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ADE9000ACPZ-RL ADE9000ACPZ-RL 75781 Analog Devices Inc. IC AFE 7 CHAN 40LFCSP-WQ 40-WFQFN Exposed Pad, CSP
VSP7500ZWVR VSP7500ZWVR 98264 Texas Instruments IC AFE 4 CHAN 16BIT 159NFBGA 159-TFBGA
AFE4491NMAR AFE4491NMAR 12786 Texas Instruments IC ANALOG FRONT END BGA 103-VFBGA
AFE7222IRGC25 AFE7222IRGC25 32890 Texas Instruments IC AFE 4 CHAN 12BIT 64VQFN 64-VFQFN Exposed Pad
VSP5010PMG6 VSP5010PMG6 68698 Texas Instruments IC AFE 2 CHAN 12BIT 64LQFP 64-LQFP
VSP5622RSLR VSP5622RSLR 84303 Texas Instruments IC AFE 4 CHAN 16BIT 48VQFN 48-VFQFN Exposed Pad
LM98640CILQ/NOPB LM98640CILQ/NOPB 37002 Texas Instruments IC AFE 2 CHAN 14BIT 68VQFN 68-VFQFN Exposed Pad
LM98516CCMTX LM98516CCMTX 29825 Texas Instruments IC AFE 2 CHAN 10BIT 56TSSOP -
HPA01093ZCF HPA01093ZCF 58853 Texas Instruments ULTRASOUND ANALOG FRONT END W/ M Tray
AD73360ARZ-REEL7 AD73360ARZ-REEL7 4041 Analog Devices Inc. IC AFE 6 CHAN 16BIT 28SOIC 28-SOIC (0.295", 7.50mm Width)
VSP7500ZWV VSP7500ZWV 30647 Texas Instruments IC AFE 4 CHAN 16BIT 159NFBGA 159-TFBGA
LM98515CCMT/NOPB LM98515CCMT/NOPB 24057 Texas Instruments IC COPIER SIGNAL 10BIT TSSOP -
VSP10T21PFBG4 VSP10T21PFBG4 29211 Texas Instruments IC AFE 1 CHAN 10BIT 48TQFP 48-TQFP
LM98722CCMT LM98722CCMT 89786 Texas Instruments IC AFE 3 CHAN 16BIT 56TSSOP 56-TFSOP (0.240", 6.10mm Width)
LM98516CCMT LM98516CCMT 66832 Texas Instruments IC AFE 2 CHAN 10BIT 56TSSOP -
VSP01M02ZWDR VSP01M02ZWDR 39216 Texas Instruments IC AFE 2 CHAN 10BIT 100BGA 100-TFBGA
VSP2590ZWV VSP2590ZWV 77260 Texas Instruments IC AFE 2 CHAN 16BIT 159NFBGA 159-TFBGA
VSP2560PT VSP2560PT 3925 Texas Instruments IC AFE 2 CHAN 10BIT 48LQFP 48-LQFP
PGA5807RGCR PGA5807RGCR 34092 Texas Instruments IC AFE 8 CHAN 64VQFN 64-VFQFN Exposed Pad
VSP01M01ZWDR VSP01M01ZWDR 49747 Texas Instruments IC AFE 2 CHAN 10BIT 100BGA 100-TFBGA

Analog Front End (AFE)

‌1. What is Analog Front End (AFE)?‌

‌Analog Front End (AFE)‌ is a key component for processing analog signals in electronic systems. It is located between the sensor/signal source and the digital processor and is responsible for converting the original analog signal into a high-quality, processable digital signal. Its core function is to solve the problems of analog signals being susceptible to noise interference and low amplitude, and to provide a reliable input basis for digital systems.

 

2. What are the Core Functions of Analog Front End (AFE)?‌

1) ‌Signal Conditioning‌

‌Amplification‌: Increase the amplitude of weak analog signals and enhance system sensitivity.

‌Filtering‌: Eliminate noise and interference through hardware or digital filtering to improve the signal-to-noise ratio.

 

2) ‌Analog-to-Digital Conversion (ADC)‌

Built-in high-precision ADC discretizes the conditioned analog signal into a digital signal. The sampling rate directly affects the accuracy of signal restoration.

 

3) ‌Preprocessing‌

Some AFEs integrate simple digital processing units (such as FFT and baseline correction) to reduce the burden on the main processor.

 

3. What are the Structural Features of Analog Front End (AFE)?‌

‌Highly Integrated‌

Amplifiers, filters, ADCs, reference voltage sources, excitation circuits, and other modules are integrated into a single chip to simplify system design.

 

‌Mixed Signal Architecture‌

Based on analog circuits, supplemented by a small amount of digital control logic (such as multiplexers and state machines).

 

‌Flexible Interface‌

Supports digital interfaces such as I²C and SPI (such as ISO-SPI for BMS daisy chain communication), compatible with various MCUs or processors.

 

‌4. What are Analog Front End (AFE) Used for?‌

Battery management system (BMS)‌

Collect cell voltage/temperature, and the accuracy directly affects SOC estimation.

 

Built-in passive balancing circuit to balance the battery pack through resistor discharge.

‌High-speed Communication Interface‌

Processes high-speed signal transmission and reception in protocols such as PCIe, and integrates equalizer (Equalizer) and clock data recovery (CDR) modules.

 

‌Precision Measurement System‌

Used in industrial sensors, medical equipment, etc., to achieve high-resolution acquisition of weak analog signals.

 

‌5. Key Parameters Selection for Analog Front End (AFE)‌‌

‌Parameter

‌Description

‌Resolution

The number of ADC bits (such as 16bit), which determines the signal quantization accuracy

‌Sampling Rate

Affects the signal restoration capability and must meet the Nyquist theorem

‌Power Consumption

Especially critical for portable devices, related to the ADC architecture (Δ-Σ/pipeline type)

‌Integrated Functions

Such as built-in PGA (programmable gain amplifier), temperature sensor, reference source, etc.

 

‌6. Development Trend of Analog Front End (AFE)‌

The new generation of AFE continues to evolve towards higher integration (such as MCU integration), lower power consumption (suitable for IoT devices), and intelligent signal processing (embedded AI pre-processing) to meet the needs of complex application scenarios.