WMSIC Electronic Components

ADI/LINEAR MAX2659ELT+T MAX2659ELT

ModelMAX2659ELT+T
PackageUDFN-6
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 MAX2659ELT+T
Type
ADI/LINEAR
Minimum package
2500

Technical parameters

IP3
5dBm
P1dB
12dBm
Electronic Component
ADI(Analog Devices) / LINEAR
Electronic Component
MAX2659ELT+T
Electronic Component
20.5dB
Electronic Component
1
Package
UDFN-6
Electronic Component
RFLow Noise Amplifier
Electronic Component
0.03g
Frequency
1.575GHz
Electronic Component
1
Features
Low Power;; Output Integrated
Electronic Component
BM0230899626
Noise Figure
0.8dB
Operating Temperature
40℃~+85℃
Operating Voltage
1.6V~3.6V

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

MAX2659ELT+T GPS/GNSS低噪声射频放大器产品概述

一、产品定位与核心类别

MAX2659ELT+T是亚德诺半导体(ADI)推出的GPS/GNSS专用低噪声射频放大器(LNA),针对全球导航卫星系统(GNSS)核心频段(以1.575GHz为代表)优化设计,属于高性能射频前端器件。其核心功能是放大微弱GNSS卫星信号,同时最小化噪声引入,提升接收端定位灵敏度与精度,适配多类便携及工业级定位场景。

二、核心性能参数详解

该器件的关键参数围绕GNSS接收的核心需求(低噪声、高增益、宽适配)设计,具体如下:

2.1 供电与功耗

  • 工作电压范围:1.6V~3.6V,兼容主流微控制器(MCU)、基带芯片的供电电平(如1.8V低功耗MCU、3.3V手机基带),无需额外电压转换电路;
  • 典型工作电流:4.1mA,低功耗设计适配电池供电的便携设备(如智能手表、手持终端),可延长单次充电使用时长。

2.2 信号放大与线性度

  • 增益:20.5dB,提供足够的信号放大能力,可弥补天线到基带芯片之间的传输损耗(如电缆、滤波器损耗),确保微弱卫星信号能被基带有效识别;
  • 1dB压缩点(P1dB):-12dBm,当输入信号功率达到-12dBm时,增益下降1dB,该参数保证中等强度信号下的线性放大,避免信号失真;
  • 三阶交调截点(IP3):-5dBm,反映器件对非线性失真的抑制能力,在存在多径干扰或邻频干扰时,可有效减少信号畸变,提升定位可靠性。

2.3 噪声与阻抗匹配

  • 噪声系数(NF):0.8dB,低噪放核心指标——噪声系数越低,对微弱信号的信噪比保留越好,该参数可最大程度还原卫星信号的原始质量,提升弱信号场景(如高楼遮挡、隧道)的定位成功率;
  • 回波损耗:输入回波损耗15dB,输出回波损耗25dB,表明器件与射频链路的阻抗匹配优异,信号反射损耗极小,提升整体链路效率。

2.4 环境与频率适应性

  • 工作温度范围:-40℃~+85℃,覆盖车载、户外、工业级等严苛环境(如低温高原、高温沙漠),可靠性符合多场景需求;
  • 中心频率:1.575GHz,精准覆盖GPS L1主频段(1575.42MHz),同时兼容GLONASS G1(1602MHz)、Galileo E1(1575.42MHz)等GNSS相近频段,通用性强。

三、封装与物理特性

采用UDFN-6封装(超小型无引脚扁平封装),典型尺寸约1.0mm×1.0mm,尺寸紧凑,适合空间受限的便携设备(如智能手表、无人机定位模块);无引脚设计降低寄生电感与电容,进一步优化射频性能,减少信号干扰。

四、关键设计优势

  1. 宽电压兼容:1.6V~3.6V覆盖从低功耗MCU到主流基带的供电范围,适配性广;
  2. 低噪与低功耗平衡:4.1mA电流下实现0.8dB NF,在便携设备中兼顾“长续航”与“高灵敏度”;
  3. 线性度适配GNSS场景:P1dB与IP3参数满足GNSS接收的信号强度需求,应对多径干扰时仍能保持信号质量;
  4. 宽温可靠性:-40℃~+85℃符合车规级(AEC-Q100)部分要求,适合车载导航、ADAS等场景;
  5. 阻抗匹配优异:输入输出回波损耗保证射频链路的信号传输效率,减少额外损耗。

五、典型应用场景

MAX2659ELT+T的特性使其适配多类GNSS定位场景:

  1. 车载导航与ADAS:宽温设计适应车载环境,提升隧道、高楼区的GPS信号接收;
  2. 便携定位设备:智能手表、运动手环、手持GPS终端,低功耗延长电池寿命;
  3. 无人机定位模块:紧凑UDFN-6封装适合无人机小型化设计,宽温适应高空/户外环境;
  4. 物联网定位节点:低功耗适配电池供电的IoT设备(如资产追踪器),精准接收GNSS信号;
  5. 工业级定位系统:宽温与高可靠性适合户外工业设备(如工程机械、农业无人机)的定位需求。

六、总结

MAX2659ELT+T作为ADI旗下的GNSS专用LNA,聚焦微弱信号放大、低噪声抑制、宽适配性三大核心需求,通过优异的噪声系数、增益与线性度,适配多类便携及工业级定位场景,是GPS/GNSS接收前端的高性价比选择。

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