LM 56
LM 56
April 2000
LM56
Dual Output Low Power Thermostat
General Description Features
The LM56 is a precision low power thermostat. Two stable n Digital outputs support TTL logic levels
temperature trip points (VT1 and VT2) are generated by divid- n Internal temperature sensor
ing down the LM56 1.250V bandgap voltage reference using n 2 internal comparators with hysteresis
3 external resistors. The LM56 has two digital outputs. OUT1 n Internal voltage reference
goes LOW when the temperature exceeds T1 and goes n Currently available in 8-pin SO plastic package
HIGH when the the temperature goes below (T1–THYST).
n Future availability in the 8-pin Mini-SO8 package
Similarly, OUT2 goes LOW when the temperature exceeds
T2 and goes HIGH when the temperature goes below
(T2–THYST). THYST is an internally set 5˚C typical hysteresis. Key Specifications
The LM56 is available in an 8-lead Mini-SO8 surface mount n Power Supply Voltage 2.7V–10V
package and an 8-lead small outline package.
n Power Supply Current 230 µA (max)
n VREF 1.250V ± 1% (max)
Applications
n Microprocessor Thermal Management n Hysteresis Temperature 5˚C
n Appliances n Internal Temperature Sensor
n Portable Battery Powered 3.0V or 5V Systems Output Voltage (+6.20 mV/˚C x T) +395 mV
n Fan Control n Temperature Trip Point Accuracy:
n Industrial Process Control
LM56BIM LM56CIM
n HVAC Systems
+25˚C ± 2˚C (max) ± 3˚C (max)
n Remote Temperature Sensing
n Electronic System Protection +25˚C to +85˚C ± 2˚C (max) ± 3˚C (max)
−40˚C to +125˚C ± 3˚C (max) ± 4˚C (max)
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LM56
Absolute Maximum Ratings (Note 1) Vapor Phase (60 seconds) 215˚C
Infrared (15 seconds) 220˚C
Input Voltage 12V
Storage Temperature −65˚C to + 150˚C
Input Current at any pin (Note 2) 5 mA
Package Input Current(Note 2) 20 mA
Operating Ratings(Note 1)
Package Dissipation at TA = 25˚C
(Note 3) 900 mW Operating Temperature Range TMIN ≤ TA ≤ TMAX
ESD Susceptibility (Note 4) LM56BIM, LM56CIM −40˚C ≤ TA ≤ +125˚C
Human Body Model 1000V Positive Supply Voltage (V+) +2.7V to +10V
Machine Model 200V Maximum VOUT1 and VOUT2 +10V
Soldering Information
SO Package (Note 5) :
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LM56
LM56 Electrical Characteristics
The following specifications apply for V+ = 2.7 VDC, and VREF load current = 50 µA unless otherwise specified. Boldface lim-
its apply for TA = TJ = TMIN to TMAX; all other limits TA = TJ = 25˚C unless otherwise specified.
Symbol Parameter Conditions Typical Limits Units
(Note 6) (Note 7) (Limits)
V+ Power Supply
IS Supply Current V+ = +10V 230 µA (max)
V+ = +2.7V 230 µA (max)
Digital Outputs
IOUT(“1”) Logical “1” Output Leakage V+ = +5.0V 1 µA (max)
Current
VOUT(“0”) Logical “0” Output Voltage IOUT = +50 µA 0.4 V (max)
Note 1: Absolute Maximum Ratings indicate limits beyond which damage to the device may occur. Operating Ratings indicate conditions for which the device is func-
tional, but do not guarantee specific performance limits. For guaranteed specifications and test conditions, see the Electrical Characteristics. The guaranteed speci-
fications 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 (VI) at any pin exceeds the power supply (VI < GND or VI > V+), the current at that pin should be limited to 5 mA. The 20 mA maxi-
mum package input current rating limits the number of pins that can safely exceed the power supplies with an input current of 5 mA to four.
Note 3: The maximum power dissipation must be derated at elevated temperatures and is dictated by TJmax (maximum junction temperature), θJA (junction to am-
bient thermal resistance) and TA (ambient temperature). The maximum allowable power dissipation at any temperature is PD = (TJmax–TA)/θJA or the number given
in the Absolute Maximum Ratings, whichever is lower. For this device, TJmax = 125˚C. For this device the typical thermal resistance (θJA) of the different package
types when board mounted follow:
Note 4: The human body model is a 100 pF capacitor discharge through a 1.5 kΩ resistor into each pin. The machine model is a 200 pF capacitor discharged directly
into each pin.
Note 5: See AN450 “Surface Mounting Methods and Their Effects on Product Reliability” or the section titled “Surface Mount” found in any post 1986 National Semi-
conductor Linear Data Book for other methods of soldering surface mount devices.
Note 6: Typicals are at TJ = TA = 25˚C and represent most likely parametric norm.
Note 7: Limits are guaranteed to National’s AOQL (Average Outgoing Quality Level).
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LM56
Typical Performance Characteristics
Quiescent Current vs VREF Output Voltage vs OUT1 and OUT2 Voltage
Temperature Load Current Levels vs Load Current
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Typical Performance Characteristics (Continued)
VTEMP Output
Line Regulation vs Temperature
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Functional Description
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LM56
Application Hints range of −40˚C to +125˚C, for example, is specified at ± 3˚C
for the LM56BIM. Note this trip point error specification does
not include any error introduced by the tolerance of the ac-
2.0 LM56 TRIP POINT ACCURACY SPECIFICATION
tual resistors used, nor any error introduced by power supply
For simplicity the following is an analysis of the trip point ac- variation.
curacy using the single output configuration show in Figure 2
If the resistors have a ± 0.5% tolerance, an additional error of
with a set point of 82˚C.
± 0.4˚C will be introduced. This error will increase to ± 0.8˚C
Trip Point Error Voltage = VTPE, when both external resistors have a ± 1% tolerance.
Comparator Offset Error for VT1E
Temperature Sensor Error = VTSE 3.0 BIAS CURRENT EFFECT ON
TRIP POINT ACCURACY
Reference Output Error = VRE
Bias current for the comparator inputs is 300 nA (max) each,
over the specified temperature range and will not introduce
considerable error if the sum of the resistor values are kept
to about 27 kΩ as shown in the typical application of Figure
1 . This bias current of one comparator input will not flow if
the temperature is well below the trip point level. As the tem-
perature approaches trip point level the bias current will start
to flow into the resistor network. When the temperature sen-
sor output is equal to the trip point level the bias current will
be 150 nA (max). Once the temperature is well above the trip
point level the bias current will be 300 nA (max). Therefore,
the first trip point will be affected by 150 nA of bias current.
The leakage current is very small when the comparator input
transistor of the different pair is off (see Figure 3) .
The effect of the bias current on the first trip point can be de-
fined by the following equations:
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Application Hints (Continued)
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Application Hints (Continued)
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Application Hints (Continued)
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Physical Dimensions inches (millimeters) unless otherwise noted
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LM56 Dual Output Low Power Thermostat
Physical Dimensions inches (millimeters) unless otherwise noted (Continued)
National does not assume any responsibility for use of any circuitry described, no circuit patent licenses are implied and National reserves the right at any time without notice to change said circuitry and specifications.