NCP2820 Series
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13
8
2.5 3.5 4.5 5.5
POWER SUPPLY (V)
TURN OFF TIME (mS)
T
A
= +85°C
6
7
8
9
10
11
2.5 3.5 4.5 5.5
Figure 33. Turn on Time
Figure 34. Turn off Time
POWER SUPPLY (V)
TURN ON TIME (mS)
T
A
= +85°C
T
A
= +25°C
T
A
= 40°C
7
6
5
4
T
A
= 40°C
T
A
= +25°C
DESCRIPTION INFORMATION
Detailed Description
The basic structure of the NCP2820 is composed of one
analog preamplifier, a pulse width modulator and an
Hbridge CMOS power stage. The first stage is externally
configurable with gainsetting resistor R
i
and the internal
fixed feedback resistor R
f
(the closedloop gain is fixed by
the ratios of these resistors) and the other stage is fixed. The
load is driven differentially through two output stages.
The differential PWM output signal is a digital image of
the analog audio input signal. The human ear is a band pass
filter regarding acoustic waveforms, the typical values of
which are 20 Hz and 20 kHz. Thus, the user will hear only
the amplified audio input signal within the frequency range.
The switching frequency and its harmonics are fully filtered.
The inductive parasitic element of the loudspeaker helps to
guarantee a superior distortion value.
Power Amplifier
The output PMOS and NMOS transistors of the amplifier
have been designed to deliver the output power of the
specifications without clipping. The channel resistance
(R
on
) of the NMOS and PMOS transistors is typically 0.4.
Turn On and Turn Off Transitions in the 9 Pin
FlipChip Package (NCP2820)
In order to eliminate “pop and click” noises during
transition, the output power in the load must not be
established or cutoff suddenly. When a logic high is applied
to the shutdown pin, the internal biasing voltage rises
quickly and, 4 ms later, once the output DC level is around
the common mode voltage, the gain is established slowly
(5.0 ms). This method to turn on the device is optimized in
terms of rejection of “pop and click” noises. Thus, the total
turn on time to get full power to the load is 9 ms (typical).
The device has the same behavior when it is turnedoff by
a logic low on the shutdown pin. No power is delivered to the
load 5 ms after a falling edge on the shutdown pin. Due to
the fast turn on and off times, the shutdown signal can be
used as a mute signal as well.
Turn On and Turn Off Transitions in the 9 Pin
FlipChip Package (NCP2820)
In the case of the NCP2820A, the sequences are the same
as the NCP2820. Only the timing is different with 1 ms for
the turn on and 500 s for the turn off sequence.
Turn On and Turn Off Transitions in the UDFN8
In the case of the UDFN8 package, the audio signal is
established instantaneously after the rising edge on the
shutdown pin. The audio is also suddenly cut once a low
level is sent to the amplifier. This way to turn on and off the
device in a very fast way also prevents from “pop & click”
noise.
Shutdown Function
The device enters shutdown mode when the shutdown
signal is low. During the shutdown mode, the DC quiescent
current of the circuit does not exceed 1.5 A.
Current Breaker Circuit
The maximum output power of the circuit corresponds to
an average current in the load of 820 mA.
In order to limit the excessive power dissipation in the
load if a shortcircuit occurs, a current breaker cell shuts
down the output stage. The current in the four output MOS
transistors are realtime controlled, and if one current
exceeds the threshold set to 1.5 A, the MOS transistor is
opened and the current is reduced to zero. As soon as the
shortcircuit is removed, the circuit is able to deliver the
expected output power.
This patented structure protects the NCP2820. Since it
completely turns off the load, it minimizes the risk of the
chip overheating which could occur if a soft current limiting
circuit was used.
NCP2820 Series
http://onsemi.com
14
APPLICATION INFORMATION
NCP2820 PWM Modulation Scheme
The NCP2820 uses a PWM modulation scheme with each
output switching from 0 to the supply voltage. If V
in
= 0 V
outputs OUTM and OUTP are in phase and no current is
flowing through the differential load. When a positive signal
is applied, OUTP duty cycle is greater than 50% and OUTM
is less than 50%. With this configuration, the current through
the load is 0 A most of the switching period and thus power
losses in the load are lowered.
