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Simultaneous Sampling Dual 250 kSPS 12-Bit ADC
Tip: Data for a part may vary between manufacturers. You can filter for manufacturers on the top of the page next to the part image and part number.
AD7862ARS-10 by Analog Devices Inc is an Analog to Digital Converter.
Analog to Digital Converters are under the broader part category of Converters.
A converter is an electrical circuit that transforms electric energy into a different form that will support a elecrical load needed by a device. Read more about Converters on our Converters part category page.
Part # | Distributor | Description | Stock | Price | Buy | |
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Quest Components | ADC, SUCCESSIVE APPROXIMATION, 12-BIT, 1 FUNC, 2 CHANNEL, PARALLEL, WORD ACCESS, CMOS, PDSO28 | 155 |
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$17.8240 / $22.2800 | Buy Now |
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AD7862ARS-10
Analog Devices Inc
Buy Now
Datasheet
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Compare Parts:
AD7862ARS-10
Analog Devices Inc
Simultaneous Sampling Dual 250 kSPS 12-Bit ADC
Select a part to compare: |
Pbfree Code | No | |
Rohs Code | No | |
Part Life Cycle Code | Obsolete | |
Ihs Manufacturer | ANALOG DEVICES INC | |
Part Package Code | SSOP | |
Package Description | SSOP, SSOP28,.3 | |
Pin Count | 28 | |
Manufacturer Package Code | RS-28 | |
Reach Compliance Code | not_compliant | |
HTS Code | 8542.39.00.01 | |
Samacsys Manufacturer | Analog Devices | |
Analog Input Voltage-Max | 10 V | |
Analog Input Voltage-Min | -10 V | |
Conversion Time-Max | 3.6 µs | |
Converter Type | ADC, SUCCESSIVE APPROXIMATION | |
JESD-30 Code | R-PDSO-G28 | |
JESD-609 Code | e0 | |
Length | 10.2 mm | |
Linearity Error-Max (EL) | 0.0244% | |
Moisture Sensitivity Level | 1 | |
Number of Analog In Channels | 2 | |
Number of Bits | 12 | |
Number of Functions | 1 | |
Number of Terminals | 28 | |
Operating Temperature-Max | 85 °C | |
Operating Temperature-Min | -40 °C | |
Output Bit Code | 2'S COMPLEMENT BINARY | |
Output Format | PARALLEL, WORD | |
Package Body Material | PLASTIC/EPOXY | |
Package Code | SSOP | |
Package Equivalence Code | SSOP28,.3 | |
Package Shape | RECTANGULAR | |
Package Style | SMALL OUTLINE, SHRINK PITCH | |
Peak Reflow Temperature (Cel) | 240 | |
Qualification Status | Not Qualified | |
Sample Rate | 0.25 MHz | |
Sample and Hold / Track and Hold | TRACK | |
Seated Height-Max | 2 mm | |
Supply Voltage-Nom | 5 V | |
Surface Mount | YES | |
Technology | CMOS | |
Temperature Grade | INDUSTRIAL | |
Terminal Finish | TIN LEAD | |
Terminal Form | GULL WING | |
Terminal Pitch | 0.65 mm | |
Terminal Position | DUAL | |
Width | 5.3 mm |
This table gives cross-reference parts and alternative options found for AD7862ARS-10. The Form Fit Function (FFF) tab will give you the options that are more likely to serve as direct pin-to-pin alternates or drop-in parts. The Functional Equivalents tab will give you options that are likely to match the same function of AD7862ARS-10, but it may not fit your design. Always verify details of parts you are evaluating, as these parts are offered as suggestions for what you are looking for and are not guaranteed.
Part Number | Manufacturer | Composite Price | Description | Compare |
---|---|---|---|---|
AD7862AR-10 | Analog Devices Inc | Check for Price | Simultaneous Sampling Dual 250 kSPS 12-Bit ADC | AD7862ARS-10 vs AD7862AR-10 |
AD7862ARS-3 | Analog Devices Inc | Check for Price | Simultaneous Sampling Dual 250 kSPS 12-Bit ADC | AD7862ARS-10 vs AD7862ARS-3 |
AD7862ARZ | Analog Devices Inc | Check for Price | 2-CH 12-BIT SUCCESSIVE APPROXIMATION ADC, PARALLEL ACCESS, PDSO28 | AD7862ARS-10 vs AD7862ARZ |
AD7862BR-3 | Analog Devices Inc | Check for Price | IC 2-CH 12-BIT SUCCESSIVE APPROXIMATION ADC, PARALLEL ACCESS, PDSO28, SOIC-28, Analog to Digital Converter | AD7862ARS-10 vs AD7862BR-3 |
AD7862ARZ-10 | Analog Devices Inc | $16.0917 | Simultaneous Sampling Dual 250 kSPS 12-Bit ADC | AD7862ARS-10 vs AD7862ARZ-10 |
AD7862ARZ-3 | Analog Devices Inc | Check for Price | Simultaneous Sampling Dual 250 kSPS 12-Bit ADC | AD7862ARS-10 vs AD7862ARZ-3 |
AD7862AR-2REEL | Analog Devices Inc | Check for Price | 2-CH 12-BIT SUCCESSIVE APPROXIMATION ADC, PARALLEL ACCESS, PDSO28, SOIC-28 | AD7862ARS-10 vs AD7862AR-2REEL |
AD7862AR-2 | Analog Devices Inc | Check for Price | IC 2-CH 12-BIT SUCCESSIVE APPROXIMATION ADC, PARALLEL ACCESS, PDSO28, SOIC-28, Analog to Digital Converter | AD7862ARS-10 vs AD7862AR-2 |
AD7862ARSZ-3 | Analog Devices Inc | Check for Price | Simultaneous Sampling Dual 250 kSPS 12-Bit ADC | AD7862ARS-10 vs AD7862ARSZ-3 |
AD7862SQ-10 | Analog Devices Inc | Check for Price | IC 2-CH 12-BIT SUCCESSIVE APPROXIMATION ADC, PARALLEL ACCESS, CDIP28, CERDIP-28, Analog to Digital Converter | AD7862ARS-10 vs AD7862SQ-10 |
A good layout and routing practice for the AD7862ARS-10 involves separating analog and digital signals, using a solid ground plane, and keeping the analog input traces short and shielded. It's also recommended to use a low-ESR capacitor for the VREF pin and to decouple the power supplies with 10uF and 100nF capacitors.
The gain and offset settings of the AD7862ARS-10 can be configured using the GAIN and OFFSET pins. The gain can be set to 1, 2, or 4 using the GAIN pin, and the offset can be set to 0, 1/2, or 1 times the reference voltage using the OFFSET pin. The specific configuration will depend on the application's requirements and the signal conditioning needed.
The maximum sampling rate of the AD7862ARS-10 is 100 kSPS, and it can be achieved by setting the CONVST pin to a high frequency. However, increasing the sampling rate will also increase the power consumption. The power consumption can be reduced by lowering the sampling rate or by using the power-down mode.
The AD7862ARS-10 has an internal calibration circuit that can be used to calibrate the device. The calibration procedure involves applying a known input voltage to the device and then adjusting the offset and gain settings to achieve the desired output. The calibration procedure should be performed at the operating temperature and with the same power supply voltage as the application.
Common sources of error in the AD7862ARS-10 include noise, offset voltage, gain error, and nonlinearity. These errors can be minimized by using proper layout and routing, filtering the input signal, using a low-noise reference voltage, and calibrating the device. Additionally, the device's internal error correction mechanisms, such as the offset correction and gain correction, can be used to minimize errors.