參數(shù)資料
型號: IRU1075CM
廠商: International Rectifier
英文描述: VOLT REGULATOR|ADJUSTABLE|+1.25 TO +5.5V|BIPOLAR|SIP|3PIN|PLASTIC
中文描述: 電壓調(diào)節(jié)器|調(diào)節(jié)| 1.25至5.5V |雙極|園區(qū)| 3針|塑料
文件頁數(shù): 4/6頁
文件大?。?/td> 94K
代理商: IRU1075CM
4
Rev. 1.1
06/29/01
IRU1075
Output Voltage Setting
The IRU1075 can be programmed to any voltages in the
range of 1.25V to 5.5V with the addition of R1 and R2
external resistors according to the following formula:
Figure 3 - Typical application of the IRU1075
for programming the output voltage
The IRU1075 keeps a constant 1.25V between the out-
put pin and the adjust pin. By placing a resistor R1 across
these two pins a constant current flows through R1, add-
ing to the Iadj current and into the R2 resistor producing
a voltage equal to the (1.25/R1)*R2 + Iadj*R2 which will
be added to the 1.25V to set the output voltage. This is
summarized in the above equation. Since the minimum
load current requirement of the IRU1075 is 10mA, R1 is
typically selected to be 121
resistor so that it auto-
matically satisfies the minimum current requirement.
Notice that since Iadj is typically in the range of 50
μ
A it
only adds a small error to the output voltage and should
only be considered when a very precise output voltage
setting is required. For example, in a typical 3.3V appli-
cation where R1=121
and R2=200
the error due to
Iadj is only 0.3% of the nominal set point.
Load Regulation
Since the IRU1075 is only a three-terminal device, it is
not possible to provide true remote sensing of the output
voltage at the load. Figure 4 shows that the best load
regulation is achieved when the bottom side of R2 is
connected to the load and the top side of R1 resistor is
connected directly to the case or the Vout pin of the
regulator and not to the load. In fact, if R1 is connected
to the load side, the effective resistance between the
Figure 4 - Schematic showing connection
for best load regulation
regulator and the load is gained up by the factor of (1+R2/
R1), or the effective resistance will be, Rp(eff)=Rp*(1+R2/
R1). It is important to note that for high current applica-
tions, this can represent a significant percentage of the
overall load regulation and one must keep the path from
the regulator to the load as short as possible to mini-
mize this effect.
1075app3-1.0
R1
R2
Vin
RL
Rp
PARASITIC LINE
RESISTANCE
IRU1075
Adj
Vout
Vin
Vout
1075app2-1.0
R1
R2
Vin
Vref
IAdj = 50uA
Adj
Vout
Vin
IRU1075
Stability
The IRU1075 requires the use of an output capacitor as
part of the frequency compensation in order to make the
regulator stable. Typical designs for microprocessor ap-
plications use standard electrolytic capacitors with a
typical ESR in the range of 50 to 100 m
and an output
capacitance of 500 to 1000
μ
F. Fortunately as the ca-
pacitance increases, the ESR decreases resulting in a
fixed RC time constant. The IRU1075 takes advantage
of this phenomena in making the overall regulator loop
stable. For most applications a minimum of 100
μ
F alu-
minum electrolytic capacitor such as Sanyo MVGX se-
ries, Panasonic FA series as well as the Nichicon PL
series insures both stability and good transient response.
Thermal Design
The IRU1075 incorporates an internal thermal shutdown
that protects the device when the junction temperature
exceeds the maximum allowable junction temperature.
Although this device can operate with junction tempera-
tures in the range of 150
!
C, it is recommended that the
selected heat sink be chosen such that during maxi-
mum continuous load operation the junction tempera-
ture is kept below this number. The example below
shows the steps in selecting the proper regulator heat
sink for the worst case current consumption using Intel
200MHz microprocessor as the load.
Where:
V
REF
= 1.25V Typically
I
ADJ
= 50
μ
A Typically
R
1
and R
2
as shown in figure 3:
V
OUT
= V
REF
×
o
1 +
p
+ I
ADJ
×
R
2
R
2
R
1
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