WMSIC Electronic Components

ADI/LINEAR MAX9814ETD+T MAX9814ETD

ModelMAX9814ETD+T
PackageTDFN-14
BrandADI/LINEAR
Price Price on request Electronic component prices change quickly with market supply and demand. Please refer to the latest WMSIC quotation for current pricing.
Configuration
1 options
Configuration 25+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
ADI(Analog Devices) / LINEAR MAX9814ETD+T
Type
ADI/LINEAR
Minimum package
2500 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
ADI(Analog Devices) / LINEAR
Electronic Component
MAX9814ETD+T
Electronic Component
1
Package
TDFN-14
Electronic Component
Audio Power Amplifier
Electronic Component
0.04g
Electronic Component
61dB
Electronic Component
1
Power Amplifier Type
AB Power Amplifier
Electronic Component
BM0258677589
Operating Temperature
40℃~+85℃
Operating Voltage
2.7V~5.5V
Speaker Channel Count
Electronic Component
Electronic Component
Electronic Component
Electronic Component
2500

For datasheets, package documents, compatible-part guidance, or other technical resources, contact WMSIC customer service. Availability is confirmed case by case.

MAX9814ETD+T 产品概述

一、产品简介

MAX9814ETD+T 是一款面向单声道麦克风前端的高性能放大器,工作电压范围为 2.7 V5.5 V,适用于便携式和电池供电的音频采集系统。器件基于 AB 类功放架构,集成数字可编程增益(40 dB / 50 dB / 60 dB)与使能/关断功能,静态电流低(典型 1 mA),并提供优越的失真、噪声与电源纹波抑制特性,封装为紧凑的 TDFN-14,工作温度覆盖工业级范围(-40℃+85℃)。

二、主要规格与性能亮点

  • 工作电压:2.7 V 至 5.5 V,支持常见单节至双节锂电池和标准电源轨。
  • 通道数:单声道麦克风放大器。
  • 可编程增益:三档增益选择(40 dB、50 dB、60 dB),便于在不同麦克风灵敏度和声压级下优化前端增益。
  • 静态电流:典型值约 1 mA,适合低功耗语音应用。
  • 总谐波失真+噪声(THD+N):0.04%(条件依赖),保证音频的线性度与保真度。
  • 信噪比(SNR):61 dB,适合中高质量语音采集场合。
  • 电源纹波抑制比(PSRR):50 dB,有效抑制电源噪声对音频通道的影响。
  • 功能特性:数字编程增益、使能/关断控制,便于系统集成与功耗管理。
  • 工作温度范围:-40℃ 至 +85℃,适合工业与户外环境。
  • 封装:TDFN-14,体积小、散热与可布线性良好。

三、典型应用场景

  • 可穿戴设备和便携式语音记录器:低静态电流与可编程增益适合电池供电与麦克风灵敏度差异。
  • 智能音箱与语音唤醒前端:低失真、较高 PSRR 有助于在噪声复杂的环境中维持清晰语音。
  • 通信终端与车载语音系统:工业级温度和稳定性满足不同环境要求。
  • 物联网语音节点和人机交互终端:单芯片麦克风前端简化系统设计并节省 PCB 面积。

四、电气与设计要点

  • 增益选择:器件提供三档固定增益。系统设计时应根据麦克风灵敏度(mV/Pa)与典型声压级(SPL)选择合适档位,避免前端饱和或增益不足。
  • 使能/关断控制:通过外部逻辑引脚进行开关控制,可在不工作时进入低功耗态以延长电池寿命。注意关断与唤醒时序以避免冲击噪声。
  • 电源管理:尽管具有较高 PSRR,仍应在电源引脚处放置适当的去耦电容(如 0.1 µF 与 1 µF 的组合)以减少高频与低频噪声。对电池供电系统建议加上滤波与软启动设计。
  • 输入/输出耦合:麦克风输入常采用电容耦合或直流偏置方式,需依据麦克风类型(驻极体、电容式)确认偏置电流与偏置电压要求。输出如需驱动后级电路,考虑加入直流隔离电容以匹配输入偏置。
  • 热与布局:TDFN-14 封装虽小,但良好接地与热散布局仍然必要。将地平面扩展至器件底部焊盘,并在周边放置去耦与滤波元件,缩短敏感模拟信号路径可降低噪声拾取。

五、封装与机械信息

器件采用 TDFN-14 小型封装,适合对板面面积有严格限制的应用。封装具有良好的焊接兼容性与可焊盘布局优势,但在生产时应注意焊膏量与回流曲线,以避免焊接缺陷。推荐参考器件具体数据手册中的 PCB 焊盘推荐图与回流温度曲线。

六、典型使用建议与注意事项

  • 在调试阶段,使用示波器观察使能上电瞬态、输出摆幅与失真,以验证所选增益档在目标声压下的线性性能。
  • 若使用长线或外置麦克风,注意线路屏蔽与接地,避免麦克风信号受电源或数字逻辑干扰。
  • 频繁切换增益或频繁进入/退出关断模式时,评估是否会对上游/下游电路产生瞬态影响并采取缓冲或延时策略。
  • 在高温工况下关注器件温漂与增益稳定性,必要时在系统层面加入温度补偿或自动校准流程。

总结:MAX9814ETD+T 为一款集成度高、增益可选且功耗低的单声道麦克风放大器,适用于多种语音采集场景。合理的电源滤波、布局与增益配置能够发挥其低失真、高 PSRR 和良好 SNR 的优势,从而在资源受限的终端产品中实现可靠且高质量的音频前端方案。

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