lm60c-mda National Semiconductor Corporation, lm60c-mda Datasheet - Page 3

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lm60c-mda

Manufacturer Part Number
lm60c-mda
Description
2.7v, Sot-23 Or To-92 Temperature Sensor
Manufacturer
National Semiconductor Corporation
Datasheet
Accuracy (Note 8)
Output Voltage at 0˚C
Nonlinearity (Note 9)
Sensor Gain
(Average Slope)
Output Impedance
Line Regulation (Note 10)
Quiescent Current
Change of Quiescent Current
Temperature Coefficient of
Quiescent Current
Long Term Stability (Note 11)
Absolute Maximum Ratings
Electrical Characteristics
Unless otherwise noted, these specifications apply for +V
T
Note 1: Absolute Maximum Ratings indicate limits beyond which damage to the device may occur. Operating Ratings indicate conditions for which the device is
functional, but do not guarantee specific performance limits. For guaranteed specifications and test conditions, see the Electrical Characteristics. The guaranteed
specifications apply only for the test conditions listed. Some performance characteristics may degrade when the device is not operated under the listed test
conditions.
Note 2: When the input voltage (V
Note 3: The human body model is a 100 pF capacitor discharged through a 1.5 kΩ resistor into each pin. The machine model is a 200 pF capacitor discharged
directly into each pin.
Note 4: Reflow temperature profiles are different for lead-free and non-lead-free packages.
Note 5: The junction to ambient thermal resistance (θ
Note 6: Typicals are at T
Note 7: Limits are guaranteed to National’s AOQL (Average Outgoing Quality Level).
Note 8: Accuracy is defined as the error between the output voltage and +6.25 mV/˚C times the device’s case temperature plus 424 mV, at specified conditions of
voltage, current, and temperature (expressed in ˚C).
Note 9: Nonlinearity is defined as the deviation of the output-voltage-versus-temperature curve from the best-fit straight line, over the device’s rated temperature
range.
Note 10: Regulation is measured at constant junction temperature, using pulse testing with a low duty cycle. Changes in output due to heating effects can be
computed by multiplying the internal dissipation by the thermal resistance.
Note 11: For best long-term stability, any precision circuit will give best results if the unit is aged at a warm temperature, and/or temperature cycled for at least 46
hours before long-term life test begins. This is especially true when a small (Surface-Mount) part is wave-soldered; allow time for stress relaxation to occur. The
majority of the drift will occur in the first 1000 hours at elevated temperatures. The drift after 1000 hours will not continue at the first 1000 hour rate.
Supply Voltage
Output Voltage
Output Current
Input Current at any pin (Note 2)
ESD Susceptibility (Note 3) :
Storage Temperature
Maximum Junction Temperature (T
MIN
Human Body Model
Machine Model
SOT-23
TO-92
to T
MAX
Parameter
; all other limits T
J
= T
A
= 25˚C and represent most likely parametric norm.
I
) at any pin exceeds power supplies (V
A
= T
JMAX
J
+3.0V ≤ +V
+2.7V ≤ +V
+2.7V ≤ +V
+2.7V ≤ +V
T
= 25˚C.
J
1000 hours
=T
)
JA
MAX
+12V to −0.2V
) is specified without a heat sink in still air.
Conditions
(+V
=+125˚C, for
(Note 1)
S
S
S
S
S
−65˚C to
to −0.6V
≤ +10V
≤ +3.3V
≤ +10V
≤ +10V
+ 0.6V)
+150˚C
+125˚C
10 mA
2500V
5 mA
250V
200V
S
I
= +3.0 V
<
GND or V
3
Operating Ratings
Soldering process must comply with National Semiconduc-
tor’s Reflow Temperature Profile specifications. Refer to
www.national.com/packaging. (Note 4)
(Note 6)
Typical
Specified Temperature Range:
Supply Voltage Range (+V
Thermal Resistance, θ
5)
DC
+6.25
+424
±
±
0.2
I
82
LM60B
LM60C
SOT-23
TO-92
5.0
0.2
>
and I
+V
S
), the current at that pin should be limited to 5 mA.
LOAD
(Note 7)
LM60B
Limits
= 1 µA. Boldface limits apply for T
+6.06
+6.44
±
±
±
±
±
800
110
125
2.0
3.0
0.6
0.3
2.3
JA
(Note
S
)
(Note 1)
(Note 7)
LM60C
Limits
+6.00
+6.50
±
±
±
±
±
800
110
125
3.0
4.0
0.8
0.3
2.3
−25˚C ≤ T
−40˚C ≤ T
T
MIN
+2.7V to +10V
≤ T
mV/˚C (max)
mV/˚C (min)
mV/V (max)
A
A
mV (max)
µA (max)
µA (max)
µA (max)
www.national.com
˚C (max)
˚C (max)
˚C (max)
Ω (max)
(Limit)
A
≤ +125˚C
≤ +125˚C
450˚C/W
180˚C/W
Units
µA/˚C
mV
≤ T
˚C
A
= T
MAX
J
=

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