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AN1882 Datasheet(PDF) 9 Page - STMicroelectronics

Part # AN1882
Description  This application note details the main features
PDF  30 Pages
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Manufacturer  STMICROELECTRONICS [STMicroelectronics]
Direct Link  http://www.st.com
Logo STMICROELECTRONICS - STMicroelectronics

AN1882 Datasheet(HTML) 9 Page - STMicroelectronics

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AN1882
Functional description
Doc ID 10209 Rev 4
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The current mode stability can be studied in two consecutive steps; first the inner loop is
closed (current loop) and then the second loop stability is considered (voltage loop).
3.2.1
Current loop compensation
The selected control architecture brings many advantages: easy compensation with ceramic
capacitors, fast transient response and intrinsic peak current measurement that simplify the
current limit protection. A known drawback, however, is that the current loop becomes
unstable, when the duty cycle exceeds 50%.
This phenomenon is known as "sub-harmonic oscillation" and can be avoided by adding a
slope compensation signal. Due to this fact, the current limit of the device decreases when
the slope compensation signal is applied. The slope compensation is internally implemented
from a duty around 30% and
Figure 7 shows how the slope compensation affects the device
current limit.
Figure 7.
Slope compensation
The amount of slope compensation depends on the inductor current slope during the OFF
time. This slope, for a given duty cycle, is inversely proportional to the inductor value. Since
the device can be synchronized at higher frequency, it is reasonable to calculate the inductor
value in terms of it. Finally, the input voltage affects the OFF time slope as well. This is
obvious because, for a given duty cycle, the output voltage (and so the OFF time inductor
current slope) is directly proportional to the input one. In order to better manage these
issues, the amount of slope compensation does not depend only on the duty cycle but also
on the switching frequency and the input voltage.
Table 2.
Suggested inductor values for different switching frequencies, at
VIN = 3.6 V and VOUT =1.8 V
FSW [kHz]
Minimum inductor value [µH]
600
6.8
1000
3.6
1400
2.7



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