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Wireless sensors on rotating structures: performance evaluation and radio link characterization

Published: 10 September 2007 Publication History

Abstract

Wireless sensors capable of sensing, processing, and wireless communication can be useful for many monitoring purposes. Wireless sensor network testbeds to date have not considered sensors placed on fast moving structures. Fast rotating structures are commonly found in mechanical and vehicular systems, and the challenges of using wireless sensors on such structures have not been adequately addressed. The paper presents a testbed built of wireless sensors affixed to the spindle of a computer controlled lathe. By examining sensor communication errors with respect to rotation speeds and sensor locations, the study revealed an eminent dependency of packet error rates on rotation speeds, burstiness of bit errors, periodic received signal strengths, and dominance of multipath effects in the testbed. The study found the effects of non-uniform antenna gains, machine noise, hardware stability, and automatic gain control to be insignificant. While analytic derivation of Doppler effects with simplified assumptions has shown it to be insignificant, their coupled effects in a multipath environment remain to be studied further.

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      cover image ACM Conferences
      WinTECH '07: Proceedings of the second ACM international workshop on Wireless network testbeds, experimental evaluation and characterization
      September 2007
      110 pages
      ISBN:9781595937384
      DOI:10.1145/1287767
      Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

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      Published: 10 September 2007

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      Author Tags

      1. IEEE 802.15.4
      2. testbed
      3. wireless sensor network

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      • (2015)Selecting Data Transmission Method for Sensor Networks With Deterministic Spatial Channel PropertiesIEEE Sensors Journal10.1109/JSEN.2014.235659815:2(917-927)Online publication date: Feb-2015
      • (2014)Scrutinizing Bit- and Symbol-Errors of IEEE 802.15.4 Communication in Industrial EnvironmentsIEEE Transactions on Instrumentation and Measurement10.1109/TIM.2013.229323563:7(1783-1794)Online publication date: Jul-2014
      • (2014)Characterization of wireless accelerometer sensor and its industrial applications2014 Twentieth National Conference on Communications (NCC)10.1109/NCC.2014.6811373(1-5)Online publication date: Feb-2014
      • (2014)Empirical investigation of wireless sensor network performance in noisy environmentsJournal of Engineering, Design and Technology10.1108/JEDT-02-2012-000612:1(29-38)Online publication date: 25-Feb-2014
      • (2014)Intelligent antenna selection decision in IEEE 802.15.4 wireless sensor networksComputers and Electrical Engineering10.1016/j.compeleceng.2013.11.02140:2(443-455)Online publication date: 1-Feb-2014
      • (2013)Study of Speed-Dependent Packet Error Rate for Wireless Sensor on Rotating Mechanical StructuresIEEE Transactions on Industrial Informatics10.1109/TII.2012.22096619:1(72-80)Online publication date: Feb-2013
      • (2012)Measurement, Modeling, and Avoidance of IEEE 802.15.4 Radio Transmission Errors in Rotating Sensor SystemsDistributed Sensor Networks, Second Edition10.1201/b12988-17(351-362)Online publication date: 13-Dec-2012
      • (2012)Study of path loss and data transmission error of IEEE 802.15.4 compliant wireless sensors in small-scale manufacturing environmentsThe International Journal of Advanced Manufacturing Technology10.1007/s00170-012-3928-363:5-8(659-669)Online publication date: 7-Mar-2012
      • (2011)Self-Powered Telemetric Torque MeterJournal of Dynamic Systems, Measurement, and Control10.1115/1.4003264133:4(045001)Online publication date: 2011
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