LM231AN/NOPB [TI]

具有 1Hz 至 100KHz 满量程频率的精密压频转换器(宽工作温度) | P | 8 | -25 to 85;
LM231AN/NOPB
型号: LM231AN/NOPB
厂家: TEXAS INSTRUMENTS    TEXAS INSTRUMENTS
描述:

具有 1Hz 至 100KHz 满量程频率的精密压频转换器(宽工作温度) | P | 8 | -25 to 85

光电二极管 转换器 模拟特殊功能转换器
文件: 总20页 (文件大小:778K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
LM231, LM331  
www.ti.com  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
LM231A/LM231/LM331A/LM331 Precision Voltage-to-Frequency Converters  
Check for Samples: LM231, LM331  
1
FEATURES  
DESCRIPTION  
The LM231/LM331 family of voltage-to-frequency  
converters are ideally suited for use in simple low-  
cost circuits for analog-to-digital conversion, precision  
23  
Ensured Linearity 0.01% max  
Improved Performance in Existing Voltage-to-  
Frequency Conversion Applications  
frequency-to-voltage  
integration, linear  
conversion,  
frequency modulation  
long-term  
or  
Split or Single Supply Operation  
demodulation, and many other functions. The output  
when used as a voltage-to-frequency converter is a  
pulse train at a frequency precisely proportional to the  
applied input voltage. Thus, it provides all the  
inherent advantages of the voltage-to-frequency  
conversion techniques, and is easy to apply in all  
standard voltage-to-frequency converter applications.  
Further, the LM231A/LM331A attain a new high level  
of accuracy versus temperature which could only be  
Operates on Single 5V Supply  
Pulse Output Compatible with All Logic Forms  
Excellent Temperature Stability: ±50 ppm/°C  
max  
Low Power Consumption: 15 mW Typical at 5V  
Wide Dynamic Range, 100 dB min at 10 kHz  
Full Scale Frequency  
Wide Range of Full Scale Frequency: 1 Hz to  
100 kHz  
attained  
with  
expensive  
voltage-to-frequency  
modules. Additionally the LM231/331 are ideally  
suited for use in digital systems at low power supply  
voltages and can provide low-cost analog-to-digital  
conversion in microprocessor-controlled systems.  
And, the frequency from a battery powered voltage-  
to-frequency converter can be easily channeled  
through a simple photo isolator to provide isolation  
against high common mode levels.  
Low Cost  
The LM231/LM331 utilize  
a
new temperature-  
compensated band-gap reference circuit, to provide  
excellent accuracy over the full operating temperature  
range, at power supplies as low as 4.0V. The  
precision timer circuit has low bias currents without  
degrading the quick response necessary for 100 kHz  
voltage-to-frequency conversion. And the output are  
capable of driving 3 TTL loads, or a high voltage  
output up to 40V, yet is short-circuit-proof against  
VCC  
.
CONNECTION DIAGRAM  
Figure 1. Plastic Dual-In-Line Package (PDIP)  
See Package Number P (R-PDIP-T8)  
1
Please be aware that an important notice concerning availability, standard warranty, and use in critical applications of  
Texas Instruments semiconductor products and disclaimers thereto appears at the end of this data sheet.  
Teflon is a registered trademark of E.  
2
3
All other trademarks are the property of their respective owners.  
PRODUCTION DATA information is current as of publication date.  
Products conform to specifications per the terms of the Texas  
Instruments standard warranty. Production processing does not  
necessarily include testing of all parameters.  
Copyright © 1999–2013, Texas Instruments Incorporated  
LM231, LM331  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
www.ti.com  
These devices have limited built-in ESD protection. The leads should be shorted together or the device placed in conductive foam  
during storage or handling to prevent electrostatic damage to the MOS gates.  
Absolute Maximum Ratings(1)(2)(3)  
Supply Voltage, VS  
40V  
Continuous  
Continuous  
0.2V to +VS  
Output Short Circuit to Ground  
Output Short Circuit to VCC  
Input Voltage  
(4)  
Package Dissipation at 25°C  
Lead Temperature (Soldering, 10 sec.)  
PDIP  
1.25W  
260°C  
500V  
(5)  
ESD Susceptibility  
(1) Absolute Maximum Ratings indicate limits beyond which damage to the device may occur. DC and AC electrical specifications do not  
apply when operating the device beyond its specified operating conditions.  
(2) All voltages are measured with respect to GND = 0V, unless otherwise noted.  
(3) If Military/Aerospace specified devices are required, please contact the TI Sales Office/Distributors for availability and specifications.  
