FEATURES
True RMS-to-DC Conversion
200 mV Full Scale
Laser-Trimmed to High Accuracy
0.5% Max Error (AD636K)
1.0% Max Error (AD636J)
Wide Response Capability:
Computes RMS of AC and DC Signals
1 MHz –3 dB Bandwidth: V RMS >100 mV
Signal Crest Factor of 6 for 0.5% Error
dB Output with 50 dB Range
Low Power: 800 A Quiescent Current
Single or Dual Supply Operation
Monolithic Integrated Circuit
Low Cost
Available in Chip Form
PRODUCT DESCRIPTION
The AD636 is a low power monolithic IC which performs true
rms-to-dc conversion on low level signals. It offers performance
which is comparable or superior to that of hybrid and modular
converters costing much more. The AD636 is specified for a
signal range of 0 mV to 200 mV rms. Crest factors up to 6 can
be accommodated with less than 0.5% additional error, allowing
accurate measurement of complex input waveforms.
The low power supply current requirement of the AD636, typi-
cally 800 µA, allows it to be used in battery-powered portable
instruments. A wide range of power supplies can be used, from
±2.5 V to ±16.5 V or a single +5 V to +24 V supply. The input
and output terminals are fully protected; the input signal can
exceed the power supply with no damage to the device (allowing
the presence of input signals in the absence of supply voltage)
and the output buffer amplifier is short-circuit protected.
The AD636 includes an auxiliary dB output. This signal is
derived from an internal circuit point which represents the logarithm of the rms output. The 0 dB reference level is set by an
externally supplied current and can be selected by the user
to correspond to any input level from 0 dBm (774.6 mV) to
–20 dBm (77.46 mV). Frequency response ranges from 1.2 MHz
at a 0 dBm level to over 10 kHz at –50 dBm.
The AD636 is designed for ease of use. The device is factorytrimmed at the wafer level for input and output offset, positive
and negative waveform symmetry (dc reversal error), and fullscale accuracy at 200 mV rms. Thus no external trims are required to achieve full-rated accuracy.
AD636 is available in two accuracy grades; the AD636J total
error of ±0.5 mV ±0.06% of reading, and the AD636K
BUF OUT
BUF IN
True RMS-to-DC Converter
AD636
PIN CONNECTIONS &
FUNCTIONAL BLOCK DIAGRAM
I
OUT
R
1
V
IN
2
NC
AD636
3
–V
S
4
C
AV
5
dB
6
7
NC = NO CONNECT
ABSOLUTE
VALUE
SQUARER
DIVIDER
CURRENT
MIRROR
+
BUF
–
10kV
10kV
14
13
12
11
10
9
8
+V
S
NC
NC
NC
COMMON
R
L
I
OUT
COMMON
L
10kV
AD636
CURRENT
MIRROR
SQUARER
+V
S
DIVIDER
ABSOLUTE
V
VALUE
IN
is accurate within ±0.2 mV to ±0.3% of reading. Both versions
are specified for the 0°C to +70°C temperature range, and are
offered in either a hermetically sealed 14-pin DIP or a 10-lead
TO-100 metal can. Chips are also available.
PRODUCT HIGHLIGHTS
1. The AD636 computes the true root-mean-square of a complex ac (or ac plus dc) input signal and gives an equivalent dc
output level. The true rms value of a waveform is a more
useful quantity than the average rectified value since it is a
measure of the power in the signal. The rms value of an
ac-coupled signal is also its standard deviation.
2. The 200 millivolt full-scale range of the AD636 is compatible
with many popular display-oriented analog-to-digital converters. The low power supply current requirement permits
use in battery powered hand-held instruments.
3. The only external component required to perform measurements to the fully specified accuracy is the averaging capacitor. The value of this capacitor can be selected for the desired
trade-off of low frequency accuracy, ripple, and settling time.
4. The on-chip buffer amplifier can be used to buffer either the
input or the output. Used as an input buffer, it provides
accurate performance from standard 10 MΩ input attenua-
tors. As an output buffer, it can supply up to 5 milliamps of
output current.
