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MIC5166 Datasheet(PDF) 17 Page - Microchip Technology

No. de pieza MIC5166
Descripción Electrónicos  3A High-Speed, Low-VIN DDR Terminator
PDF  36 Pages
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Fabricante Electrónico  MICROCHIP [Microchip Technology]
Página de inicio  http://www.microchip.com
Logo MICROCHIP - Microchip Technology

MIC5166 Datasheet(HTML) 17 Page - Microchip Technology

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 2018 - 2019 Microchip Technology Inc.
DS20006085B-page 17
MIC5166
5.0
COMPONENT SELECTION
5.1
Input Capacitor
A 10 µF ceramic input capacitor is all that is required for
most applications if it is close to a bulk capacitance.
The input capacitor must be placed on the same side of
the board and next to the MIC5166 to minimize the
dropout voltage and voltage ringing during transient
and short-circuit conditions. It is also recommended
that each capacitor to be connected to the PGND
directly, not through vias. X7R or X5R dielectric
ceramic capacitors are recommended because of their
temperature
performance.
X7R-type
capacitors
change capacitance by 15% over their operating
temperature range and are the most stable type of
ceramic capacitors. Z5U and Y5V dielectric capacitors
change value by as much as 50% and 60%
respectively over their operating temperature ranges.
To use a ceramic chip capacitor with Y5V dielectric, the
value must be much higher than an X7R ceramic.
5.2
Output Capacitor
As part of the frequency compensation, the MIC5166
requires two 10 µF ceramic output capacitors for best
transient performance. To improve transient response,
any other type of capacitor can be placed in parallel as
long as the two 10 µF ceramic output capacitors are
placed next to the MIC5166.
The output capacitor type and placement criteria are
the same as the input capacitor. See the Input
Capacitor section for a detailed description.
5.3
Thermal Considerations
The MIC5166 is packaged in the 3 mm x 3 mm DFN, a
package that has excellent thermal performance. This
maximizes heat transfer from the junction to the
exposed pad (ePAD) that connects to the ground plane.
The size of the ground plane attached to the exposed
pad determines the overall thermal resistance from the
junction to the ambient air surrounding the printed
circuit board.
5.4
Thermal Design
The most complicated design parameters to consider
are thermal characteristics. Thermal design requires
the following application-specific parameters:
• Maximum ambient temperature (TA)
• Output current (IOUT)
• Output voltage (VOUT)
• Input voltage (VIN)
• Ground current (IGND)
First, calculate the power dissipation of the regulator
from these numbers and the device parameters from
this data sheet.
EQUATION 5-1:
For example, given an expected maximum ambient
temperature (TA) of 70°C with VIN = 1.2V, VBIAS = 3.3V,
VTT = 0.9V, and IOUT = 3A, first calculate the expected
PD using Equation 5-1:
EQUATION 5-2:
Next, determine the junction temperature for the
expected power dissipation above using the thermal
resistance (θJA) of the 10-pin 3 mm x 3 mm DFN (YML)
adhering to the following criteria for the PCB design
(1oz. copper and 100 mm2 copper area for the
MIC5166):
EQUATION 5-3:
To determine the maximum power dissipation allowed
that would not exceed the IC’s maximum junction
temperature (125°C) when operating at a maximum
ambient temperature of 70°C:
EQUATION 5-4:
PD
VIN VTT
 I
OUT
VBIAS IGND

+
=
Where:
IOUT = Approximated by using numbers from the
Electrical Characteristics or Typical Performance
Curves.
PD
1.2V 0.9V
 3A
3.3V
+
0.0016A
0.90528W
==
TJ
JA
PD
 T
A
+
=
TJ
60.7
C/W 0.90528W
 70C
+
=
TJ
124.95
C
=
PDMAX

TJMAX

TA
 
JA
=
PDMAX

125
C 70C
 60.7C/W

0.9061W
==



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