Datasheet
Datasheet
TB67H303HG
                                                                            TB67H303HG
  The TB67H303HG is a full bridge driver IC for DC motor
adopting MOS in output transistor.
High-power and high-efficient drive is possible by adopting
DMOS output driver with low-ON resistance and PWM drive.
Features
•   Full bridge driver IC for DC motor
                                                                                         HZIP25-P-1.00F
•   Ron (upper + lower) = 0.2Ω (typ.)
•   CW/CCW/Short brake/Stop functions                                      Weight
•   Standby function                                                        HZIP25-P-1.00F: 7.7g (typ.)
•   PWM control (Direct PWM or Constant-current PWM drive)
•   Output withstand voltage : Vcc = 50 V
•   Output current            : IOUT = 10.0 A (Absolute maximum ratings, peak)
                                 IOUT =8.0 A (operating range, maximum value)
•   Package                     : HZIP25-P-1.00F
•   Built-in input pull-down resistance              : 100 kΩ (typ.)
•   Output monitor pin (monitor for TSD/ISD)         : ALERT1 pin (IALERT1 (max) = 1 mA)
•   Output monitor pin (monitor for UVLO)            : ALERT2 pin (IALERT2 (max) = 1 mA)
•   Single power supply
•   Built-in thermal shutdown (TSD) circuit
•   Built-in under voltage lock out (UVLO) circuit
•   Built-in over-current detection (ISD) circuit
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                                                                                                      TB67H303HG
Pin Functions
(TEST1), (TEST2), (TEST3) and (TEST4): Shipping inspection pins. They must be connected to SGND.
<Terminal circuits>
            Input pins
            (IN1, IN2, PWM, STBY, SELECT)
VDD
100 Ω
100kΩ
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                                                                                    TB67H303HG
Block Diagram
24 1 25 6, 20
 SELECT   3
                          Reg(5V)
                                                                                            OUT1A
                                                                                      16
                                                                 Pre     H-Bridge
   STBY   7                                                              driver A
                                                                -drive
                                                                                       14
                Input                                                                       OUT2A
    IN1   8
                circuit
                                TSD / ISD / UVLO                                            RSA
          9                                                                            15
    IN2
PWM 22
                                                                                            OUT1B
                                                                                      12
                                                                 Pre     H-Bridge
                                                                         driver B
                                                                -drive
   OSC    23    OSC
                                                                                      10
                                                                                            OUT2B
                                                                                            RSB
   Vref   5       1/3                                                                 11
2 17 13
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                                                                                      TB67H303HG
Functions
I/O functions
                                     H            OFF
     H          L             L                  (Hi-Z)                             Stop
                                     L
                                     H            OFF
     L          H/L           H/L                (Hi-Z)                           Standby
                                     L
                                     H            OFF
     H          L             L                  (Hi-Z)                             Stop
                                     L
                                     H            OFF
     L          H/L           H/L                (Hi-Z)                           Standby
                                     L
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                                                                                               TB67H303HG
       This system adopts peak current detection. Average current is lower than setting current.
       Set RNF and Vref as follows; 0.055Ω ≤ RNF ≤ 0.25Ω, 0.3V ≤ Vref ≤ 1.95V
       Triangle wave is generated internally by CR oscillation by connecting external resistor to OSC terminal.
       Rosc should be from 30kΩ to 120kΩ. The relation of Rosc and fchop is shown in below table and figure. The
       values of fchop of the below table are design guarantee values. They are not tested for pre-shipment.
                         Rosc(kΩ)                                 fchop(kHz)
                                                Min                  Typ.                 Max
                            30                   -                   60                    -
                            51                   -                   40                    -
                           120                   -                   20                    -
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                                                                                             TB67H303HG
Direct PWM Control
   The motor rotation speed is controllable by the PWM input sent through the PWM pin.
   It is also possible to control the motor rotation speed by sending in the PWM signal through not the PWM
   pin but the IN1 and IN2 pins.
   When the motor drive is controlled by the PWM input, the TB67H303HG repeats operating in Normal
   Operation mode and Short Brake mode alternately.
   For preventing the shoot-through current in the output circuit caused by the upper and lower power
   transistors being turned on simultaneously, the dead time is internally generated at the time the upper
   and lower power transistors switches between on and off.
