Datasheet VRE116MA, VRE116M, VRE116CA, VRE116C, VRE115MA Datasheet (THALER)

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VRE114/115/116
Precision Reference Supplies
THALER CORPORATION • 2015 N. FORBES BOULEVARD • TUCSON, AZ. 85745 • (520) 882-4000
FEATURES
VERY HIGH ACCURACY: 1.500 V OUTPUT ±150 µV
EXTREMELY LOW DRIFT: 0.8 ppm/°C 55°C to +125°C
LOW WARM-UP DRIFT: 1 ppm Typ.
EXCELLENT STABILITY: 6 ppm/1000 Hrs. Typ.
EXCELLENT LINE REGULATION: 3 ppm/V Typ.
MILITARY PROCESSING OPTION
APPLICATIONS
PRECISION A/D and D/A CONVERTERS
TRANSDUCER EXCITATION
ACCURATE COMPARATOR THRESHOLD
REFERENCE
HIGH RESOLUTION SERVO SYSTEMS
DIGITAL VOLTMETERS
HIGH PRECISION TEST and
MEASUREMENT INSTRUMENTS
DESCRIPTION
VRE114 Series Precision Voltage References provide ultrastable +1.500V (VRE114), -1.500V (VRE115) and ±1.500V (VRE116) outputs with ±150 µV initial accuracy and temperature coefficient as low as 0.8 ppm/°C over the full military temperature range. This improvement in accuracy is made possible by a unique, proprietary multipoint laser compensation technique developed by Thaler Corporation. Significant improvements have been made in other performance parameters as well, including initial accuracy, warm-up drift, line regulation, and long-term stability, making the VRE114 series the most accurate and stable 1.5V reference available.
VRE114/115/116 devices are available in two operating temperature ranges, -25°C to +85°C and -55°C to +125°C, and two performance grades. All devices are packaged in 14-pin hermetic ceramic packages for maximum long-term stability. "M" versions are screened for high reliability and quality.
Type
VRE114C +1.5V -25°C to +85°C 150 µV VRE114CA +1.5V -25°C to +85°C 75 µV VRE114M +1.5V -55°C to +125°C 240 µV VRE114MA +1.5V -55°C to +125°C 120 µV
VRE115C -1.5V -25°C to +85°C 150 µV VRE115CA -1.5V -25°C to +85°C 75 µV VRE115M -1.5V -55°C to +125°C 240 µV VRE115MA -1.5V -55°C to +125°C 120 µV
VRE116C ±1.5V -25°C to +85°C 150 µV VRE116CA ±1.5V -25°C to +85°C 75 µV VRE116M ±1.5V -55°C to +125°C 240 µV VRE116MA ±1.5V -55°C to +125°C 120 µV
SELECTION GUIDE
Output
Temperature
Operating Range
Max. Volt Deviation
Superior stability, accuracy, and quality make these references ideal for precision applications such as A/D and D/A converters, high-accuracy test and measurement instrumentation, and transducer excitation.
VRE114DS REV. C NOV 2000
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SPECIFICATIONS
ELECTRICAL
Vps =±15V, T = 25°C, RL = 10k? unless otherwise noted.
MODEL C CA M MA
PARAMETERS MIN TYP MAX MIN TYP MAX MIN TYP MAX MIN TYP MAX UNITS
ABSOLUTE MAXIMUM RATINGS
Power Supply ±13.5 ±22 * * * * * * V Operating Temperature -25 85 * * -55 125 -55 125 °C Storage Temperature -65 150 * * * * * * °C Short Circuit Protection Continuous * * *
OUTPUT VOLTAGE
VRE114 +1.5 * * * V VRE115 -1.5 * * * V VRE116 ±1.5 * * * V
OUTPUT VOLTAGE ERRORS
Initial Error 300 150 300 150 µV Warmup Drift 2 1 2 1 ppm Tmin - Tmax 150 75 240 120 µV Long-Term Stability 6 * * * ppm/1000hr. Noise (.1-10Hz) 1.0 * * * µVpp
(1)
VRE114/115/116
OUTPUT CURRENT
Range ±10 * * * mA
REGULATION
Line 3 10 * * * * * * ppm/V Load 3 * * * ppm/mA
OUTPUT ADJUSTMENT
Range 5 * * * mV Temperature Coefficient 1 * * * µV/°C/mV
POWER SUPPLY CURRENTS
(2)
VRE114 +PS/ -PS 5 7 * * * * * * mA VRE116 +PS 7 9 * * * * * * mA VRE115/116 -PS 4 6 * * * * * * mA
NOTES: *Same as C Models.
1.Using the box method, the specified value is the maximum deviation from the output voltage at 25°C over the specified operating temperature range.
2.The specified values are unloaded.