(4) The absolute maximum junction temperature (TJmax) for this device is 150°C. The maximum allowable power dissipation is dictated by  
TJmax, the junction-to-ambient thermal resistance (θJA), and the ambient temperature TA, and can be calculated using the formula  
PDmax = (TJmax - TA) / θJA. The values for maximum power dissipation will be reached only when the device is operated in a severe  
fault condition (e.g., when input or output pins are driven beyond the power supply voltages, or the power supply polarity is reversed).  
Obviously, such conditions should always be avoided.  
(5) Human body model, 100 pF discharged through a 1.5 kΩ resistor.  
(1)  
Operating Ratings  
Operating Ambient Temperature  
LM231, LM231A  
LM331, LM331A  
Supply Voltage, VS  
25°C to +85°C  
0°C to +70°C  
+4V to +40V  
(1) All voltages are measured with respect to GND = 0V, unless otherwise noted.  
Package Thermal Resistance  
Package  
θJ-A  
8-Lead PDIP  
100°C/W  
Electrical Characteristics  
All specifications apply in the circuit of Figure 16, with 4.0V VS 40V, TA=25°C, unless otherwise specified.  
Parameter  
Conditions  
4.5V VS 20V  
MIN TA TMAX  
Min  
Typ  
Max  
±0.01  
±0.02  
±0.14  
Units  
±0.003  
±0.006  
±0.024  
% Full- Scale  
% Full- Scale  
%Full- Scale  
(1)  
VFC Non-Linearity  
T
VFC Non-Linearity in Circuit of Figure 15  
Conversion Accuracy Scale Factor (Gain)  
LM231, LM231A  
VS = 15V, f = 10 Hz to 11 kHz  
VIN = 10V, RS = 14 kΩ  
0.95  
0.90  
1.00  
1.00  
1.05  
1.10  
kHz/V  
kHz/V  
LM331, LM331A  
Temperature Stability of Gain  
LM231/LM331  
T
MIN TA TMAX, 4.5V VS 20V  
±30  
±20  
±150  
±50  
0.1  
ppm/°C  
ppm/°C  
%/V  
LM231A/LM331A  
4.5V VS 10V  
10V VS 40V  
VIN = 10V  
0.01  
0.006  
Change of Gain with VS  
0.06  
%/V  
Rated Full-Scale Frequency  
10.0  
kHz  
Gain Stability vs. Time (1000 Hours)  
TMIN TA TMAX  
±0.02  
% Full- Scale  
(1) Nonlinearity is defined as the deviation of fOUT from VIN × (10 kHz/10 VDC) when the circuit has been trimmed for zero error at 10 Hz  
and at 10 kHz, over the frequency range 1 Hz to 11 kHz. For the timing capacitor, CT, use NPO ceramic, Teflon®, or polystyrene.  
2
Submit Documentation Feedback  
Copyright © 1999–2013, Texas Instruments Incorporated  
Product Folder Links: LM231 LM331  
LM231, LM331  
www.ti.com  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
Electrical Characteristics (continued)  
All specifications apply in the circuit of Figure 16, with 4.0V VS 40V, TA=25°C, unless otherwise specified.  
Parameter  
Over Range (Beyond Full-Scale) Frequency  
INPUT COMPARATOR  
Offset Voltage  
Conditions  
Min  
Typ  
Max  
Units  
VIN = 11V  
10  
%
±3  
±4  
±10  
±14  
mV  
mV  
mV  
nA  
LM231/LM331  
T
MIN TA TMAX  
MIN TA TMAX  
LM231A/LM331A  
T
±3  
±10  
Bias Current  
80  
±8  
300  
±100  
Offset Current  
nA  
V
CC2.  
0
Common-Mode Range  
TMIN TA TMAX  
0.2  
V
TIMER  
Timer Threshold Voltage, Pin 5  
Input Bias Current, Pin 5  
All Devices  
0.63  
0.667  
0.70  
× VS  
VS = 15V  
0V VPIN 5 9.9V  
VPIN 5 = 10V  
VPIN 5 = 10V  
I = 5 mA  
±10  
200  
200  
0.22  
±100  
1000  
500  
nA  
nA  
nA  
V
LM231/LM331  
LM231A/LM331A  
VSAT PIN 5 (Reset)  
0.5  
CURRENT SOURCE (Pin 1)  
Output Current  
LM231, LM231A  
RS = 14 kΩ, VPIN 1 = 0  
0V VPIN 1 10V  
126  
116  
135  
136  
0.2  
144  
156  
1.0  
μA  
μA  
μA  
LM331, LM331A  
Change with Voltage  
Current Source OFF Leakage  
LM231, LM231A, LM331, LM331A  
All Devices  
0.02  
2.0  
10.0  
50.0  
nA  
nA  
μA  
TA = TMAX  
Operating Range of Current (Typical)  
REFERENCE VOLTAGE (Pin 2)  
LM231, LM231A  
(10 to 500)  
1.76  
1.70  
1.89  
1.89  
±60  
2.02  
2.08  
VDC  
VDC  
LM331, LM331A  
Stability vs. Temperature  
Stability vs. Time, 1000 Hours  
LOGIC OUTPUT (Pin 3)  
ppm/°C  
%
±0.1  
I = 5 mA  
0.15  
0.10  
0.50  
0.40  
1.0  
V
V
VSAT  
I = 3.2 mA (2 TTL Loads), TMIN TA  
TMAX  
OFF Leakage  
±0.05  
μA  
SUPPLY CURRENT  
VS = 5V  
VS = 40V  
VS = 5V  
VS = 40V  
2.0  
2.5  
1.5  
2.0  
3.0  
4.0  
3.0  
4.0  
4.0  
6.0  
6.0  
8.0  
mA  
mA  
mA  
mA  
LM231, LM231A  
LM331, LM331A  
Copyright © 1999–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
3
Product Folder Links: LM231 LM331  
LM231, LM331  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
www.ti.com  
FUNCTIONAL BLOCK DIAGRAM  
Pin numbers apply to 8-pin packages only.  
4
Submit Documentation Feedback  
Copyright © 1999–2013, Texas Instruments Incorporated  
Product Folder Links: LM231 LM331  
 
