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THS1215CDWR THS1215CDWR 9997 Texas Instruments IC ADC 12BIT PIPELINED 28SOIC 28-SOIC (0.295", 7.50mm Width)
TLC1541CNG4 TLC1541CNG4 5730 Texas Instruments IC ADC 10BIT SAR 20DIP 20-DIP (0.300", 7.62mm)
TLC1541IDWG4 TLC1541IDWG4 3763 Texas Instruments IC ADC 10BIT SAR 20SOIC 20-SOIC (0.295", 7.50mm Width)
ADS8509IBDBR ADS8509IBDBR 13550 Texas Instruments IC ADC 16BIT SAR 28SSOP 28-SSOP (0.209", 5.30mm Width)
TLC1541IDWR TLC1541IDWR 4192 Texas Instruments IC ADC 10BIT SAR 20SOIC 20-SOIC (0.295", 7.50mm Width)
TLC1543CDBRG4 TLC1543CDBRG4 26186 Texas Instruments IC ADC 10BIT SAR 20SSOP 20-SSOP (0.209", 5.30mm Width)
TLC0831CDG4 TLC0831CDG4 16882 Texas Instruments IC ADC 8BIT SAR 8SOIC 8-SOIC (0.154", 3.90mm Width)
TLC0834CDRG4 TLC0834CDRG4 23684 Texas Instruments IC ADC 8BIT SAR 14SOIC 14-SOIC (0.154", 3.90mm Width)
ADS8482IRGZR ADS8482IRGZR 9703 Texas Instruments IC ADC 18BIT SAR 48VQFN 48-VFQFN Exposed Pad
THS1215IDWR THS1215IDWR 25762 Texas Instruments IC ADC 12BIT PIPELINED 28SOIC 28-SOIC (0.295", 7.50mm Width)
ADS8482IBRGZR ADS8482IBRGZR 18856 Texas Instruments IC ADC 18BIT SAR 48VQFN 48-VFQFN Exposed Pad
TLC0831CPG4 TLC0831CPG4 4884 Texas Instruments IC ADC 8BIT SAR 8DIP 8-DIP (0.300", 7.62mm)
TLC0838CDWRG4 TLC0838CDWRG4 4296 Texas Instruments IC ADC 8BIT SAR 20SOIC 20-SOIC (0.295", 7.50mm Width)
TLC1542CDWG4 TLC1542CDWG4 25864 Texas Instruments IC ADC 10BIT SAR 20SOIC 20-SOIC (0.295", 7.50mm Width)
ADS8481IRGZR ADS8481IRGZR 29280 Texas Instruments IC ADC 18BIT SAR 48VQFN 48-VFQFN Exposed Pad
TLC0838ING4 TLC0838ING4 5550 Texas Instruments IC ADC 8BIT SAR 20DIP 20-DIP (0.300", 7.62mm)
TLC0820ACDWRG4 TLC0820ACDWRG4 5576 Texas Instruments IC ADC 8BIT FLASH 20SOIC 20-SOIC (0.295", 7.50mm Width)
TLC0820ACDWG4 TLC0820ACDWG4 12754 Texas Instruments IC ADC 8BIT FLASH 20SOIC 20-SOIC (0.295", 7.50mm Width)
TLC1541CDWG4 TLC1541CDWG4 2876 Texas Instruments IC ADC 10BIT SAR 20SOIC 20-SOIC (0.295", 7.50mm Width)
THS1215IPWRG4 THS1215IPWRG4 24850 Texas Instruments IC ADC 12BIT PIPELINED 28TSSOP 28-TSSOP (0.173", 4.40mm Width)

Analog to Digital Converters (ADC)

1. What are Analog to Digital Converters (ADC)?

‌Basic Definition

ADC (Analog-to-digital converter) is an electronic device that converts continuously changing analog signals (such as voltage and current) into discrete digital signals (binary code). It builds a bridge between the physical world (analog signal) and digital systems (processors, controllers).

 

‌Functional Significance

Digital systems (such as microprocessors) can only process binary signals (0/1), while the analog signals output by physical sensors (temperature, pressure, etc.) need to be converted into digital quantities through ADC before they can be recognized and processed by digital circuits.

 

2. How does Analog to Digital Converters (ADC) Work?

The conversion process of ADC includes four key steps:

‌Sampling‌: Collect the instantaneous value of the analog signal at fixed time intervals.

‌Holding‌: Hold the sampled value for a short time to ensure signal stability during conversion.

‌Quantization‌: Map the sampled value to a finite discrete level (determined by the resolution).

‌Encoding‌: Convert the quantized value to a binary digital output.

 

For example, a 4-bit ADC divides the analog voltage into 24=16 discrete levels and outputs a 4-bit binary code to represent the relative voltage value.

 

3. Key Performance Parameters of Analog to Digital Converters (ADC)

‌Resolution

The number of bits of the output digital quantity (such as 8 bits, or 12 bits) determines the minimum resolvable voltage (Vref/(2N−1)).

 

‌Sampling Rate

The number of samples per second (Hz), which must meet the Nyquist theorem (twice higher than the highest frequency of the signal).

 

‌Reference Voltage 

The reference standard for conversion, the output digital quantity represents the ratio of the input signal to the reference voltage.

 

4. What are Analog to Digital Converters (ADC) Used for?

‌Automotive electronics‌: temperature/pressure sensor signal conversion to ECU (electronic control unit).

‌Medical Equipment‌: digital acquisition of physiological signals (such as electrocardiogram, blood pressure).

‌Industrial Control‌: real-time monitoring of analog quantities (flow, displacement) and feedback to digital systems.

 

5. What are the Types of Analog to Digital Converters (ADC)?

ADC types are diverse, including:

‌Successive Approximation Register (SAR) ‌: balance speed and accuracy.

‌Σ-Δ Type‌: high-resolution audio processing.

‌Pipeline Type‌: high-speed communication system.

 

ADC is the core interface device of modern electronic systems, and its performance directly affects the accuracy and efficiency of data acquisition.

 

6. Analog to Digital Converters (ADC) FAQs

1)‌How to reduce ADC errors? ‌

Use an external high-stability reference voltage source (instead of an internal reference);

Add hardware filtering (such as RC low-pass filtering) to reduce noise;

Optimize PCB layout: shorten signal routing and keep away from high-frequency interference sources;

Software calibration of offset/gain errors.

 

2) ‌What to do if the input signal amplitude is too small? ‌

The pre-gain amplifier (PGA) amplifies the signal to the ADC range and improves the effective resolution.

 

3) ‌How to avoid interference when acquiring multiple channels? ‌

Configure a reasonable sampling time (allow the signal to stabilize);

Use differential input mode to suppress common-mode noise.

 

4) ‌How to choose an ADC model? ‌

Resolution: The more subtle the change in sensor output, the higher the bit number required (e.g. 12 bits for temperature monitoring, 16 bits or more for audio acquisition);

Sampling Rate: Dynamic signals (e.g. audio) require MHz level, and low-speed sensors can be reduced to kSPS35.

 

5) ‌What is the performance of the built-in ADC of MCUs such as STM32? ‌

Most of them meet general requirements: 12-bit resolution, 1MSPS sampling rate, support for multi-channel scanning and calibration functions, and better cost performance than external ADC chips.