Design of Automatic Aerial Air Pollution Monitoring System

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Abstract:

Based on air pollution situation, make the ball with hydrogen floating in the air height of 50 meters as the aerial air pollution automatic detection mobile platform, based on sensor technology, embedded technology, thrust composite applications, GPRS, GPS and other hardware combined with the lower position machine applications、PC software system , conducted the system requirements analysis, software and hardware architecture design and description. The system solves the common aerial equipment’s problem of letting propeller blown air when detecting air parameters, using aerial balloon floating platform for air-parameter sensor automatically detects collection. Achieve operational automation, thus greatly reduce the work intensity of aerial air pollution monitoring and management, reduce the error of manual operation may occur, improve the efficiency of environmental protection, promote informatization construction of environmental protection work. This paper elaborates the overall design process of aerial air pollution automatic monitoring system.

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571-574

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September 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] HuangDa Ding, Qian Yang. Discussion on the application of continuous automatic air pollution monitoring system in Suzhou[J]. Science and Technology Information, 2007, 29: 312-313.

Google Scholar

[2] JunHui Jiang. Based on ARM embedded system hardware design[J]. Microcomputer Information, 2005, 20: 17-19.

Google Scholar

[3] Christian. C # Advanced Programming, MingBo Li translation, Beijing: Tsinghua University Press, (2006).

Google Scholar

[4] Young Jin Jung. Air Pollution Monitoring System based on Geosensor Network Conference Publications. Geoscience and Remote Sensing Symposium, 2008. IGARSS 2008. IEEE International. 7-11 July 2008: 1370-1373.

DOI: 10.1109/igarss.2008.4779615

Google Scholar

[5] Choi B, Yoon H, Jeon J-O. A UML-based Test Model for Component Integration Test. In: Workshop on Software Architecture and Component, Japan, 1999: 63-70.

Google Scholar

[6] L. Rivest, A. Shamir, L. Adleman. A method for obtaining digital signature and public key cryptosystems. Communications of the ACM, 1978(21): 120-126.

DOI: 10.1145/359340.359342

Google Scholar

[7] Andrei Alexandrescn. Modern C++ Design-Generic Programming and Design, 2003: 12-19.

Google Scholar