Texas Instruments DDC232CZXGT
- DDC232CZXGT
- Texas Instruments
- IC ADC 20BIT SIGMA-DELTA 64NFBGA
- Data Acquisition - Analog to Digital Converters (ADC)
- DDC232CZXGT Datasheet
- 64-LFBGA
- Tape & Reel (TR)
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What is DDC232CZXGT
Texas Instruments Part Number DDC232CZXGT(Data Acquisition - Analog to Digital Converters (ADC)), developed and manufactured by Texas Instruments, distributed globally by Jinftry. We distribute various electronic components from world-renowned brands and provide one-stop services, making us a trusted global electronic component distributor.
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DDC232CZXGT Specifications
- Part NumberDDC232CZXGT
- CategoryData Acquisition - Analog to Digital Converters (ADC)
- ManufacturerTexas Instruments
- DescriptionIC ADC 20BIT SIGMA-DELTA 64NFBGA
- PackageTape & Reel (TR)
- Series-
- FeaturesSimultaneous Sampling
- Operating Temperature0°C ~ 70°C
- Mounting TypeSurface Mount
- Package / Case64-LFBGA
- Supplier Device Package64-NFBGA (8x8)
- Reference TypeExternal
- Sampling Rate (Per Second)6k
- Data InterfaceSPI
- Number of Bits20
- Voltage - Supply, Analog5V
- Voltage - Supply, Digital2.7V ~ 5.25V
- Number of Inputs32
- Input TypeSingle Ended
- ConfigurationADC
- Ratio - S/H:ADC-
- Number of A/D Converters16
- ArchitectureSigma-Delta
Application of DDC232CZXGT
DDC232CZXGT Datasheet
DDC232CZXGT Datasheet , Tape & Reel (TR),Simultaneous Sampling,0°C ~ 70°C,Surface Mount,64-LFBGA,64-NFBGA (8x8),External,6k,SPI,20,5V,2.7V ~ 5.25V,32,Single Ended,ADC,16,Sigma-Delta
DDC232CZXGT Classification
Data Acquisition - Analog to Digital Converters (ADC)
FAQ about Data Acquisition - Analog to Digital Converters (ADC)
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1. What is analog data acquisition?
Analog data acquisition refers to the process of converting continuously changing signals of physical quantities into digital signals so that computers can process and record these signals. This process involves the use of an analog quantity collector, which is a hardware device that can convert analog signals of physical quantities into digital signals and then transmit them to a computer for processing and recording.
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2. How many types of ADC are there?
The types of ADC (Analog-to-Digital Converter) mainly include:
1. Integral ADC: Its working principle is to convert the input voltage into time (pulse width signal) or frequency (pulse frequency), and then obtain the digital value by the timer/counter. The advantage of the integral ADC is that it can obtain high resolution with a simple circuit and has strong anti-interference ability, but the disadvantage is that the conversion rate is extremely low because the conversion accuracy depends on the integration time.
2. Successive approximation type (SAR ADC): The successive approximation ADC is one of the most common architectures. Its basic principle is to convert by gradually approximating the value of the analog input signal. The advantages of the successive approximation ADC are high speed and low power consumption. It is cheap at low resolution, but expensive at high precision.
3. Parallel comparison type/serial-parallel comparison type ADC: The parallel comparison type AD uses m -
3. What is the difference between ADC and DAC?
The main difference between ADC and DAC is that they process different types of signals and conversion directions.
The main function of an ADC (analog-to-digital converter) is to convert analog signals into digital signals. This process involves sampling, quantization, and encoding, where sampling is the periodic measurement of the value of an analog signal at a certain sampling rate, quantization is the conversion of the sampled continuous values into a finite number of discrete levels, and encoding is the conversion of the quantized discrete levels into binary code. The output of the ADC is a digital signal that can be processed and stored by a computer or other digital circuit for various applications such as digital signal processing, data logging, and communications. Common applications in life include microphones, digital thermometers, digital cameras, etc., which convert the actual perceived analog information into digital signals for further processing and analysis12.
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