WMSIC Electronic Components

ALLEGRO ACS722LLCTR-20AB-T ACS722LLCTR

ModelACS722LLCTR-20AB-T
PackageSOP-8
BrandALLEGRO
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 23+

Available for RFQ

Technical data

Product details

20 specifications

Core information

Product name
ALLEGRO ACS722LLCTR-20AB-T
Type
ALLEGRO
Unit
Electronic Component
Minimum package
3000

Technical parameters

Electronic Component
Electronic Component
Electronic Component
ALLEGRO
Electronic Component
ACS722LLCTR-20AB-T
Electronic Component
1
Package
SOP-8
Electronic Component
80kHz
Electronic Component
Current Sensor
Electronic Component
0.103g
Electronic Component
66mV/A
Electronic Component
1
Features
Electronic Component
Electronic Component
BM0264368580
Operating Temperature
40℃~+150℃
Operating Voltage
3V~3.6V
Current Resistor
0.65mΩ
(tr)
5us

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

ACS722LLCTR-20AB-T 产品概述

一、概述与定位

ACS722LLCTR-20AB-T 是美国 Allegro(埃戈罗)推出的一款集成霍尔式电流传感器,面向中等电流测量场合(±20 A)。器件采用 8 引脚 SOP 封装(SOP-8),在 3.0 V–3.6 V 工作电压下工作,提供双向(正负)电流检测能力并具备 2400 Vrms 的隔离能力,适合需要电气隔离与快速响应的工业和消费电子应用。

二、主要电气参数(关键值)

  • 电流测量范围:±20 A(双向)
  • 工作电压:3.0 V ~ 3.6 V(典型 3.3 V)
  • 灵敏度:66 mV/A
  • 隔离电压(Vrms):2400 Vrms
  • 带宽:约 80 kHz
  • 响应时间 tr:约 5 µs
  • 电流端等效电阻:0.65 mΩ(典型)
  • 工作温度范围:-40 ℃ ~ +150 ℃

基于上述灵敏度与供电电压,在典型 3.3 V 供电时,静态零点输出约为 VCC/2 ≈ 1.65 V。满量程 ±20 A 对应的输出摆幅为 66 mV/A × 20 A = 1.32 V,因此理论输出范围约为 1.65 V ±1.32 V,即约 0.33 V 到 2.97 V(实际接近电源轨时会受输出驱动能力限制,应以具体数据表为准)。

电流端电阻仅 0.65 mΩ,20 A 时的功耗约为 I^2R = 400 × 0.00065 ≈ 0.26 W,电压降约 13 mV,导通损耗较小,适合连续中等电流测量。

三、核心优势

  • 双向测量与模拟输出:直接输出与电流成比例的电压信号,便于与 MCU/ADC 直接接口。
  • 高隔离等级:2400 Vrms 隔离满足大多数低压侧与高压侧隔离要求,提高系统安全。
  • 低电阻、低功耗:电流端低阻抗减少功耗与发热,利于长时间稳定测量。
  • 宽带与快速响应:80 kHz 带宽、5 µs 响应,适合电机驱动、PWM 分析、短时过流检测等动态测量场景。
  • 宽温区:-40 ~ +150 ℃ 适合严苛环境和工业级应用。

四、典型应用场景

  • 电机控制与驱动(速度/转矩闭环、过流保护)
  • 开关电源与逆变器的电流检测与保护
  • 电池管理系统(BMS)与充放电电流测量
  • 过流/短路检测、功率测量与能量计量前端
  • 工业控制设备、仪器仪表中的安全隔离电流监测

