Power Supply for Lcd Tv

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    Reference DesignSLUU341BDECEMBER 2008 REVISED MARCH 2009

    PR883: A 300-W, Universal Input, Isolated PFC Power Supply for LCD TVApplications

    Power Management Power Supply Controllers

    1 INTRODUCTION

    This guide documents a low-profile power supply that is suitable for powering LCD TVs or other flat screenapplications. The power supply accepts a universal AC line-input voltage (85 VRMS to 265 VRMS), and producesan output voltage of 24-VDC for loads up to 12 A (288 W).

    The requirements for a flat-panel display include a physical profile and the ability to operate from the ac-line inputat close to unity power factor. Therefore a flat-panel display application demands that an internal power supply bethin so as to fit behind the screen inside the TV case, and comply with the power quality requirements defined inthe IEC standard, 61000-3-2. In addition, the combination of a tight physical package and the desire to meetEnergy Star guidelines requires that the design also demonstrates very high efficiency. Described herein is apractical design that uses standard components. It achieves the requirements using a traditional two-stage powerconverter topology along with state-of-the-art power circuit control methods. The first stage is an interleaved,

    transition-mode, power factor correcting (PFC) boost pre-regulator. This is followed by an isolated LLC series-resonant DC-DC main converter.

    The design takes advantage of three integrated circuit (IC) power controllers. The PFC pre-regulator stage iscontrolled by the UCC28061, a dual-phase, interleaved, transition-mode PFC controller. The resonant LLCconverter uses the UCC25600; a low-cost 8-pin controller. The third IC is the UCC2813D-4. This is used tocontrol a small 5-W flyback converter that provides a bias supply voltage. The bias supply is optional. It isprovided for convenience so that the circuit can be demonstrated without the need for a bench supply.

    2 SCOPE

    A reference design is primarily intended to demonstrate the design of a functional circuit, the operation of whichhas been verified through a limited number of performance tests. This circuit incorporates essential safetyfeatures. These include an input line fuse, inrush current control, output over-current limit, and output over-voltageprotection. An area not addressed by this design is electromagnetic compatibility (EMC). For most applications,EMI filter components would need to be added so that the design meets applicable environmental and systemcompatibility requirements. To comply with EMC standards, components such as input and output filters would berequired to suppress electromagnetic interference (EMI). In addition components that suppress and/or protect theunit from high-voltage line surges and lightening would be required to meet power quality and safety standards.

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    3 ELECTRICAL PERFORMANCE

    Table 1 Performance Specifications

    Symbol Parameter Notes & Conditions Min Nom Max Units

    INPUT CHARACTERSTICS

    VI Input Voltage 85 265 VRMS

    f Line Frequency 48 65 Hz

    II Input Current 4 ARMS

    p.f. Power Factor 0.95

    OUTPUT CHARACTERSTICS

    PFC Stage:

    Vo (HVDC) Output Voltage 390 VDC

    LLC Resonant Stage:

    Vi (HVDC) Input Voltage 330 410 VDC

    VO Output Voltage 22.8 24 25.2 VIO Output Current 1

    112 A

    PO Output Power 288 W

    ILIM Current Limit VO = -4 V 20 A

    VLOAD Load Regulation %VO

    SYSTEM CHARACTERSTICS

    Full Load Efficiency 110 VAC, 80% load 87 %

    tHOLD Hold-up Time Nominal VI, 80% load 40 ms

    OVTHLD Over-Voltage Threshold OV shutdown and restart 30 V

    Overall thickness 20 mm

    Temp. Range Natl Conv. airflow 0 50 CFuse Rating Fast acting 5 A

    Notes:

    1. Operates down to zero load with reduced regulation.

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    4 DESCRIPTION

    Fig. 1 shows the circuit divided into three blocks. Each block represents one of the three converters that make upthe complete power system. They include the boost PFC pre-regulator, the LLC series-resonant DC-DC converter,and the 5-W bias supply. The PFC boost pre-regulator operates off a universal ac-line input voltage and produces

    a regulated 390 VDC output. The output from this stage is fed to both the main LLC resonant and bias supplyconverters. The bias supply provides a regulated 15 VDC to power the control circuitry, and the LLC resonantconverter produces an isolated output that is regulated at 24 VDC. For each of the three circuits, the theory ofoperation is described.

    Fig. 1 LCD TV Power System Block Diagram

    4.1 Boost PFC Pre-Regulator

    The principle function of the boost PFC pre-regulator is to convert a wide-input voltage (universal) ac-line inputsource to a regulated DC voltage, while operating at near unity power factor. It achieves this by controlling thepower MOSFET of a boost converter at a relatively constant on time over each half period of the rectified acinput. Applying a constant on time to each switch period causes the current in the boost inductor to riseproportionally to the applied input voltage. As the current in the inductor is equal to the input current, then theaverage switched current drawn from the input source is proportional to the source voltage. In this condition the

    input of the circuit appears as a pure resistance and the circuit operates at unity power factor. To maintain boostconverter operation, the regulated output voltage is set at 390 VDC. This voltage must be higher than the peak ofthe maximum input ac rms voltage, which is 375 V. The output capacitance to the boost PFC converter isrelatively large. This is because a large frequency component of the inductor ripple current is at just twice theminimum line frequency (94 Hz).

    The circuit presented in this design is similar to that described in the UCC28060 evaluation module(UCC28060EVM). It includes a number of operating refinements to the basic boost PFC converter concept. Thedesign uses two boost inductors and MOSFET switches. These are connected in parallel to form two phases thatfeed the common output capacitance. During normal operation the MOSFETS are operated 180 out of phase toeach other, such that they are electrically interleaved. As a further enhancement the boost inductors are operated

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    in transition mode. With this technique the current in each inductor is required to completely decay to zeroduring the off period of the transistor switch before the next on period is initiated. Zero inductor current isdetected by the control circuit using an auxiliary winding on each inductor. The voltage across the auxiliarywinding collapses to zero when the inductor energy is exhausted. The combination of interleaved phases andtransition-mode control results in improved efficiency and smaller component sizes when compared to atraditional single-phase solution. These and other control enhancements, such as phase management and inputcurrent shaping, are built in to the boost PFC control IC. This design uses the UCC28061 controller. TheUCC28061 has improved audible noise performance over the UCC28060. In addition the phase management ofthe UCC28060 is determined purely by the total on time demanded from the MOSFET switches. This results inlower switching losses when the circuit is operated from high AC line voltages (220 VAC). With high ac-linevoltage the UCC28061 usually doesnt see sufficient on-time demanded to engage phase B of the circuit.