   This eliminates the need of inserting Off time externally; thus the PWM control with synchronous
   rectification is enabled.
   Note that inserting Off time externally is not required on operation mode changes between CW and CCW,
   CW and Short Brake, and CW and Short Brake because of the dead time generated internally.
Vcc Vcc
OUT1 M OUT1 M
                                              GND                                    GND
                            PWM OFF → ON                             PWM ON
                                 t4                                    t5
                                                                                       Vcc
                                                              t5
                Output voltage          t1
                  waveform                          t3
                   (OUT1)
                                                                                      RSGND
                                                             t4
                                        t2
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                                                                                     TB67H303HG
Constant-current PWM control
   Constant-current PWM control mode is set when SELECT=H.
   The TB67H303HG uses a peak current detection technique to keep the output current constant by
   applying constant voltage through the Vref pin.
    The relation between the master clock frequency (fMCLK), the OSCM frequency (fOSCM) and the PWM
    frequency (fchop) is shown as follows:
             fOSCM = 1/20 ×fMCLK
             fchop = 1/100 ×fMCLK
    When Rosc=51kΩ, the master clock=4MHz, OSCM=200kHz, the frequency of PWM(fchop)=40kHz.
fchop
 OSCM
 Internal
 Waveform
                                                      Setting current
Setting current
                NF
 40%
 fast
 Decay                                                             MDT
 Mode
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Current waveform when setting current is changed by changing Vref in the constant-current
PWM control mode
fchop fchop
        OSCM
        internal
        waveform
                                                                  Setting current
        IOUT
                                                                                          NF
   Setting current
                           NF
       40%
       Fast
       DECAY
       MODE
fchop fchop
                                                                                                                     Setting current
        IOUT                                                                                           NF
                                                          MDT (MIXED DECAY TIMMING)
                                NF
    Setting current
       40%
       Fast
       DECAY
       MODE
                                                               Change point
                                                                 of Vref
Setting current
                      NF
    IOUT
                                                                                                 NF
                                                                Setting current
    40%
    Fast
    DECAY                                                                  MDT (MIXED DECAY TIMMING)
    MODE
It is charged instantaneously to confirm the current though output current is larger than setting current.
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                                                                                                                     TB67H303HG
Thermal Shut-Down circuit (TSD)
Latch return    TSD = 160°C (typ.)          (Note)
(1)When recovery signal is outputted after the temperature falls lower than recovery temperature (90°C (typ.) in
   the below figure (Note)).
                        160°C (typ.)
Junction temperature (Chip temperature)
                        90°C (typ.)
                      Output state
                                                Output on                    Output off                  Output on
0.2ms
                                        H
                    ALERT1 output
                                        L
                                        H
                     STBY input
                                        L
                                                     *: Time of about 1.6 ms or   Corresponding to 40 dividing frequency of fOSC
                                                     more is necessary.             0.010 ms (typ.), 0.1 ms (max)
             The operation returns by programming the STBY as H → L → H shown in above figure or turning on
             power supply and turning on UVLO function.
(2)When recovery signal is outputted before the temperature falls lower than the recovery temperature (90°C(typ.)
in below figure (Note)).
                          160°C (typ.)
Junction temperature (Chip temperature)
                          90°C (typ.)
                       Output state
                                                         Output on                  Output off
                                        H
                    ALERT1 output
                                        L
                                        H
                     STBY input
                                        L
                 If STBY is programmed H → L → H shown in the above figure before the temperature falls lower
                than the recovery temperature (90°C(typ.) in the above figure (Note)), the operation does not return.
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                                                                                                           TB67H303HG
Latch return
6.5A (typ.)
         DMOS
         Power transistor current
                                               Dead band
                                               1μs(typ.)
                         Output state
                                               Output on          Output off          Output on
0.2ms
                                      H
                    ALERT1 output
                                        L
                                      H
                     STBY input
                                        L
                                              *: Time of about 1.6 ms or   Corresponding to 40 dividing frequency of fOSC
                                              more is necessary.             0.010 ms (typ.), 0.1 ms (max)
        The operation returns by programming STBY H→L→H shown in the above figure or powering on the
        supply again to drive UVLO.