VRE114DS REV. C NOV 2000
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V
vs. TEMPERATURE
OUT
TYPICAL PERFORMANCE CURVES
V
V
vs. TEMPERATURE
OUT
vs. TEMPERATURE
OUT
V
vs. TEMPERATURE
OUT
Temperature oC
VRE114/115/116C
QUIESCENT CURRENT VS. TEMP
Temperature oC
QUIESCENT CURRENT VS. TEMP
Temperature oC
VRE114/115/116CA
VRE114/115/116M
VRE114/115
JUNCTION TEMP. RISE VS. OUTPUT CURRENT
Output Current (mA)
VRE116
POSITIVE OUTPUT
JUNCTION TEMP. RISE VS. OUTPUT CURRENT
Temperature oC
Temperature oC
VRE114/115/116MA
PSRR VS. FREQUENCY
Frequency (Hz)
PSRR VS. FREQUENCY
Temperature oC
QUIESCENT CURRENT VS. TEMP
Temperature oC
Output Current (mA)
NEGATIVE OUTPUT
JUNCTION TEMP. RISE VS. OUTPUT CURRENT
Output Current (mA)
Frequency (Hz)
PSRR VS. FREQUENCY
Frequency (Hz)
VRE114DS REV. C NOV 2000
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DISCUSSION OF PERFORMANCE
THEORY OF OPERATION
The following discussion refers to the schematic below. A FET current source is used to bias a 6.3V zener diode. The zener voltage is divided by the resistor network R1 and R2. This voltage is then applied to the noninverting input of the operational amplifier which amplifies the voltage to produce a
1.500V output. The gain is determined by the resistor networks R3 and R4: G=1 + R4/R3. The
6.3V zener diode is used because it is the most stable diode over time and temperature.
The current source provides a closely regulated zener current, which determines the slope of the reference's voltage vs. temperature function. By trimming the zener current, a lower drift over temperature can be achieved. But since the voltage vs. temperature function is nonlinear, this method leaves a residual error over wide temperature ranges.
To remove this residual error, Thaler Corporation has developed a nonlinear compensation network of thermistors and resistors that is used in the VRE114 series references. This proprietary network eliminates most of the nonlinearity in the voltage vs. temperature function. By then adjusting the slope, Thaler Corporation produces a very stable voltage over wide temperature ranges. This network is less than 2% of the overall network resistance so it has a negligible effect on long term stability.
APPLICATION INFORMATION
Figure 1 shows the proper connection of the VRE114 series voltage reference with the optional trim resistors. When trimming the VRE116, the positive voltage should be trimmed first since the negative voltage tracks the positive side. Pay careful attention to the circuit layout to avoid noise pickup and voltage drops in the lines.
The VRE114 series voltage references have the ground terminal brought out on two pins (pin 6 and pin 7) which are connected together internally. This allows the user to achieve greater accuracy when using a socket. Voltage references have a voltage drop across their power supply ground pin due to quiescent current flowing through the contact resistance. If the contact resistance was constant with time and temperature, this voltage drop could be trimmed out. When the reference is plugged into a socket, this source of error can be as high as 20ppm. By connecting pin 7 to the power supply ground and pin 6 to a high impedance ground point in the measurement circuit, the error due to the contact resistance can be eliminated. If the unit is soldered into place the contact resistance is sufficiently small that it doesn't effect performance.
VRE114
VRE116
VRE114DS REV. C NOV 2000
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EXTERNAL CONNECTIONS
FIGURE 1
1. Optional Fine Adjust for approximately ±5mV. VRE115 trim pot center tap connects to -15V.
PIN CONFIGURATION
TOP VIEW
NC NC NC
-PS NC
REF. GND
GND
14-PIN HYBRID PACKAGE
VRE114
(VRE115)
FINE ADJ.
+1.5V (-1.5V) FINE ADJ.
+PS (-PS)
NC
NC
NC
TOP VIEW
FINE -ADJ.
-1.5V
FINE -ADJ.
-PS NC
REF. GND
GND
VRE116
FINE +ADJ. +1.5V FINE +ADJ.
+PS NC NC NC
MECHANICAL
INCHES MILLIMETER DIM MIN MAX MIN MAX DIM MIN MAX MIN MAX E. 480 .500 12.1 12.7 A .120 .155 3.0 4.0 L. 195 .215 4.9 5.4 Q .015 .035 0.4 0.9 D. 775 .805 19.7 20.4 Q1 N/A .030 N/A 0.7 B. 016 .020 0.4 0.5 C .009 .012 0.2 0.3 B1 .038 .042 0.9 1.0 G1 .290 .310 7.3 7.8 B2 .095 .105 2.4 2.6 S. 085 .105 2.1 2.6 P. 004 .006 0.10 0.15
INCHES MILLIMETER
VRE114DS REV. C NOV 2000
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