    The PWMCNTL pin (pin 9) of the UCC28061 provides an automatic on/off enable for a downstream converter.This is used to prevent the LLC series-resonant converter from starting up before the output voltage from the PFCpre-regulator has reached a minimum value. The output voltage is sensed through a resistor divider connected atthe VSENS pin (pin 2). The on/off threshold and hysteresis are controlled by the gain and output impedance ofthe divider. The values selected for this design provide a nominal on threshold of 330 VDC, and an off thresholdof 300 VDC for the resonant converter.

    4.2 LLC Series-Resonant DC-DC Converter

    The LLC series-resonant DC-DC converter is powered from the regulated output of the boost PFC pre-regulator.The circuit comprises of a -bridge power stage, which is connected to the series elements of an LLC resonantcircuit. The resonant circuit is formed by the series combination of a low-value resonant inductance, themagnetizing inductance of the main transformer, and combined capacitance on the passive side of the bridge.The resonant frequency is set by resonant inductance (17.5 H

    ) and circuit capacitance (0.045 F). These

    values set the resonant frequency of this circuit to between 175 kHz and 180 kHz.

    When operated at the resonant frequency, the voltages across the resonant components of the circuit cancel,allowing the full peak-peak voltage from the power stage to be applied across the transformer primary. This is theunity gain operating condition. By then varying the stimulus frequency either below or above resonance, the gainof the circuit, and hence the output voltage, can be increased or decreased respectively. The switch frequency ofthe power stage is the control parameter that regulates the output of a resonant converter.

    In this design the main transformer and resonant inductor are represented by separate components. Commercialdesigns often integrate the resonant inductor into the transformer as the leakage component. This is fairly easy toachieve when a traditional ferrite E core is used for the main transformer. In order to meet the low-profilerequirement of this design, planar magnetic components were selected. Integrating the resonant inductance intothe main transformer is more difficult to achieve with a planar transformer. In particular, power dissipation issignificantly increased. However the availability of new ferrite geometries may make it possible to achieve a low-profile design using a traditional E-core shape.

    The magnetizing inductance of the main transformer affects the gain variation of the circuit versus the switchingfrequency. It also plays an important role in limiting the switching losses of the MOSFET drivers. Energy stored inthe magnetizing inductance causes current to circulate during the short period when both MOSFET switches areoff. The phase of this current has the effect of reducing the voltage across the next MOSFET to be turned on.This is referred to as zero-voltage switching (ZVS). It improves efficiency by significantly reducing the switching

    losses of the converter. It also reduces the magnitude of electrical noise generated by the circuit compared to amore rapid collapse of the MOSFET drain voltage with normal switching.

    The -bridge power stage operates at 50% duty and varying frequency. The upper and lower MOSFETs of thebridge are controlled by the UCC25600 IC via an isolated gate drive. The converter output voltage is regulated bya TL431A shunt regulator located in the secondary. The error signal generated from the TL431A is passed backto the converter primary using an opto coupler. A decrease in the error voltage at the output of the opto couplerincreases the current pulled from RC pin (pin 2) of the UCC25600. This increases the switching frequency of theconverter, which reduces its gain and output voltage.

    Includes the primary referred leakage inductance of the main transformer

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    The UCC25600 is a very simple and low-cost part to use. In addition to providing a variable drive frequency for-bridge power stage, it includes a soft-start feature, over-current shutdown protection, and adjustment ofMOSFET switch dead time.

    The circuit senses load current through the resonant capacitance using a parallel 0.001-F capacitor as animpedance divider. Current through this capacitor is half-wave rectified and then passed through a low-valuesense resistor. The resulting signal is then filtered and fed to the OC pin (pin 3) of the UCC25600. Our testing

    suggests that this method of sensing current results in less variation of the sensed current with switchingfrequency.

    The resonant current is susceptible to a high surge current during converter start-up. For this reason it isrecommended that the sensitivity of the current sense is reduced during converter start up. In the reference circuitthis is accomplished with a P-channel JFET and a divider resistor. The gate of the JFET is connected to the SSpin (pin 4) of the UCC25600, which is initially low during converter start up. The JFET places the divider resistor incircuit during the period that its gate voltage is low. When the soft start period is complete the JFET turns off toreturn current sensitivity to normal.

    Other protection features, such as over-voltage shutdown, are easily implemented by momentarily pulling the SSpin (pin 4) of the UCC25600 to ground. Over-voltage protection has been added to the reference design using thismethod. At the converter output a 27-V Zener diode is used to sense an output over voltage. The diode isconnected in series with an opto coupler. When the output voltage is sufficiently high to break down the Zener

    diode, the output of the coupler pulls down the soft-start pin to the UCC25600.A limitation of LLC series-resonant converters is that they operate over a limited input voltage range. This isbecause below a certain operating frequency the frequency-gain relationship of the converter is reversed. Theoperating frequency of the UCC25600 is controlled by the magnitude of current flowing from the RT pin (pin 2). Aresistor to ground, R309, sets the minimum operating frequency to approximately 110 kHz.

    To limit the surge current during start up the UCC25600 incorporates a soft-start feature. During the soft-startperiod the control frequency is pushed 100 kHz above the minimum frequency set by R309. For some designs thefrequency may still not be high enough to limit the surge current in the series-resonant circuit. For this reason thecomponents C323 and R324 are added so make the resistance, from the RT pin to ground, appear initially lower.This effect lasts for only the few milli-seconds it takes for C323 to charge.

