MAX16807
Switch-Mode Controller
Current-Mode Control Loop
The advantages of current-mode control over voltage-
mode control are twofold. First, there is the feed-for-
ward characteristic brought on by the controller’s ability
to adjust for variations in the input voltage on a cycle-
by-cycle basis. Second, the stability requirements of
the current-mode controller are reduced to that of a sin-
gle pole system unlike the double pole in the voltage-
mode control scheme. The MAX16807 uses a
current-mode control loop where the output of the error
amplifier is compared to the current-sense voltage
(V
CS
). When the current-sense signal is lower than the
inverting input of the CPWM comparator, the output of
the comparator is low and the switch is turned on at
each clock pulse. When the current-sense signal is
higher than the inverting input of the CPWM compara-
tor, the output is high and the switch is turned off.
Undervoltage Lockout (UVLO)
The turn-on supply voltage for the MAX16807 is 8.4V
(typ). Once V
CC
reaches 8.4V, the reference powers up.
There is a 0.8V of hysteresis from the turn-on voltage to
the UVLO threshold. Once V
CC
reaches 8.4V, the
MAX16807 operates with V
CC
down to 7.6V (typ). Once
V
CC
goes below 7.6V, the device is in UVLO. When in
UVLO, the quiescent supply current into V
CC
falls back
to 32µA (typ), and OUT and REF are pulled low.
MOSFET Driver
OUT drives an external n-channel MOSFET and swings
from AGND to V
CC
. Ensure that V
CC
remains below the
absolute maximum V
GS
rating of the external MOSFET.
OUT is a push-pull output with the on-resistance of the
pMOS typically 3.5 and the on-resistance of the
nMOS typically 4.5. The driver can source 2A and
sink 1A typically. This allows for the MAX16807 to
quickly turn on and off high gate-charge MOSFETs.
Bypass V
CC
with one or more 0.1µF ceramic capacitors
to AGND, placed close to the V
CC
pin. The average
current sourced to drive the external MOSFET depends
on the total gate charge (Q
G
) and operating frequency
of the converter. The power dissipation in the
MAX16807 is a function of the average output drive
current (I
DRIVE
). Use the following equation to calculate
the power dissipation in the device due to I
DRIVE
:
I
DRIVE
= (Q
G
x f
SW
)
PD = (I
DRIVE
+ I
CC
) x V
CC
where I
CC
is the operating supply current. See the
Typical Operating Characteristics
for the operating
supply current at a given frequency.
Error Amplifier
The MAX16807 includes an internal error amplifier. The
inverting input is at FB and the noninverting input is
internally connected to a 2.5V reference. Set the output
voltage using a resistive divider between output of the
converter V
OUT
, FB, and AGND. Use the following for-
mula to set the output voltage:
where V
FB
= 2.5V.
Oscillator
The oscillator frequency is programmable using an
external capacitor and a resistor at RTCT (see R
T
and
C
T
in the
Typical Operating Circuits
). R
T
is connected
from RTCT to the 5V reference (REF), and C
T
is con-
nected from RTCT to AGND. REF charges C
T
through
R
T
until its voltage reaches 2.8V. C
T
then discharges
through an 8.3mA internal current sink until C
T
’s voltage
reaches 1.1V, at which time C
T
is allowed to charge
through R
T
again. The oscillator’s period is the sum of
the charge and discharge times of C
T
. Calculate the
charge time as follows:
t
C
= 0.57 x R
T
x C
T
where t
C
is in seconds, R
T
in ohms (), and C
T
in
Farads (F).
The discharge time is then:
t
D
= (R
T
x C
T
x 1000) / [(4.88 x R
T
) - (1.8 x 1000)]
where t
D
is in seconds, R
T
in ohms (), and C
T
in
Farads (F).
V
R
R
xV
OUT FB
=+
1
1
2
V+
W/L
OUT_
68W/L
995R
R
EST
1.23
R
1.23V
PGNDSET
Figure 1c. OUT_ Driver Internal Diagram
Integrated 8-Channel LED Driver with
Switch-Mode Boost and SEPIC Controller
______________________________________________________________________________________ 13
MAX16807
Integrated 8-Channel LED Driver with
Switch-Mode Boost and SEPIC Controller
14 ______________________________________________________________________________________
The oscillator frequency is then:
Reference Output
REF is a 5V reference output that can source 20mA.
Bypass REF to AGND with a 0.1µF capacitor.
Current Limit
The MAX16807 includes a fast current-limit comparator
to terminate the on cycle during an overload or a fault
condition. The current-sense resistor, R
CS
, connected
between the source of the external MOSFET and
AGND, sets the current limit. The CS input has a volt-
age trip level (V
CS
) of 0.3V. Use the following equation
to calculate R
CS
:
I
P-P
is the peak current that flows through the MOSFET.
When the voltage produced by this current (through the
current-sense resistor) exceeds the current-limit com-
parator threshold, the MOSFET driver (OUT) turns the
switch off within 60ns. In most cases, a small RC filter is
required to filter out the leading-edge spike on the sense
waveform. Set the time constant of the RC filter at 50ns.