Figure 35. Output Voltage and Current Waveforms into an Inductive Loudspeaker
DC Output Positive Voltage Configuration
OUTP
OUTM
Load Current
+Vp
0 V
Vp
0 A
Voltage Gain
The first stage is an analog amplifier. The second stage is
a comparator: the output of the first stage is compared with
a periodic ramp signal. The output comparator gives a pulse
width modulation signal (PWM). The third and last stage is
the direct conversion of the PWM signal with MOS
transistors Hbridge into a powerful output signal with low
impedance capability.
With an 8 load, the total gain of the device is typically
set to:
300 k
R
i
Input Capacitor Selection (C
in
)
The input coupling capacitor blocks the DC voltage at the
amplifier input terminal. This capacitor creates a highpass
filter with R
in
, the cutoff frequency is given by
Fc +
1
2 R
i
C
i
.
When using an input resistor set to 150 k, the gain
configuration is 2 V/V. In such a case, the input capacitor
selection can be from 10 nF to 1 F with cutoff frequency
values between 1 Hz and 100 Hz. The NCP2820 also
includes a built in low pass filtering function. It’s cut off
frequency is set to 20 kHz.
Optional Output Filter
This filter is optional due to the capability of the speaker
to filter by itself the high frequency signal. Nevertheless, the
high frequency is not audible and filtered by the human ear.
An optional filter can be used for filtering high frequency
signal before the speaker. In this case, the circuit consists of
two inductors (15 H) and two capacitors (2.2 F)
(Figure 36). The size of the inductors is linked to the output
power requested by the application. A simplified version of
this filter requires a 1 F capacitor in parallel with the load,
instead of two 2.2 F connected to ground (Figure 37).
Cellular phones and portable electronic devices are great
applications for Filterless ClassD as the track length
between the amplifier and the speaker is short, thus, there is
usually no need for an EMI filter. However, to lower radiated
emissions as much as possible when used in filterless mode,
a ferrite filter can often be used. Select a ferrite bead with the
high impedance around 100 MHz and a very low DCR value
in the audio frequency range is the best choice. The
MPZ1608S221A1 from TDK is a good choice. The package
size is 0603.
Optimum Equivalent Capacitance at Output Stage
If the optional filter described in the above section isn’t
selected. Cellular phones and wireless portable devices
design normally put several Radio Frequency filtering
capacitors and ESD protection devices between Filter less
Class D outputs and loudspeaker. Those devices are usually
connected between amplifier output and ground. In order to
achieve the best sound quality, the optimum value of total
equivalent capacitance between each output terminal to the
ground should be less than or equal to 150 pF. This total
equivalent capacitance consists of the radio frequency
filtering capacitors and ESD protection device equivalent
parasitic capacitance.
NCP2820 Series
http://onsemi.com
15
OUTM
OUTP
R
L
=
8
2.2 F
2.2 F
15 H
15 H
OUTM
OUTP
R
L
=
8
1.0 F
15 H
15 H
Figure 36. Advanced Optional Audio Output Filter Figure 37. Optional Audio Output Filter
OUTM
OUTP
R
L
=
8
Figure 38. Optional EMI Ferrite Bead Filter
FERRITE
CHIP BEADS
Figure 39. NCP2820 Application Schematic with Fully Differential Input Configuration
Figure 40. NCP2820 Application Schematic with Fully Differential Input Configuration and
Ferrite Chip Beads as an Output EMI Filter
OUTM
OUTP
Cs
GND
R
i
SD
INP
INM
VP
Input from
Microcontroller
Differential
Audio Input
from DAC
R
i
OUTM
OUTP
Cs
GND
R
i
SD
INP
INM
VP
Input from
Microcontroller
Differential
Audio Input
from DAC
R
i
FERRITE
CHIP BEADS

NCP2820FCT2G

Mfr. #:
Manufacturer:
ON Semiconductor
Description:
Audio Amplifiers ANA CLAS D AUDIO AMP
Lifecycle:
New from this manufacturer.
Delivery:
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