    An automatic on/off enable signal (CONV_OFF) prevents the resonant converter starting until there is sufficientvoltage output from the upstream PFC pre-regulator. This signal is used to hold down the SS pin (pin 4) whenever

    the output voltage from the PFC stage is insufficient for the resonant converter to produce a regulated output. Inthis case a simple NPN bipolar transistor is used to ground the SS pin whenever the CONV_OFF control signal ishigh.

    4.3 5-W Bias Converter

    The 5-W bias supply is produced by a simple flyback converter. This regulator provides 15-VDC bias to power thecontrol circuits on the primary side of the power supply. The circuit is based on the UCC2813D-4, a small current-mode controller. The converter is powered from the output of the PFC pre-regulator stage and must be able tostart up prior to the PFC stage being operational. For this reason the circuit is designed to operate over a wideinput voltage, 100 450 VDC. The low power level and current limit setting of this circuit eliminates the need for asnubber at the MOSFET drain. It also ensures that the flyback transformer is confined to operating indiscontinuous current mode (DCM).

    For applications that have higher bias power requirements, or require a significant amount of standby power in thesecondary, a converter design based on the UCC28610 is recommended. The UCC28610 is a robust andefficient controller that is capable of meeting the high efficiency and low standby power limitations demanded byEnergyStar.

    4.4 PCB Jumper Settings

    The PCB design includes two 0.1-in spaced pin headers, J3 and J6. Using standard shorting jumpers, theseheaders provide on/off and power-up options for the board for diagnostic purposes. The jumper settings aredescribed as follows.

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    4.4.1 J3: BOOST PFC OFF

    Placing a jumper at J3 prevents operation of the Boost PFC Pre-Regulator. With this setting the DC outputvoltage will only be as high as the peak AC voltage applied at the input connector, J1. This option allows the LLCResonant Converter to be operated independent of the Boost PFC Pre-Regulator. Note that a relatively high AC-line voltage (265280 V ACRMS) must be applied to the input in order for the LLC converter to properly regulate.The power supply will also operate at very poor power factor. The default setting is NO jumper.

    4.4.2 J6: LLC CONVERTER (OFF) / AUTO / RUN

    The jumper setting at J6 provides three power-up options for the LLC Resonant Converter. A standard 2-pinjumper can be placed in either the Auto or Run position. The default jumper position is Auto. In this positionthe resonant converter powers up whenever the Boost PFC Pre-Regulator is operating.

    When the jumper is in the Run position the resonant converter will operate whenever a valid V CC supply voltageis available. This mode is useful for testing the resonant converter independently from the PFC pre-regulator. Theremoval of the jumper will then disable the resonant converter. The settings are summarized in Table 2.

    Table 2: LLC Resonant Converter Jumper Settings

    Jumper Position LLC Converter Operating Mode

    No Jumper Disabled (no operation)

    Auto (default)1/ Operates with PFC pre-regulator

    Run1/ Operates without PFC pre-regulator

    1. Use a standard 2-pin jumper in either position

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    5 SCHEMATICS

    The schematics provided in this section are for reference only. For the purposes of clarity some of the detailedcomponent parameters are not shown. Consult the bill of materials for additional information.

    Fig. 2 Schematic, Boost PFC Pre-Regulator

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    Fig. 3 Schematic, LLC Resonant Converter

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    Fig. 4 Schematic, Bias Supply Converter

    6 PCB DESIGN

    6.1 GeneralFig. 22 and Fig. 23 show the component placement and copper routing of the printed circuit board (PCB), thatused to test and characterize this design. The PCB was designed using single-layer, 1-oz. copper foil. Acombination of both through-hole (T/H) and surface mount devices (SMD) were used. T/H components aremounted on the top side of the PCB and SMD parts on the underside.

    The layout detailed in Fig. 22 & Fig. 23 is missing one component. Fig. 3 Schematic, LLC Resonant Converter,shows two pairs of rectifiers connected to the T302 secondary; D301 and D306. The layout shows just one, D301.For improved efficiency and thermal management, two output rectifier pairs are recommended.

    6.2 Grounding

    The PCB design is limited to a single layer of copper foil. This requires careful attention to the layout of the coppertraces. Differential high-frequency noise developed across discontinuities in the ground system can causespurious operation of the control circuits. For this reason the design dedicates large areas of copper to the powerground node (PWRGND). Care should then be exercised to keep the ground contiguous and connected with widepaths of copper. The ground connections should take priority over the routing of all other signals. Wherenecessary, wire links or axial T/H components should be used to pass signals to other areas of the board. Thesetechniques minimize the impedance to high-frequency ground currents to ensure low-noise operation.

    Most of the control circuitry uses surface mount devices (SMDs), which are placed on the underside of the PCB.There are three control circuits, one for each of the power converters on the board. To provide noise immunityfrom the high-frequency currents generated by the power circuitry, the components associated with each controlcircuit are grouped together and referenced to one of three analog grounds. The control circuit for the PFC Boostconverter uses AGND1, the Bias Supply Converter AGND2, and the LLC Resonant Converter AGND3. Each of

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    these analog grounds is represented on the PCB layout as a small copper area (or island) which is thenconnected to power ground (PWRGND) at just one location. This single-point grounding technique forces thehigh-frequency ground currents generated by the power circuitry to be directed around (as opposed to through)the quiet ground area occupied of the sensitive control circuits.

    6.3 Creepage & Clearance

    Both the component placement and spacing between the copper areas or the PCB were designed to comply withthe creepage and clearance requirements defined in the UL 60950 safety standard. The board was designed tomeet the requirements for functional isolation for the high-voltage nodes on the primary (ac-line) side of the powersupply, and reinforced isolation between all primary and secondary circuits. To comply with the UL standard 4 mmof separation was used for the primary-side high-voltage traces, and 8 mm between all primary and secondaryside traces. The default trace separation for low-voltage nodes, as used for control circuits, was 0.3 mm.

