ADP3624ARDZ Analog Devices Inc, ADP3624ARDZ Datasheet - Page 13

IC DRIVER DUAL 4A NONINV 8SOIC

ADP3624ARDZ

Manufacturer Part Number
ADP3624ARDZ
Description
IC DRIVER DUAL 4A NONINV 8SOIC
Manufacturer
Analog Devices Inc
Datasheet

Specifications of ADP3624ARDZ

Configuration
Low-Side
Input Type
Non-Inverting
Delay Time
14ns
Current - Peak
4A
Number Of Configurations
2
Number Of Outputs
2
Voltage - Supply
4.5 V ~ 18 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
8-SOIC (3.9mm Width) Exposed Pad, 8-eSOIC. 8-HSOIC
Device Type
MOSFET
Module Configuration
Low Side
Peak Output Current
4A
Output Resistance
80kohm
Input Delay
14ns
Output Delay
22ns
Supply Voltage Range
4.5V To 18V
Driver Case Style
SOIC
No.
RoHS Compliant
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
High Side Voltage - Max (bootstrap)
-
Lead Free Status / RoHS Status
Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
ADP3624ARDZ
Manufacturer:
ADI/亚德诺
Quantity:
20 000
The
multiple devices to the same warning bus in a wire-OR’ e d
configuration, as shown in Figure 23.
The overtemperature shutdown turns off the device to protect it
in the event that the die temperature exceeds the absolute maxi-
mum limit in
SUPPLY CAPACITOR SELECTION
For the supply input (V
local bypass capacitor is recommended to reduce the noise and
to supply some of the peak currents that are drawn.
An improper decoupling can dramatically increase the rise
times, cause excessive resonance on the OUTA and OUTB pins,
and, in some extreme cases, even damage the device, due to
inductive overvoltage on the VDD or OUTA/OUTB pins.
The minimum capacitance required is determined by the size
of the gate capacitances being driven, but as a general rule, a
4.7 µF, low ESR capacitor should be used. Multilayer ceramic
chip (MLCC) capacitors provide the best combination of low
ESR and small size. Use a smaller ceramic capacitor (100 nF)
with a better high frequency characteristic in parallel to the
main capacitor to further reduce noise.
Keep the ceramic capacitor as close as possible to the ADP362x/
ADP363x device, and minimize the length of the traces going
from the capacitor to the power pins of the device.
PCB LAYOUT CONSIDERATIONS
Use the following general guidelines when designing printed
circuit boards (PCBs):
OTW
Trace out the high current paths and use short, wide
(>40 mil) traces to make these connections.
Minimize trace inductance between the OUTA and OUTB
outputs and MOSFET gates.
Connect the PGND pin of the ADP362x/ADP363x device
as closely as possible to the source of the MOSFETs.
ADP3623/ADP3624/ADP3625/
ADP3633/ADP3634/ADP3635
ADP3623/ADP3624/ADP3625/
ADP3633/ADP3634/ADP3635
open-drain configuration allows connection of
Table 2.
Figure 23. OTW
DD
) of the ADP362x/ADP363x family, a
PGND
PGND
VDD
VDD
Signaling Scheme Example
OTW
OTW
3.3V
ADP3623/ADP3624/ADP3625/ADP3633/ADP3634/ADP3635
FLAGIN
ADP1043A
Rev. A | Page 13 of 16
Figure 24 shows an example of the typical layout based on the
preceding guidelines.
Note that the exposed pad of the package is not directly
connected to any pin of the package, but it is electrically and
thermally connected to the die substrate, which is the ground of
the device.
PARALLEL OPERATION
The two driver channels present in the ADP3623/ADP3633 or
ADP3624/ADP3634 devices can be combined to operate in
parallel to increase drive capability and minimize power
dissipation in the driver.
The connection scheme for the ADP3624/ADP3634 devices is
shown in Figure 25. In this configuration, INA and INB are
connected together, and OUTA and OUTB are connected
together.
Particular attention must be paid to the layout in this case to
optimize load sharing between the two drivers.
Place the V
VDD and PGND pins.
Use vias to other layers, when possible, to maximize
thermal conduction away from the IC.
Figure 24. External Component Placement Example
1
2
3
4
INA
PGND
INB
SD
ADP3624/ADP3634
DD
bypass capacitor as close as possible to the
Figure 25. Parallel Operation
B
A
OUTA
OUTB
OTW
VDD
8
7
6
5
V
DD
V
DS

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