ATA016A0X3 LINEAGEPOWER | Alldatasheet
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Technical content
Features
Compliant to RoHS EU Directive 2002/95/EC (-Z versions) Compliant to ROHS EU Directive 2002/95/EC with lead solder exemption (non-Z versions) Flexible output voltage sequencing EZ- SEQUENCETM Delivers up to 16A output current High efficiency – 92% at 3.3V full load (VIN = 12.0V) Small size and low profile: 50.8 mm x 12.7 mm x 8.1 mm (2.00 in x 0.5 in x 0.32 in) Low output ripple and noise Constant switching frequency (300KHz) High Reliability: Calculated MTBF = 9.2M hours at 25oC Full-load Programmable Output voltage Line Regulation: 0.3% (typical) Load Regulation: 0.4% (typical) Temperature Regulation: 0.4 % (typical) Remote On/Off Remote Sense Output overcurrent protection (non-latching) Wide operating temperature range (-40°C to 85°C) UL* 60950-1Recognized, CSA† C22.2 No. 60950-1-03 Certified, and VDE‡ 0805:2001-12 (EN60950-1) Licensed ISO** 9001 and ISO 14001 certified manufacturing facilities
Description
Austin SuperLynxTM II 12V SIP (single in-line package) power modules are non-isolated dc-dc converters that can deliver up to 16A of output current with full load efficiency of 92% at 3.3V output. These modules provide a precisely regulated output voltage programmable via an external resistor from 0.75Vdc to 5.0Vdc over a wide range of input voltage (VIN = 8.3 – 14Vdc). Austin SuperLynxTM II has a sequencing feature, EZ-SEQUENCETM that enable designers to implement various types of output voltage sequencing when powering multiple modules on board. Their open-frame construction and small footprint enable designers to develop cost- and space-efficient solutions. RoHS Compliant EZ-SEQUENCETM
April 1, 2008 Austin SuperLynxTM II 12V SIP Non-isolated Power Modules: 8.3 – 14Vdc input; 0.75Vdc to 5.5Vdc Output;16A output current LINEAGE POWER 2 Absolute Maximum Ratings Stresses in excess of the absolute maximum ratings can cause permanent damage to the device. These are absolute stress ratings only, functional operation of the device is not implied at these or any other conditions in excess of those given in the operations sections of the data sheet. Exposure to absolute maximum ratings for extended periods can adversely affect the device reliability. Parameter Device Symbol Min Max Unit Input Voltage All V IN -0.3 15 Vdc Continuous Sequencing voltage All Vseq -0.3 V IN,max Vdc Operating Ambient Temperature All T A -40 85 °C (see Thermal Considerations section) Storage Temperature All T stg -55 125 °C Electrical Specifications Unless otherwise indicated, specifications apply over all operating input voltage, resistive load, and temperature conditions. Parameter Device Symbol Min Typ Max Unit Operating Input Voltage V o,set ≤ 3.63 V IN 8.3 12.0 14.0 Vdc V o,set > 3.63 V IN 8.3 12.0 13.2 Vdc Maximum Input Current All I IN,max 10 Adc (VIN= VIN, min to VIN, max, IO=IO, max ) Input No Load Current Vo = 0.75Vdc I IN,No load 40 mA (VIN = VIN, nom, Io = 0, module enabled) Vo = 5.0Vdc I IN,No load 100 mA Input Stand-by Current All I IN,stand-by 2 mA (VIN = VIN, nom, module disabled) Inrush Transient All I t 0.4 A s Input Reflected Ripple Current, peak-to-peak (5Hz to 20MHz, 1μH source impedance; VIN=10V to 14V, IO= IOmax ; See Test configuration section) All 30 mAp-p Input Ripple Rejection (120Hz) All 30 dB CAUTION: This power module is not internally fused. An input line fuse must always be used. This power module can be used in a wide variety of applications, ranging from simple standalone operation to being part of a complex power architecture. To preserve maximum flexibility, internal fusing is not included, however, to achieve maximum safety and system protection, always use an input line fuse. The safety agencies require a fast- acting fuse with a maximum rating of 15 A (see Safety Considerations section). Based on the information provided in this data sheet on inrush energy and maximum dc input current, the same type of fuse with a lower rating can be used. Refer to the fuse manufacturer’s data sheet for further information.
