+高级检索
用于智能锁的超低功耗系统的设计与应用
DOI:
作者:
作者单位:

作者简介:

通讯作者:

基金项目:


Design and Application of Ultra Low Power System for Intelligent Lock
Author:
Affiliation:

Fund Project:

  • 摘要
  • |
  • 图/表
  • |
  • 访问统计
  • |
  • 参考文献
  • |
  • 相似文献
  • |
  • 引证文献
  • |
  • 资源附件
    摘要:

    为解决现今指纹锁的高性能和低功耗之间的矛盾,提出了一种基于双核架构的嵌入式系统,采用TI公司AM437x高性能处理器移植识别算法;具有超低功耗的AVR单片机MEGA8微控制器作为主控芯片,以控制非接触启动、红外灯、电机驱动等外围设备,保证系统具有较低的待机功耗.通过设置主控芯片的超低功耗睡眠模式,使得系统大部分时间处于低功耗状态,利用非接触式启动模块控制高耗能识别模块仅在需要的时候上电启动,从而大大降低系统的功耗.综合测试表明,系统休眠时MCU静态工作电流低至1.51 μA,唤醒时电流优化至3.3 mA,8节干电池使用寿命为638 d.相比现有设计方法,兼具更低的功耗和更高的性能.

    Abstract:

    This paper presented an embedded system based on dual-core architecture to solve the contradiction between high performance and low power consumption of today fingerprint lock. TI's AM437x high-performance processor was used to transplant identification algorithm, with AVR microcontroller MEGA8 microcontroller of ultra-low power as a master chip to control non-contact start, infrared light, motor drive and other peripherals to ensure that the system has a lower standby power consumption. By setting the ultra-low power sleep mode of the master chip, the system is in a low power state for most of the time, and the non-contact start-up module controls the high power consumption identification module to power up only when it is needed, thus greatly reducing the power consumption. Comprehensive test shows that the static operating current is as low as 1.51 μA when the system is in sleep mode, while the wake-up current is optimized to 3.3 mA. The maximum system life of six dry cells is 638 days. Compared with the existing design methods, the system has both lower power consumption and higher performance.

    参考文献
    相似文献
    引证文献
文章指标
  • PDF下载次数:
  • HTML阅读次数:
  • 摘要点击次数:
  • 引用次数:
引用本文

王炼红,陈颖.用于智能锁的超低功耗系统的设计与应用[J].湖南大学学报:自然科学版,2018,45(8):119~125

复制
历史
  • 收稿日期:
  • 最后修改日期:
  • 录用日期:
  • 在线发布日期: 2018-08-17
  • 出版日期:
作者稿件一经被我刊录用,如无特别声明,即视作同意授予我刊论文整体的全部复制传播的权利,包括但不限于复制权、发行权、信息网络传播权、广播权、表演权、翻译权、汇编权、改编权等著作使用权转让给我刊,我刊有权根据工作需要,允许合作的数据库、新媒体平台及其他数字平台进行数字传播和国际传播等。特此声明。
关闭