2023年数据转换器英文文献.docx
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1、2023年数据转换器英文文献 12-Bit A/D Converter CIRCUIT OPERATION The AD574A is a complete 12-bit A/D converter which requires no external components to provide the complete succeive approximation analog-to-digital conversion function.A block diagram of the AD574A is shown in Figure 1. Figure 1.Block Diagram of
2、 AD574A 12-Bit A-to-D Converter When the control section is commanded to initiate a conversion (as described later), it enables the clock and resets the succeiveapproximation register (SAR) to all zeros.Once a conversion cycle has begun, it cannot be stopped or restarted and data is not available fr
3、om the output buffers.The SAR, timed by the clock, will sequence through the conversion cycle and return an end-of-convert flag to the control section.The control section will then disable the clock, bring the output status flag low, and enable control functions to allow data read functions by exter
4、nal command. During the conversion cycle, the internal 12-bit current output DAC is sequenced by the SAR from the most significant bit (MSB) to least significant bit (LSB) to provide an output current which accurately balances the input signal current through the 5k(or10k) input resistor.The compara
5、tor determines whether the addition of each succeively-weighted bit current causes the DAC current sum to be greater or le than the input current; if the sum is le, the bit is left on; if more, the bit is turned off.After testing all the bits, the SAR contains a 12-bit binary code which accurately r
6、epresents the input signal to within 1/2 LSB. The temperature-compensated buried Zener reference provides the primary voltage reference to the DAC and guarantees excellent stability with both time and temperature.The reference is trimmed to 10.00 volts 0.2%; it can supply up to 1.5 mA to an external
7、 load in addition to the requirements of the reference input resistor (0.5 mA) and bipolar offset resistor (1 mA) when the AD574A is powered from 15 V supplies.If the AD574A is used with 12 V supplies, or if external current must be supplied over the full temperature range, an external buffer amplif
8、ier is recommended.Any external load on the AD574A reference must remain constant during conversion.The thin-film application resistors are trimmed to match the full-scale output current of the DAC.There are two 5 k input scaling resistors to allow either a 10 volt or 20 volt span.The 10 k bipolar o
9、ffset resistor is grounded for unipolar operation and connected to the 10 volt reference for bipolar operation.DRIVING THE AD574 ANALOG INPUT Figure 2.Op Amp AD574A Interface The output impedance of an op amp has an open-loop value which, in a closed loop, is divided by the loop gain available at th
10、e frequency of interest.The amplifier should have acceptable loop gain at 500 kHz for use with the AD574A.To check whether the output properties of a signal source are suitable, monitor the AD574s input with an oscilloscope while a conversion is in progre.Each of the 12 disturbances should subside i
11、n sorle. For applications involving the use of a sample-and-hold amplifier, the AD585 is recommended.The AD711 or AD544 op amps are recommended for dc applications. SAMPLE-AND-HOLD AMPLIFIERS Although the conversion time of the AD574A is a maximum of 35 s, to achieve accurate 12-bit conversions of f
12、requencies greater than a few Hz requires the use of a sample-and-hold amplifier (SHA).If the voltage of the analog input signal driving the AD574A changes by more than 1/2 LSB over the time interval needed to make a conversion, then the input requires a SHA. The AD585 is a high linearity SHA capabl
13、e of directly driving the analog input of the AD574A.The AD585s fast acquisition time, low aperture and low aperture jitter are ideally suited for high-speed data acquisition systems.Consider the AD574A converter with a 35 s conversion time and an input signal of 10 V p-p: the maximum frequency whic
14、h may be applied to achieve rated accuracy is 1.5 Hz.However, with the addition of an AD585, as shown in Figure 3, the maximum frequency increases to 26 kHz.The AD585s low output impedance, fast-loop response, and low droop maintain 12-bits of accuracy under the changing load conditions that occur d
15、uring a conversion, making it suitable for use in high accuracy conversion systems.Many other SHAs cannot achieve 12-bits of accuracy and can thus compromise a system.The AD585 is recommended for AD574A applications requiring a sample and hold. Figure 3.AD574A with AD585 Sample and Hold SUPPLY DECOU
16、PLING AND LAYOUT CONSIDERATIONS It is critically important that the AD574A power supplies be filtered, well regulated, and free from high frequency noise.Use of noisy supplies will cause unstable output codes.Switching power supplies are not recommended for circuits attempting to achieve 12-bit accu
17、racy unle great care is used in filtering any switching spikes present in the output.Remember that a few millivolts of noise represents several counts of error in a 12-bit ADC.Circuit layout should attempt to locate the AD574A, aociated analog input circuitry, and interconnections as far as poible f
18、rom logic circuitry.For this reason, the use of wire-wrap circuit construction is not recommended.Careful printed circuit construction is preferred.UNIPOLAR RANGE CONNECTIONS FOR THE AD574A The AD574A contains all the active components required to perform a complete 12-bit A/D conversion.Thus, for m
19、ost situations, all that is neceary is connection of the power supplies (+5 V, +12 V/+15 V and 12 V/15 V), the analog input, and the conversion initiation command, as discued on the next page.Analog input connections and calibration are easily accomplished; the unipolar operating mode is shown in Fi
20、gure 4. Figure 4.Unipolar Input Connections All of the thin-film application resistors of the AD574A are trimmed for absolute calibration.Therefore, in many applications, no calibration trimming will be required.The absolute accuracy for each grade is given in the specification tables.For example, i
21、f no trims are used, the AD574AK guarantees 1 LSB max zero offset error and 0.25% (10 LSB) max full-scale error.(Typical full-scale error is 2 LSB.) If the offset trim is not required, Pin 12 can be connected directly to Pin 9; the two resistors and trimmer for Pin 12 are then not needed.If the full
22、-scale trim is not needed, a 50 1% metal film resistor should be connected between Pin 8 and Pin 10. The analog input is connected between Pin 13 and Pin 9 for a 0 V to +10 V input range, between 14 and Pin 9 for a 0 V to +20 V input range.The AD574A easily accommodates an input signal beyond the su
23、pplies.For the 10 volt span input, the LSB has a nominal value of 2.44 mV; for the 20 volt span, 4.88 mV.If a 10.24 V range is desired (nominal 2.5 mV/bit), the gain trimmer (R2) should be replaced by a 50esistor, and a 200trimmer inserted in series with the analog input to Pin 13 for a full-scale r
24、ange of 20.48 V (5 mV/bit), use a 500 trimmer into Pin 14.The gain trim described below is now done with these trimmers.The nominal input impedance into Pin 13 is 5k, and 10kinto Pin 14.UNIPOLAR CALIBRATION The AD574A is intended to have a nominal 1/2 LSB offset so that the exact analog input for a
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