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Chinese Journal of Engineering Design  2017, Vol. 24 Issue (2): 225-231    DOI: 10.3785/j.issn.1006-754X.2017.02.015
    
Design and implementation of high precision RFID positioning system based on low frequency trigger
NAN Jing-chang, BAO Xiao-wei, GUO Ying-yan
School of Electronics and Information Engineering, Liaoning Technical University, Huludao 125105, China
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Abstract  

In order to solve the problems of poor positioning accuracy and high power consumption of electronic tags in the traditional RFID positioning technology,a design scheme of 2.4 GHz high accuracy regional positioning system based on low frequency trigger was proposed.The scheme combined the low frequency 125 kHz trigger signal with the 2.4 GHz radio-frequency signal,the power consumption of the electronic tag was greatly reduced by the method of low frequency wake,the positioning accuracy of RFID system could be further improved by using the trigger mechanism which could adjust the trigger distance,2.4 GHz active electronic tag,125 kHz trigger and 2.4 GHz reader were designed based on the proposed scheme.The separation design of reader and trigger reduced the cost of layout.In the design of system hardware circuit,the adjustable potentiometer and digital voltage regulator were added to adjust the recognition distance and the trigger distance,these made the configuration of the equipment more convenient and enhanced the practicability of system.The testing data showed that the maximum communication distance between the reader and the tag was 120 m,standby time of active electronic tag can be about 2 years,the positioning accuracy was 1-5.2 m.The result verifies the effectiveness of the proposed scheme.



Key words125 kHz low frequency trigger      2.4 GHz RFID      positioning accuracy      tag power consumption     
Published: 28 April 2017
CLC:  TP274  
Cite this article:

NAN Jing-chang, BAO Xiao-wei, GUO Ying-yan. Design and implementation of high precision RFID positioning system based on low frequency trigger. Chinese Journal of Engineering Design, 2017, 24(2): 225-231.

URL:

https://www.zjujournals.com/gcsjxb/10.3785/j.issn.1006-754X.2017.02.015     OR     https://www.zjujournals.com/gcsjxb/Y2017/V24/I2/225


基于低频触发的高精度RFID定位系统的设计与实现

为了解决传统RFID定位技术中存在的定位精度差和电子标签功耗高这2个问题,提出了一种基于低频触发的2.4 GHz高精度区域定位系统的设计方案。该方案将低频125 kHz触发信号与2.4 GHz射频信号相结合,采用低频唤醒的方法极大降低了电子标签的功耗,利用可调节触发距离的触发机制将RFID系统的定位精度进一步提高.基于该方案设计了2.4 GHz有源电子标签、125 kHz触发器和2.4 GHz阅读器三个子系统。阅读器与触发器的分离式设计,节约了铺设成本。系统硬件电路设计中加入了可调电位器和数字电压调节器,分别对识别距离和触发距离进行调节,使设备的配置更为方便,增强了系统的实用性。测试数据显示,阅读器与标签的最大通信距离长达120 m,有源电子标签的待机时间约为2 a(年),RFID定位系统能够实现1~5.2 m的可调定位精度。测试结果验证了该方案的有效性。


关键词: 125 kHz低频触发,  2.4 GHz射频识别,  定位精度,  标签功耗 
[[1]]   SALEEM H.Review of various aspects of radio frequency identification technology[J].Journal of Computer Engineering,2012,8(1):1-6.
[[2]]   宋远峰,刘新.基于RFID的定位系统综述[J].数字通信,2013,40(4):9-15. SONG Yuan-feng,LIU Xin.Overview of positioning system based on RFID[J].Digital Communication,2013,40(4):9-15.
[[3]]   SANPECHUDA T,KOVAVISARUCH L.A review of RFID localization:applications andtechniques[C]//2008 5th International Conference on Electrical Engineering / Electronics, Computer,Telecommunications and Information Technology. Pathum Thani, May 14-17, 2008.
[[4]]   刘帅宏.超高频射频识别应用接收系统的研究[D].成都:电子科技大学物理电子学院,2010:1-3. LIU Shuai-hong.Study on application of ultra high frequency radio frequency identification[D].Chengdu: University of Electronic Science and Technology of China,School of Physical Electronics, 2010: 1-3.
[[5]]   桑冬.基于RFID的室内定位技术研究[D].济南:山东师范大学物理与电子科学学院,2014:1-2. SANG Dong.Research on indoor positioning technology based on RFID[D].Jinan: Shandong Normal University,School of Physics and Electronics,2014:1-2.
[[6]]   LIU Hui,DARABI H,BANERJEE P,et al.Survey of wireless indoor positioning techni-ques and systems[J].Systems,Man,and Cybernetics,Part C:Applications and Reviews,IEEE Transactions,2007,37(6):1067-1080.
[[7]]   YOGESH K D,AWALJEET K K, MICHAEL D W,et al.RFID systems in libraries:an empirical examination of factors affecting system[J].International Journal of Information Management,2013,33(2):367-377.
[[8]]   王云龙.射频2.4 G PA周边线路的理论推导及应用分析研究[D].苏州:苏州大学电子信息学院,2013:1-3. WANG Yun-long.Theoretical derivation and application analysis of PA 2.4 G peripheral circuit[D].Suzhou: Soochow University,School of Electronic and Information Engineering,2013:1-3.
[[9]]   PRODANOFF Z G.Optimal frame size analysis for framed-slotted ALOHA based RFID networks[J].Computer Communications,2010,33(5):648-653.
[[10]]   EOM J B,LEE T J.Accurate tag estimation for dynamic framed-slotted ALOHA in RFID systems[J].IEEE Communications Letters,2010,14(1):60-62.
[[11]]   WU H F,ZENG Y,FENG J H,et al. Binary tree slotted ALOHA for passive RFID tag anticollision[J].IEEE Transactionson Parallel and Distributed Systems,2013,24(1):19-31.
[[12]]   MYUNG J,LEE W.Adaptive binary splitting:a RFID tag collision arbitration protocol for tag identification[J].Mobile Networks and Applications,2006,11(5):711-722.
[[13]]   BUENO D M V,VALES A J.On the optimal frame length configuration on real passive RFID systems[J].Journal of Net work and Computer Applications,2011,34(3):864-876.
[[14]]   王沛.基于多频RFID组合定位系统设计与应用[D].西安:西安电子科技大学电子工程学院,2014:27-28. WANG Pei.The design and application of multi frequency RFID integrated positioningsystem[D].Xi’an: Xidian University,School of Electronic Engineering,2014: 27-28.
[[15]]   刘百芬,李图之,陈鹏展,等.基于nRF51-822的汽车无线姿态测量系统设计[J].科学技术与工程,2014,14(17):87-91. LIU Bai-fen,LI Tu-zhi,CHEN Peng-zhan,et al.Design of vehicle wireless attitude measurement system based on nRF51822[J].Science Technology and Engineering,2014,14(17):87-91.
[[16]]   黄智伟,杨案江.超低功耗单片无线系统应用入门:基于2.4GHz无线SoC芯片nRF24-LE1[M].北京:北京航空航天大学出版社,2011:1-15. HUANG Zhi-wei,YANG An-jiang.Introduction to ultra low power monolithic wireless system:2.4GHz wireless SoC chip based on nRF24LE1[M].Beijing:Beihang University Press,2011:1-15.
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