WMSIC Electronic Components

MAXLINEAR SPX2431AM-L/TR SPX2431AM

ModelSPX2431AM-L/TR
PackageSOT-23
BrandMAXLINEAR
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

20 specifications

Core information

Product name
MAXLINEAR SPX2431AM-L / TR
Type
MAXLINEAR
Unit
Electronic Component
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
Electronic Component
Electronic Component
MAXLINEAR
Electronic Component
SPX2431AM-L/TR
Electronic Component
1
Package
SOT-23
Electronic Component
Voltage Reference IC
Electronic Component
±0.5%
Electronic Component
0.045g
Electronic Component
1
Features
Electronic Component
Electronic Component
BM0000515161
Operating Temperature
0℃~+105℃
Operating Voltage
2.5V~20V
Electronic Component
30ppm/℃
Output Voltage
2.5V~20V

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

SPX2431AM-L/TR 产品概述

一、产品简介

SPX2431AM-L/TR 是 MAXLINEAR(迈凌)推出的一款高精度可调并联(并联型、即分流/基准)电压参考/基准源,封装为 SOT-23。该器件以精密、低温漂和较强的输出驱动能力为设计目标,适用于需要稳定参考电压或并联稳压的多种电子系统。器件工作电压范围宽(2.5V–20V),输出电压可调(2.5V–20V),并能在工业类环境下保持良好稳定性与可靠性。

二、主要规格

  • 输出类型:可调(并联/并联型基准)
  • 工作温度:0℃ ~ +105℃(Ta)
  • 温度系数:30 ppm/℃
  • 精度(初始误差):±0.5%
  • 最小阴极(工作)电流以保持调节:400 μA
  • 最大输出(分流)电流:100 mA
  • 工作电压(供电/适用电压范围):2.5 V ~ 20 V
  • 输出电压范围(可调):2.5 V ~ 20 V
  • 封装:SOT-23
  • 品牌:MAXLINEAR(迈凌)

三、关键特性与优势

  • 高精度:±0.5% 的初始精度适合要求较高稳定度的参考源、比较器基准或采样电路使用,降低系统校准频率和误差预算。
  • 低温漂:30 ppm/℃ 的温度系数在中高端基准器件中属优良水平,在宽温度变化条件下能维持较小的漂移。
  • 宽电压与电压调节范围:2.5V 至 20V 的输入与输出范围为多种系统电压设计提供灵活性,能直接适配常见单电源系统(如3.3V、5V、12V等)。
  • 并联型结构与较大分流能力:最高 100 mA 的分流电流使器件可直接为中低功耗分立负载提供稳压,适用于偏置、基准源、参考驱动和简单稳压场合。
  • 低工作电流需求:最小 400 μA 的调节阴极电流指示器件在小电流偏置条件下即可进入稳压状态,有利于低功耗电路的基准稳定性管理。
  • 小封装:SOT-23 封装利于体积受限的应用与自动化贴装。

四、典型应用场景

  • 精密参考电压源:作为 ADC、DAC、比较器等的参考输入,提供稳定基准电压。
  • 并联稳压/基准偏置:在需要精确电压基准同时允许部分分流供电的场合(例如小功率供电模块、基准偏置源)。
  • 系统偏置与参考:为传感器调理电路、放大器偏置电路等提供温度稳定的参考。
  • 电源监测与校准:用于需要长期稳定基准以做零点校准或温度补偿的系统。
  • 通用工业与仪表设备:适合工作在 0–105℃ 环境下的工业控制与测试仪器。

五、设计与应用注意事项

  • 保证调节电流:器件要求最小阴极调节电流约 400 μA,设计分压/偏置网络时应保证在目标工作点下至少满足该电流,否则可能无法进入稳定调节状态。建议分压器或偏置电流设计在 1 mA 左右以提高抗干扰与稳定性。
  • 考虑功耗与散热:并联器件的功耗等于 (Vin - Vout) × Icathode。若输出需提供大电流(接近 100 mA),电压差较大时器件功耗会上升,SOT-23 的散热能力有限。请评估实际功耗并通过限制分流电流、降低电压差或加大 PCB 铜箔面积散热来控制结温。
  • 输出阻抗与负载能力:作为并联参考,其在低频下具备良好稳压能力,但输出阻抗可能随频率变化。用于高精度 ADC 参考时,如需低源阻抗,应在参考端并联合适的去耦电容并评估瞬态响应。
  • 旁路与滤波:在环境噪声或较大负载跃变的场合,建议在基准输出与地之间放置适当的去耦电容或 RC 滤波网络,以降低噪声并改善瞬态稳定性(具体值建议参照详细资料或评估电路仿真结果)。
  • 启动/断电顺序:在多电源系统中注意基准的供电顺序,避免在不稳定供电时驱动敏感电路造成误动作。

六、封装与散热建议

SOT-23 小型封装适用于体积受限的设计,但热阻相对较大。建议在 PCB 布局时:

  • 在器件下方及周围放置较大铜箔以增强散热;
  • 使用多层板时给出过孔连通底层铜箔以扩展散热路径;
  • 避免将大功耗元件与该器件紧密并列,以免局部热耦合升温影响基准精度。

七、选型建议

若设计需要在小封装中兼顾高精度(±0.5%)、低温漂(30 ppm/℃)与可调输出,同时可能要为中等负载提供并联分流(最高 100 mA),SPX2431AM-L/TR 是性价比较高的选择。对于更严格的温度范围(低于 0℃ 或高于 +105℃)或更高精度/更低噪声的场合,应参考厂商完整数据手册并对比其他高精度基准或低噪声片上参考源。使用前建议下载并仔细阅读 MAXLINEAR 提供的完整数据手册,核对典型电路、引脚定义和热限说明,以便在目标系统中取得最佳性能。

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