    6.4 Thermal Considerations

    The PCB assembly dissipates a significant amount of heat and requires some thermal management initiatives forit operate in a confined space over the defined ambient temperature range. Several components on the PCBeither require a heat sink, or must be provided with a thermally conductive path to the metal surfaces of theenclosure. Table 3 provides a list of the components that may require conductive cooling, along with their

    approximate power dissipation.

    Table 3 Parts with High Thermal Dissipation

    Ref. Des. Description Dissipation1/

    D101 Input bridge rectifier 5.7 W

    T302 LLC converter transformer 5.3 W

    L101, L102 PFC boost inductors 4.5 W

    D301, D302 LLC output rectifiers 4.0 W

    Q101, Q102 Boost PFC MOSFETs 2.0 W

    Q301, Q302 LLC -Bridge MOSFETs 0.7 W

    1. Estimated power dissipation at the maximum rated load

    For the assembly that was tested, heat sinks were used for D101, Q101, Q102, Q301, Q302, D301, & D302.Standard (off-the-shelf) heat sinks were used wherever possible. The exception was the input bridge rectifier,D101. To spread the heat and maintain a low profile, a special heat sink was fabricated from 13 AWG (0.072 in.thick) aluminum sheet. The construction details are provided in Fig. 21: Heat Sink for Bridge Rectifier (D101).

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    7 PERFORMANCE CHARACTERISTICS

    Fig. 5 through Fig. 20 present typical performance curves. Since actual performance data can be affected bymeasurement techniques and environmental variables, these curves are presented for reference and may differfrom actual field measurements.

    7.1 Typical Efficiency and Power Factor

    50

    55

    60

    65

    70

    75

    80

    85

    90

    0 2 4 6 8 10 12

    Output Current (A)

    Efficiency(%)

    90 V

    130 V

    110 V

    VI

    Fig. 5 Operating Efficiency; Low AC-LineRange

    1

    55

    60

    65

    70

    75

    80

    85

    90

    95

    0 2 4 6 8 10 12

    Output Current (A)

    Efficiency(%)

    190 V

    220 V

    250 V

    VI

    Fig. 6 Operating Efficiency; High AC-LineRange

    1

    7.2 Typical Power Dissipation

    0

    10

    20

    30

    40

    50

    60

    0 2 4 6 8 10 12

    Output Current (A)

    PowerDiss.(W)

    90 V

    130 V

    110 V

    VI

    Fig. 7 Power Dissipation; Low AC-Line Range1

    0

    5

    10

    15

    20

    25

    30

    35

    40

    45

    0 2 4 6 8 10 12

    Output Current (A)

    PowerDiss.(W)

    190 V

    250 V

    220 V

    Fig. 8 Power Dissipation; High AC-Line

    Range 1

    Notes:

    1. The discontinuity in the performance curves at approximately 4 A of output current is caused by thephase management feature of the UCC28061 PFC control IC. The shift occurs when the IC transitionsfrom single to dual-phase operation.

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    7.3 Typical Output AC Ripple Voltage

    0

    50

    100

    150

    200

    250

    300

    0 2 4 6 8 10 12

    Output Current (A)

    ACOutputRipple

    (mVpp)

    90 V

    130 V

    110 V

    VI

    Fig. 9 Output AC-Ripple; Low AC-Line Range

    0

    50

    100

    150

    200

    250

    300

    0 2 4 6 8 10 12

    Output Current (A)

    ACOutputRipple

    (mVpp)

    190 V

    250 V

    220 V

    VI

    Fig. 10 Output AC-Ripple; High AC-Line Range

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    8 CIRCUIT WAVEFORMS

    8.1 Boost PFC Pre-Regulator

    Fig. 11 V & I Input AC Waveforms;110 V AC-Line & 8-A Load

    Fig. 12 V & I Input AC Waveforms;220 V AC-Line & 8-A Load

    Fig. 13 PFC Inductor Waveforms; 8-A Load &with AC-Line at 160 V (110-V pk)

    Fig. 14 PFC Inductor Waveforms; 8-A Load &with AC-Line at 40 V (Crossover)

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    8.2 LLC Resonant Converter

    Fig. 15 Switch Node & Inductor Current;8-A Load & 390 VDC Link (174 kHz) Fig. 16 Switch Node & Inductor Current;8-A Load & 340 VDC Link (150 kHz)

    8.3 Response to AC-Line Input Drop-outs

    Fig. 17 Line Dropout: 2 Cycles;8-A Load & 110 V 60 Hz AC-Line

    Fig. 18 Line Dropout: 2 Cycles;8-A Load & 220 V 50 Hz AC-Line

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    8.4 Start Up & Shut Down

    Fig. 19 Start-up Sequence; 110 V AC-Line Input Fig. 20 Shut-Down Sequence; 220 V AC-Line

    Input

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    9 ASSEMBLY DRAWINGS AND LAYOUT

    9.1 Special Part Drawings

    Fig. 21: Heat Sink for Bridge Rectifier (D101)

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    9.2 Board Layout

    Fig. 22: Component Placement (Viewed from Top)

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    Fig. 23: Bottom Copper and Part Placement (Viewed from Bottom)

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    9.3 LIST OF MATERIALSTable 4 lists the components as configured according to the schematic shown in Fig. 2 through Fig. 4.