LM231, LM331  
www.ti.com  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
TYPICAL PERFORMANCE CHARACTERISTICS  
(All electrical characteristics apply for the circuit of Figure 16, unless otherwise noted.)  
Nonlinearity Error  
as Precision V-to-F  
Converter (Figure 16)  
Nonlinearity Error  
Figure 2.  
Figure 3.  
Nonlinearity Error  
vs.  
Frequency  
vs.  
Temperature  
Power  
Supply Voltage  
Figure 4.  
Figure 5.  
VREF  
vs.  
Temperature  
Output Frequency  
vs.  
VSUPPLY  
Figure 6.  
Figure 7.  
Copyright © 1999–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
5
Product Folder Links: LM231 LM331  
LM231, LM331  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
www.ti.com  
TYPICAL PERFORMANCE CHARACTERISTICS (continued)  
(All electrical characteristics apply for the circuit of Figure 16, unless otherwise noted.)  
100 kHz Nonlinearity Error  
Nonlinearity Error  
(Figure 15)  
(Figure 17)  
Figure 8.  
Figure 9.  
Power Drain  
vs.  
VSUPPLY  
Input Current (Pins 6,7) vs.  
Temperature  
Figure 10.  
Figure 11.  
Output Saturation Voltage vs.  
IOUT (Pin 3)  
Nonlinearity Error, Precision  
F-to-V Converter (Figure 19)  
Figure 12.  
Figure 13.  
6
Submit Documentation Feedback  
Copyright © 1999–2013, Texas Instruments Incorporated  
Product Folder Links: LM231 LM331  
LM231, LM331  
www.ti.com  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
APPLICATIONS INFORMATION  
PRINCIPLES OF OPERATION  
The LM231/331 are monolithic circuits designed for accuracy and versatile operation when applied as voltage-to-  
frequency (V-to-F) converters or as frequency-to-voltage (F-to-V) converters. A simplified block diagram of the  
LM231/331 is shown in Figure 14 and consists of a switched current source, input comparator, and 1-shot timer.  
Figure 14. Simplified Block Diagram of Stand-Alone  
Voltage-to-Frequency Converter and  
External Components  
Simplified Voltage-to-Frequency Converter  
The operation of these blocks is best understood by going through the operating cycle of the basic V-to-F  
converter, Figure 14, which consists of the simplified block diagram of the LM231/331 and the various resistors  
and capacitors connected to it.  
The voltage comparator compares a positive input voltage, V1, at pin 7 to the voltage, Vx, at pin 6. If V1 is  
greater, the comparator will trigger the 1-shot timer. The output of the timer will turn ON both the frequency  
output transistor and the switched current source for a period t=1.1 RtCt. During this period, the current i will flow  
out of the switched current source and provide a fixed amount of charge, Q = i × t, into the capacitor, CL. This will  
normally charge Vx up to a higher level than V1. At the end of the timing period, the current i will turn OFF, and  
the timer will reset itself.  
Now there is no current flowing from pin 1, and the capacitor CL will be gradually discharged by RL until Vx falls  
to the level of V1. Then the comparator will trigger the timer and start another cycle.  
The current flowing into CL is exactly IAVE = i × (1.1×RtCt) × f, and the current flowing out of CL is exactly Vx/RL  
VIN/RL. If VIN is doubled, the frequency will double to maintain this balance. Even a simple V-to-F converter can  
provide a frequency precisely proportional to its input voltage over a wide range of frequencies.  
Detail of Operation, Functional Block Diagram  
The block diagram (FUNCTIONAL BLOCK DIAGRAM) shows a band gap reference which provides a stable 1.9  
VDC output. This 1.9 VDC is well regulated over a VS range of 3.9V to 40V. It also has a flat, low temperature  
coefficient, and typically changes less than ½% over a 100°C temperature change.  
The current pump circuit forces the voltage at pin 2 to be at 1.9V, and causes a current i=1.90V/RS to flow. For  
Rs=14k, i=135 μA. The precision current reflector provides a current equal to i to the current switch. The current  
switch switches the current to pin 1 or to ground, depending upon the state of the RS flip-flop.  
The timing function consists of an RS flip-flop and a timer comparator connected to the external RtCt network.  
When the input comparator detects a voltage at pin 7 higher than pin 6, it sets the RS flip-flop which turns ON the  
current switch and the output driver transistor. When the voltage at pin 5 rises to VCC, the timer comparator  
causes the RS flip-flop to reset. The reset transistor is then turned ON and the current switch is turned OFF.  
Copyright © 1999–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
7
Product Folder Links: LM231 LM331  
 
