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TPA3138D2PWPR датащи(PDF) 21 Page - Texas Instruments

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номер детали TPA3138D2PWPR
подробное описание детали  10-W, 3.5-V to 14.4-V, Inductor Free, Stereo Class-D Speaker Amplifier
PDF  36 Pages
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производитель  TI1 [Texas Instruments]
домашняя страница  http://www.ti.com
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TPA3138D2PWPR датащи(HTML) 21 Page - Texas Instruments

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1 mF
1 mF
33
H
m
33 mH
OUTP
OUTN
L1
L2
C2
C3
1nF
Ferrite
ChipBead
OUTP
OUTN
Ferrite
ChipBead
1nF
21
TPA3138D2
www.ti.com
SLOS993A – MARCH 2018 – REVISED JUNE 2018
Product Folder Links: TPA3138D2
Submit Documentation Feedback
Copyright © 2018, Texas Instruments Incorporated
Typical Applications (continued)
10.2.2.2 Efficiency: LC Filter Required with the Traditional Class-D Modulation Scheme
The main reason that the traditional class-D amplifier requires an output filter is that the switching waveform
results in maximum current flow. This causes more loss in the load, which causes lower efficiency. The ripple
current is large for the traditional modulation scheme, because the ripple current is proportional to voltage
multiplied by the time at that voltage. The differential voltage swing is 2 × VCC, and the time at each voltage is
half the period for the traditional modulation scheme. An ideal LC filter is required to store the ripple current from
each half cycle for the next half cycle, while any resistance causes power dissipation. The speaker is both
resistive and reactive, whereas an LC filter is almost purely reactive.
The TPA3138D2 modulation scheme has little loss in the load without a filter because the pulses are short and
the change in voltage is VCC instead of 2 × VCC. As the output power increases, the pulses widen, making the
ripple current larger. Ripple current could be filtered with an LC filter for increased efficiency, but for most
applications the filter is not required.
An LC filter with a cutoff frequency less than the class-D switching frequency allows the switching current to flow
through the filter instead of the load. The filter has less resistance but higher impedance at the switching
frequency than the speaker, which results in less power dissipation, therefore increasing efficiency.
10.2.2.3 When to Use an Output Filter for EMI Suppression
The TPA3138D2 device has been tested with a simple ferrite bead filter for a variety of applications including
long speaker wires up to 100 cm and high power. The TPA3138D2 EVM passes FCC Class B specifications
under these conditions using twisted speaker wires. The size and type of ferrite bead can be selected to meet
application requirements. Also, the filter capacitor can be increased if necessary with some impact on efficiency.
There may be a few circuit instances where it is necessary to add a complete LC reconstruction filter. These
circumstances might occur if there are nearby circuits which are sensitive to noise. In these cases a classic
second order Butterworth filter similar to those shown in the figures below can be used.
Some systems have little power supply decoupling from the AC line but are also subject to line conducted
interference (LCI) regulations. These include systems powered by "wall warts" and "power bricks." In these
cases, LC reconstruction filters can be the lowest cost means to pass LCI tests. Common mode chokes using
low frequency ferrite material can also be effective at preventing line conducted interference.
Figure 22. Typical Ferrite Chip Bead Filter (Chip Bead Example: NFZ2MSM series from Murata)
Figure 23. Typical LC Output Filter, Cutoff Frequency of 27 kHz, Speaker Impedance = 8
Ω



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