    Table 4 Bill of Materials

    Qty. Ref. Des. Value Description Part Number Manufacturer

    3 C101-C103 0.33 F CAPACITOR, PET FILM, X1, 250 VAC, 20% ECQ-U3A334MG Panasonic

    1 C104 0.1 F CAPACITOR, PET FILM, X2, 250 VAC, 20% ECQ-U2A104BC1 Panasonic

    2 C105, C106 22 pF CAPACITOR, MLC, 0603, 50 V, 5% Generic Multi-sourced

    1 C107 0.047 F CAPACITOR, PET FILM, 630 V, 10% ECQ-E6473KZ Panasonic

    4 C108-C111 100 F CAPACITOR, ELECTROLYTIC, 450 V, 10% EKXG451ELL101MM40S Nippon Chemi-Con

    2 C112, C118 1200 pF CAPACITOR, MLC, 0603, 50 V, 10% Generic Multi-sourced

    2 C113, C317 0.01 F CAPACITOR, MLC, 0603, 50 V, 10% Generic Multi-sourced

    1 C114 0.33 F CAPACITOR, MLC, 1206, 25 V, 20% Generic Multi-sourced

    2 C115, C117 2.2 F CAPACITOR, MLC, 1206, 25 V, 20% Generic Multi-sourced

    2 C116, C208 1000 pF CAPACITOR, MLC, 0603, 100 V, 5% Generic Multi-sourced

    1 C119 3300 pF CAPACITOR, MLC, 0603, 50 V, 10% Generic Multi-sourced

    2 C201, C211 10 F CAPACITOR, MLC, 1206, 25 V, 10% Generic Multi-sourced

    2 C202, C206 0.1 F CAPACITOR, MLC, 0603, 16 V, 10% Generic Multi-sourced

    2 C203, C314 0.1 F CAPACITOR, MLC, 0805, 25 V, 20% Generic Multi-sourced

    1 C204 470 pF CAPACITOR, MLC, 0603, 50 V, 5% Generic Multi-sourced

    1 C207 0.01 F CAPACITOR, FILM, 630 V, 10% ECQ-E6103KZ Panasonic

    1 C210 100 pF CAPACITOR, MLC, 0603, 100 V, 10% 06031A101KAT2A AVX

    1 C212 330 F CAPACITOR, ELECTROLYTIC, 25 V, 20% EEU-FC1E331 Panasonic

    3 C301-C303 0.33 F CAPACITOR, FILM, 630 V, 10% MF630V.33K Xicon

    1 C304 0.001 F CAPACITOR, PP FILM, 1 KV, 10% MKP10 1000/1600/10 WIMA

    2 C305, C321 0.022 F CAPACITOR, PP FILM, 1 KV, 10% MKP10-.022/1KV/10 WIMA

    6 C306-C311 150 F CAPACITOR, ELECTROLYTIC, 35 V, 10% EEUFM1V151 Panasonic

    1 C312 1 uF CAPACITOR, MLC, 1210, 50 V, 20% Generic Multi-sourced

    1 C313 0.1 uF CAPACITOR, MLC, 1206, 50 V, 20% Generic Multi-sourced

    1 C315 1 uF CAPACITOR, MLC, 0805, 25 V, 10% Generic Multi-sourced

    1 C316 0.047 uF CAPACITOR, MLC, 0603, 25 V, 10% Generic Multi-sourced

    1 C320 0.01uF CAPACITOR, MLC, 0805, 50 V, 10% Generic Multi-sourced

    1 C322 0.22uF CAPACITOR, MLC, 0603, 10 V, 10% Generic Multi-sourced

    1 C323 4.7uF CAPACITOR, MLC, 0603, 6.3 V, 5% Generic Multi-sourced

    1 D101 BRIDGE RECTIFIER GBPC606-E4/51 Vishay

    3 D102-D104 RECTIFIER, POWER, ULTRA-FAST MURS360T3G ON Semiconductor

    3 D201, D303,D304

    DIODE, SIGNAL MMBD914LT1G ON Semiconductor

    1 D203 DIODE, SCHOTTKY MBRS1100T3G ON-Semiconductor

    1 D204 DIODE, FAST RECOVERY, T/H 1N4934G ON-Semiconductor

    2 D301, D302 DIODE, DUAL, SCHOTTKY, 100-V, 10-A STPS20H100CT ST Microelectronics

    1 D304 27 V DIODE, ZENER, 0.5-W, 27 V MMSZ5254B Diodes, Inc.

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    Reference DesignSLUU341BDECEMBER 2008 REVISED MARCH 2009

    Qty. Ref. Des. Value Description Part Number Manufacturer

    1 D305 12 V DIODE, ZENER, 0.5-W, 12 V MMSZ5242BT1 ON Semiconductor

    1 D306 DIODE, SCHOTTKY, T/H 1N5711 STMicroelectronics

    1 F1 FUSE CLIPS, 5X20MM, CARTRIDGE 3517 Keystone

    1 F2 0.25 A FUSE, AXIAL-LEADED, FAST-ACTING 0263.250 Littelfuse

    1 J1 HEADER, PLUGGABLE, HORIZ, 3-WAY 39522-1003 Molex

    1 J3 CONNECTOR, HEADER, 0.025 SQ., 2-WAY 68001-202HLF FCI BergStik

    1 J5 HEADER PLUGGABLE, HORIZ, 4-WAY 39522-1004 Molex

    1 J6 CONNECTOR, HEADER, 0.025 SQ., 3-WAY 68001-203HLF FCI BergStik

    2 L101, L102 330 H INDUCTOR, BOOST, 5.5 A I080-330H/5.5A Payton America

    1 L301 13.6 H INDUCTOR, RESONANT, 175 KHZ I40-13.6H/3.5A Payton America

    2 Q101. Q102 MOSFET, POWER, N-CHANNEL IRFB11N50APbF Vishay

    1 Q103 TRANSISTOR, BIPOLAR, PNP BC857BTT1G ON-Semiconductor

    1 Q201 MOSFET, DPAK FQD3N60TF Fairchild

    2 Q301, Q302 MOSFET, TO-220 2SK3934 Toshiba

    1 Q303 TRANSISTOR, NPN MMBT3904LT1G ON-Semiconductor

    1 Q304 TRANSISTOR, JFET, P-CHANNEL MMBFJ176 Fairchild

    6 R101-R103,R115-R117

    1M0 RESISTOR, T/H, 0.25 W, 1% 271-1.0M/AP-RC Xicon

    1 R104 0R015 RESISTOR, SMD, 2010, 1% WSL2010R0120FEB Vishay-Dale

    2 R105, R112 20k5 RESISTOR, SMD, 0805, 1% Generic Multi-sourced

    4 R106, R113,R208, R212

    4R99 RESISTOR, SMD, 0805, 1% SR732ATT4R99F KOA

    4 R107, R114,R322, R323

    10k0 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    2 R108, R118 47k0 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R109 100R RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R110 121k RESISTOR, SMD, 0805, 1% Generic Multi-sourced