5. The AD636 will operate over a wide range of power supply
voltages, including single +5 V to +24 V or split ±2.5 V to
±16.5 V sources. A standard 9 V battery will provide several
hundred hours of continuous operation.
BUF IN
+–
BUF
BUF OUT
10kV
dB
C
AV
–V
S
REV. B
Information furnished by Analog Devices is believed to be accurate and
reliable. However, no responsibility is assumed by Analog Devices for its
use, nor for any infringements of patents or other rights of third parties
which may result from its use. No license is granted by implication or
otherwise under any patent or patent rights of Analog Devices.
vs. Temperature, 0°C to +70°C±0.1 ±0.01±0.1 ±0.005mV ±% of Reading/°C
vs. Supply Voltage±0.1 ±0.01±0.1 ±0.01mV ±% of Reading/V
dc Reversal Error at 200 mV±0.2±0.1% of Reading
Total Error, External Trim
ERROR VS. CREST FACTOR
1
3
±0.3 ±0.3±0.1 ±0.2mV ±% of Reading
Crest Factor 1 to 2 Specified Accuracy Specified Accuracy
Crest Factor = 3–0.2–0.2% of Reading
Crest Factor = 6–0.5–0.5% of Reading
Accuracy specified for 0 mV to 200 mV rms, dc or 1 kHz sine wave input. Accuracy is degraded at higher rms signal levels.
2
Measured at Pin 8 of DIP (I
3
Error vs. crest factor is specified as additional error for a 200 mV rms rectangular pulse trim, pulse width = 200 µs.
4
Input voltages are expressed in volts rms.
5
With 10 kΩ pull down resistor from Pin 6 (BUF OUT) to –V
6
With BUF input tied to Common.
Specifications subject to change without notice.
All min and max specifications are guaranteed. Specifications shown in boldface are tested on all production units at final electrical test and are used to calculate outgoing
Stresses above those listed under Absolute Maximum Ratings may cause perma-
nent damage to the device. This is a stress rating only; functional operation of the
device at these or any other conditions above those indicated in the operational
section of this specification is not implied. Exposure to absolute maximum rating
conditions for extended periods may affect device reliability.
AD636JD0°C to +70°CSide Brazed Ceramic DIP D-14
AD636KD0°C to +70°CSide Brazed Ceramic DIP D-14
AD636JH0°C to +70°CHeaderH-10A
AD636KH0°C to +70°CHeaderH-10A
AD636J Chip0°C to +70°CChip
AD636JD/+0°C to +70°CSide Brazed Ceramic DIP D-14
STANDARD CONNECTION
The AD636 is simple to connect for the majority of high accuracy rms measurements, requiring only an external capacitor to
set the averaging time constant. The standard connection is
shown in Figure 1. In this configuration, the AD636 will measure the rms of the ac and dc level present at the input, but will
show an error for low frequency inputs as a function of the filter
capacitor, C
, as shown in Figure 5. Thus, if a 4 µF capacitor
AV
is used, the additional average error at 10 Hz will be 0.1%, at
3 Hz it will be 1%. The accuracy at higher frequencies will be
according to specification. If it is desired to reject the dc input, a
capacitor is added in series with the input, as shown in Figure 3; the capacitor must be nonpolar. If the AD636 is driven
with power supplies with a considerable amount of high frequency
ripple, it is advisable to bypass both supplies to ground with
0.1 µF ceramic discs as near the device as possible. C
is an
F
optional output ripple filter, as discussed elsewhere in this data
sheet.
0.0807
(2.050)
1a*
V
IN
1b*
PAD NUMBERS CORRESPOND TO PIN NUMBERS
FOR THE TO-116 14-PIN CERAMIC DIP PACKAGE.
NOTE
*BOTH PADS SHOWN MUST BE CONNECTED TO V
REV. B–3–
3
–V
S
C
4
5
dB
AV
IN
7 BUF IN
6 BUF OUT
.
Figure 1. Standard RMS Connection
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