 
 
LM231, LM331  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
www.ti.com  
However, if the input comparator still detects pin 7 higher than pin 6 when pin 5 crosses VCC, the flip-flop will  
not be reset, and the current at pin 1 will continue to flow, trying to make the voltage at pin 6 higher than pin 7.  
This condition will usually apply under start-up conditions or in the case of an overload voltage at signal input.  
During this sort of overload the output frequency will be 0. As soon as the signal is restored to the working range,  
the output frequency will be resumed.  
The output driver transistor acts to saturate pin 3 with an ON resistance of about 50Ω. In case of over voltage,  
the output current is actively limited to less than 50 mA.  
The voltage at pin 2 is regulated at 1.90 VDC for all values of i between 10 μA to 500 μA. It can be used as a  
voltage reference for other components, but care must be taken to ensure that current is not taken from it which  
could reduce the accuracy of the converter.  
Basic Voltage-to-Frequency Converter (Figure 15)  
The simple stand-alone V-to-F converter shown in Figure 15 includes all the basic circuitry of Figure 14 plus a  
few components for improved performance.  
A resistor, RIN=100 kΩ ±10%, has been added in the path to pin 7, so that the bias current at pin 7 (80 nA  
typical) will cancel the effect of the bias current at pin 6 and help provide minimum frequency offset.  
The resistance RS at pin 2 is made up of a 12 kΩ fixed resistor plus a 5 kΩ (cermet, preferably) gain adjust  
rheostat. The function of this adjustment is to trim out the gain tolerance of the LM231/331, and the tolerance of  
Rt, RL and Ct.  
For best results, all the components should be stable low-temperature-coefficient components, such as metal-film  
resistors. The capacitor should have low dielectric absorption; depending on the temperature characteristics  
desired, NPO ceramic, polystyrene, Teflon or polypropylene are best suited.  
A capacitor CIN is added from pin 7 to ground to act as a filter for VIN. A value of 0.01 μF to 0.1 μF will be  
adequate in most cases; however, in cases where better filtering is required, a 1 μF capacitor can be used.  
When the RC time constants are matched at pin 6 and pin 7, a voltage step at VIN will cause a step change in  
fOUT. If CIN is much less than CL, a step at VIN may cause fOUT to stop momentarily.  
A 47Ω resistor, in series with the 1 μF CL, provides hysteresis, which helps the input comparator provide the  
excellent linearity.  
*Use stable components with low temperature coefficients. See APPLICATIONS INFORMATION.  
**0.1μF or 1μF, See PRINCIPLES OF OPERATION.  
Figure 15. Simple Stand-Alone V-to-F Converter  
with ±0.03% Typical Linearity (f = 10 Hz to 11 kHz)  
8
Submit Documentation Feedback  
Copyright © 1999–2013, Texas Instruments Incorporated  
Product Folder Links: LM231 LM331  
 
