V ttr Load transient voltageVtr Temperature coefficient 2)Tcoeff tr Start-up timets IO Max output power 2)POmax Current limiting thresholdIlim TC <TCmax, VO = 3.0 V Short circuit currentIsc VO = 0.2…0.5 V, T A =+2 5° C
20 Hz…5 MHz
Line regulation IO = 1,5 A Load transient recovery time 3.27 3.30 3.33 V 3.8 4.3 V 30 mV 50 200 mV +150 mV –150 mV TC = –30…+90°C, V I = 18 ...72V and pin 8 connected to pin 9 unless otherwise specified. –0.4 mV/°C 2m s 5m s 1.65 2.30 2.50 A 2.7 A 20 70 mV p-p 80 dB /G109V 100 /G109s 0.6 …50 MHz Long term drift incl. Output IO = 0.15…1.5 A VI = 18…36 V VI = 38…60 V Output adjust range 1) 2.80 3.80 V IO = 0.15…1.5 A, V I = 53 V load step = 0.75 A 45 dB 1) See also Operating Information. 2) See Typical Characteristics. TC = +25°C, IO = 1.5 A, VI = 53 V Ramp-up time Output current IO = 1.5 AOutput ripple & noiseVOac f = 100 Hz sine wave, 1V p-p, VI = 53 V (SVR = 20 log (1 V p-p/VOp-p)) IO = 0.15…1.5A , VI = 53 V From VI connection to V O = 0…0.9×V Oi IO =1.5 A, TC =+40…+90ºC SVR Supply voltage rejection (ac) VI = 50…72 V 15 Calculated value IO = 0.15…1.5 A, V I = 19–72V IO = 0.2…1.5 A, V I = 20-72V 3.00 3.46 3.13 3.46 3.17 3.42 V 1.2 1.4 Characteristics Conditions Unitmin typ max Pd Power dissipation Miscellaneous %Efficiency/G104 IO = 1.5 A 78 80 VI = 27 V VI = 53 V VI = 27 V VI = 53 V 75 78 1.4 1.7 W
7EN/LZT 146 32 R1A (Replaces EN/LZT 137 27 R3) ©Ericsson Microelectronics, June 2000 01 . 2 A PKF 5611 PI, SI Characteristics Conditions Output 1 min typ max Unit Output voltage initial setting and accuracyVOi Output voltage tolerance band VO Idling voltage IO = 0 A Load regulation IO = 0.3…1.2 A, V I = 27 V ttr Load transient voltageVtr Temperature coefficient 2)Tcoeff tr Start-up timets IO Max output power 2)POmax Current limiting thresholdIlim TC <TCmax, VO = 4.0 V Short circuit currentIsc VO = 0.2…0.5 V, T A =+25°C Line regulation IO = 1.2 A Load transient recovery time 5.02 5.05 5.08 V 5.7 6.0 V 20 mV 135 mV +120 mV –120 mV TC = –30…+90°C, V I = 18 ...72V and pin 8 connected to pin 9 unless otherwise specified. –1.1 mV/°C 125 m s 4.8 10 ms 1.3 1.8 2.0 A 2.0 3.5 A 50 150 mV p-p 80 dB /G109V 330 /G109s 0.6 …50 MHz 4.85 5.25 VLong term drift included Output IO = 0.15…1.2 A VI = 18…36 V VI = 38…60 V Output adjust range 1) 4.30 5.80 V IO = 0.12…12 A, V I = 53 V load step = 0.6 A 60 dB 1) See also Operating Information. 2) See Typical Characteristics. TC = +25°C, IO = 0.2 A, VI = 53 V Ramp-up time Output current IO = 1.2 AOutput ripple & noiseVOac f = 100 Hz sine wave, 1V p-p, VI = 53 V (SVR = 20 log (1 V p-p/VOp-p)) IO = 0.1…1.2 A , VI = 53 V From VI connection to V O = 0…0.9 ×V Oi IO = 1.2 A, TC =+40…+90ºC SVR Supply voltage rejection (ac) 1.2 1.6 Characteristics Conditions Unitmin typ max Pd Power dissipation Miscellaneous %Efficiency/G104 IO = 1.2 A 79 83 VI = 27 V VI = 53 V VI = 27 V VI = 53 V 79 81 1.4 1.6 W VI = 50…72 V 10 Calculated value
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0 0.86 A PKF 5617 PI, SI Characteristics Conditions Output 1 min typ max Unit Output voltage initial setting and accuracyVOi Output voltage tolerance band VO Idling voltage IO = 0 A, VI =53 V Load regulation IO = 0.08…0.86 A, V I = 27 V ttr Load transient voltageVtr Temperature coefficient 2)Tcoeff tr Start-up timets IO Max output power 2)POmax Current limiting thresholdIlim TC <TCmax, VO = 4.0 V Short circuit currentIsc VO = 0.2…0.5 V , T A =+25°C Line regulation IO =0.86 A Load transient recovery time 6.95 7.00 7.05 V 7.5 7.9 V 10 mV 120 mV +130 mV –130 mV TC = –30…+90°C, V I = 18 ...72V and pin 8 connected to pin 9 unless otherwise specified. –1.2 mV/°C 135 m s 51 0 m s 1.0 1.2 1.6 A 1.8 3.5 A 50 150 mV p-p 80 dB /G109V 350 /G109s 0.6 …50 MHz 6.65 7.35 VLong term drift included Output IO = 0.086…0.86 A VI = 18…36 V VI = 38…60 V Output adjust range 1) 5.95 8.05 V IO = 0.086…0.86 A, V I = 53 V load step = 0.43 A 60 dB *1) See also Operating Information. 