    1 R111 6k34 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R119 178k RESISTOR, T/H, 0.25 W, 1% 271-178K/AP-RC Xicon

    2 R120-R121 536k RESISTOR, T/H, 0.25 W, 1% 271-536K/AP-RC Xicon

    1 R122 10k2 RESISTOR, SMD, 0805, 1% Generic Multi-sourced

    2 R123, R206 100k RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    4 R201-R204 100k RESISTOR, T/H, 0.25 W, 1% 271-100K/AP-RC Xicon

    1 R205 75k0 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R207 2k49 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R211 75R0 RESISTOR, T/H, 0.25 W, 1% 271-75/AP-RC Xicon

    1 R213 100R RESISTOR, SMD, 0805, 1% Generic Multi-sourced

    1 R214 3k01 RESISTOR, SMD, 0805, 1% Generic Multi-sourced

    1 R215 16k9 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R216 3k4 RESISTOR, T/H, 0.25 W, 1% 271-3.4K/AP-RC Xicon

    2 R301-R302 0R0 RESISTOR, ZERO LINK, T/H, 0.25 W 291-0/AP-RC Xicon

    1 R304 10k RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    20

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    Reference DesignSLUU341BDECEMBER 2008 REVISED MARCH 2009

    Qty. Ref. Des. Value Description Part Number Manufacturer

    1 R306 33R2 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R308 11k5 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R309 1k82 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R310 499R RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R311 6k49 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R312 1k5 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R314 7k5 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R315 1k5 RESISTOR, T/H, 0.25 W, 1% 271-1.5K/AP-RC Xicon

    1 R316 31k6 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R317 3k65 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R318 200R RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R319 348R RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R320 31k6 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R321 60k4 RESISTOR, SMD, 0603, 1% Generic Multi-sourced

    1 R324 2k RESISTOR, SMD, 0603, 1% Generic Multi-Sourced

    1 RT1 5 Ohms THERMISTOR, NTC CL-40 GE Sensing

    1 T201 TRANSFORMER, FLYBACK HA3950-AL Coilcraft

    1 T301 TRANSFORMER, GATE DRIVE, 1:1:1 HA3858-AL Coilcraft

    1 T302 TRANSFORMER, 350VA, 175 KHZ T250AC-16-4C Payton America

    1 U101 INTEGRATED CIRCUIT UCC28061D Texas Instruments

    1 U201 INTEGRATED CIRCUIT UCC2813D-4 Texas Instruments

    1 U301 INTEGRATED CIRCUIT UCC25600D Texas Instruments

    2 U302, U303 OPTO-COUPLER H11AV1A-M Fairchild

    1 U304 INTEGRATED CIRCUIT TL431AIDBV Texas Instruments

    1 VR1 VARISTOR SIOV-S10K275E2 EPCOS

    2 Q101, Q102 HEATSINK, EXTRUDED, LOW-PROFILE 7-345-1PP-BA IERC

    2 D301, D302 HEATSINK, EXTRUDED, LOW-PROFILE 7-345-2PP IERC

    1 J1 CONNECTOR PLUG, 3-WAY 39520-0003 Molex

    1 J5 CONNECTOR PLUG, 4-WAY 39520-0004 Molex

    2 Q301, Q302 HEATSINK, LOW-PROFILE, TO-220 274-1AB Wakefield

    4 Q101, Q102,D301, D302

    INSULATOR PAD, TO-220 SP900S-58 Berquist

    1 F1 5 A FUSE, 5X20MM, GLASS, FAST-ACTING 0217005P Littelfuse

    8 Q101, Q102,D301, D302

    NUT, STAINLESS STEEL, #4-40 Generic

    2 D301, D302 LOCK WASHER, INTERNAL TOOTH, #4 Generic

    4 Q101, Q102,D301, D302

    PLAIN WASHER, #4 Generic

    8 Q101, Q102,D301, D302

    SCREW, PANHEAD, PHILLIPS, #4-40 3/8 Generic

    4 Q101, Q102,D301, D302

    INSULATOR, MOLDED, NYLON Richco Plastic Co.

    21

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    Reference DesignSLUU341BDECEMBER 2008 REVISED MARCH 2009

    10 References

    The following is a list of data sheets, evaluation guides, and papers that were used to design of the 300-W LCDTV power supply.

    [1] UCC28061 Data Sheet, Texas Instruments Ref. SLUS837

    [2] UCC28061EVM 300-W Interleaved PFC Pre-Regulator Users Guide, Texas Instruments Ref. SLUU316

    [3] UCC25600 Data Sheet; Texas Instruments Ref. SLUS846

    [4] Bing Lu, Wenduo Liu,Yan Liang, Fred C. Lee, and Jacobus D. van Wyk, Optimal Design Methodology forLLC Resonant Converter, IEEE APEC 2006.

    11 Additional Information

    The PCB layout for this reference design was created using PADS 2005 CAD software by Mentor Graphics.PADS Logic was used for schematic capture, and PADS Layout was used to design the PCB. The Gerber file,silk screen, solder mask, and drill drawing files produced by PADS, including the program files that created them,are available to designers. Enquiries should be made to the regional Texas Instruments Product InformationCenter (PIC), or the local TI sales representative. Use the prototype reference design number, PR883, for thisrequest.

