LT3085IMS8E#TRPBF Linear Technology, LT3085IMS8E#TRPBF Datasheet - Page 17
LT3085IMS8E#TRPBF
Manufacturer Part Number
LT3085IMS8E#TRPBF
Description
IC LDO REG ADJ 500MA 8-MSOP
Manufacturer
Linear Technology
Datasheet
1.LT3085EDCBTRMPBF.pdf
(28 pages)
Specifications of LT3085IMS8E#TRPBF
Regulator Topology
Positive Adjustable
Voltage - Output
Adjustable
Voltage - Input
1.2 ~ 36 V
Voltage - Dropout (typical)
1.35V @ 500mA
Number Of Regulators
1
Current - Output
500mA
Current - Limit (min)
500mA
Operating Temperature
-40°C ~ 125°C
Mounting Type
Surface Mount
Package / Case
8-MSOP Exposed Pad, 8-HMSOP, 8-eMSOP
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Available stocks
Company
Part Number
Manufacturer
Quantity
Price
APPLICATIONS INFORMATION
Without series resistor R
equals:
If the voltage differential (V
transistor is chosen as 0.5V, then R
Power dissipation in the LT3085 now equals:
The LT3085’s power dissipation is now only 30% compared
to no series resistor. R
appropriate wattage resistors to handle and dissipate the
power properly.
The second technique for reducing power dissipation,
shown in Figure 9, uses a resistor in parallel with the
LT3085. This resistor provides a parallel path for current
fl ow, reducing the current fl owing through the LT3085.
This technique works well if input voltage is reasonably
constant and output load current changes are small. This
technique also increases the maximum available output
current at the expense of minimum load requirements.
As an example, assume: V
5.5V, V
I
than 90% of I
OUT(MIN)
P
R
P
TOTAL
TOTAL
S
=
OUT
5V – 3.3V − 0.5V
= 0.35A. Also, assuming that R
= 0.86W
= 5V – 3.3V
= 5V – 3.3V
= 3.3V, V
(
(
OUT(MIN)
0.5A
OUT(MIN)
S
)
= 630mA.
dissipates 0.6W of power. Choose
)
•
S
•
, power dissipation in the LT3085
IN
= 2.4Ω
0.5A
0.5A
60
= 3.2V, I
= V
60
DIFF
CONTROL
) across the NPN pass
+ 0.5V
+ 5V – 3.3V
(
S
(
OUT(MAX)
equals:
P
)
= 5V, V
carries no more
• 0.5A = 0.26W
= 0.5A and
)
IN(MAX)
• 0.5A
=
Calculating R
The maximum total power dissipation is (5.5V – 3.2V) •
0.5A = 1.2W. However the LT3085 supplies only:
Therefore, the LT3085’s power dissipation is only:
R
choose appropriate wattage resistors to handle and dis-
sipate the power properly. With this confi guration, the
LT3085 supplies only 0.36A. Therefore, load current can
increase by 0.3A to 0.143A while keeping the LT3085 in
its normal operating range.
Figure 9. Reducing Power Dissipation Using a Parallel Resistor
P
(5% Standard value = 7.Ω)
P
R
0.5A –
dissipates 0.71W of power. As with the fi rst technique,
DIS
P
=
= (5.5V – 3.2V) • 0.193A = 0.44W
5.5V – 3.2V
5.5V – 3.2V
315mA
P
7.5Ω
C1
yields:
V
SET
R
CONTROL
= 7.30Ω
SET
LT3085
= 0.193A
+
–
OUT
IN
R
P
C2
3085 F09
LT3085
V
V
IN
OUT
17
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