Up1513p Datasheet
Up1513p Datasheet
                          Ordering Information
 Order Number Package Type          Remark      Top Marking
 uP1513PSU8          PSOP-8        With PSM      uP1513P
                                                                                VIN
                                        VCC                     BOOT
                                               5            1               3.3V/5V/12V
                 Reference             REFIN                    UG
                                               3            2
                                                   uP1513
                   Input
                                                                PH                                 VOUT
                                                            8
                                        GND                     OCP/EN
                                               9            7
                                          FB                    LG
                                               6            4
                                                                                                                    BOOT
                                 Soft Start
                                     &                         POR
                                Fault Logic
                                                                      4VDD      Internal                            UG
                                                                               Regulator
                                                         Oscillator
                                              SS                                            Gate
                                                                               PWM
                                                                                           Control                  PH
         FB                                                                                 Logic
                                                    Error
                                                                                                     VCC
                VREF                               Amplifier
                 Reference
                                                                                                                    LG
                 Selection
GND
0.6V 4VDD
                                                                                                     0.4V
                                                                                           OCP
                                                                                       0.2V
      REFIN                                                           Enable
                 0.3V
                                                                                                                    OCP/EN
An internal linear regulator regulates supply voltage into       To Select External Reference Voltage, connect REFIN
a 4.0V voltage 4VDD for internal control logic circuit. No       to a voltage source range from 0.4V to 3V. As the REFIN
external bypass capacitor is required for filtering the 4VDD     voltage acrosses 0.3V threshold level, the Enable
voltage.                                                         Comparator initiates the operation of the uP1513. The
                                                                 REFIN voltage is compared with 3.0V voltage to select
The uP1513 integrates MOSFET gate drives that are                the reference voltage with 1ms time delay after chip
powered from the VCC pin and support 12V+12V driving             enabling. The external reference input is selected as the
capability. A bootstrap diode is embedded to facilitate PCB      REFIN voltage is lower than 3.0V. The 30uA current source
design and reduce the total BOM cost. No external                is turn off if the external reference input is select to
Schottky diode is required. Converters that consist of           eliminate the load effect on the reference input. The
uP1513 feature high efficiency without special                   softstart cycle is initiated after reference selection is
consideration on the selection of MOSFETs.                       completed.
Note: The embedded bootstrap diode is not a Schottky             Note that the 30uA current source will induces load
diode having a 0.8V forward voltage. External                    effect on the external reference input and causes the
Schottky diode is highly recommended if the VCC                  REFIN voltage slightly higher than the external
voltage is expected to be lower than 5.0V. Otherwise             reference input during the reference selection. Make
the bootstrap diode may be too low for the device to             sure that the external reference input is strong enough
work normally.                                                   so that REFIN voltage will not be higher than 3.0V.
Power On Reset and Chip Enable
A power on reset (POR) circuitry continuously monitors
the supply voltage at VCC pin. Once the rising POR
threshold is exceeded, the uP1513 sets itself to active
3.0V
                                                                   1ms
                                                        Chip       Delay                                                   V IN
                                          0.3V         Enable                                                             5V/Div
                                                                                                                             V OUT
              Figure 1. Reference Selection Function                                                                      500mV/Div
Soft Start
A built-in Soft Start is used to prevent surge current from
power supply input during turn on (referring to the                                                                       LGATE
                                                                                                                          10V/Div
Functional Block Diagram). The error amplifier is a three-
input device. Reference voltage VREF or the internal soft
start voltage SS whichever is smaller dominates the
behavior of the non-inverting inputs of the error amplifier.                                          Time 4ms/ Div
SS internally ramps up to VDD with a fixed slew rate 1.5ms,                     Figure 3. Softstart where VIN does not Present Initially
no matter the VREF voltage.                                                    Overcurrent Protection (OCP)
The SS signal keeps ramping up after it exceeds the                            A resistor connected from OCP/EN to PH node programs
reference voltage VREF. However, the reference voltage                         the over current protection level as shown in Figure 2.