LM231, LM331  
www.ti.com  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
Details of Operation: Precision V-To-F Converter (Figure 16)  
In this circuit, integration is performed by using a conventional operational amplifier and feedback capacitor, CF.  
When the integrator's output crosses the nominal threshold level at pin 6 of the LM231/331, the timing cycle is  
initiated.  
The average current fed into the op-amp's summing point (pin 2) is i × (1.1 RtCt) × f which is perfectly balanced  
with VIN/RIN. In this circuit, the voltage offset of the LM231/331 input comparator does not affect the offset or  
accuracy of the V-to-F converter as it does in the stand-alone V-to-F converter; nor does the LM231/331 bias  
current or offset current. Instead, the offset voltage and offset current of the operational amplifier are the only  
limits on how small the signal can be accurately converted. Since op-amps with voltage offset well below 1 mV  
and offset currents well below 2 nA are available at low cost, this circuit is recommended for best accuracy for  
small signals. This circuit also responds immediately to any change of input signal (which a stand-alone circuit  
does not) so that the output frequency will be an accurate representation of VIN, as quickly as 2 output pulses'  
spacing can be measured.  
In the precision mode, excellent linearity is obtained because the current source (pin 1) is always at ground  
potential and that voltage does not vary with VIN or fOUT. (In the stand-alone V-to-F converter, a major cause of  
non-linearity is the output impedance at pin 1 which causes i to change as a function of VIN).  
The circuit of Figure 17 operates in the same way as Figure 16, but with the necessary changes for high speed  
operation.  
*Use stable components with low temperature coefficients. See APPLICATIONS INFORMATION.  
**This resistor can be 5 kΩ or 10 kΩ for VS=8V to 22V, but must be 10 kΩ for VS=4.5V to 8V.  
***Use low offset voltage and low offset current op-amps for A1: recommended type LF411A  
Figure 16. Standard Test Circuit and Applications Circuit, Precision Voltage-to-Frequency Converter  
DETAILS OF OPERATION: F-to-V CONVERTERS  
(Figure 18 and Figure 19)  
In these applications, a pulse input at fIN is differentiated by a C-R network and the negative-going edge at pin 6  
causes the input comparator to trigger the timer circuit. Just as with a V-to-F converter, the average current  
flowing out of pin 1 is IAVERAGE = i × (1.1 RtCt) × f.  
Copyright © 1999–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
9
Product Folder Links: LM231 LM331  
 
LM231, LM331  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
www.ti.com  
In the simple circuit of Figure 18, this current is filtered in the network RL = 100 kΩ and 1 μF. The ripple will be  
less than 10 mV peak, but the response will be slow, with a 0.1 second time constant, and settling of 0.7 second  
to 0.1% accuracy.  
In the precision circuit, an operational amplifier provides a buffered output and also acts as a 2-pole filter. The  
ripple will be less than 5 mV peak for all frequencies above 1 kHz, and the response time will be much quicker  
than in Figure 18. However, for input frequencies below 200 Hz, this circuit will have worse ripple than Figure 18.  
The engineering of the filter time-constants to get adequate response and small enough ripple simply requires a  
study of the compromises to be made. Inherently, V-to-F converter response can be fast, but F-to-V response  
can not.  
*Use stable components with low temperature coefficients.  
See APPLICATIONS INFORMATION.  
**This resistor can be 5 kΩ or 10 kΩ for VS=8V to 22V, but must be 10 kΩ for VS=4.5V to 8V.  
***Use low offset voltage and low offset current op-amps for A1: recommended types LF411A or LF356.  
Figure 17. Precision Voltage-to-Frequency Converter,  
100 kHz Full-Scale, ±0.03% Non-Linearity  
*Use stable components with low temperature coefficients.  
Figure 18. Simple Frequency-to-Voltage Converter,  
10 kHz Full-Scale, ±0.06% Non-Linearity  
10  
Submit Documentation Feedback  
Copyright © 1999–2013, Texas Instruments Incorporated  
Product Folder Links: LM231 LM331  
 
