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PDF IRU1015 Data sheet ( Hoja de datos )

Número de pieza IRU1015
Descripción 1.5A LOW DROPOUT POSITIVE ADJUSTABLE REGULATOR
Fabricantes International Rectifier 
Logotipo International Rectifier Logotipo



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Data Sheet No. PD94122
IRU1015
FEATURES
Guaranteed < 1.3V Dropout at Full Load Current
Fast Transient Response
1% Voltage Reference Initial Accuracy
Output Current Limiting
Built-In Thermal Shutdown
APPLICATIONS
486DX4 Supply Voltage
P55 I/O Supply Voltage
VGA & Sound Card Applications
Low Voltage High Speed Termination Applications
Standard 3.3V Chip Set and Logic Applications
1.5A LOW DROPOUT POSITIVE
ADJUSTABLE REGULATOR
DESCRIPTION
The IRU1015 is a low dropout three-terminal adjustable
regulator with minimum of 1.5A output current capabil-
ity. This product is specifically designed to provide well
regulated supply for low voltage IC applications such as
486DX4 processor, P55CI/O supply as well as high
speed bus termination and low current 3.3V logic sup-
ply. The IRU1015 is also well suited for other applica-
tions such as VGA and sound card. The IRU1015 is
guaranteed to have <1.3V dropout at full load current
making it ideal to provide well regulated outputs of 2.5V
to 3.3V with 4.75V to 7V input supply.
TYPICAL APPLICATION
5V
C1
1500uF
Vin 3
1015app1-1.1
IRU1015 Vout 2
Adj 1
3.3V / 1.5A
R1
121
C2
R2 1500uF
200
Figure 1 - Typical application of IRU1015 in a 5V to 3.3V regulator
Note: P55C is trademark of Intel Corp.
PACKAGE ORDER INFORMATION
Tj (°C)
0 To 150
3-PIN PLASTIC
TO-220 (T)
IRU1015CT
3-PIN PLASTIC
TO-263 (M)
IRU1015CM
Rev. 1.1
06/29/01
2-PIN PLASTIC
TO-252 (D-Pak)
IRU1015CD
1

1 page




IRU1015 pdf
IRU1015
shows the steps in selecting the proper regulator heat
sink for an AMD 486DX4-120 MHz processor.
Assuming the following specifications:
VIN = 5V
VOUT = 3.45V
IOUT(MAX) = 1.2A
TA = 35!C
The steps for selecting a proper heat sink to keep the
junction temperature below 135°C is given as:
1) Calculate the maximum power dissipation using:
PD = IOUT × (VIN - VOUT)
PD = 1.2 × (5 - 3.45) = 1.86W
2) Select a package from the regulator data sheet and
record its junction to case (or Tab) thermal resistance.
Selecting TO-220 package gives us:
θJC = 2.7!C/W
3) Assuming that the heat sink is black anodized, cal-
culate the maximum Heat sink temperature allowed:
Assume, θcs=0.05°C/W (heat-sink-to-case thermal
resistance for black anodized)
TS = TJ - PD × (θJC + θCS)
TS = 135 - 1.86 × (2.7 + 0.05) = 129!C
4) With the maximum heat sink temperature calculated
in the previous step, the heat-sink-to-air thermal re-
sistance (θSA) is calculated by first calculating the
temperature rise above the ambient as follows:
T = TS - TA = 129 - 35 = 94!C
T = Temperature Rise Above Ambient
θSA =
T
PD
=
94
1.86
= 50!C/W
Thermalloy
AAVID
0
6041PB
574602
Air Flow (LFM)
100
No HS Required
No HS Required
Note: For further information regarding the above com-
panies and their latest product offerings and application
support contact your local representative or the num-
bers listed below:
AAVID...............PH# (603) 528 3400
Thermalloy.........PH# (214) 243-4321
Designing for Microprocessor Applications
As it was mentioned before the IRU1015 is designed
specifically to provide power for the new generation of
the low voltage processors requiring voltages in the range
of 2.5V to 3.6V generated by stepping down the 5V
supply. These processors demand a fast regulator that
supports their large load current changes. The worst case
current step seen by the regulator is anywhere in the
range of 1 to 7A with the slew rate of 300 to 500ns which
could happen when the processor transitions from “Stop
Clock” mode to the “Full Active” mode. The load current
step at the processor is actually much faster, in the or-
der of 15 to 20ns, however, the de-coupling capacitors
placed in the cavity of the processor socket handle this
transition until the regulator responds to the load current
levels. Because of this requirement the selection of high
frequency low ESR and low ESL output capacitor is
imperative in the design of these regulator circuits.
Figure 5 shows the effects of a fast transient on the
output voltage of the regulator. As shown in this figure,
the ESR of the output capacitor produces an instanta-
neous drop equal to the (VESR=ESR*I) and the ESL
effect will be equal to the rate of change of the output
current times the inductance of the capacitor (VESL
=L*I/t). The output capacitance effect is a droop in
the output voltage proportional to the time it takes for
the regulator to respond to the change in the current,
(VC = t * I / C ) where t is the response time of the
regulator.
5) Next, a heat sink with lower θsa than the one calcu-
lated in step 4 must be selected. One way to do this
is to simply look at the graphs of the "Heat Sink Temp
Rise Above the Ambient" vs. the "Power Dissipation"
and select a heat sink that results in lower tempera-
ture rise than the one calculated in the previous step.
The following heat sinks from AAVID and Thermalloy
meet this criteria.
Rev. 1.1
06/29/01
5

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