    22

    http://www-s.ti.com/sc/techlit/slus837.pdfhttp://www-s.ti.com/sc/techlit/sluu316.pdfhttp://www-s.ti.com/sc/techlit/slus846.pdfhttp://www-s.ti.com/sc/techlit/slus846.pdfhttp://www-s.ti.com/sc/techlit/sluu316.pdfhttp://www-s.ti.com/sc/techlit/slus837.pdf
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    I M P O R T A N T N O T I C E

    T e x a s I n s t r u m e n t s I n c o r p o r a t e d a n d i t s s u b s i d i a r i e s ( T I ) r e s e r v e t h e r i g h t t o m a k e c o r r e c t i o n s , m o d i f i c a t i o n s , e n h a n c e m e n t s , i m p r o v e m e n t s , a n d o t h e r c h a n g e s t o i t s p r o d u c t s a n d s e r v i c e s a t a n y t i m e a n d t o d i s c o n t i n u e a n y p r o d u c t o r s e r v i c e w i t h o u t n o t i c e . C u s t o m e r s s h o u l do b t a i n t h e l a t e s t r e l e v a n t i n f o r m a t i o n b e f o r e p l a c i n g o r d e r s a n d s h o u l d v e r i f y t h a t s u c h i n f o r m a t i o n i s c u r r e n t a n d c o m p l e t e . A l l p r o d u c t s a r e s o l d s u b j e c t t o T I s t e r m s a n d c o n d i t i o n s o f s a l e s u p p l i e d a t t h e t i m e o f o r d e r a c k n o w l e d g m e n t .

    T I w a r r a n t s p e r f o r m a n c e o f i t s h a r d w a r e p r o d u c t s t o t h e s p e c i f i c a t i o n s a p p l i c a b l e a t t h e t i m e o f s a l e i n a c c o r d a n c e w i t h T I s s t a n d a r d

    w a r r a n t y . T e s t i n g a n d o t h e r q u a l i t y c o n t r o l t e c h n i q u e s a r e u s e d t o t h e e x t e n t T I d e e m s n e c e s s a r y t o s u p p o r t t h i s w a r r a n t y . E x c e p t w h e r e m a n d a t e d b y g o v e r n m e n t r e q u i r e m e n t s , t e s t i n g o f a l l p a r a m e t e r s o f e a c h p r o d u c t i s n o t n e c e s s a r i l y p e r f o r m e d .

    T I a s s u m e s n o l i a b i l i t y f o r a p p l i c a t i o n s a s s i s t a n c e o r c u s t o m e r p r o d u c t d e s i g n . C u s t o m e r s a r e r e s p o n s i b l e f o r t h e i r p r o d u c t s a n d a p p l i c a t i o n s u s i n g T I c o m p o n e n t s . T o m i n i m i z e t h e r i s k s a s s o c i a t e d w i t h c u s t o m e r p r o d u c t s a n d a p p l i c a t i o n s , c u s t o m e r s s h o u l d p r o v i d e a d e q u a t e d e s i g n a n d o p e r a t i n g s a f e g u a r d s .

    T I d o e s n o t w a r r a n t o r r e p r e s e n t t h a t a n y l i c e n s e , e i t h e r e x p r e s s o r i m p l i e d , i s g r a n t e d u n d e r a n y T I p a t e n t r i g h t , c o p y r i g h t , m a s k w o r k r i g h t , o r o t h e r T I i n t e l l e c t u a l p r o p e r t y r i g h t r e l a t i n g t o a n y c o m b i n a t i o n , m a c h i n e , o r p r o c e s s i n w h i c h T I p r o d u c t s o r s e r v i c e s a r e u s e d . I n f o r m a t i o np u b l i s h e d b y T I r e g a r d i n g t h i r d - p a r t y p r o d u c t s o r s e r v i c e s d o e s n o t c o n s t i t u t e a l i c e n s e f r o m T I t o u s e s u c h p r o d u c t s o r s e r v i c e s o r a w a r r a n t y o r e n d o r s e m e n t t h e r e o f . U s e o f s u c h i n f o r m a t i o n m a y r e q u i r e a l i c e n s e f r o m a t h i r d p a r t y u n d e r t h e p a t e n t s o r o t h e r i n t e l l e c t u a l p r o p e r t y o f t h e t h i r d p a r t y , o r a l i c e n s e f r o m T I u n d e r t h e p a t e n t s o r o t h e r i n t e l l e c t u a l p r o p e r t y o f T I .

    R e p r o d u c t i o n o f T I i n f o r m a t i o n i n T I d a t a b o o k s o r d a t a s h e e t s i s p e r m i s s i b l e o n l y i f r e p r o d u c t i o n i s w i t h o u t a l t e r a t i o n a n d i s a c c o m p a n i e d b y a l l a s s o c i a t e d w a r r a n t i e s , c o n d i t i o n s , l i m i t a t i o n s , a n d n o t i c e s . R e p r o d u c t i o n o f t h i s i n f o r m a t i o n w i t h a l t e r a t i o n i s a n u n f a i r a n d d e c e p t i v e b u s i n e s s p r a c t i c e . T I i s n o t r e s p o n s i b l e o r l i a b l e f o r s u c h a l t e r e d d o c u m e n t a t i o n . I n f o r m a t i o n o f t h i r d p a r t i e s m a y b e s u b j e c t t o a d d i t i o n a l r e s t r i c t i o n s .

    R e s a l e o f T I p r o d u c t s o r s e r v i c e s w i t h s t a t e m e n t s d i f f e r e n t f r o m o r b e y o n d t h e p a r a m e t e r s s t a t e d b y T I f o r t h a t p r o d u c t o r s e r v i c e v o i d s a l l

    e x p r e s s a n d a n y i m p l i e d w a r r a n t i e s f o r t h e a s s o c i a t e d T I p r o d u c t o r s e r v i c e a n d i s a n u n f a i r a n d d e c e p t i v e b u s i n e s s p r a c t i c e . T I i s n o t r e s p o n s i b l e o r l i a b l e f o r a n y s u c h s t a t e m e n t s .