五、设计与使用建议

  • 电源与旁路:器件对电源噪声敏感,建议靠近芯片放置 0.1 µF 陶瓷旁路电容并辅以 1 µF~10 µF 稳定电容,减小电源扰动对输出零点的影响。
  • 输出接口:输出为模拟中点电压,通常接入 ADC 前应做好抗混叠滤波与偏置匹配。ADC 采样范围应覆盖器件在最大电流下的输出摆幅。
  • 布局与接地:电流端导体走线应尽量短、宽,减少附加电阻和寄生感抗。模拟地与数字/功率地分割后在一点汇流,以降低干扰。
  • 温升与散热:尽管电阻低,但在高电流连续工作时仍会产生热量。注意器件周围空间和 PCB 散热路径,必要时预留热铜箔。
  • 抗扰与滤波:在 PWM 或强 EMI 环境中,可在输出端加入低通滤波(RC),但需权衡带宽以免影响对快速瞬态的检测。器件本身带有较高带宽,滤波器设计可根据应用需求调整。

六、标定与校准

为提高测量精度,建议在最终系统中进行一次静态校准:在零流和已知标准电流下测量器件输出,校正 ADC 偏移和增益误差。温度漂移也应在关键温区验证并在软件中补偿(若应用对精度要求高)。

七、替代与选型建议

若需要更大量程,可选 Allegro 的更高安培版本;若需要更高隔离电压或更高精度,可考虑带温度补偿或差分输出的同类传感器。在选择时注意供电电压、带宽、灵敏度与封装对系统接口的匹配。

八、小结

ACS722LLCTR-20AB-T 以其低导通损耗、较高带宽、良好隔离能力和在 3.3 V 系统下直观的模拟输出,适合用于电机驱动、开关电源、BMS 及通用电流监测场合。在设计时重视电源旁路、PCB 布局、输出滤波与热管理,并配合软件校准,即可在中等电流测量应用中获得稳定、快速且可靠的表现。

若需进一步的引脚说明、典型接线图或 PCB 布局建议,可提供使用环境(例如 PWM 频率、最大连续电流及采样方式),我可以给出更具体的实用建议。

Request for quote

Send RFQ

Use the form for single models, category sourcing, and multi-line BOM requirements.

Send your target model and quantity.

Product sourcing intelligence

Model, package, availability, and BOM fit reviewed before quotation.

WMSIC turns product data, package visuals, BOM context, and sourcing signals into practical RFQ notes for buyers.

Electronic component model and package intelligence review on an ESD-safe inspection bench

Model & package intelligence

Model text, package form, tray or reel details, and visual evidence are reviewed together before RFQ feedback.

BOM matching and alternative component comparison workstation with protected IC samples

BOM matching & alternatives

BOM lines are compared by package, parameters, quantity, and workable alternatives for cleaner sourcing decisions.

Electronic component sourcing availability dashboard with ESD-protected samples

Sourcing availability signal

Stock routes, quotation confidence, lead-time notes, and shipment feasibility are checked before sales follow-up.

Buyer sourcing scenarios

Examples of how common component sourcing requests are organized.

Typical RFQ scenarios based on the WMSIC form fields, catalog data, manual review steps, and shipment preparation workflow.

The buyer shares the full part number, package requirement, quantity, destination, and available product photos so the quotation can record the exact version under review.

Package confirmation Typical RFQ workflow

A multi-line BOM is organized into direct sourcing lines, lines that need package clarification, and lines where alternative-part review is permitted.

Mixed BOM triage Typical RFQ workflow

The original manufacturer part number, datasheet revision, application, critical limits, and acceptable changes are collected before possible candidates are discussed.

Obsolete-part review Typical RFQ workflow

Sample quantity, minimum packing, package format, target date, and courier destination are kept together in one RFQ conversation.

Small-batch request Typical RFQ workflow

Package photos, model markings, board context, and the quantity needed for repair help focus the sourcing review on the relevant version.

Repair batch evidence Typical RFQ workflow

When a suffix or package note is incomplete, the response records the open difference and requests buyer confirmation before procurement proceeds.

Model suffix clarification Typical RFQ workflow

Packing format, carton notes, invoice details, courier option, destination, and tracking handoff are coordinated around the confirmed order.

Export handoff Typical RFQ workflow

The request connects the previously used model, current demand, package evidence, target timing, and replenishment sourcing route.

Replenishment inquiry Typical RFQ workflow

Related products

Packaged components ready for RFQ.