AFE5816

現行

具有被動式 CW 混頻器、0.95nV/rtHz 的完全整合、16 通道超音波類比前端

產品詳細資料

Device type Receiver Number of input channels 16 Active supply current (typ) (mA) 20 Supply voltage (max) (V) 3.3 Operating temperature range (°C) -40 to 85 Interface type LVDS Features Analog Front End (AFE) Rating Catalog
Device type Receiver Number of input channels 16 Active supply current (typ) (mA) 20 Supply voltage (max) (V) 3.3 Operating temperature range (°C) -40 to 85 Interface type LVDS Features Analog Front End (AFE) Rating Catalog
NFBGA (ZAV) 289 225 mm² 15 x 15
  • 16-channel, AFE for ultrasound applications:
    • Input attenuator, LNA, LPF, ADC, and CW mixer
    • Optimized signal chains for TGC and CW modes
    • Digital time gain compensation (DTGC)
    • Total gain range: 6dB to 45dB
    • Linear input range: 1VPP
  • Input attenuator with DTGC:
    • 8dB to 0dB attenuation with 0.125dB step
    • Supports matched impedance for:
      • 50Ω to 800Ω source impedance
  • Low-noise amplifier (LNA) with DTGC:
    • 14dB to 45dB gain with 0.125dB step
    • Low input current noise: 1.2pA/√ Hz
  • 3rd-order, linear-phase, low-pass filter (LPF):
    • 10MHz, 15MHz, 20MHz, and 25MHz
  • Analog-to-digital converter (ADC) with programmable resolution:
    • 14-bit ADC: 75dBFS idle channel SNR at 65 MSPS
    • 12-bit ADC: 72dBFS idle channel SNR at 80 MSPS
  • LVDS interface with a maximum speed up to 1GBPS
  • Optimized for noise and power:
    • 90mW/Ch at 1nV/√ Hz, 65 MSPS, TGC mode
    • 55mW/Ch at 1.45nV/√ Hz, 40 MSPS, TGC mode
    • 59mW/Ch, CW mode
  • Excellent device-to-device gain matching:
    • ±0.5dB (typical)
  • Low harmonic distortion: –60dBc level
  • Fast and consistent overload recovery
  • Continuous wave (CW) path with:
    • Passive mixer
    • Low close-in phase noise of –148dBc/Hz at 1kHz frequency
    • Phase resolution: λ / 16
    • Supports 16X, 8X, 4X, and 1X CW clocks
    • 12dB suppression of 3rd and 5th harmonics
  • Small package: 15mm × 15mm NFBGA-289
  • 16-channel, AFE for ultrasound applications:
    • Input attenuator, LNA, LPF, ADC, and CW mixer
    • Optimized signal chains for TGC and CW modes
    • Digital time gain compensation (DTGC)
    • Total gain range: 6dB to 45dB
    • Linear input range: 1VPP
  • Input attenuator with DTGC:
    • 8dB to 0dB attenuation with 0.125dB step
    • Supports matched impedance for:
      • 50Ω to 800Ω source impedance
  • Low-noise amplifier (LNA) with DTGC:
    • 14dB to 45dB gain with 0.125dB step
    • Low input current noise: 1.2pA/√ Hz
  • 3rd-order, linear-phase, low-pass filter (LPF):
    • 10MHz, 15MHz, 20MHz, and 25MHz
  • Analog-to-digital converter (ADC) with programmable resolution:
    • 14-bit ADC: 75dBFS idle channel SNR at 65 MSPS
    • 12-bit ADC: 72dBFS idle channel SNR at 80 MSPS
  • LVDS interface with a maximum speed up to 1GBPS
  • Optimized for noise and power:
    • 90mW/Ch at 1nV/√ Hz, 65 MSPS, TGC mode
    • 55mW/Ch at 1.45nV/√ Hz, 40 MSPS, TGC mode
    • 59mW/Ch, CW mode
  • Excellent device-to-device gain matching:
    • ±0.5dB (typical)
  • Low harmonic distortion: –60dBc level
  • Fast and consistent overload recovery
  • Continuous wave (CW) path with:
    • Passive mixer
    • Low close-in phase noise of –148dBc/Hz at 1kHz frequency
    • Phase resolution: λ / 16
    • Supports 16X, 8X, 4X, and 1X CW clocks
    • 12dB suppression of 3rd and 5th harmonics
  • Small package: 15mm × 15mm NFBGA-289

The AFE5816 is a highly-integrated, analog front-end (AFE) solution specifically designed for ultrasound systems where high performance, low power, and small size are required.

The AFE5816 is an integrated analog front-end (AFE) optimized for medical ultrasound application. The AFE5816 is a multichip module (MCM) device with two dies: VCA and ADC_CONV. Each die has total of 16 channels.

Each channel in the VCA die can be configured in two modes: time gain compensation (TGC) mode and continuous wave (CW) mode. In TGC mode, each channel includes an input attenuator (ATTEN), a low-noise amplifier (LNA) with variable-gain, and a third-order, low-pass filter (LPF). The attenuator supports an attenuation range of 8dB to 0dB, and the LNA supports gain ranges from 14dB to 45dB. The LPF cutoff frequency can be configured at 10MHz, 15MHz, 20MHz, or 25MHz to support ultrasound applications with different frequencies. In CW mode, each channel includes an LNA with a fixed gain of 18dB, and a low-power passive mixer with 16 selectable phase delays. Different phase delays can be applied to each analog input signal to perform an on-chip beamforming operation. A harmonic filter in the CW mixer suppresses the third and fifth harmonic to enhance the sensitivity of the CW Doppler measurement. CW mode supports three clock modes: 16X, 8X, and 4X.

