AMIS−30532
www.onsemi.com
10
TYPICAL APPLICATION SCHEMATIC
Figure 7. Typical Application Schematic AMIS−30532
POR/WD
VCP
CPP
CPN
CLR
C
7
ERR
GND
CS
CLK
DI
DO
NXT
DIR
MOTXP
MOTXN
MOTYP
MOTYN
M
220 nF
100 nF
C
5
V
BAT
VDD VBBVBB
100 nF
220 nF
100 μF
C
2
C
3
C
6
C
1
100 nF
100 nF
C
4
SLA
C
8
R
1
μ
C
D
1
R
2
R
3
R
4
AMIS−3053 2
2
15, 16
12
10
11
23
5
4
1
21, 22
18
3
17
19, 20
7
9
13
28
6
14
24
25, 26
27
TSTO
29
31
32
Table 8. EXTERNAL COMPONENTS LIST AND DESCRIPTION
Component Function Typ Value Tolerance Unit
C
1
V
BB
Buffer Capacitor (Note 13) 100 −20 +80%
mF
C
2
, C
3
V
BB
Decoupling Block Capacitor 100 −20 +80% nF
C
4
V
DD
Buffer Capacitor 100 $20% nF
C
5
V
DD
Buffer Capacitor 100 $20% nF
C
6
Charge Pump Buffer Capacitor 220 $20% nF
C
7
Charge Pump Pumping Capacitor 220 $20% nF
C
8
Low Pass Filter SLA 1 $20% nF
R
1
Low Pass Filter SLA 5.6 $1%
kW
R
2,
R
3,
R
4
Pullup Resistor Open Drain Output 4.7 $1%
kW
D
1
Optional Reverse Protection Diode MURD530
13.ESR < 1 W.
AMIS−30532
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11
FUNCTIONAL DESCRIPTION
H−Bridge Drivers
A full H−bridge is integrated for each of the two stator
windings. Each H−bridge consists of two low−side and two
high−side N−type MOSFET switches. Writing logic ‘0’ in
bit <MOTEN> disables all drivers (high−impedance).
Writing logic ‘1’ in this bit enables both bridges and current
can flow in the motor stator windings.
In order to avoid large currents through the H−bridge
switches, it is guaranteed that the top− and bottom−switches
of the same half−bridge are never conductive
simultaneously (interlock delay).
A two−stage protection against shorts on motor lines is
implemented. In a first stage, the current in the driver is
limited. Secondly, when excessive voltage is sensed across
the transistor, the transistor is switched−off.
In order to reduce the radiated/conducted emission,
voltage slope control is implemented in the output switches.
The output slope is defined by the gate−drain capacitance of
output transistor and the (limited) current that drives the
gate. There are two trimming bits for slope control (see SPI
Control Parameter Overview EMC[1:0]).
The power transistors are equipped with so−called “active
diodes”: when a current is forced trough the transistor switch
in the reverse direction, i.e. from source to drain, then the
transistor is switched on. This ensures that most of the
current flows through the channel of the transistor instead of
through the inherent parasitic drain−bulk diode of the
transistor.
Depending on the desired current range and the
micro−step position at hand, the R
DS(on)
of the low−side
transistors will be adapted such that excellent current−sense
accuracy is maintained. The R
DS(on)
of the high−side
transistors remain unchanged, see Table 5 DC Parameters
for more details.
PWM Current Control
A PWM comparator compares continuously the actual
winding current with the requested current and feeds back
the information to a digital regulation loop. This loop then
generates a PWM signal, which turns on/off the H−bridge
switches. The switching points of the PWM duty−cycle are
synchronized to the on−chip PWM clock. The frequency of
the PWM controller can be doubled and an artificial jitter
can be added (see SPI Control Parameter Overview PWMJ).
The PWM frequency will not vary with changes in the
supply voltage. Also variations in motor−speed or
load−conditions of the motor have no effect. There are no
external components required to adjust the PWM frequency.
Automatic Forward and Slow−Fast Decay
The PWM generation is in steady−state using a
combination of forward and slow−decay. The absence of
fast−decay in this mode, guarantees the lowest possible
current−ripple “by design”. For transients to lower current
levels, fast−decay is automatically activated to allow
high−speed response. The selection of fast or slow decay is
completely transparent for the user and no additional
parameters are required for operation.
Icoil
0
t
Forward & Slow Decay
Forward & Slow Decay
Fast Decay & Forward
Actual value
Set value
T
PWM
Figure 8. Forward and Slow/Fast Decay PWM
AMIS−30532
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12
Automatic Duty Cycle Adaptation
In case the supply voltage is lower than 2*Bemf, then the
duty cycle of the PWM is adapted automatically to > 50% to
maintain the requested average current in the coils. This
process is completely automatic and requires no additional
parameters for operation. The over−all current−ripple is
divided by two if PWM frequency is doubled (see SPI
Control Parameter Overview PWMF).
Actual value
Duty Cycle
<50%
Duty Cycle>50%
Duty Cycle< 50%
t
Icoil
Set value
T
PWM
Figure 9. Automatic Duty Cycle Adaptation
Step Translator and Step Mode
The step translator provides the control of the motor by
means of SPI register Stepmode: SM[2:0], SPI register
DIRCNTRL, and input pins DIR and NXT. It is translating
consecutive steps in corresponding currents in both motor
coils for a given step mode.
One out of seven possible stepping modes can be selected
through SPI−bits SM[2:0] (see SPI Control Parameter
Overview). After power−on or hard reset, the coil−current
translator is set to the default 1/32 micro−stepping at
position ‘0’. Upon changing the step mode, the translator
jumps to position 0* of the corresponding stepping mode.
When remaining in the same step mode, subsequent
translator positions are all in the same column and increased
or decreased with 1. Table 10 lists the output current versus
the translator position.
As shown in Figure 10 the output current−pairs can be
projected approximately on a circle in the (I
x
, I
y
) plane.
There are, however, two exceptions: uncompensated half
step and full step. In these step modes the currents are not
regulated to a fraction of I
max
but are in all intermediate steps
regulated at 100%. In the (I
x
, I
y
) plane the current−pairs are
projected on a square. Table 9 lists the output current versus
the translator position for these cases.
Table 9. SQUARE TRANSLATOR TABLE FOR FULL STEP AND UNCOMPENSATED HALF STEP
MSP[6:0]
Stepmode ( SM[2:0] ) % of I
max
101 110
Coil x Coil y
Uncompensated Half−Step Full Step
000 0000 0* 0 100
001 0000 1 1 100 100
010 0000 2 100 0
011 0000 3 2 100 −100
100 0000 4 0 −100
101 0000 5 3 −100 −100
110 0000 6 −100 0
111 0000 7 0 −100 100

AMIS30532C5321G

Mfr. #:
Manufacturer:
ON Semiconductor
Description:
Motor / Motion / Ignition Controllers & Drivers Stepper Motor Driver 32 Pins
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
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