April 1, 2008 Austin SuperLynxTM II 12V SIP Non-isolated Power Modules: 8.3 – 14Vdc input; 0.75Vdc to 5.5Vdc Output;16A output current LINEAGE POWER 3 Electrical Specifications (continued) Parameter Device Symbol Min Typ Max Unit Output Voltage Set-point All V O, set -2.0 V O, set +2.0 % V O, set (VIN=IN, min, IO=IO, max, TA=25°C) Output Voltage All V O, set -2.5% ⎯ +3.5% % V O, set (Over all operating input voltage, resistive load, and temperature conditions until end of life) Adjustment Range All V O 0.7525 5.5 Vdc Selected by an external resistor Output Regulation Line (VIN=VIN, min to VIN, max) All ⎯ 0.3 ⎯ % VO, set Load (IO=IO, min to IO, max) All ⎯ 0.4 ⎯ % VO, set Temperature (Tref=TA, min to TA, max) All ⎯ 0.4 ⎯ % VO, set Output Ripple and Noise on nominal output (VIN=VIN, nom and IO=IO, min to IO, max Cout = 1μF ceramic//10μFtantalum capacitors) RMS (5Hz to 20MHz bandwidth) Vo ≤ 3.63 ⎯ 12 30 mV rms Peak-to-Peak (5Hz to 20MHz bandwidth) Vo ≤ 3.63 ⎯ 30 75 mV pk-pk RMS (5Hz to 20MHz bandwidth) Vo = 5.0V ⎯ 25 40 mV rms Peak-to-Peak (5Hz to 20MHz bandwidth) Vo = 5.0V ⎯ 70 100 mV pk-pk External Capacitance ESR ≥ 1 mΩ All C O, max ⎯ ⎯ 1000 μF ESR ≥ 10 mΩ All C O, max ⎯ ⎯ 5000 μF Output Current All I o 0 16 Adc Output Current Limit Inception (Hiccup Mode ) All I O, lim ⎯ 180 ⎯ % Io (VO= 90% of VO, set) Output Short-Circuit Current All I O, s/c ⎯ 3 ⎯ Adc (VO≤250mV) ( Hiccup Mode ) Efficiency V O, set = 0.75Vdc η 79.0 % VIN= VIN, nom, TA=25°C V O, set = 1.2Vdc η 85.0 % IO=IO, max , VO= VO,set V O,set = 1.5Vdc η 87.0 % V O,set = 1.8Vdc η 88.0 % V O,set = 2.5Vdc η 90.5 % V O,set = 3.3Vdc η 92.0 % V O,set = 5.0Vdc η 94.0 % Switching Frequency All f sw ⎯ 300 ⎯ kHz Dynamic Load Response (dIo/dt=2.5A/μs; VIN = VIN, nom; TA=25°C) All V pk ⎯ 200 ⎯ mV Load Change from Io= 50% to 100% of Io,max; 1μF ceramic// 10 μF tantalum Peak Deviation Settling Time (Vo<10% peak deviation) All t s ⎯ 25 ⎯ μs (dIo/dt=2.5A/μs; VIN = VIN, nom; TA=25°C) All V pk ⎯ 200 ⎯ mV Load Change from Io= 100% to 50%of Io,max: 1μF ceramic// 10 μF tantalum Peak Deviation Settling Time (Vo<10% peak deviation) All t s ⎯ 25 ⎯ μs
April 1, 2008 Austin SuperLynxTM II 12V SIP Non-isolated Power Modules: 8.3 – 14Vdc input; 0.75Vdc to 5.5Vdc Output;16A output current LINEAGE POWER 4 Electrical Specifications (continued) Parameter Device Symbol Min Typ Max Unit Dynamic Load Response (dIo/dt=2.5A/μs; V VIN = VIN, nom; TA=25°C) All V pk ⎯ 100 ⎯ mV Load Change from Io= 50% to 100% of Io,max; Co = 2x150 μF polymer capacitors Peak Deviation Settling Time (Vo<10% peak deviation) All t s ⎯ 50 ⎯ μs (dIo/dt=2.5A/μs; VIN = VIN, nom; TA=25°C) All V pk ⎯ 100 ⎯ mV Load Change from Io= 100% to 50%of Io,max: Co = 2x150 μF polymer capacitors Peak Deviation Settling Time (Vo<10% peak deviation) All t s ⎯ 50 ⎯ μs General Specifications Parameter Min Typ Max Unit Calculated MTBF (IO=IO, max, TA=25°C) 9,230,550 Hours Telecordia SR-332 Issue 1: Method 1 Case 3 Weight ⎯ 5.6 (0.2) ⎯ g (oz.)
