WMSIC Electronic Components

MAXLINEAR LP2951CS-L-5-0/TR LP2951CS

ModelLP2951CS-L-5-0/TR
Package8-SOIC
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 24+

Available for RFQ

Technical data

Product details

20 specifications

Core information

Product name
MAXLINEAR LP2951CS-L-5-0 / TR
Type
MAXLINEAR
Unit
Electronic Component
Minimum package
2500 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
Electronic Component
Electronic Component
380mV@(100mA)
Electronic Component
MAXLINEAR
Electronic Component
430uVrms
Electronic Component
LP2951CS-L-5-0/TR
Electronic Component
1
Package
8-SOIC
Electronic Component
Linear Regulator(LDO)
Electronic Component
0.222g
Electronic Component
1
Electronic Component
BM0230663420
Operating Temperature
40℃~+125℃@(Ta)
Operating Voltage
30V
Output
Electronic Component
Output Voltage
5V;1.24V~29V

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

LP2951CS-L-5-0/TR 产品概述

一、概述与定位

LP2951CS-L-5-0/TR 是一款由 MAXLINEAR(迈凌) 提供的低压差(LDO)线性稳压器,具有固定 5.0V 输出和可调版本(1.24V ~ 29V)两种输出形式,单通道输出,封装为 8-SOIC。该器件支持最高工作电压 30V,输出电流最高可达 100mA。器件在小功耗和低噪声需求下表现优良,集成过流保护、短路保护与过热保护,适合对干净稳压电源有要求的工业与汽车级电子应用。

二、主要电气性能

  • 输出类型:固定(5.0V)与可调(1.24V ~ 29V)
  • 最大工作电压:30V
  • 最大输出电流:100mA
  • 压差(Dropout):约 380mV @ 100mA(低压差特性,适合电池或较小输入与输出压差场合)
  • 静态电流(Iq):典型 170µA(适合待机和低功耗系统)
  • 输出噪声:约 430µVrms(适合对噪声有一定要求的模拟前端、传感器供电)
  • 输出极性:正极输出
  • 工作温度范围:-40℃ ~ +125℃(Ta)
  • 保护功能:过流保护、短路保护、过热保护
  • 封装:8-SOIC(TR 表示卷带盘装)

三、功能特点与设计优势

  • 低压差:380mV 的压差在 100mA 负载下仍然保持,使该器件在输入与输出电压差较小时仍能稳定工作,利于延长电池使用时间或在卡位有限的系统中使用较低输入电压。
  • 低静态电流:170µA 的静态电流使其非常适合电池供电与休眠频繁的系统,减小待机耗电。
  • 宽工作电压:最高支持 30V 输入,满足工业与汽车类较高输入电压的耐受能力(在使用前请确认具体应用下的瞬态与ESD要求)。
  • 全面保护:集成过流、短路及热关断保护,提高系统可靠性,减少外部保护电路复杂度。
  • 可调版本支持大范围输出(1.24V ~ 29V),通过外接反馈电阻即可得到所需输出电压,方便设计灵活性。

四、可调输出设置建议

对于可调版本,参考典型的反馈公式: VOUT = VREF × (1 + R2 / R1) 其中 VREF 约为 1.24V(内部基准)。
设计建议:

  • 选择 R1 在 1kΩ ~ 10kΩ 范围以平衡误差源与偏置电流影响,同时避免过大的高阻抗导致噪声或不稳定。
  • R2 按所需输出电压计算并注意器件功耗与热耗散。
  • 在调节网络上可并联小电容以改善瞬态和噪声性能(注意避免影响稳压器稳定性)。

五、应用场景

  • 工业控制与传感器供电:-40℃ 至 +125℃ 的工作温度与 30V 的输入耐受特性适合工业环境。
  • 汽车电子辅助电源(需配合车规级设计规范与瞬态抑制):可作为低功耗模拟电源或传感器前端供电。
  • 仪器仪表与数据采集前端:低噪声输出对 ADC、放大器等模拟电路有利。
  • 电池供电设备与便携终端:低静态电流与低压差特性有助于延长电池寿命并在输入电压下降时依然保持输出。

六、布局与使用注意事项

  • 输入/输出电容:为保证稳态与瞬态性能,应在输入端与输出端靠近引脚放置电容。常见做法是输入端放置 1µF~10µF 的陶瓷或钽电容,输出端同样使用低 ESR 电容,具体数值请参考器件数据手册/应用说明以确保稳压器稳定性。
  • 布局散热:尽管最大输出电流为 100mA,但在较高输入-输出压差下会产生较大的功耗与热量。建议在 PCB 上为器件散热提供较大铜箔面积,并避免将热敏元件近邻放置。
  • 保护与滤波:在可能存在瞬态尖峰的系统(如汽车电源)中,建议在输入侧增加瞬态抑制器或滤波网络以保护稳压器。
  • 调节版电阻连接:调节电阻与接地要尽量靠近器件,并减少寄生阻抗,避免噪声或误差引入。

七、封装与订购信息

  • 封装:8-SOIC,便于手工焊接与自动贴片生产。
  • 尾缀 TR 通常表示卷带盘装(Tape & Reel),适合 SMT 自动化生产线采购和上料。

总结:LP2951CS-L-5-0/TR 以其低压差、低静态电流与较宽工作电压特性,结合完整的保护机制,适用于工业、汽车与便携类需要稳定低噪声电源的场合。在实际设计中应注意输入/输出电容选择、散热布局与瞬态保护,以发挥器件的最佳性能。若需更详细的电气规范、典型特性曲线和参考电路,请参阅厂商完整数据手册。

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