VREF takes over the behavior of error amplifier after SS >                     When the lower MOSFET turns on, the PH node voltage
VREF. When the SS signal climb to 1.6 x VREF, the uP1513                       can be expressed as:
claims the end of softstart cycle, enables the under voltage
                                                                               VPH = −IL × RDS(ON)
protection of the output voltage.
                                                                               where IL is the inductor current and RDS(ON) is on-resistance
                                                                               of lower MOSFET.
                       V IN
                      5V/Div                                                                                 4VDD
                                                                                                          40uA
                             V OUT                                                                 0.4V
                          500mV/Div                                                    OCP
                                                                                                                        OCP/EN        PH
                          LGATE
                          10V/Div                                                                                10pF
                            IL
                          5A/Div
                                                                                                          Thermal Information
Package Thermal Resistance (Note 3)
    SOP-8 θJA -------------------------------------------------------------------------------------------------------------------- 160°C/W
    PSOP-8 θJA ------------------------------------------------------------------------------------------------------------------- 50°C/W
    SOP-8 θJC --------------------------------------------------------------------------------------------------------------------- 39°C/W
    PSOP-8 θJC -------------------------------------------------------------------------------------------------------------------- 5°C/W
Power Dissipation, PD @ TA = 25°C
    SOP-8 ------------------------------------------------------------------------------------------------------------------------------- 0.625W
    PSOP-8 -------------------------------------------------------------------------------------------------------------------------------- 2.0W
Note 1. Stresses listed as the above “Absolute Maximum Ratings” may cause permanent damage to the device.
      These are for stress ratings. Functional operation of the device at these or any other conditions beyond
      those indicated in the operational sections of the specifications is not implied. Exposure to absolute
      maximum rating conditions for extended periods may remain possibility to affect device reliability.
Note 2. Devices are ESD sensitive. Handling precaution recommended.
Note 3. θJA is measured in the natural convection at TA = 25°C on a low effective thermal conductivity test board of
      JEDEC 51-3 thermal measurement standard.
Note 4. The device is not guaranteed to function outside its operating conditions.
                       VIN                                                                    EN 5V/Div
                      5V/Div
                                                                                                 VOUT
                                                                                              500mV/Div
                         VOUT
                      500mV/Div
                                                                                                   LGATE
                                                                                                   10V/Div
                       LGATE
                       10V/Div
                         IL                                                                        IL 10A/Div
                       5A/Div
                               1ms/Div                                                  2ms/Div
        VIN = VCC = 12V, VOUT = 1.2V, COUT = 1400uF, No Load     VIN = VCC = 12V, VOUT = 1.2V, COUT = 1400uF, No Load
                                                     VOUT
                                                  500mV/Div
                                                                                                                UGATE
                                                                                                                5V/Div
                                                   LGATE
                                                   10V/Div
                                                                                                                PHASE
                                                      EN                                                        5V/Div
                                                     2V/Div
                              20us/Div                                                   40ns/Div
       VIN = VCC = 12V, VOUT = 1.2V, COUT = 1400uF, IOUT = 6A                   VIN = VCC = 12V, IOUT = 10A
PHASE 10V/Div
                  UGATE
                  5V/Div
                                                                                       LGATE 10V/Div
                  PHASE
                  5V/Div
LGATE 5V/Div
                             40ns/Div                                                 10ms/Div
                    VIN = VCC = 12V, IOUT = 10A                       VIN = VCC = 12V, COUT = 1400uF, IOUT = 6A
                                                                                                                                              VOUT
                                                                                                                                           100mV/Div
                                            VIN
                                           5V/Div
                                                                                                                                           PHASE
                                                                                                                                           10V/Div
                                             VOUT
                                          500mV/Div
                                          LGATE                                                                                              IOUT
                                          10V/Div                                                                                          20A/Div
                                                             2ms/Div                                                                                        10us/Div
                                      VIN = VCC = 12V, VOUT = 1.2V, COUT = 1400uF, No Load                                                 VIN = VCC = 12V, VOUT = 1.2V, COUT = 1400uF
                                                                                 VOUT                                                                                           VOUT
                                                                              500mV/Div                                                                                      500mV/Div
                                                                                                                                                                             PHASE