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                                                                                               TB67H303HG
ALERT output
(1) ALERT 1 (Pin No. 1)
       ALERT 1 terminal outputs in detecting either TSD or ISD.
       ALERT terminal is connected to power supply externally via pull-up resistance. Spec. is shown below.
                VALERT = 0.5V (max) at 1mA
UVLO ALERT
Normal Z
            When Vcc falls to 6.0V (typ.) and UVLO is enabled, output turns off and ALERT 2 outputs low. In case
            Vcc falls below 6.0V (typ.), ALERT 2 outputs Hi-Z (High impedance).
            The operation returns from Standby mode when Vcc rises 6.5V (typ.) or more.
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                                                                                                     TB67H303HG
Absolute Maximum Ratings (Ta = 25°C)
                                        I (ALERT1)
  Drain current (ALERT1, ALERT2)                                       1           mA
                                        I (ALERT2)
  Input voltage                               VIN                      6           V
                                                                 3.2 (Note 2)
  Power dissipation                            PD                                  W
                                                                 40 (Note 3)
  Operating temperature                       Topr              −30 to 85          °C
  Storage temperature                         Tstg             −55 to 150          °C
  Note 1: Absolute Maximum Rating of output current per one channel is 5A, therefore, that of a parallel connection of
          two outputs on the outside of the IC is 10A.
          Make sure that two outputs are connected in parallel on the outside of the IC and that one pair should be
          OUT1A and OUT1B and the other should be OUT2A and OUT2B.
          Pay attention to wiring of the output terminals because there may be danger of current exceeding the
          absolute maximum rating 5A per 1 channel because of consentrating current at only one channel if there is a
          great lack of balance in the wiring length and so on between A phase side and B phase side about the
          parallel connection wiring of the output terminals on the outside of the IC.
   The absolute maximum ratings of a semiconductor device are a set of ratings that must not be exceeded, even for
   a moment. Do not exceed any of these absolute maximum ratings.
   Exceeding the absolute maximum ratings may cause the device breakdown, damage or deterioration, and may
   result injury by explosion or combustion.
   Please use the IC within the specified operating ranges.
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                                                                                                                          TB67H303HG
Electrical Characteristics (Ta = 25°C, Vcc = 24V)
                                       twPWMH
  Minimum pulse width                               IN1, IN2, PWM                                  5.0        ―       ―       μs
                                       twPWML
                                                    Standby mode,
  Internal constant voltage              Vreg                                                      4.5        5.0     5.5     V
                                                    External capacitor C = 0.1μF
  Chopping frequency
                                         fchop      Rosc = 51kΩ                                    28         40      52     kHz
  (Constant-current PWM)
  Note 1: Though Vref of the test condition for pre-shipment is 3.0V, make sure to configure Vref within the operating
          range which is written in page 12 in driving the motor.
                         Output ON resistor
     OUT pin                                           Ron U +Ron L           IOUT = 4 A                  ―         0.4      0.6     Ω
                          (Note1)      (Note2)
    Note 1:       The value is indicated per 1ch because pre-shipment testing is performed per 1ch.
    Note 2:       In using, typical value is 0.2Ω because two output pins are connected in parallel.
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                                                                        TB67H303HG
Measurement waveform
                 twPWMH                                  twPWMH
   IN1, IN2,
   PWM                                 twPWML
          VCC
                                        90%                       90%
 OUT1A, OUT2A,
 OUT1B, OUT2B
                                 10%                                    10%
          GND
                                  tr                              tf
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                                                                                                            TB67H303HG
Power dissipation
TB67H303HG
                                                                      PD    – Ta
                                       80
                                                                  ①   Infinite heat sink
                                                                    Rθj-c = 1°C/W
                                                                  ②   HEAT SINK (RθHS = 3.5°C/W)
                                                                    Rθj-c + RθHS = 4.5°C/W
                (W)
                                       60                         ③     IC only
                                                                      Rθj-a = 39°C/W
                Power dissipation PD
                                                ①
                                       40
20
                                                ③
                                       0
                                            0       25       50            75      100          125   150
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                                                                                                  TB67H303HG
Application circuit
(1) Direct PWM
                                                                                        0.1μF     47μF
                                                                                                          Fuse    24V
                                                                                                     +
                                 0.1μF                                                               -
                                         Vreg         ALERT1   ALERT2            Vcc
           SELECT
                                    Reg(5V)
                                                                                                                 OUT1A
            STBY
                                                                         Pre           H-Bridge
 MCU             IN1                                                                   driver A
                                                                        -drive
IN2 OUT2A
OUT1B
                                                                         Pre           H-Bridge
                                                                        -drive         driver B
            OSC
                                                                                                                 OUT2B
                       OSC
    51kΩ
                                                                                                                 RSB
            Vref
                         1/3
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                                                                                                 TB67H303HG
Note 1: Generally, some ICs are highly sensitive to electrostatic discharge. When handling them, ensure that the
        environment is protected against electrostatic discharge.
