WMSIC Electronic Components

ADI/LINEAR MAX20074ATBA/V+T MAX20074ATBA

ModelMAX20074ATBA/V+T
PackageLFCSP-10(3x3)
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 25+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
ADI(Analog Devices) / LINEAR MAX20074ATBA / V+T
Type
ADI/LINEAR
Minimum package
1500 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
ADI(Analog Devices) / LINEAR
Electronic Component
MAX20074ATBA/V+T
Electronic Component
1
Package
LFCSP-10(3x3)
Electronic Component
DC-DC Power Supply IC
Electronic Component
0.109g
Electronic Component
1
Features
Frequency Synchronous;; EMI Optimization
Type
Electronic Component
Synchronous
Electronic Component
Electronic Component
BM0264888482
Operating Temperature
40℃~+125℃@(TA)
Operating Voltage
2.7V~5.5V
Switching Frequency
2.2MHz
Electronic Component
Electronic Component

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

MAX20074ATBA/V+T 产品概述

一、概述

MAX20074ATBA/V+T 是 ADI/LINEAR(前 Maxim)推出的高效降压型开关稳压器,属于 MAX20073/MAX20074 系列。该器件在 2.7V 至 5.5V 的输入范围内工作,可输出 0.5V 至 3.8V 可调电压,最大输出电流可达 3A。器件集成开关管,采用非同步整流拓扑(需要外接肖特基二极管),开关频率高达 2.2MHz,典型静态电流仅 40µA,适合对效率和尺寸有较高要求的板载负载点或后级稳压应用。

二、主要规格与特性

  • 功能类型:降压型(Buck)
  • 输入电压:2.7V ~ 5.5V
  • 输出电压:0.5V ~ 3.8V(可调)
  • 最大输出电流:3A
  • 开关频率:2.2MHz(高频率利于使用小尺寸外部元件)
  • 同步整流:否(非同步,需外接肖特基二极管)
  • 静态电流(Iq):约 40µA(轻载时高效率)
  • 工作温度范围:-40℃ ~ +125℃ (TA)
  • 精度:在负载、电源与温度变化下,总输出误差 ≤ ±1.5%
  • 保护与功能:轻载高效模式、频率同步、过流保护、EMI 优化(抖频/展频模式)
  • 封装:LFCSP-10 (3 mm × 3 mm)
  • 订单信息示例:MAX20074ATBA/V+T

三、典型应用场景

  • 单节或多节电池供电系统(例如锂离子电池后级调节)
  • 板载负载点(point-of-load)为 MCU、FPGA、DSP、模拟前端提供电源
  • 通信、便携设备及工业控制中需要高密度、低空载能耗的电源方案
  • 对 EMI 要求较严格的系统(可利用抖频/展频减少窄带骚扰)

四、设计要点与外部元件选择

  • 非同步整流:由于器件为非同步拓扑,需要选用低正向压降、快速恢复的肖特基二极管承受续流(建议选择适合 3A 峰值电流、低 VF 的器件)。
  • 电感选择:2.2MHz 的工作频率允许使用较小电感值以减小体积,常见取值范围大致 0.47µH ~ 2.2µH。较低电感值可减小体积并提高瞬态响应,但会增大电流纹波和开关损耗;选择时需考虑最大输出电流、允许电流纹波及饱和电流。
  • 输入/输出电容:优先使用低 ESR 的多层陶瓷电容(X5R/X7R),输入侧需靠近 VIN 和 GND 放置去耦(典型 10µF~47µF),输出侧电容应保证输出纹波与瞬态响应(10µF~47µF 依据负载与电感选型)。
  • 补偿与外部反馈:器件为可调输出,应按数据手册给出反馈电阻网络布置以确保稳定与精度。关注轻载高效模式下的稳定性与瞬态行为。

五、热管理与 PCB 布局建议

  • 封装虽小(3×3 LFCSP),但在高电流输出时热量集中,需在 PCB 下方或附近设计良好散热通道和热铜箔,使用多个过孔连通内外层散热层。
  • SW、VIN、GND 和肖特基二极管的引线与走线要尽量短且粗,减小寄生电感与噪声发射。输入去耦电容尽量靠近 VIN 引脚;输出电容靠近 VOUT/FB 节点。
  • 对 EMI 敏感的应用建议启用器件的抖频(spread‑spectrum)功能并结合良好屏蔽与走线策略。

六、性能权衡与选型建议

  • 优势:极低静态电流、高开关频率使器件非常适合体积受限且需高效率的便携或板载点负载应用;±1.5% 的总误差保证了稳压精度。
  • 限制:非同步整流在高输出电流或低转换损耗场景下效率不及同步降压器;若系统对极致效率(尤其高负载)有强要求,应权衡是否采用同步型号或选择带同步整流的替代件。
  • 若目标是小体积、低静态功耗、对 EMI 有要求且输出电流 ≤ 3A,MAX20074 是极具吸引力的选择。

七、典型注意事项

  • 选型与设计前请阅读官方数据手册以获得完整的电气特性、典型应用电路、反馈设计公式和 PCB 参考布局。
  • 在高电流工况下验证热性能与元件温升;确认肖特基二极管及电感的额定电流和饱和特性满足要求。
  • 若系统需要与外部时钟同步以避免与其它开关电源产生拍频,应合理配置频率同步功能并验证 EMI 性能。

总结:MAX20074ATBA/V+T 将高开关频率、低静态电流和丰富的系统级功能(频率同步、抖频、过流保护)结合在小尺寸封装中,适合对空间、效率和 EMI 有综合要求的点负载电源设计。

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