LM231, LM331  
www.ti.com  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
*Use stable components with low temperature coefficients.  
Figure 19. Precision Frequency-to-Voltage Converter,  
10 kHz Full-Scale with 2-Pole Filter, ±0.01%  
Non-Linearity Maximum  
*L14F-1, L14G-1 or L14H-1, photo transistor (General Electric Co.) or similar  
Figure 20. Light Intensity to Frequency Converter  
Figure 21. Temperature to Frequency Converter  
Copyright © 1999–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
11  
Product Folder Links: LM231 LM331  
LM231, LM331  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
www.ti.com  
Figure 22. Long-Term Digital Integrator Using VFC  
Figure 23. Basic Analog-to-Digital Converter Using  
Voltage-to-Frequency Converter  
Figure 24. Analog-to-Digital Converter with Microprocessor  
Figure 25. Remote Voltage-to-Frequency Converter with 2-Wire Transmitter and Receiver  
12  
Submit Documentation Feedback  
Copyright © 1999–2013, Texas Instruments Incorporated  
Product Folder Links: LM231 LM331  
LM231, LM331  
www.ti.com  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
Figure 26. Voltage-to-Frequency Converter with Square-Wave Output Using ÷ 2 Flip-Flop  
Figure 27. Voltage-to-Frequency Converter with Isolators  
Figure 28. Voltage-to-Frequency Converter with Isolators  
Copyright © 1999–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
13  
Product Folder Links: LM231 LM331  
LM231, LM331  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
www.ti.com  
Figure 29. Voltage-to-Frequency Converter with Isolators  
Figure 30. Voltage-to-Frequency Converter with Isolators  
14  
Submit Documentation Feedback  
Copyright © 1999–2013, Texas Instruments Incorporated  
Product Folder Links: LM231 LM331  
LM231, LM331  
www.ti.com  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
Schematic Diagram  
Copyright © 1999–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
15  
Product Folder Links: LM231 LM331  
 