12) See Typical Characteristics. TC = +25°C, IO = 0.72 A, VI = 53 V Ramp-up time Output current IO =0.86 AOutput ripple & noiseVOac f = 100 Hz sine wave, 1V p-p, VI = 53 V (SVR = 20 log (1 V p-p/VOp-p)) IO = 0.086…0.86 A , VI = 53 V From VI connection to V O = 0.9 ×VOi IO = IOmax, 0.1…0.9 ×V O, VI = 53 V IO = 0.86 A, TC =+40…+90ºC SVR Supply voltage rejection (ac) 1.1 1.5 Characteristics Conditions Unitmin typ max Pd Power dissipation Miscellaneous %Efficiency/G104 IO = 0.86 A 80 84 VI = 27 V VI = 53 V VI = 27 V VI = 53 V 80 82 1.3 1.5 W VI = 50…72 V 10 Calculated value
9EN/LZT 146 32 R1A (Replaces EN/LZT 137 27 R3) ©Ericsson Microelectronics, June 2000 Typical Characteristics Output characteristic (typ) Power derating Temperature coefficient Turn-on/turn/off input voltage Efficiency (typ) @ TA = +25°C PKF 5510 PI, SI Output characteristic (typ) Power derating Temperature coefficient Turn-on/turn/off input voltage Efficiency (typ) @ TA = + 25°C PKF 5611 PI, SI The output voltage deviation is deter- mined by the load transient (dI/dt) Load change: dI/dt » 4 A/ms 0.2 ms/div Dynamic load response (typ)@+25C The output voltage deviation is deter- mined by the load transient (dI/dt) Load change: dI/dt » 4 A/ms Dynamic load response (typ)@+ 25C 100 mV/div
1 A/div
0.2 ms/div 100 mV/div
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Output characteristic (typ) Power derating Temperature coefficient Turn-on/turn/off input voltage Efficiency (typ) @ TA = +25°C PKF 5617 PI, SI The output voltage deviation is deter- mined by the load transient (dI/dt) Load change: dI/dt » 4 A/ms Dynamic load response (typ)@+ 25C 0.2 ms/div 100 mV/div
11EN/LZT 146 32 R1A (Replaces EN/LZT 137 27 R3) ©Ericsson Microelectronics, June 2000 EMC Specifications EFT Electrical Fast Transients on the input terminals could affect the output voltage regulation causing functional errors on the Printed Board Assembly (PBA). The PKF power modules withstand EFT levels of 0.5 kV keeping V O within the tolerance band and 2.0 kV without destruction. Tested according to IEC publ. 801-4. Output Ripple & Noise (VOac) Output ripple is measured as the peak to peak voltage of the funda- mental switching frequency.Operating Information Remote Control (RC) Turn-on or turn-off can be realized by using the RC-pin. If pin 11 is connected to pin 17 the power module turns off. Normal operation is achieved if pin 11 is open (NC) . To ensure safe turn-off the voltage difference between pin 11 and 17 shall be less than 2.0V. RC is an TTL open collector compatible output with a sink capacity >300 /G109A (see fig. 1). Fuse Considerations To prevent excessive current from flowing through the input supply line, in the case of a short-circuit across the converter input, an external fuse should be installed in the non-earthed input supply line. We recommend using a fuse rated at approximately 2 to 4 times the value calculated in the formula below: For further information, please refer to the fuse manufacturer . P Omax (/G104min × VImin)Iinmax = The fundamental switching frequency is 510 kHz ± 26 kHz. Frequency range Voltage level The signal is amplitude modulated with 1 kHz/80% and applied both differential and common mode. Conducted EMS Electro Magnetic Susceptibility is measured by injection of elec- trical disturbances on the input terminals. No deviation outside the V O tolerance band will occur under the following conditions: Conducted EMI (input