MIC4742YTSE Micrel Inc, MIC4742YTSE Datasheet - Page 14

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MIC4742YTSE

Manufacturer Part Number
MIC4742YTSE
Description
2 MHz Dual 2A Integrated Switch Buck Regulator
Manufacturer
Micrel Inc
Type
Step-Down (Buck)r
Datasheet

Specifications of MIC4742YTSE

Internal Switch(s)
Yes
Synchronous Rectifier
No
Number Of Outputs
2
Voltage - Output
Adj to 0.6V
Current - Output
2A
Frequency - Switching
2MHz
Voltage - Input
2.9 ~ 5.5 V
Operating Temperature
-40°C ~ 125°C
Mounting Type
Surface Mount
Package / Case
16-TSSOP Exposed Pad, 16-eTSSOP, 16-HTSSOP
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Power - Output
-
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
576-3355-5

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
MIC4742YTSE
Manufacturer:
Micrel Inc
Quantity:
135
Micrel, Inc.
Loop Stability and Bode Analysis
Bode analysis is an excellent way to measure small
signal stability and loop response in power supply
designs. Bode analysis monitors gain and phase of a
control loop. This is done by breaking the feedback loop
and injecting a signal into the feedback node and
comparing the injected signal to the output signal of the
control loop. This will require a network analyzer to
sweep the frequency and compare the injected signal to
the output signal. The most common method of injection
is the use of transformer. Figure 7 demonstrates how a
transformer is used to inject a signal into the feedback
network.
A 50Ω resistor allows impedance matching from the
network analyzer source. This method allows the DC
loop to maintain regulation and allow the network
analyzer to insert an AC signal on top of the DC voltage.
The network analyzer will then sweep the source while
monitoring A and R for an A/R measurement.
The following Bode analysis show the small signal loop
stability of the MIC4742, it utilizes type III compensation.
This is a dominant low frequency pole, followed by 2
zeros and finally the double pole of the inductor
capacitor filter, creating a final 20dB/decade roll off.
Bode analysis gives us a few important data points;
speed of response (Gain Bandwidth or GBW) and loop
stability. Loop speed or GBW determines the response
time to a load transient. Faster response times yield
smaller voltage deviations to load steps.
Instability in a control loop occurs when there is gain and
positive feedback. Phase margin is the measure of how
stable the given system is. It is measured by determining
how far the phase is from crossing zero when the gain is
equal to 1 (0dB).
March 2009
Figure 7. Transformer Injection
14
Typically for 3.6Vin and 1.8Vout at 2A;
Being that the MIC4742 is non-synchronous; the
regulator only has the ability to source current. This
means that the regulator has to rely on the load to be
able to sink current. This causes a non-linear response
at light loads. The following plot shows the effects of the
pole created by the nonlinearity of the output drive
during light load (discontinuous) conditions.
3.6Vin, 1.8Vout Iout=0.1A;
Feed Forward Capacitor
The feedback resistors are a gain reduction block in the
overall system response of the regulator. By placing a
capacitor from the output to the feedback pin, high
frequency signal can bypass the resistor divider, causing
a gain increase up to unity gain.
Phase Margin=77.8 Degrees
GBW=229KHz
Phase Margin=89.9 Degrees
GBW= 43.7kHz
-10
-20
-30
-10
-20
-30
60
50
40
30
20
10
60
50
40
30
20
10
1.E+02
1.E+02
0
0
Vin=3.6V Vout=1.8V Iout=0.1A
Vin=3.6V Vout=1.8V Iout=2A
1.E+03
1.E+03
FREQUENCY (Hz)
FREQUENCY (Hz)
Bode Plot
Bode Plot
1.E+04
1.E+04
1.E+05
1.E+05
1.E+06
1.E+06
M9999-030209-D
210
175
140
105
70
35
0
-35
-70
-105
210
175
140
105
70
35
0
-35
-70
-105
MIC4742

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