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AD8531ART 데이터시트(PDF) 12 Page - Analog Devices

부품명 AD8531ART
상세설명  Low Cost, 250 mA Output Single-Supply Amplifiers
PDF  16 Pages
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AD8531ART 데이터시트(HTML) 12 Page - Analog Devices

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AD8531/AD8532/AD8534
REV. D
–12–
A Single-Supply Headphone Amplifier
Because of its speed and large output drive, the AD8531/AD8532/
AD8534 makes an excellent headphone driver, as illustrated in
Figure 40. Its low supply operation and rail-to-rail inputs and
outputs give a maximum signal swing on a single 5 V supply.
To ensure maximum signal swing available to drive the head-
phone, the amplifier inputs are biased to V+/2, which in this
case is 2.5 V. The 100 k
W resistor to the positive supply is
equally split into two 50 k
W resistors, with their common point
bypassed by 10
mF to prevent power supply noise from contami-
nating the audio signal.
The audio signal is then ac-coupled to each input through a
10
mF capacitor. A large value is needed to ensure that the
20 Hz audio information is not blocked. If the input already has
the proper dc bias, the ac coupling and biasing resistors are not
required. A 270
mF capacitor is used at the output to couple the
amplifier to the headphone. This value is much larger than that
used for the input because of the low impedance of the head-
phones, which can range from 32
W to 600 W. An additional
16
W resistor is used in series with the output capacitor to pro-
tect the op amp’s output stage by limiting capacitor discharge
current. When driving a 48
W load, the circuit exhibits less than
0.3% THD+N at output drive levels of 4 V p-p.
1/2
AD8532
16
50k
270 F
LEFT
HEADPHONE
10 F
50k
50k
100k
10 F
LEFT
INPUT
1/2
AD8532
16
50k
270 F
RIGHT
HEADPHONE
10 F
50k
50k
100k
10 F
RIGHT
INPUT
V
V 5V
1 F/0.1 F
V 5V
Figure 40. A Single-Supply, Stereo Headphone Driver
A Single-Supply, Two-Way Loudspeaker Crossover Network
Active filters are useful in loudspeaker crossover networks for
reasons of small size, relative freedom from parasitic effects, the
ease of controlling low/high channel drive and the controlled driver
damping provided by a dedicated amplifier. Both Sallen-Key
(SK) and multiple-feedback (MFB) filter architectures are use-
ful in implementing active crossover networks. The circuit
shown in Figure 41 is a single-supply, two-way active crossover
which combines the advantages of both filter topologies. This
active crossover exhibits less than 0.4% THD+N at output levels
of 1.4 V rms using general purpose unity-gain HP/LP stages.
In this two-way example, the LO signal is a dc-500 Hz
LP woofer output, and the HI signal is the HP (>500 Hz)
tweeter output. U1B forms an LP section at 500 Hz, while
U1A provides a HP section, covering frequencies
≥500 Hz.
VIN
3
2
1
U1A
AD8532
VS
4
R1
31.6k
C1
0.01 F
C2
0.01 F
R2
31.6k
R5
31.6k
R6
31.6k
R4
49.9
HI
LO
500Hz
AND UP
DC –
500Hz
6
5
7
C3
0.01 F
U1B
AD8532
C4
0.02 F
R7
15.8k
R3
49.9
270 F
270 F
100k
VS
10 F
100k
100k
CIN
10 F
RIN
100k
0.1 F
100 F/25V
VS
TO U1
5V
COM
+
100k
+
Figure 41. A Single-Supply, Two-Way Active Crossover
The crossover example frequency of 500 Hz can be shifted
lower or higher by frequency scaling of either resistors or
capacitors. In configuring the circuit for other frequencies,
complementary LP/HP action must be maintained between
sections, and component values within the sections must be in
the same ratio. Table II provides a design aid to adaptation,
with suggested standard component values for other frequencies.
Table II. RC Component Selection for Various
Crossover Frequencies
Crossover
R1/C1 (U1A)
1
Frequency (Hz)
R5/C3 (U1B)
2
100
160 k
W/0.01 mF
200
80.6 k
W/0.01 mF
319
49.9 k
W/0.01 mF
500
31.6 k
W/0.01 mF
1 k
16 k
W/0.01 mF
2 k
8.06 k
W/0.01 mF
5 k
3.16 k
W/0.01 mF
10 k
1.6 k
W/0.01 mF
NOTES
Applicable for filter
a = 2.
1For Sallen-Key stage U1A: R1 = R2, and C1 = C2, etc.
2For Multiple Feedback stage U1B: R6 = R5, R7 = R5/2, and
C4 = 2C3.
For additional information on the active filters and active cross-
over networks, please consult the data sheet for the OP279, a
dual rail-to-rail high-output current operational amplifier.



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