LM231, LM331  
SNOSBI2B JUNE 1999REVISED MARCH 2013  
www.ti.com  
REVISION HISTORY  
Changes from Revision A (March 2013) to Revision B  
Page  
Changed layout of National Data Sheet to TI format .......................................................................................................... 15  
16  
Submit Documentation Feedback  
Copyright © 1999–2013, Texas Instruments Incorporated  
Product Folder Links: LM231 LM331  
PACKAGE OPTION ADDENDUM  
www.ti.com  
1-Nov-2013  
PACKAGING INFORMATION  
Orderable Device  
LM231AN  
Status Package Type Package Pins Package  
Eco Plan  
Lead/Ball Finish  
MSL Peak Temp  
Op Temp (°C)  
-25 to 85  
Device Marking  
Samples  
Drawing  
Qty  
(1)  
(2)  
(6)  
(3)  
(4/5)  
NRND  
PDIP  
PDIP  
PDIP  
PDIP  
PDIP  
PDIP  
PDIP  
PDIP  
PDIP  
PDIP  
P
8
8
8
8
8
8
8
8
8
8
40  
TBD  
Call TI  
Call TI  
Level-1-NA-UNLIM  
Call TI  
LM  
231AN  
LM231AN/NOPB  
LM231N  
ACTIVE  
NRND  
P
P
P
P
P
P
P
P
P
40  
40  
40  
40  
40  
40  
40  
40  
40  
Green (RoHS  
& no Sb/Br)  
CU SN  
-25 to 85  
LM  
231AN  
TBD  
Call TI  
-25 to 85  
LM  
231N  
LM231N/NOPB  
LM331AN  
ACTIVE  
NRND  
Green (RoHS  
& no Sb/Br)  
SN | CU SN  
Call TI  
Level-1-NA-UNLIM  
Call TI  
-25 to 85  
LM  
231N  
TBD  
LM  
331AN  
LM331AN/NOPB  
LM331N  
ACTIVE  
NRND  
Green (RoHS  
& no Sb/Br)  
CU SN  
Level-1-NA-UNLIM  
Call TI  
LM  
331AN  
TBD  
Call TI  
0 to 70  
0 to 70  
LM  
331N  
LM331N/NOPB  
RC4151NB  
ACTIVE  
NRND  
Green (RoHS  
& no Sb/Br)  
SN | CU SN  
Call TI  
Level-1-NA-UNLIM  
Call TI  
LM  
331N  
TBD  
0 to 70  
LM  
331N  
RV4151NB  
NRND  
TBD  
Call TI  
Call TI  
-25 to 85  
LM  
231N  
(1) The marketing status values are defined as follows:  
ACTIVE: Product device recommended for new designs.  
LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect.  
NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design.  
PREVIEW: Device has been announced but is not in production. Samples may or may not be available.  
OBSOLETE: TI has discontinued the production of the device.  
(2) Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check http://www.ti.com/productcontent for the latest availability  
information and additional product content details.  
TBD: The Pb-Free/Green conversion plan has not been defined.  
Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that  
lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes.  
Pb-Free (RoHS Exempt): This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and package, or 2) lead-based die adhesive used between  
the die and leadframe. The component is otherwise considered Pb-Free (RoHS compatible) as defined above.  
Green (RoHS & no Sb/Br): TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame retardants (Br or Sb do not exceed 0.1% by weight  
in homogeneous material)  
Addendum-Page 1  
PACKAGE OPTION ADDENDUM  
www.ti.com  
1-Nov-2013  
(3) MSL, Peak Temp. - The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature.  
(4) There may be additional marking, which relates to the logo, the lot trace code information, or the environmental category on the device.  
(5) Multiple Device Markings will be inside parentheses. Only one Device Marking contained in parentheses and separated by a "~" will appear on a device. If a line is indented then it is a continuation  
of the previous line and the two combined represent the entire Device Marking for that device.  
(6) Lead/Ball Finish - Orderable Devices may have multiple material finish options. Finish options are separated by a vertical ruled line. Lead/Ball Finish values may wrap to two lines if the finish  
value exceeds the maximum column width.  
Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information  
provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and  
continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals.  
TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release.  
In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis.  
Addendum-Page 2  
IMPORTANT NOTICE  
Texas Instruments Incorporated and its subsidiaries (TI) reserve the right to make corrections, enhancements, improvements and other  
changes to its semiconductor products and services per JESD46, latest issue, and to discontinue any product or service per JESD48, latest  
issue. Buyers should obtain the latest relevant information before placing orders and should verify that such information is current and  
complete. All semiconductor products (also referred to herein as “components”) are sold subject to TI’s terms and conditions of sale  
supplied at the time of order acknowledgment.  
TI warrants performance of its components to the specifications applicable at the time of sale, in accordance with the warranty in TI’s terms  
and conditions of sale of semiconductor products. Testing and other quality control techniques are used to the extent TI deems necessary  
to support this warranty. Except where mandated by applicable law, testing of all parameters of each component is not necessarily  
performed.  
TI assumes no liability for applications assistance or the design of Buyers’ products. Buyers are responsible for their products and  
applications using TI components. To minimize the risks associated with Buyers’ products and applications, Buyers should provide  
adequate design and operating safeguards.  
TI does not warrant or represent that any license, either express or implied, is granted under any patent right, copyright, mask work right, or  
other intellectual property right relating to any combination, machine, or process in which TI components or services are used. Information  
published by TI regarding third-party products or services does not constitute a license to use such products or services or a warranty or  
endorsement thereof. Use of such information may require a license from a third party under the patents or other intellectual property of the  
third party, or a license from TI under the patents or other intellectual property of TI.  
Reproduction of significant portions of TI information in TI data books or data sheets is permissible only if reproduction is without alteration  
and is accompanied by all associated warranties, conditions, limitations, and notices. TI is not responsible or liable for such altered  
documentation. Information of third parties may be subject to additional restrictions.  
Resale of TI components or services with statements different from or beyond the parameters stated by TI for that component or service  
voids all express and any implied warranties for the associated TI component or service and is an unfair and deceptive business practice.  
TI is not responsible or liable for any such statements.  
Buyer acknowledges and agrees that it is solely responsible for compliance with all legal, regulatory and safety-related requirements  
concerning its products, and any use of TI components in its applications, notwithstanding any applications-related information or support  
that may be provided by TI. Buyer represents and agrees that it has all the necessary expertise to create and implement safeguards which  
anticipate dangerous consequences of failures, monitor failures and their consequences, lessen the likelihood of failures that might cause  
harm and take appropriate remedial actions. Buyer will fully indemnify TI and its representatives against any damages arising out of the use  
of any TI components in safety-critical applications.  
In some cases, TI components may be promoted specifically to facilitate safety-related applications. With such components, TI’s goal is to  
help enable customers to design and create their own end-product solutions that meet applicable functional safety standards and  
requirements. Nonetheless, such components are subject to these terms.  
No TI components are authorized for use in FDA Class III (or similar life-critical medical equipment) unless authorized officers of the parties  
have executed a special agreement specifically governing such use.  
Only those TI components which TI has specifically designated as military grade or “enhanced plastic” are designed and intended for use in  
military/aerospace applications or environments. Buyer acknowledges and agrees that any military or aerospace use of TI components  
which have not been so designated is solely at the Buyer's risk, and that Buyer is solely responsible for compliance with all legal and  
regulatory requirements in connection with such use.  
TI has specifically designated certain components as meeting ISO/TS16949 requirements, mainly for automotive use. In any case of use of  
non-designated products, TI will not be responsible for any failure to meet ISO/TS16949.  
Products  
Applications  
Audio  
www.ti.com/audio  
amplifier.ti.com  
dataconverter.ti.com  
www.dlp.com  
Automotive and Transportation www.ti.com/automotive  
Communications and Telecom www.ti.com/communications  
Amplifiers  
Data Converters  
DLP® Products  
DSP  
Computers and Peripherals  
Consumer Electronics  
Energy and Lighting  
Industrial  
www.ti.com/computers  
www.ti.com/consumer-apps  
www.ti.com/energy  
dsp.ti.com  
Clocks and Timers  
Interface  
www.ti.com/clocks  
interface.ti.com  
logic.ti.com  
www.ti.com/industrial  
www.ti.com/medical  
Medical  
Logic  
Security  
www.ti.com/security  
Power Mgmt  
Microcontrollers  
RFID  
power.ti.com  
Space, Avionics and Defense  
Video and Imaging  
www.ti.com/space-avionics-defense  
www.ti.com/video  
microcontroller.ti.com  
www.ti-rfid.com  
www.ti.com/omap  
OMAP Applications Processors  
Wireless Connectivity  
TI E2E Community  
e2e.ti.com  
www.ti.com/wirelessconnectivity  
Mailing Address: Texas Instruments, Post Office Box 655303, Dallas, Texas 75265  
Copyright © 2013, Texas Instruments Incorporated  