Note 2: Two outputs are connected in parallel on the outside of the IC.
        Make sure that two outputs are connected in parallel on the outside of the IC and that one pair should be
        OUT1A and OUT1B and the other should be OUT2A and OUT2B.
        Pay attention to wiring of the output terminals because there may be danger of current exceeding the absolute
        maximum rating 5A per 1 channel because of consentrating current at only one channel if there is a great lack
        of balance in the wiring length and so on between A phase side and B phase side about the parallel connection
        wiring of the output terminals on the outside of the IC.
Note 3: Capacitors for the power supply lines should be connected as close to the IC as possible.
Note 4: Pay attention for wire layout of PCB not to allow GND line to have large common impedance.
Note 5: External capacitor connecting to Vreg should be 0.1μF. Pay attention for the wire between this capacitor and
         Vreg terminal and the wire between this capacitor and SGND not to be influenced by noise.
Note 6: The IC may not operate normally when large common impedance is existed in GND line or the IC is easily
         influenced by noise. For example, if the IC operates continuously for a long time under the circumstance of
         large current and high voltage, the output according to the input control signal may be different from the I/O
         function table of this document. And so, the IC may not operate normally. To avoid this malfunction, make sure
         to conduct Note.2 to Note.5 and evaluate the IC enough before using the IC.
Note 7: As for a brush motor, the noise, which is generated from the brushes in the motor during the motor rotation,
        influences on the IC operation. For example, it may cause a malfunction of the ISD circuit and then finally the
        IC may not work normally. In this case, connect a capacitor between the motor terminals in order to reduce the
        noise.
        The appropriate value of the capacitor depends on the magnitude of the noise and the inductance of the motor
        coil. Please determine the value according to each actual equipment and condition. The connecting position of
        the capacitor should be conformed because the effect of the capacitor is different depending on the position of
        the capacitor which is near the IC or the motor.
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                                                                                                   TB67H303HG
                SELECT
                                       Reg(5V)
                                                                                                                  OUT1A
                 STBY
                                                                            Pre         H-Bridge
    MCU
                  IN1                                                                   driver A
                                                                           -drive
                                                                                                                  OUT2A
                  IN2
OUT1B
                 Vref
                            1/3
0.3V to 1.95V
                                                                  SGND      PGNDA       PGNDB
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                                                                                                   TB67H303HG
Note 1: Generally, some ICs are highly sensitive to electrostatic discharge. When handling them, ensure that the
        environment is protected against electrostatic discharge.
Note 2: Two outputs are connected in parallel on the outside of the IC.
          Make sure that two outputs are connected in parallel on the outside of the IC and that one pair should be
          OUT1A and OUT1B and the other should be OUT2A and OUT2B.
          Pay attention to wiring of the output terminals because there may be danger of current exceeding the absolute
          maximum rating 5A per 1 channel because of consentrating current at only one channel if there is a great lack
          of balance in the wiring length and so on between A phase side and B phase side about the parallel connection
          wiring of the output terminals on the outside of the IC.
Note 3: Capacitors for the power supply lines should be connected as close to the IC as possible.
Note 4: Current detection resistance (RNF) should be connected as close as the IC as possible.
Note 5: Pay attention for wire layout of PCB not to allow GND line to have large common impedance.
Note 6: External capacitor connecting to Vreg should be 0.1μF. Pay attention for the wire between this capacitor and Vreg
        terminal and the wire between this capacitor and SGND not to be influenced by noise.
