WMSIC Electronic Components

JSMSEMI SGM2019-3.3YN5G/TR SGM2019

ModelSGM2019-3.3YN5G/TR
PackageSOT-23-5
BrandJSMSEMI
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 Date code within 2 years

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
JSMSEMI SGM2019-3.3YN5G / TR
Type
JSMSEMI
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
160mV@(300mA)
Electronic Component
JSMSEMI
Electronic Component
SGM2019-3.3YN5G/TR
Electronic Component
1
Package
SOT-23-5
Electronic Component
Linear Regulator(LDO)
Electronic Component
0.037g
Electronic Component
1
Electronic Component
BM0225748491
Operating Temperature
40℃~+85℃@(Ta)
Operating Voltage
5.5V
Output
Electronic Component
Output Voltage
3.3V
Output Current
300mA
Output Type
Electronic Component

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

SGM2019-3.3YN5G/TR 产品概述

SGM2019-3.3YN5G/TR 是一款面向低功耗便携与工业控制场景的固定输出线性稳压器,输出为正极 3.3V。器件集成多种保护与控制功能,适用于对噪声、空载功耗和热稳定性有严格要求的系统。该器件以 SOT-23-5 小封装提供,适合体积受限的应用板级电源设计。

一、主要特性(概览)

  • 输出类型:固定 3.3V
  • 输出极性:正极
  • 输出电流:最大 300 mA
  • 工作电压:最高 5.5 V(输入)
  • 压差(Dropout):160 mV @ 300 mA(低压差,适合低电压差工作场景)
  • 静态电流(Iq):典型 2 μA(极低静态电流,适合电池供电与待机要求高的系统)
  • 电源纹波抑制比(PSRR):80 dB @ 100 Hz(对工频与邻近噪声有良好抑制能力)
  • 保护功能:过流保护、过热保护
  • 控制引脚:带使能(EN)功能,支持远程开关控制
  • 工作温度范围:-40 ℃ 至 +85 ℃(Ta)
  • 封装:SOT-23-5
  • 通道数:1

二、功能与应用场景

SGM2019-3.3YN5G/TR 将低静态电流与较高的输出能力结合,兼顾待机功耗与瞬态负载能力。典型应用包括:

  • 电池供电的便携设备、可穿戴设备、传感器节点(IoT)
  • 工业控制模块中的数字电源
  • 单板计算机外围模块、模拟前端供电
  • 电源轨后级的低噪声 LDO(例如供给 ADC、RF 前端或时钟)
  • 需要远程使能/节能管理的系统电源

三、保护与控制特性

  • 过流保护(OCP):当输出短路或过载时,器件限制输出电流以保护自身与负载;适当的过流响应结合外部布局可以避免瞬态损伤。
  • 过热保护(OTP):当结温超过安全阈值时设备进入热关断以防止热失控,冷却后自动恢复工作。
  • 使能(EN)控制:外部使能脚可实现远程开/关,便于系统节能策略与电源管理。使能极性与阈值请参考器件数据手册以获得精确控制逻辑。

四、典型性能与设计注意事项

  • 低压差性能:在高电流输出时仍能保持仅 160 mV 的压差,有利于在电池电压较低或分段电源设计中降低功耗。
  • PSRR:在 100 Hz 时高达 80 dB,说明在电源有低频纹波或噪声时能够显著改善输出净值,适合对噪声敏感的前端电路。
  • 静态电流仅 2 μA:待机功耗极低,可显著延长电池寿命。

设计建议:

  • 输入/输出旁路电容:建议在 VIN 和 VOUT 端各使用 1 μF-10 μF 的低 ESR 陶瓷电容(X5R/X7R),并将电容尽可能靠近引脚焊盘放置以保证环路稳定与响应速度。
  • 布局:GND 应连接至实地面平面,输入与输出走线尽量短且分离,减小噪声耦合。热量较大时应扩大铜箔散热面积或增加过孔到内层地平面。
  • 功耗与散热计算:器件耗散功率等于 (Vin − Vout) × Iout + Iq × Vin。例如当 Vin = 5.5 V、Vout = 3.3 V、Iout = 300 mA 时,耗散约为 0.66 W,此时需关注封装与 PCB 的散热能力以防触发热关断。若工作在接近 dropout 的条件(Vin − Vout ≈ 0.16 V),耗散显著降低。

五、封装与引脚说明(概要)

  • 封装形式:SOT-23-5,小型化、适合自动贴片生产与空间受限电路板。
  • 常见引脚功能:VIN(输入)、VOUT(输出)、GND(地)、EN(使能)及可能的 NC/反馈/检测脚。具体引脚排列与编号请参阅正式数据手册与封装图纸以确保接线正确。

六、选型建议与系统集成提示

  • 若系统对待机功耗与电池寿命要求高,且峰值电流在 300 mA 以内,SGM2019-3.3YN5G/TR 是合适选择。
  • 若系统输入电压常常高于 Vout 很多,应评估功耗与散热,必要时考虑降压转换器(DC-DC)做前级,再由该 LDO 提供局部低噪声 3.3 V。
  • 在需要精确输出电压或特殊温漂指标时,请参考完整数据手册中的输出精度与温度系数等参数进行比对。

总结:SGM2019-3.3YN5G/TR 在小封装中实现了低静态电流、较高 PSRR、低压差以及基本的保护功能,适用于对待机能耗和输出噪声要求兼顾的便携与工业应用。为确保最佳性能,请按照数据手册推荐进行旁路、电源布局与热管理设计。

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