                                                                              PHASE                                                                                          10V/Div
                                                                              10V/Div
                                                                                 IL                                                                                             IL
                                                                               50A/Div                                                                                        10V/Div
                                                             40us/Div                                                                                       400us/Div
                                            VIN = VCC = 12V, VOUT = 1.2V, COUT = 1400uF                                                    VIN = VCC = 12V, VOUT = 1.2V, COUT = 1400uF
                                                  Power On D Short VOUT to GND                                                                       Short VOUT D Power On
                                                       Load Regulation                                                                                   Line Regulation
                                 3                                                                                              0.5
                                                                                                                                0.4
  Output Voltage Deviation (%)
                                 2
                                                                                                                                0.3
                                                                                                                                0.2
                                 1
                                                                                                                                0.1
                                 0                                                                                              0.0
                                                                                                                                -0.1
                                 -1
                                                                                                                                -0.2
                                                                                                                                -0.3
                                 -2
                                                                                                                                -0.4
                                 -3                                                                                             -0.5
                                      0        5       10       15      20      25          30                                         4             6      8       10        12         14
                                                        Output Current (A)                                                                              Input Voltage (A)
                                          VIN = VCC = 12V, IOUT = 0A ~ 30A, COUT = 1400uF                                              VIN = VCC = 4.5V ~ 13.2V, IOUT = 0A, COUT = 1400uF
                                 330                                                                                        330
  Switching Frequency (kHz)
310 310
300 300
290 290
280 280
                                 270                                                                                        270
                                        4           6        8        10        12        14                                      -50    -25     0      25     50    75     100     125
                                                         Input Voltage (V)                                                                     Junction Temperature (OC)
                                        VIN = VCC = 4.5V ~ 13.2V, IOUT = 3A, COUT = 1400uF                                              VIN = VCC = 12V, IOUT = 3A, COUT = 1400uF
-1
-2
                                 -3
                                      -50     -25       0    25     50     75     100     125
                                                     Junction Temperature (OC)
                                              VIN = VCC = 12V, IOUT = 0A, COUT = 1400uF
Special cautions should be exercised on the lower switch       PG = VCC × ( VCC × (CISS _ UP + CISS _ LO ) + VIN × CRSS ) × fOSC
exhibiting very low threshold voltage VGS(TH). The shoot-
                                                               where CISS_UP is the input capacitance of the upper
through protection present aboard the uP1513 may be
                                                               MOSFET, CISS_LO is the input capacitance of the lower
circumvented by these MOSFETs if they have large
parasitic impedances and/or capacitances that would            MOSFET, and CRSS_UP is the reverse transfer capacitance
                                                               of the upper MOSFET. Make sure that the gate-charge
inhibit the gate of the MOSFET from being discharged
                                                               loss will not cause over temperature at uP1513, especially
below its threshold level before the complementary
MOSFET is turned on. Also avoid MOSFETs with                   with large gate capacitance and high supply voltage.
excessive switching times; the circuitry is expecting          Output Inductor Selection
transitions to occur in under 50 nsec or so.                   Output inductor selection usually is based on the
In high-current applications, the MOSFET power                 considerations of inductance, rated current, size
dissipation, package selection and heatsink are the            requirement, and DC resistance (DC)
dominant design factors. The power dissipation includes        Given the desired input and output voltages, the inductor
two loss components; conduction loss and switching loss.       value and operating frequency determine the ripple
The conduction losses are the largest component of power       current:
dissipation for both the upper and the lower MOSFETs.
These losses are distributed between the two MOSFETs                         1                    V
                                                                ΔIL =                × VOUT × (1 − OUT )
according to duty cycle. Since the uP1513 is operating in               fOSC × L OUT               VIN
continuous conduction mode, the duty cycles for the            Lower ripple current reduces core losses in the inductor,
MOSFETs are:                                                   ESR losses in the output capacitors and output voltage
                                                               ripple. Highest efficiency operation is obtained at low
        VOUT               VIN − VOUT
DUP =              DLO =                                       frequency with small ripple current. However, achieving
         VIN                   VIN
               ;                                               this requires a large inductor. There is a tradeoff between
The resulting power dissipation in the MOSFETs at              component size, efficiency and operating frequency. A
maximum output current are:                                    reasonable starting point is to choose a ripple current that
                                                               is about 40% of IOUT(MAX).
