WMSIC Electronic Components

cjiang SPM2512-R22MA SPM2512

ModelSPM2512-R22MA
PackageSMD,2x2.5mm
Brandcjiang
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 26+

Available for RFQ

Technical data

Product details

19 specifications

Core information

Product name
cjiang SPM2512-R22MA
Type
SMD, 2X2.5MM
Minimum package
3000 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
CJIANG
Electronic Component
SPM2512-R22MA
Electronic Component
1
Package
SMD,2x2.5mm
Electronic Component
Power Inductor
Electronic Component
±20%
Electronic Component
0.064g
Inductor
220nH
Electronic Component
1
Electronic Component
BM0264356850
Current
8.2A
Resistor(DCR)
9mΩ
Electronic Component
Electronic Component
Electronic Component
3000
and Current(Isat)
9.6A

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

SPM2512-R22MA 产品概述

SPM2512-R22MA 是长江微电(cjiang)推出的一款表面贴装功率电感,标称电感值为 220 nH(公差 ±20%),适用于高频、高电流的开关电源与电源滤波场合。器件采用 SMD 封装(2.0 × 2.5 mm),具有低直流电阻与较高的饱和电流能力,适合紧凑电源模块与点载(Point-of-Load)转换器设计。

一、关键参数一览

  • 品牌 / 型号:长江微电 cjiang / SPM2512-R22MA
  • 电感值:220 nH,公差 ±20%
  • 额定电流(Irated):8.2 A(在规定温升下的连续允许电流)
  • 饱和电流(Isat):9.6 A(在该电流附近或以上电感值显著下降)
  • 直流电阻(DCR):约 9 mΩ(典型值)
  • 封装:SMD,外形尺寸约 2 × 2.5 mm
  • 典型应用频段:高频开关(百 kHz 至 数 MHz)

二、性能亮点与设计意义

  • 低 DCR(9 mΩ):能够显著降低 I^2R 损耗,适合承载高直流电流的场合。按典型计算,在额定电流 8.2 A 时的铜损约为 0.60 W(P = I^2·DCR),在选型与热设计时需考虑该损耗带来的温升。
  • 高饱和电流(9.6 A):当电感靠近或超过饱和电流时,电感量会急剧下降,SPM2512-R22MA 在 9.6 A 左右才进入明显饱和区,为高电流瞬态提供更好的线性工作范围。
  • 小尺寸封装:2×2.5 mm 的 SMD 外形利于高密度 PCB 布局,适合点载电源模块、便携设备及功率受限的应用场合。
  • 220 nH 电感量:电感值较小,适用于高开关频率的降压(Buck)电路以减少占空比下的纹波电流或作为 EMI 及输入/输出滤波元件。

三、典型应用场景

  • 高频开关稳压器(降压/升压/同位转换)中的电感元件
  • 点载 DC-DC 电源模块与 POL 变换器
  • LED 驱动、车载电子电源与移动设备电源管理
  • 高频 EMI 滤波与功率线路去耦

四、选型与使用建议

  • 电流余量:尽量将器件工作电流控制在额定电流以下,并给出一定余量(如 10–20%),以避免长期热应力或工作在接近饱和区。
  • 纹波电流设计:根据开关拓扑与工作频率计算电感所需电感量,220 nH 适合较高开关频率(≥几百 kHz)。若要降低纹波,考虑减小开关频率或并联电感/更换更大电感量器件。
  • 热管理:DCR 导致的功率损耗随电流平方增长,需在 PCB 布局中通过增加铜箔散热面积或靠近散热面布置来降低温升。
  • 饱和特性:若电路存在短时大电流冲击或浪涌,应考虑饱和裕量或并联器件以防止电感失效。

五、装配与 PCB 布局建议

  • 走线最短:将电感与开关器件、电感输入/输出电容形成的电流回路尽量缩短,减小寄生电感与辐射。
  • 焊盘与焊接:遵循制造商的推荐焊盘尺寸与回流曲线;采用标准无铅回流工艺(遵循 JEDEC/IPC 指南),避免过度加热或湿热循环导致性能退化。
  • 机械固定:在震动或冲击环境中,注意良好贴装和阻焊保护,避免元件移位或焊点开裂。
  • 去耦与布局:开关节点附近放置低 ESR 电容以抑制瞬态电压尖峰,电感一侧与输出电容距离越近越能降低输出纹波与 EMI。

六、测试与验证要点

  • 小信号电感测量:用 LCR 表在指定频率(如 100 kHz)进行测量,注意加直流偏置时电感下降的特性。
  • 饱和试验:通过施加直流偏置或测量电感随直流电流变化曲线,确认 Isat 附近的电感下降趋势。
  • 温升测试:在典型工作条件下测量温升,验证 PCB 散热设计能否满足长期工作要求。

结论:SPM2512-R22MA 以其小体积、高饱和电流与低 DCR 的组合,是高频、高电流点载电源设计中值得考虑的功率电感方案。在实际应用中,重点关注电流余量、热管理以及开关节点布局,可以最大化该器件的性能与可靠性。若需更详细的曲线图(L–I、DCR–T、频率特性)与推荐焊盘图,建议索取长江微电的完整产品资料与 PCB 布局参考文件。

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