teminals) PKF series typical conducted EMI performance Test set up The PKF meets class A in VDE 0871/0878, FCC Part 15J, and CISPR 22 (EN 55022), except for the fundamental switching frequency. Radiated EMS (Electro-Magnetic Fields) Radiated EMS is measured according to test methods in IEC Standard publ. 801-3. No deviation outside the VO tolerance band will occur under the following conditions: Frequency range Voltage level 0.01...200 MHz 3 V rms/m 200...1,000 MHz 3 V rms/m 1...12 GHz 10 V rms/m Test Voltage level Air discharge ±4 kV Contact discharge ±2 kV ESD Electro Static Discharge is tested according to IEC publ. 801-2. No destruction will occur if the following voltage levels are applied to any of the terminal pins: Figure 1 Over Voltage Protection (OVP) The remote control can also be utilized for OVP by using the exter- nal circuitry in figure 2. Resistor values are for 5V output applica- tions, but can easily be adjusted for other output voltages and the desired OVP level.
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Output Voltage Adjust (Vadj) Output voltage, VO, can be adjusted by using an external resistor. Typical adjust range is ±15%. If pin 8 and 9 are not connected to- gether the output will decrease to a low value.To increase VO a resis- tor should be connected between pin 8/9 and 17, and to decrease V O a resistor should be connected between pin 8 and 9 (see fig. 4). Typical required resistor value to increase VO is given by: Radj = k1×(k2 – VO)/(VO – VOi), (k/G87) where V O is the desired output voltage VOi is the typical output voltage initial setting and k 1=3.18 k 2=3.86 PKF 5510 k1=3.18 k 2=5.93 PKF 5611 k1=3.18 k 2=8.05 PKF 5617 Typical required resistor value to decrease VO is given by: Radj = k3 × (VOi –VO)/(VO – k4), (k/G87/G41 where k 3=13.0 k 4=2.75 PKF 5510 k3=12.6 k 4=4.28 PKF 5611 k3=12.6 k 4=5.95 PKF 5617 Voltage Margining For voltage controlled margining e.g. at final test, the following setup can be used. By increasing the control voltage V1 to +10V the output voltage decreases 5% of VOi, and by decreasing V1 to –10V the output voltage increases 5%. Capacitive Load The PKF series has no maximum limit for capacitive load on the out- put. The power module may operate in current limiting mode during start-up, affecting the ramp-up and the start-up time. For optimum start performance we recommend maximum 100 /G109F/A of I O. Connect capacitors at the point of load for best performance. Input and Output Impedance Both the source impedance of the power feeding and the load imped- ance will interact with the impedance of the DC/DC power module. It is most important to have the ratio between L and C as low as possible, i.e. a low characteristic impedance, both at the input and output, as the power modules have a low energy storage capability. Use an electrolytic capacitor across the input if the source is larger than 10 /G109H. Their equivalent series resistance together with the capacitance acts as a lossless damping filter. Suitable capacitor values are in the range 10–100 /G109F. Current Limiting Protection (Ilim) The output power is limited at loads above the output current limiting threshold (Ilim), specified as a minimum value. Parallel Operation Paralleling of several converters is easily accomplished by direct connection of the output voltage terminal pins. The load regulation characteristic is specifically designed for optimal paralleling per- formance. Load sharing between converters will be within ±10%. It is recommended not to exceed P O = n × 0.9 × POmax, where POmax is the maximum converter output power and n the number of paralleled converters, to prevent overloading any of the converters and thereby decreasing the reliability performance. Figure 4 Synchronization (Sync) It is possible to synchronize the switching frequency to an external symmetrical clock signal. The input is TTL-compatible and refer- enced to the input pin 17. Characteristic min typ max unit High level 2.2 6.5 V Threshold level*) 1.2 1.7 2.2 V Low level 0 0.4 V Sink current 1.5 mA Sync. frequency 520 688 kHz *) Rise time <10ns Figure 2 Figure 3