Each channel of the ADC_CONV die has a high-performance analog-to-digital converter (ADC) with a programmable resolution of 14 bits or 12 bits. The ADC achieves 75dBFS signal-to-noise ratio (SNR) in 14-bit mode, and 72dBFS SNR in 12-bit mode. This ADC provides excellent SNR at low-channel gain. The devices operate at maximum speeds of 65 MSPS and 80 MSPS, providing 14-bit and 12-bit output, respectively. The ADC is designed to scale power with sampling rate. The output interface of the ADC is a low-voltage differential signaling (LVDS) interface that can easily interface with low-cost field-programmable gate arrays (FPGAs).

The AFE5816 also allows various power and noise combinations to be selected for optimizing system performance. Therefore, these devices are suitable ultrasound AFE solutions for systems with strict battery-life requirements. The AFE5816 is available in a 15mm × 15mm NFBGA-289 package (ZAV package, S-PBGA-N289) and is specified for operation from –40°C to +85°C. The device is also pin-to-pin compatible with the AFE5818 family.

The AFE5816 is a highly-integrated, analog front-end (AFE) solution specifically designed for ultrasound systems where high performance, low power, and small size are required.

The AFE5816 is an integrated analog front-end (AFE) optimized for medical ultrasound application. The AFE5816 is a multichip module (MCM) device with two dies: VCA and ADC_CONV. Each die has total of 16 channels.

Each channel in the VCA die can be configured in two modes: time gain compensation (TGC) mode and continuous wave (CW) mode. In TGC mode, each channel includes an input attenuator (ATTEN), a low-noise amplifier (LNA) with variable-gain, and a third-order, low-pass filter (LPF). The attenuator supports an attenuation range of 8dB to 0dB, and the LNA supports gain ranges from 14dB to 45dB. The LPF cutoff frequency can be configured at 10MHz, 15MHz, 20MHz, or 25MHz to support ultrasound applications with different frequencies. In CW mode, each channel includes an LNA with a fixed gain of 18dB, and a low-power passive mixer with 16 selectable phase delays. Different phase delays can be applied to each analog input signal to perform an on-chip beamforming operation. A harmonic filter in the CW mixer suppresses the third and fifth harmonic to enhance the sensitivity of the CW Doppler measurement. CW mode supports three clock modes: 16X, 8X, and 4X.

Each channel of the ADC_CONV die has a high-performance analog-to-digital converter (ADC) with a programmable resolution of 14 bits or 12 bits. The ADC achieves 75dBFS signal-to-noise ratio (SNR) in 14-bit mode, and 72dBFS SNR in 12-bit mode. This ADC provides excellent SNR at low-channel gain. The devices operate at maximum speeds of 65 MSPS and 80 MSPS, providing 14-bit and 12-bit output, respectively. The ADC is designed to scale power with sampling rate. The output interface of the ADC is a low-voltage differential signaling (LVDS) interface that can easily interface with low-cost field-programmable gate arrays (FPGAs).

The AFE5816 also allows various power and noise combinations to be selected for optimizing system performance. Therefore, these devices are suitable ultrasound AFE solutions for systems with strict battery-life requirements. The AFE5816 is available in a 15mm × 15mm NFBGA-289 package (ZAV package, S-PBGA-N289) and is specified for operation from –40°C to +85°C. The device is also pin-to-pin compatible with the AFE5818 family.

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類型 標題 日期
* Data sheet AFE5816 16-Channel Ultrasound AFE With 90mW/Channel Power, 1nV/√ Hz Noise, 14-Bit, 65-MSPS or 12-Bit, 80 MSPS ADC and Passive CW Mixer datasheet PDF | HTML 2024年 3月 1日
Application note Precision Sum Circuit Support Hi Output Current Multiple AFEs in Ultasound App 2017年 11月 20日
Application note Introduction to Ultrasound 2017年 7月 10日
Application note Time Gain Control (Compensation) in Ultrasound Applications 2016年 12月 2日
EVM User's guide AFE5816 EVM User Guide (Rev. A) 2016年 2月 17日

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AFE5816EVM — AFE5816 評估模組

The AFE5816EVM is a highly integrated Analog Front-End (AFE) solution specifically designed for ultrasound systems in which high performance and small size are required. The AFE5816EVM integrates a complete time-gain-control (TGC) imaging path and a continuous wave Doppler (CWD) path. It also (...)

使用指南: PDF
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AFE58JD16EVM — AFE58JD16 評估模組

AFE58JD16 評估模組 (EVM) 是高度整合類比前端 (AFE) 解決方案,專為需要高效能和小尺寸的超音波系統所設計。AFE58JD16EVM 整合了完整的時間增益控制 (TGC) 影像路徑和連續波都卜勒 (CWD) 路徑。使用者也可以選擇不同的功率/雜訊組合來最佳化系統性能。AFE58JD16EVM 不僅是適合高階系統的超音波 AFE 解決方案,也是適合可攜式系統的超音波 AFE 解決方案。

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AFE5816 IBIS MODEL

SLAM253.ZIP (57 KB) - IBIS Model
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PSPICE-FOR-TI — PSpice® for TI 設計與模擬工具

PSpice® for TI is a design and simulation environment that helps evaluate functionality of analog circuits. This full-featured, design and simulation suite uses an analog analysis engine from Cadence®. Available at no cost, PSpice for TI includes one of the largest model libraries in the (...)
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