WMSIC Electronic Components

ADI/LINEAR ADA4177-2ARZ-R7 ADA4177

ModelADA4177-2ARZ-R7
PackageSOIC-8
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 26+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
ADI(Analog Devices) / LINEAR ADA4177-2ARZ-R7
Type
ADI/LINEAR
Minimum package
1000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
ADI(Analog Devices) / LINEAR
Electronic Component
ADA4177-2ARZ-R7
Electronic Component
1
Package
SOIC-8
Electronic Component
Precision Op Amp
Electronic Component
0.138g
Electronic Component
1
Electronic Component
Output
Features
EMI / RF; Built-in; positions
Electronic Component
BM0265087801
Operating Temperature
40℃~+125℃
Amplifier
Electronic Component
Output Current
25mA
(SR)
1.5V/us
Static Current(Iq)
500uA

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

ADA4177-2ARZ-R7 产品概述

一、概述

ADA4177-2ARZ-R7 是一款高精度、低噪声的双路运算放大器,面向对失调、电压噪声和共模抑制有严格要求的工业与仪器应用。器件集成了 EMI 滤波/RF 抑制、电平保护与内置补偿等功能,在保证精度的同时增强了对恶劣电磁环境和瞬态过压的鲁棒性。该放大器在 SOIC-8 封装中提供双通道,适合空间受限但要求高可靠性的系统设计。

二、主要性能参数

  • 放大器通道数:双路(Dual)
  • 电源方式:支持单电源 2.5V 至 18V,或对称双电源 ±2.5V 至 ±18V
  • 输出能力:轨到轨输出(Rail-to-Rail Output),最大输出电流 25 mA
  • 增益带宽积(GBW):3.5 MHz
  • 压摆率(SR):1.5 V/µs
  • 输入失调电压(Vos):典型 60 µV
  • 输入失调温漂(Vos TC):1 µV/℃(典型)
  • 共模抑制比(CMRR):122 dB
  • 输入电压噪声密度(eN):8 nV/√Hz @ 1 kHz
  • 输入偏置电流(Ib):典型 1 nA
  • 输入失调电流(Ios):典型 750 pA
  • 静态电流(Iq):每通道 500 µA(双路合计约 1 mA)
  • 工作温度范围:-40 ℃ 至 +125 ℃
  • 包装:SOIC-8
  • 品牌:ADI / Linear

三、保护与抑制特性

ADA4177-2 针对实际应用中常见的电磁干扰与输入异常情况作了多方面的设计增强:

  • EMI 滤波 / RF 抑制:输入端和内部电路采用抑制结构,能降低高频干扰对放大器直流偏移和稳定性的影响,适合靠近开关电源或无线模块的系统。
  • 内置补偿:器件内部完成频率补偿,简化外部补偿网络设计,便于在单端或差分放大器配置下获得稳定工作。
  • 反相位输入保护(inverting-input protection):在输入极性接反或出现短时大电压时,降低对输入器件的损害风险。
  • 过压保护:增强对瞬态过压(如继电器切换、浪涌)等事件的耐受能力,提高系统可靠性。

四、典型应用场景

基于其高精度、低噪声和抗干扰特性,ADA4177-2 适用于以下应用:

  • 传感器前端(温度、压力、力、电流等)—— 需要低失调与低漂移以保证测量精度
  • 数据采集系统 ADC 驱动—— 低噪声、轨到轨输出可提高 ADC 的有效动态范围
  • 精密仪器放大器与差分放大器—— 高 CMRR 和低 Vos TC 适合差分测量与长线传感
  • 工业控制与过程监控—— 抗 EMI 设计适合电磁环境复杂的工况
  • 便携与电池供电设备—— 宽电源范围与低静态电流兼顾性能与功耗
  • 汽车电子(在符合温度和电压规范的系统中)—— 工作温度覆盖工业级范围

五、封装与选型建议

ADA4177-2ARZ-R7 以 SOIC-8 外形提供,利于标准 PCB 工艺批量生产与散热管理。选型时建议注意以下几点:

  • 若系统需最大化输出摆幅或驱动较大负载,应评估 25 mA 输出能力是否满足瞬态或持续驱动需求,并考虑外置推挽或缓冲器。
  • 在高精度差分测量中,注意布局与走线对共模干扰的抑制,结合器件的高 CMRR 可显著提升测量性能。
  • 对于噪声敏感应用,合理选择输入滤波、带宽与增益设置,充分利用 8 nV/√Hz 的低噪声优势。

六、典型使用注意事项

  • 电源退耦:尽管器件对 EMI 有抑制设计,仍建议在电源管脚加足够的去耦电容(如 0.1 µF 与 10 µF 组合)以降低电源噪声和振荡风险。
  • 输入保护与滤波:在可能出现高频干扰或电压反向的场景,外接小阻值串联电阻或 RC 滤波器可进一步保护输入并稳定系统响应。
  • 温漂管理:若系统需极低温漂,建议在 PCB 及元件选择上注意热源分离,减少局部温升对失调电压的影响。
  • 布局与接地:差分信号、模拟地与数字地应分区,并在一点汇流,避免地环路带来的干扰与误差。

总结:ADA4177-2ARZ-R7 将高精度、低噪声和抗干扰设计有机结合,适合工业级与仪器级应用,特别是在需要稳定性、低偏移和良好 EMI 抑制的系统中表现出色。根据具体负载与带宽需求,可通过合理的外围搭配进一步发挥器件的性能优势。

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