April 1, 2008 Austin SuperLynxTM II 12V SIP Non-isolated Power Modules: 8.3 – 14Vdc input; 0.75Vdc to 5.5Vdc Output;16A output current LINEAGE POWER 5 Feature Specifications Unless otherwise indicated, specifications apply over all operating input voltage, resistive load, and temperature conditions. See Feature Descriptions for additional information. Parameter Device Symbol Min Typ Max Unit On/Off Signal interface Device code with Suffix “4” – Positive logic (On/Off is open collector/drain logic input; Signal referenced to GND - See feature description section) Input High Voltage (Module ON) All V IH ― ― V IN, max V Input High Current All I IH ― ― 10 μA Input Low Voltage (Module OFF) All V IL -0.2 ― 0.3 V Input Low Current All I IL ― 0.2 1 mA Device Code with no suffix – Negative Logic (On/OFF pin is open collector/drain logic input with external pull-up resistor; signal referenced to GND) Input High Voltage (Module OFF) All V IH 2.5 ― V IN,max Vdc Input High Current All I IH 0.2 1 mA Input Low Voltage (Module ON) All V IL -0.2 ― 0.3 Vdc Input low Current All I IL ― 10 μA Turn-On Delay and Rise Times (IO=IO, max , VIN = VIN, nom, TA = 25 o C, ) Case 1: On/Off input is set to Logic Low (Module ON) and then input power is applied (delay from instant at which V IN =VIN, min until Vo=10% of Vo,set) All Tdelay ― 3 ― msec Case 2: Input power is applied for at least one second and then the On/Off input is set to logic Low (delay from instant at which Von/Off=0.3V until Vo=10% of Vo, set) All Tdelay ― 3 ― msec Output voltage Rise time (time for Vo to rise from 10% of Vo,set to 90% of Vo, set) All Trise ― 4 6 msec Output voltage overshoot – Startup ― 1 % VO, set IO= IO, max; VIN = 8.3 to 14Vdc, TA = 25 o C Sequencing Delay time Delay from VIN, min to application of voltage on SEQ pin All Ts EQ-delay 10 msec Tracking Accuracy (Power-Up: 2V/ms) All |VSEQ –Vo | 100 200 mV (Power-Down: 1V/ms) All |VSEQ –Vo | 300 500 mV (VIN, min to VIN, max; IO, min to IO, max VSEQ < Vo) Overtemperature Protection All T ref ⎯ 125 ⎯ °C (See Thermal Consideration section) Input Undervoltage Lockout Turn-on Threshold All 7.9 V Turn-off Threshold All 7.8 V
The following figures provide thermal derating curves for the Austin SuperLynxTM II 12V SIP modules.
