AD5755-1ACPZ Analog Devices Inc, AD5755-1ACPZ Datasheet - Page 44

16Bit Quad,V/I DAC No Dynamic Power Ctrl

AD5755-1ACPZ

Manufacturer Part Number
AD5755-1ACPZ
Description
16Bit Quad,V/I DAC No Dynamic Power Ctrl
Manufacturer
Analog Devices Inc
Series
-r
Datasheet

Specifications of AD5755-1ACPZ

Input Channel Type
Serial
Data Interface
3-Wire, Serial
Supply Voltage Range - Digital
2.7V To 5.5V
Digital Ic Case Style
LFCSP
No. Of Pins
64
Operating Temperature Range
-40°C To +105°C
Rohs Compliant
Yes
Resolution (bits)
16bit
Supply Voltage Range - Analog
2.7V To 5.5V
Featured Product
AD5755 / AD5755-1 / AD5757 DACs
Settling Time
11µs
Number Of Bits
16
Number Of Converters
4
Voltage Supply Source
Analog and Digital, Dual ±
Power Dissipation (max)
-
Operating Temperature
-40°C ~ 105°C
Mounting Type
Surface Mount
Package / Case
64-VFQFN Exposed Pad, CSP
Number Of Outputs And Type
4 Current, 4 Voltage
Lead Free Status / Rohs Status
Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
AD5755-1ACPZ-REEL7
Manufacturer:
AD
Quantity:
201
AD5755-1
Reducing AI
There are two main methods that can be used to reduce the
AI
compensation resistor, and the other is to use slew rate control.
Both of these methods can be used in conjunction.
A compensation resistor can be placed at the COMP
in series with the 10 nF compensation capacitor. A 51 kΩ exter-
nal compensation resistor is recommended. This compensation
increases the slew time of the current output but eases the AI
transient current requirements. Figure 83 shows a plot of AI
current for a 24 mA step through a 1 kΩ load when using a
51 kΩ compensation resistor. This method eases the current
requirements through smaller loads even further, as shown in
Figure 84.
Figure 83. AI
CC
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
current requirements. One method is to add an external
0
0
0mA TO 24mA RANGE
1kΩ LOAD
f
INDUCTOR = 10µH (XAL4040-103)
T
SW
A
= 25°C
CC
= 410kHz
Current vs. Time for 24 mA Through 1 kΩ Slew with External
CC
Current Requirements
0.5
51 kΩ Compensation Resistor
1.0
TIME (ms)
AI
I
V
OUT
BOOST
CC
1.5
2.0
DCDC_x
2.5
32
28
24
20
16
12
8
4
0
pin
CC
Rev. A | Page 44 of 48
CC
Using slew rate control can greatly reduce the AV
current requirements, as shown in Figure 85. When using slew
rate control, attention should be paid to the fact that the output
cannot slew faster than the dc-to-dc converter. The dc-to-dc
converter slews slowest at higher currents through large (for
example, 1 kΩ) loads. This slew rate is also dependent on the
configuration of the dc-to-dc converter. Two examples of the
dc-to-dc converter output slew are shown in Figure 83 and
Figure 84 (V
voltage).
Figure 84. AI
Figure 85. AI
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
0
0
0
CC
0mA TO 24mA RANGE
1kΩ LOAD
f
INDUCTOR = 10µH (XAL4040-103)
T
SW
A
BOOST
Current vs. Time for 24 mA Through 500 Ω Slew with External
AI
I
V
CC
= 25°C
OUT
BOOST
= 410kHz
1
CC
AI
I
V
Current vs. Time for 24 mA Slew with Slew Rate Control
OUT
0.5
BOOST
CC
corresponds to the dc-to-dc converter’s output
51 kΩ Compensation Resistor
2
1.0
TIME (ms)
TIME (ms)
INDUCTOR = 10µH (XAL4040-103)
3
1.5
0mA TO 24mA RANGE
4
f
SW
2.0
500Ω LOAD
T
5
= 410kHz
A
= 25°C
CC
supplies
2.5
6
32
28
24
20
16
12
8
4
0
32
28
24
20
16
12
8
4
0

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