    T I p r o d u c t s a r e n o t a u t h o r i z e d f o r u s e i n s a f e t y - c r i t i c a l a p p l i c a t i o n s ( s u c h a s l i f e s u p p o r t ) w h e r e a f a i l u r e o f t h e T I p r o d u c t w o u l d r e a s o n a b l y b e e x p e c t e d t o c a u s e s e v e r e p e r s o n a l i n j u r y o r d e a t h , u n l e s s o f f i c e r s o f t h e p a r t i e s h a v e e x e c u t e d a n a g r e e m e n t s p e c i f i c a l l y g o v e r n i n g s u c h u s e . B u y e r s r e p r e s e n t t h a t t h e y h a v e a l l n e c e s s a r y e x p e r t i s e i n t h e s a f e t y a n d r e g u l a t o r y r a m i f i c a t i o n s o f t h e i r a p p l i c a t i o n s , a n d a c k n o w l e d g e a n d a g r e e t h a t t h e y a r e s o l e l y r e s p o n s i b l e f o r a l l l e g a l , r e g u l a t o r y a n d s a f e t y - r e l a t e d r e q u i r e m e n t s c o n c e r n i n g t h e i r p r o d u c t s a n d a n y u s e o f T I p r o d u c t s i n s u c h s a f e t y - c r i t i c a l a p p l i c a t i o n s , n o t w i t h s t a n d i n g a n y a p p l i c a t i o n s - r e l a t e d i n f o r m a t i o n o r s u p p o r t t h a t m a y b e p r o v i d e d b y T I . F u r t h e r , B u y e r s m u s t f u l l y i n d e m n i f y T I a n d i t s r e p r e s e n t a t i v e s a g a i n s t a n y d a m a g e s a r i s i n g o u t o f t h e u s e o f T I p r o d u c t s i n s u c h s a f e t y - c r i t i c a l a p p l i c a t i o n s .

    T I p r o d u c t s a r e n e i t h e r d e s i g n e d n o r i n t e n d e d f o r u s e i n m i l i t a r y / a e r o s p a c e a p p l i c a t i o n s o r e n v i r o n m e n t s u n l e s s t h e T I p r o d u c t s a r e s p e c i f i c a l l y d e s i g n a t e d b y T I a s m i l i t a r y - g r a d e o r " e n h a n c e d p l a s t i c . " O n l y p r o d u c t s d e s i g n a t e d b y T I a s m i l i t a r y - g r a d e m e e t m i l i t a r y s p e c i f i c a t i o n s . B u y e r s a c k n o w l e d g e a n d a g r e e t h a t a n y s u c h u s e o f T I p r o d u c t s w h i c h T I h a s n o t d e s i g n a t e d a s m i l i t a r y - g r a d e i s s o l e l y a t t h e B u y e r ' s r i s k , a n d t h a t t h e y a r e s o l e l y r e s p o n s i b l e f o r c o m p l i a n c e w i t h a l l l e g a l a n d r e g u l a t o r y r e q u i r e m e n t s i n c o n n e c t i o n w i t h s u c h u s e .

    T I p r o d u c t s a r e n e i t h e r d e s i g n e d n o r i n t e n d e d f o r u s e i n a u t o m o t i v e a p p l i c a t i o n s o r e n v i r o n m e n t s u n l e s s t h e s p e c i f i c T I p r o d u c t s a r e d e s i g n a t e d b y T I a s c o m p l i a n t w i t h I S O / T S 1 6 9 4 9 r e q u i r e m e n t s . B u y e r s a c k n o w l e d g e a n d a g r e e t h a t , i f t h e y u s e a n y n o n - d e s i g n a t e d p r o d u c t s i n a u t o m o t i v e a p p l i c a t i o n s , T I w i l l n o t b e r e s p o n s i b l e f o r a n y f a i l u r e t o m e e t s u c h r e q u i r e m e n t s .

    F o l l o w i n g a r e U R L s w h e r e y o u c a n o b t a i n i n f o r m a t i o n o n o t h e r T e x a s I n s t r u m e n t s p r o d u c t s a n d a p p l i c a t i o n s o l u t i o n s :

    P r o d u c t s A p p l i c a t i o n s A m p l i f i e r s a m p l i f i e r . t i . c o m A u d i o w w w . t i . c o m / a u d i o D a t a C o n v e r t e r s d a t a c o n v e r t e r . t i . c o m A u t o m o t i v e w w w . t i . c o m / a u t o m o t i v e D L P P r o d u c t s w w w . d l p . c o m B r o a d b a n d w w w . t i . c o m / b r o a d b a n d D S P d s p . t i . c o m D i g i t a l C o n t r o l w w w . t i . c o m / d i g i t a l c o n t r o l C l o c k s a n d T i m e r s w w w . t i . c o m / c l o c k s M e d i c a l w w w . t i . c o m / m e d i c a l I n t e r f a c e i n t e r f a c e . t i . c o m M i l i t a r y w w w . t i . c o m / m i l i t a r y L o g i c l o g i c . t i . c o m O p t i c a l N e t w o r k i n g w w w . t i . c o m / o p t i c a l n e t w o r k P o w e r M g m t p o w e r . t i . c o m S e c u r i t y w w w . t i . c o m / s e c u r i t y M i c r o c o n t r o l l e r s m i c r o c o n t r o l l e r . t i . c o m T e l e p h o n y w w w . t i . c o m / t e l e p h o n y R F I D w w w . t i - r f i d . c o m V i d e o & I m a g i n g w w w . t i . c o m / v i d e o R F / I F a n d Z i g B e e S o l u t i o n s w w w . t i . c o m / l p r f W i r e l e s s w w w . t i . c o m / w i r e l e s s

    M a i l i n g A d d r e s s : T e x a s I n s t r u m e n t s , P o s t O f f i c e B o x 6 5 5 3 0 3 , D a l l a s , T e x a s 7 5 2 6 5 C o p y r i g h t 2 0 0 9 , T e x a s I n s t r u m e n t s I n c o r p o r a t e d

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