Note 7: The IC may not operate normally when large common impedance is existed in GND line or the IC is easily
        influenced by noise. For example, if the IC operates continuously for a long time under the circumstance of large
        current and high voltage, the output according to the input control signal may be different from the I/O function
        table of this document. And so, the IC may not operate normally. To avoid this malfunction, make sure to conduct
        Note.2 to Note.6 and evaluate the IC enough before using the IC.
Note 8: As for a brush motor, the noise, which is generated from the brushes in the motor during the motor rotation,
        influences on the IC operation. For example, it may cause a malfunction of the ISD circuit and then finally the IC
        may not work normally. In this case, connect a capacitor between the motor terminals in order to reduce the
        noise.
        The appropriate value of the capacitor depends on the magnitude of the noise and the inductance of the motor
        coil. Please determine the value according to each actual equipment and condition. The connecting position of
        the capacitor should be conformed because the effect of the capacitor is different depending on the position of
        the capacitor which is near the IC or the motor.
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                                                                     TB67H303HG
Package Dimensions
Note
Note:These dimensions are measured from the surface of the heat sink.
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                                                                                                 TB67H303HG
Notes on Contents
1. Block Diagrams
  Some of the functional blocks, circuits, or constants in the block diagram may be omitted or simplified for
  explanatory purposes.
2. Equivalent Circuits
  The equivalent circuit diagrams may be simplified or some parts of them may be omitted for explanatory
  purposes.
  3. Timing Charts
  Timing charts may be simplified for explanatory purposes.
4. Application Circuits
  The application circuits shown in this document are provided for reference purposes only. Thorough evaluation
  is required, especially at the mass production design stage.
  Toshiba does not grant any license to any industrial property rights by providing these examples of application
  circuits.
5. Test Circuits
  Components in the test circuits are used only to obtain and confirm the device characteristics. These components
  and circuits are not guaranteed to prevent malfunction or failure from occurring in the application equipment.
IC Usage Considerations
  Notes on handling of ICs
[1] The absolute maximum ratings of a semiconductor device are a set of ratings that must not be exceeded, even
    for a moment. Do not exceed any of these ratings.
     Exceeding the rating(s) may cause the device breakdown, damage or deterioration, and may result injury by
     explosion or combustion.
[2] Use an appropriate power supply fuse to ensure that a large current does not continuously flow in case of over
    current and/or IC failure. The IC will fully break down when used under conditions that exceed its absolute
    maximum ratings, when the wiring is routed improperly or when an abnormal pulse noise occurs from the
    wiring or load, causing a large current to continuously flow and the breakdown can lead smoke or ignition. To
    minimize the effects of the flow of a large current in case of breakdown, appropriate settings, such as fuse
    capacity, fusing time and insertion circuit location, are required.
[3] If your design includes an inductive load such as a motor coil, incorporate a protection circuit into the design to
     prevent device malfunction or breakdown caused by the current resulting from the inrush current at power ON
     or the negative current resulting from the back electromotive force at power OFF. IC breakdown may cause
     injury, smoke or ignition.
     Use a stable power supply with ICs with built-in protection functions. If the power supply is unstable, the
     protection function may not operate, causing IC breakdown. IC breakdown may cause injury, smoke or ignition.
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                                                                                                  TB67H303HG
(4) Back-EMF
     When a motor rotates in the reverse direction, stops or slows down abruptly, a current flow back to the motor’s
     power supply due to the effect of back-EMF. If the current sink capability of the power supply is small, the
     device’s motor power supply and output pins might be exposed to conditions beyond absolute maximum ratings.
     To avoid this problem, take the effect of back-EMF into consideration in system design.
(5) Short-circuiting between outputs, air contamination faults, faults due to improper grounding, short-circuiting
     between contiguous pins
    Utmost care is necessary in the design of the power supply lines, GND lines, and output lines since the IC may
    be destroyed by short-circuiting between outputs, air contamination faults, or faults due to improper grounding,
    or by short-circuiting between contiguous pins. They may destroy not only the IC but also peripheral parts and
    may contribute to injuries for users. Over current may continue to flow in the IC because of this destruction
    and cause smoke or ignition of the IC. Expect the volume of this over current and add an appropriate power
    supply fuse in order to minimize the effects of the over current. Capacity of the fuse, fusing time, and the
    inserting position in the circuit should be configured suitably.
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                                                                                                                   TB67H303HG
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