LM340T-12/NOPB National Semiconductor, LM340T-12/NOPB Datasheet - Page 11

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LM340T-12/NOPB

Manufacturer Part Number
LM340T-12/NOPB
Description
IC REGULATOR POSIT 12V TO220-3
Manufacturer
National Semiconductor
Type
Voltage Regulatorr
Datasheets

Specifications of LM340T-12/NOPB

Regulator Topology
Positive Fixed
Voltage - Output
12V
Voltage - Input
14.6 ~ 35 V
Voltage - Dropout (typical)
2V @ 1A
Number Of Regulators
1
Current - Output
1.5A
Current - Limit (min)
2.4A
Operating Temperature
0°C ~ 125°C
Mounting Type
Through Hole
Package / Case
TO-220-3 (Straight Leads)
Current, Output
1 A
Current, Supply
6 mA
Package Type
TO-220
Regulation, Line
4 mV
Regulation, Load
12 mV
Regulator Type
Positive Voltage Out
Resistance, Thermal, Junction To Case
4 °C/W
Temperature, Operating, Range
0 to +125 °C
Voltage, Dropout
2 V
Voltage, Input
19 V
Voltage, Noise
75 μV
Voltage, Output
12 V
Voltage, Supply, Rejection Ratio
72 dB
Primary Input Voltage
27V
Output Voltage Fixed
12V
No. Of Outputs
1
No. Of Pins
3
Output Current
1A
Operating Temperature Range
0°C To +125°C
Msl
MSL 1 - Unlimited
Current Rating
1A
Rohs Compliant
Yes
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
*LM340T-12
*LM340T-12/NOPB
LM340T-12
LM7812
LM7812CT
LM7812T
UA7812
UA7812CT
UA7812CU

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
LM340T-12/NOPB
Manufacturer:
NS/国半
Quantity:
20 000
Application Hints
The LM340/LM78XX series is designed with thermal protec-
tion, output short-circuit protection and output transistor safe
area protection. However, as with any IC regulator, it be-
comes necessary to take precautions to assure that the
regulator is not inadvertently damaged. The following de-
scribes possible misapplications and methods to prevent
damage to the regulator.
SHORTING THE REGULATOR INPUT
When using large capacitors at the output of these regula-
tors, a protection diode connected input to output (Figure 1)
may be required if the input is shorted to ground. Without the
protection diode, an input short will cause the input to rapidly
approach ground potential, while the output remains near
the initial V
output capacitor. The capacitor will then discharge through a
large internal input to output diode and parasitic transistors.
If the energy released by the capacitor is large enough, this
diode, low current metal and the regulator will be destroyed.
The fast diode in Figure 1 will shunt most of the capacitors
discharge current around the regulator. Generally no protec-
tion diode is required for values of output capacitance ≤ 10
µF.
RAISING THE OUTPUT VOLTAGE ABOVE THE INPUT
VOLTAGE
Since the output of the device does not sink current, forcing
the output high can cause damage to internal low current
paths in a manner similar to that just described in the “Short-
ing the Regulator Input” section.
REGULATOR FLOATING GROUND (Figure 2)
When the ground pin alone becomes disconnected, the
output approaches the unregulated input, causing possible
damage to other circuits connected to V
reconnected with power “ON”, damage may also occur to the
regulator. This fault is most likely to occur when plugging in
regulators or modules with on card regulators into powered
up sockets. Power should be turned off first, thermal limit
ceases operating, or ground should be connected first if
power must be left on.
TRANSIENT VOLTAGES
If transients exceed the maximum rated input voltage of the
device, or reach more than 0.8V below ground and have
sufficient energy, they will damage the regulator. The solu-
tion is to use a large input capacitor, a series input break-
down diode, a choke, a transient suppressor or a combina-
tion of these.
OUT
because of the stored charge in the large
OUT
. If ground is
11
When a value for θ
a heatsink must be selected that has a value that is less than
or equal to this number.
θ
in this catalog, or shown in a curve that plots temperature
rise vs power dissipation for the heatsink.
(H–A)
is specified numerically by the heatsink manufacturer
FIGURE 2. Regulator Floating Ground
FIGURE 1. Input Short
FIGURE 3. Transients
(H–A)
is found using the equation shown,
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