Buck-Boost (SEPIC) Operation
Figure 2 shows a buck-boost application circuit using
the MAX16807 in a stand-alone mode of operation.
SEPIC topology is necessary when the total forward
voltage of the LEDs in a string is such that V
OUT
can be
below or above V
IN
.
R
V
I
CS
CS
PP
=
f
tt
OSC
CD
=
+
()
1
MAX16807
OUT0
FB
OUT1
OUT2
OUT3
OUT4
OUT5
OUT6
OUT7
EXTERNAL
DIM INPUT
EXTERNAL
CLOCK INPUT
SET
LE
DIN
PGND
V
CC
V+
OE
DOUT
CLK
REF
RTCT
C
REF
C
BYP
R
SET
R
CS
C1
D
C
C2
C
C1
OUT CS AGND COMP
R
C1
R2
R1
C
IN
R
T
C
T
3V TO 5.5V
V
IN
V
OUT
Q
LEDs
L1
L2
C
OUT
Figure 2. Buck-Boost (SEPIC) Configuration
MAX16807
Integrated 8-Channel LED Driver with
Switch-Mode Boost and SEPIC Controller
______________________________________________________________________________________ 15
LED Driver
4-Wire Interface
The MAX16807 also operates in a stand-alone mode
(see the
Typical Operating Circuits
). For use with a
microcontroller, the MAX16807 features a 4-wire serial
interface using DIN, CLK, LE, OE inputs and DOUT as
a data output. This interface is used to write the LED
channels’ data to the MAX16807. The serial-interface
data word length is 8 bits, D0–D7. See Figure 3.
The functions of the five interface pins are as follows:
DIN is the serial-data input, and must be stable when it
is sampled on the rising edge of CLK. Data is shifted in
MSB first. This means that data bit D7 is clocked in first,
followed by 7 more data bits, finishing with the LSB, D0.
CLK is the serial-clock input that shifts data at DIN into
the MAX16807’s 8-bit shift register on its rising edge.
LE is the latch enable input of the MAX16807 that trans-
fers data from the 8-bit shift register to its 8-bit output
latch (transparent latch). The data is latched on the
falling edge of LE (Figure 4). The fourth input (OE) pro-
vides output-enable control of the output drivers. When
OE is driven high, the outputs (OUT0–OUT7) are forced
to high impedance without altering the contents of the
output latches. Driving OE low enables the outputs to
follow the state of the output latches. OE is indepen-
dent of the operation of the serial interface operation.
Data can be shifted into the serial-interface shift regis-
ter and latched, regardless of the state of OE. DOUT is
the serial-data output that shifts data out from the
MAX16807’s 8-bit shift register on the rising edge of
CLK. Data at DIN propagates through the shift register
and appears at DOUT eight clock cycles later. Table 1
shows the 4-wire serial-interface truth table.
Selecting External Component
R
SET
to Set LED Output Current
The MAX16807 uses an external resistor, R
SET
, to set
the LED current for outputs OUT0–OUT7. The minimum
allowed value of R
SET
is 330, which sets the output
currents to 55mA. The maximum allowed value of R
SET
is 5k (I
OUT_
= 3.6mA) and maximum allowed capaci-
tance at SET is 100pF.
Use the following formula to set the output current:
where I
OUT_
is the desired output current in milliamps
and the value for R
SET
is in ohms.
Overtemperature Cutoff
The MAX16807 contains an internal temperature sensor
that turns off all outputs when the die temperature
exceeds +165°C. The outputs are enabled again when
the die temperature drops below +140°C. Register con-
tents are not affected, so when a driver is overdissipat-
ing, the external symptom is the load LEDs cycling on
and off as the driver repeatedly overheats and cools,
alternately turning itself off and then back on again.
R
I
SET
OUT
,
_
=
18 000
Table 1. 4-Wire Serial-Interface Truth Table
CLOCK
INPUT
SHIFT REGISTER CONTENTS
LOAD
INPUT
LATCH CONTENTS
BLANKING
INPUT
OUTPUT CONTENTS
CURRENT AT OUT_
SERIAL
DATA
INPUT
DIN
CLK D0 D1 D2 Dn-1 Dn LE D0 D1 D2 Dn-1 Dn OE D0 D1 D2 Dn-1 Dn
H H R0 R1 Rn-2 Rn-1
L L R0 R1 Rn-2 Rn-1
X R0 R1 R2 Rn-1 Rn
X X X X X L R0 R1 R2 Rn-1 Rn
P0 P1 P2 Pn-1 Pn H P0 P1 P2 Pn-1 Pn L P0 P1 P2 Pn-1 Pn
XXXX X H LLL L L
L = Low Logic Level
H = High Logic Level
X = Don’t Care
P = Present State (Shift Register)
R = Previous State (Latched)

MAX16808AUI+

Mfr. #:
Manufacturer:
Maxim Integrated
Description:
IC LED DRVR WT/RGB BCKLT 28TSSOP
Lifecycle:
New from this manufacturer.
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