相关型号:

LM231B

2323 Middle Power LED
SAMSUNG

LM231H

IC VOLTAGE-FREQUENCY CONVERTER, 0.1 MHz, MBCY8, Analog Special Function Converter
NSC

LM231N

Precision Voltage-to-Frequency Converters
NSC

LM231N

LM231A/LM231/LM331A/LM331 Precision Voltage-to-Frequency Converters
TI

LM231N/A+

Voltage-to-Frequency Converter
ETC

LM231N/B+

IC,VOLTAGE-TO-FREQUENCY CONVERTER,BIPOLAR/JFET,DIP,8PIN
TI

LM231N/NOPB

具有 1Hz 至 100KHz 满量程频率的精密压频转换器(宽工作温度) | P | 8 | -25 to 85
TI

LM231WM

Precision Voltage-to-Frequency Converters
NSC

LM232-155.52M

5.0x7.0mm Surface Mount LVDS Clock Oscillator Series
CONNOR-WINFIE

LM232-670.000M

Oscillator
CONNOR-WINFIE

LM232-670.00M

LVDS Output Clock Oscillator, 670MHz Nom, ROHS COMPLIANT, HERMETIC SEALED, CERAMIC PACKAGE-6
CONNOR-WINFIE

LM2320-7

50 Watt AC-DC Converters
POWER-ONE