       2
PUP = IOUT × RDS(ON) × DUP + 0.5 × IOUT × VIN × TSW × fOSC
                                                               There is another tradeoff between output ripple current/
       2                                                       voltage and response time to a transient load. Increasing
PLO = IOUT × RDS(ON) × DLO
                                                               the value of inductance reduces the output ripple current
where TSW is the combined switch ON and OFF time.              and voltage. However, the large inductance values reduce
                                                               the converter’s response time to a load transient.
The synchronous-rectified buck converter draws pulsed           Since ΔIL increases with input voltage, the output ripple is
current with sharp edges from the input capacitor resulting     highest at maximum input voltage. Typically, once the ESR
in ripples and spikes at the input supply voltage. Use a        requirement is satisfied, the capacitance is adequate for
mix of input bypass capacitors to control the voltage           filtering and has the necessary RMS current rating. Multiple
overshoot across the MOSFETs. Use small ceramic                 capacitors placed in parallel may be needed to meet the
capacitors for high frequency decoupling and bulk               ESR and RMS current handling requirements. Dry
capacitors to supply the current needed each time upper         tantalum, special polymer, aluminum electrolytic and
MOSFET turns on. Place the small ceramic capacitors             ceramic capacitors are all available in surface mount
physically close to the MOSFETs and between the drain           packages. Special polymer capacitors offer very low ESR
of upper MOSET and the source of lower MOSFET to                but have lower capacitance density than other types.
avoid the stray inductance along the connection trace.          The load transient requirements are a function of the slew
The important parameters for the bulk input capacitor are       rate (di/dt) and the magnitude of the transient load current.
the voltage rating and the RMS current rating. For reliable     These requirements are generally met with a mix of
operation, select the bulk capacitor with voltage and current   capacitors and careful layout. Modern components and
ratings above the maximum input voltage and largest RMS         loads are capable of producing transient load rates above
                                                                1A/ns. High frequency capacitors initially supply the
current required by the circuit. The capacitor voltage rating
                                                                transient and slow the current load rate seen by the bulk
should be at least 1.25 times greater than the maximum
                                                                capacitors. The bulk filter capacitor values are generally
input voltage and a voltage rating of 1.5 times is a
                                                                determined by the ESR (Effective Series Resistance) and
conservative guideline. The RMS current rating
                                                                voltage rating requirements rather than actual capacitance
requirement for the input capacitor of a buck converter is
                                                                requirements.
calculated as:
                                                                High frequency decoupling capacitors should be placed
                        VOUT ( VIN − VOUT )                     as close to the power pins of the load as physically
IIN(RMS) = IOUT(MAX )                                           possible. Be careful not to add inductance in the circuit
                               VIN
                                                                board wiring that could cancel the usefulness of these
This formula has a maximum at VIN = 2VOUT, where                low inductance components. Consult with the
IIN(RMS) = IOUT(RMS)/2. This simple worst-case condition        manufacturer of the load on specific decoupling
is commonly used for design because even significant            requirements.
                                                                                                   1.50 ± 0. 10
                                                     2.20 ± 0. 10
                                                                                    4.00 ± 0. 10
                                                                    2.20 ± 0. 10
                   7.00 ± 0.10
                                 5.50 ± 0.10
                                                                                                                     5.80 - 6.20
                                                                                                                                   3.80 - 4.00
                                                                                                                                                                 1.80 - 2.30
                                                                                                                        1.27 BSC                                   0.32 - 0.52
1.45 - 1.60
Note
1.Package Outline Unit Description:
  BSC: Basic. Represents theoretical exact dimension or dimension target
  MIN: Minimum dimension specified.
  MAX: Maximum dimension specified.
  REF: Reference. Represents dimension for reference use only. This value is not a device specification.
  TYP. Typical. Provided as a general value. This value is not a device specification.
2.Dimensions in Millimeters.
3.Drawing not to scale.
4.These dimensions no not include mold flash or protrusions. Mold flash or protrusions shell not exceed 0.15mm.