200 LFM
300 LFM
400 LFM
Figure 19. Derating Output Current versus Local Figure 22. Derating Output Current versus Local Figure 20. Derating Output Current versus Local Figure 21. Derating Output Current versus Local
April 1, 2008 Austin SuperLynxTM II 12V SIP Non-isolated Power Modules: 8.3 – 14Vdc input; 0.75Vdc to 5.5Vdc Output;16A output current LINEAGE POWER 11 Design Considerations (continued) Output Filtering The Austin SuperLynxTM II 12V SIPmodule is designed for low output ripple voltage and will meet the maximum output ripple specification with 1 µF ceramic and 10 µF tantalum capacitors at the output of the module. However, additional output filtering may be required by the system designer for a number of reasons. First, there may be a need to further reduce the output ripple and noise of the module. Second, the dynamic response characteristics may need to be customized to a particular load step change. To reduce the output ripple and improve the dynamic response to a step load change, additional capacitance at the output can be used. Low ESR polymer and ceramic capacitors are recommended to improve the dynamic response of the module. For stable operation of the module, limit the capacitance to less than the maximum output capacitance as specified in the electrical specification table. Safety Considerations For safety agency approval the power module must be installed in compliance with the spacing and separation requirements of the end-use safety agency standards, i.e., UL 60950-1, CSA C22.2 No. 60950-1-03, and VDE 0850:2001-12 (EN60950-1) Licensed. For the converter output to be considered meeting the requirements of safety extra-low voltage (SELV), the input must meet SELV requirements. The power module has extra-low voltage (ELV) outputs when all inputs are ELV. The input to these units is to be provided with a fast- acting fuse with a maximum rating of 6A in the positive input lead
Figure 29. Circuit configuration to program output
0.7525 Open
needed for a specific output voltage. Figure 30. Circuit Configuration for margining
sequencing using Austin Lynx II series. maintained, increases the power output by the module. module remains at or below the maximum rated power. Figure 31. Remote sense circuit configuration.
April 1, 2008 Austin SuperLynxTM II 12V SIP Non-isolated Power Modules: 8.3 – 14Vdc input; 0.75Vdc to 5.5Vdc Output;16A output current LINEAGE POWER 16 Post solder Cleaning and Drying Considerations Post solder cleaning is usually the final circuit-board assembly process prior to electrical board testing. The result of inadequate cleaning and drying can affect both the reliability of a power module and the testability of the finished circuit-board assembly. For guidance on appropriate soldering, cleaning and drying procedures, refer to Board Mounted Power Modules: Soldering and Cleaning Application Note. Through-Hole Lead-Free Soldering Information The RoHS-compliant through-hole products use the SAC (Sn/Ag/Cu) Pb-free solder and RoHS-compliant components. They are designed to be processed through single or dual wave soldering machines. The pins have an RoHS-compliant finish that is compatible with both Pb and Pb-free wave soldering processes. A maximum preheat rate of 3°C/s is suggested. The wave preheat process should be such that the temperature of the power module board is kept below 210°C. For Pb solder, the recommended pot temperature is 260°C, while the Pb-free solder pot is 270°C max. Not all RoHS-compliant through-hole products can be processed with paste-through-hole Pb or Pb-free reflow process. If additional information is needed, please consult with your Lineage Power technical representative for more details.
April 1, 2008 Austin SuperLynxTM II 12V SIP Non-isolated Power Modules: 8.3 – 14Vdc input; 0.75Vdc to 5.5Vdc Output;16A output current LINEAGE POWER 17 Mechanical Outline Dimensions are in millimeters and (inches). Top View Side View Bottom View PIN FUNCTION 1 Vo 2 Vo
3 Sense+
5 GND
6 GND
7 V IN
8 V IN
9 Trim
10 On/Off
April 1, 2008 Austin SuperLynxTM II 12V SIP Non-isolated Power Modules: 8.3 – 14Vdc input; 0.75Vdc to 5.5Vdc Output;16A output current LINEAGE POWER 18 Recommended Pad Layout Dimensions are in millimeters and (inches). PIN FUNCTION 1 Vo 2 Vo Through- Hole Pad Layout – Back view
April 1, 2008 Austin SuperLynxTM II 12V SIP Non-isolated Power Modules: 8.3 – 14Vdc input; 0.75Vdc to 5.5Vdc Output;16A output current LINEAGE POWER 19 Document No: DS04-022 ver. 1.21 PDF name: superlynx_II_sip_12v_ds.pdf
Ordering Information
Please contact your Lineage Power Sales Representative for pricing, availability and optional features. Table 2. Device Codes -Z refers to RoHS-compliant versions. Table 3. Device Option
3000 Skyline Drive, Mesquite, TX 75149, USA
application. No rights under any patent accompany the sale of any such product(s) or information. © 2008 Lineage Power Corporation, (Mesquite, Texas) All International Rights Reserved.