WMSIC Electronic Components

Siproin SSP7903P50JR

ModelSSP7903P50JR
PackageTO-252
BrandSIPROIN
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
Siproin SSP7903P50JR
Type
SIPROIN
Minimum package
2500 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
1.5V@(1A)
Electronic Component
SIPROIN
Electronic Component
SSP7903P50JR
Electronic Component
1
Package
TO-252
Electronic Component
Linear Regulator(LDO)
Electronic Component
0.5g
Electronic Component
1
Electronic Component
BM0230856424
Operating Temperature
40℃~+85℃@(Ta)
Operating Voltage
40V
Output
Electronic Component
Output Voltage
5V
Output Current
1A
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.

SSP7903P50JR 产品概述

一、产品简介

SSP7903P50JR 是上海硅朋(Siproin)推出的一款高输入电压线性稳压器(LDO),为固定输出型器件,输出为正极性单通道 5.0V。该器件支持高达 40V 的输入工况,最大输出电流 1A,适用于需从较高直流母线降压到稳定 5V 的场合。器件内置过流、短路和过热保护功能,工作温度范围宽(-40℃ 至 +85℃,Ta),封装为表面贴装型 TO-252(DPAK),便于工业化生产与散热设计。

二、主要参数(关键特性)

  • 输出类型:固定(5.0V)
  • 输入工作电压:最高 40V(注意最低输入电压需高于输出加压差)
  • 输出电流:最大 1A
  • 压差(Dropout):1.5V @ 1A(即当输出电流为 1A 时,输入电压至少需比输出高 1.5V)
  • 静态电流(Iq):典型 3 µA(静态电流低,适合为空载或待机功耗敏感的系统)
  • 工作温度(环境):-40℃ ~ +85℃(Ta)
  • 保护功能:过热保护、过流保护、短路保护
  • 输出极性:正极
  • 输出通道:1
  • 封装:TO-252(DPAK)

说明:为保证稳定输出,实际最低输入电压应大于等于 VOUT + 压差;在 5V 输出和 1A 工作点时,输入电压至少约 6.5V。

三、保护与可靠性特性

SSP7903P50JR 集成多重保护机制:

  • 过流/限流保护:当输出短路或过载时,内部限流电路限制输出电流,防止器件损坏。
  • 短路保护:在严重短路情况下可显著限制功耗并保护系统,配合热关断可实现自动恢复。
  • 过热保护:内部热关断在结温过高时关闭输出,待温度下降后自动恢复输出,从而实现自保护循环。

这些保护使其在异常工况下具备较好的容错能力,但仍建议在系统层面加上适当熔断或断路保护以提高可靠性。

四、封装与热管理

TO-252(DPAK)封装带有大面积散热脚和底部散热面,适合中等功耗器件表贴安装。线性稳压器的功率损耗为 (Vin - Vout) × Iout,当输入与输出电压差较大且输出电流较高时,器件会产生显著热量。例如:若 Vin = 24V、Vout = 5V、Iout = 1A,则约产生 19W 的热量,远超 TO-252 的散热承受能力。因此在选型与系统设计时应注意:

  • 尽量减小 Vin - Vout(若需大降压,优先采用开关降压器作为预稳压,再用 LDO 做后置滤波/精密稳压)。
  • 在 PCB 设计中为 TO-252 提供大面积铜箔散热(多层板接地/电源平面、热过孔)。
  • 在高功耗应用中考虑外加散热器或改用更高功率封装。

五、典型应用场景

  • 12V / 24V 工业直流供电系统的 5V 本地供电(但需注意功耗与散热限制)
  • 通信设备、传感器前端、单板电子模块的稳压供电
  • 工业控制器、仪表及外围接口电源
  • 其他需从高压轨降压到 5V 且电流不超出器件散热能力的场合

六、使用与布局建议

  • 输入端:在靠近器件的 VIN 引脚并联 1µF~10µF 的去耦电容,建议使用低 ESR 陶瓷电容以抑制瞬态;同时放置 0.1µF 高频旁路电容。
  • 输出端:建议使用 10µF(或更大)低 ESR 的陶瓷或钽电容以保证稳态稳定性与瞬态响应。若器件手册对 ESR 有特殊要求,请以厂家应用说明为准。
  • 接地:将器件散热面/底部焊盘与 PCB 地平面良好连接,通过热过孔扩展散热面积。
  • 布局:输入与输出电容尽量靠近引脚放置,走短宽电源线以降低寄生阻抗;敏感模拟/数字地分区接地,避免噪声回流影响系统。
  • 温度与散热:在高功率或高环境温度时,检查结温与 PCB 温升;必要时减小负载或改换为开关稳压方案。

七、选型建议与注意事项

  • 若系统输入电压常常远高于 7~8V 且输出电流接近 1A,建议评估线性稳压器的功耗和散热是否可接受。如不可接受,应优先考虑开关降压转换器加 LDO 后级的方案。
  • 在要求极低静态功耗或长待机的场合,器件 3 µA 的静态电流为优势,但需核实整机待机策略。
  • 在关键安全或汽车级应用中,请确认器件是否具有相应认证或选择专用汽车级元件。

总结:SSP7903P50JR 为一款高输入耐压(40V)、低静态电流且具备多重保护功能的 5V/1A 固定输出 LDO,适合在中低功耗、高输入电压环境中提供稳定 5V 电源,但在高压差高电流场合需重点关注散热管理与功耗限制。若需更详细的电气特性、典型应用电路或 PCB 布局样例,请参考器件数据手册或联系厂商技术支持。

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