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Meantime between failure (MTBF) is calculated to >4.9 million hours at full output power and a pin temperature of +55°C (TA = +40°C), using the Ericsson failure rate data system. The Ericsson failure rate data system is based on field failure rates and is continously updated. The data corresponds to actual failure rates of components used in Information Technology and Telecom equipment in temperature controlled environments (T A = –5… +65°C). The data is considered to have a confidence level of 90%. For more information see Design Note 002. Quality Statement The products are designed and manufactured in an industrial envi- ronment where quality systems and methods like ISO 9000, 6 /G115 and SPC, are intensively in use to boost the continuous improvements strategy. Infant mortality or early failures in the products are screened out by a burn-in procedure and an ATE-based final test. Conservative design rules, design reviews and product qualifications, plus the high competence of an engaged work force, contribute to the high quality of our products. Warranty Ericsson Microelectronics warrants to the original purchaser or end user that the products conform to this Data Sheet and are free from material and workmanship defects for a period of five (5) years from the date of manufacture, if the product is used within specified con- ditions and not opened. In case the product is discontinued, claims will be accepted up to three (3) years from the date of the discontinu- ation. For additional details on this limited warranty please refer to Ericsson Microelectronics AB’s “General Terms and Conditions of Sales”, or individual contract documents. Limitation of liability Ericsson Microelectronics does not make any other warranties, ex- pressed or implied including any warranty of merchantability or fitness for a particular purpose (including, but not limited to, use in life support applications, where malfunctions of product can cause injury to a person’s health or life). Information given in this data sheet is believed to be accurate and reliable. No respon- sibility is assumed for the consequences of its use nor for any infringement of patents or other rights of third parties which may result from its use. No license is granted by implication or otherwise under any patent or patent rights of Ericsson Microelectronics. These products are sold only according to Ericsson Microe- lectronics’ general conditions of sale, unless otherwise confirmed in writing. Specifications subject to change without notice.
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VO/IO max Ordering No.*) Through-hole SMD PKF 5510 PI PKF 5611 PI PKF 5617 PI PKF 5510 SI PKF 5611 SI PKF 5617 SI 5 W 6 W 6 W PO max 24/48/60 V (max 75 Vdc) 3.3 V/1.5 A 5 V/1.2 A 7 V/0.86 A Output 1 *) See also Delivery Package Information EN/LZT 146 32 R1A (Replaces EN/LZT 137 30 R5) © Ericsson Microelectronics AB, June 2000 Data Sheet The latest and most complete infor- mation can be found on our website! Ericsson Microelectronics AB SE-164 81 KISTA, Sweden Phone: +46 8 757 5000 www.ericsson.com/microelectronics For local sales contacts, please refer to our website or call: Int. +46 8 757 4700, Fax: +46 8 757 4776