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Design and Implementation of a Real-Time Environmental Monitoring Lab with Applications in Sustainability Education.

机译:实时环境监测实验室的设计与实现及其在可持续性教育中的应用。

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摘要

In this dissertation, the design, implementation, and educational applications of a real-time water and weather monitoring system, developed to enhance water sustainability education and research, are discussed. This unique system, called LabVIEW Enabled Watershed Assessment System (LEWAS), is a real- world extension of various data acquisition modules that were successfully implemented using LabVIEW into a freshman engineering course (Engineering Exploration, ENGE 1024) at Virginia Tech. The outdoor site location measures water quality and quantity data including flow rate, pH, dissolved oxygen, conductivity, and temperature -- as indicators of stream health - for an on-campus impaired stream in real-time. In addition, weather parameters (temperature, barometric pressure, relative humidity and precipitation) are measured at the LEWAS outdoor site. The measured parameters can be accessed by remote users in a real-time through a web-based interface for education and research.;LEWAS is solar powered and uses the campus wireless network through a high-gain antenna to transmit data to remote clients in real-time. Its power budget consisting of consumption (14 W), electrical storage, and generation (80 W, peak) is balanced to enable 24/7 operation regardless of weather conditions. An embedded computer with low power consumption and modules for communicating and storing data are installed in the field and it is programmed to process measured environmental parameters to be delivered to remote users. This computer is programmed both using a field programmable gate array (FPGA, for low power consumption and robust operation) and traditional microprocessor programming (for more flexibility). The environmental sensors of the system are routinely calibrated using established procedures. A LEWAS Development Platform was established to develop and test the system and to train and mentor several undergraduate and graduate students who helped in its implementation. A number of design and implementation challenges were overcome including extending campus Internet access to a location not included on the network and integrating hardware and software from three different sensor manufacturers into a unified software platform accessible over the Internet.;To study the educational applications of LEWAS, an observational study was conducted as the system was gradually introduced to students in ENGE 1024 between 2009 and 2011. Positive student attitudes on the role of LEWAS to enhance their environmental awareness informed an experimental design implemented to study the motivational outcomes associated with the system. Accordingly, appropriate educational interventions and a hands-on activity on the importance of environmental monitoring were developed for both control and experiment groups, with only the latter given access to LEWAS to retrieve the environmental parameters for the activity. An instrument was developed on the theoretical foundation of the expectancy value theory of motivation and was administered to control and experimental groups in ENGE 1024. Altogether, 150 students participated in the study. Exploratory Factor Analysis (EFA) was applied which resulted in factors that group questions together based on interest, importance, real-time access, and cost (feasibility of monitoring). After conducting parametric and nonparametric statistical analyses, it was determined that there exists a statistically significant difference between control and experimental groups in interest, real-time, and cost factors. This finding implies that providing real-time access to environmental parameters can increase student interest and their perception of feasibility of environmental monitoring -- both major components of motivation to learn about the environment. Future extensions and applications of the system at Virginia Tech and beyond are discussed.
机译:本文讨论了为增强水可持续性教育和研究而开发的实时水和天气监测系统的设计,实现和教育应用。这个独特的系统称为LabVIEW启用分水岭评估系统(LEWAS),是对各种数据采集模块的真实扩展,这些模块已使用LabVIEW成功实施到Virginia Tech的新生工程课程(Engineering Exploration,ENGE 1024)中。室外站点的位置可实时测量水质和水量数据,包括流量,pH,溶解氧,电导率和温度-作为水流健康状况的指标-用于校园内受损水流。此外,在LEWAS户外场所还测量了天气参数(温度,气压,相对湿度和降水)。远程用户可以通过基于Web的界面进行教育和研究,从而实时访问测量的参数。LEWAS是太阳能供电的,并通过高增益天线使用校园无线网络将数据实时传输到远程客户端。 -时间。它的功率预算包括功耗(14 W),蓄电和发电(峰值80 W),无论天气如何,都可实现24/7全天候运行。具有低功耗的嵌入式计算机以及用于通信和存储数据的模块已安装在现场,并且已对其进行编程以处理测量的环境参数,以将其传递给远程用户。使用现场可编程门阵列(FPGA,以降低功耗和鲁棒性)和传统微处理器编程(以提高灵活性)对计算机进行编程。系统的环境传感器使用既定程序进行例行校准。建立了一个LEWAS开发平台,以开发和测试该系统,并培训和指导一些帮助实施该系统的本科生和研究生。克服了许多设计和实施方面的挑战,包括将校园Internet访问扩展到网络上未包含的位置,并将来自三个不同传感器制造商的硬件和软件集成到可通过Internet访问的统一软件平台中。;研究LEWAS的教育应用,我们在2009年至2011年间将系统逐步引入ENGE 1024中的过程中,进行了一项观察性研究。学生对LEWAS在增强其环境意识方面的作用持积极态度,这是一项旨在研究与该系统相关的动机结果的实验​​设计。因此,为控制组和实验组开发了适当的教育干预措施,并开展了有关环境监测重要性的动手活动,只有后者才有权使用LEWAS来检索活动的环境参数。在动机期望值理论的理论基础上开发了一种仪器,并在ENGE 1024中对对照组和实验组进行了管理。共有150名学生参加了该研究。采用探索性因素分析(EFA),该因素导致因素根据兴趣,重要性,实时访问和成本(监视的可行性)将问题分组在一起。在进行参数和非参数统计分析之后,可以确定对照组和实验组之间在兴趣,实时性和成本因素方面存在统计学上的显着差异。这一发现意味着,提供对环境参数的实时访问可以增加学生的兴趣以及他们对环境监测可行性的认识-这都是学习环境动机的主要组成部分。在弗吉尼亚理工学院及以后讨论了该系统的未来扩展和应用。

著录项

  • 作者

    Delgoshaei, Parhum.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Water resources management.;Environmental engineering.;Sustainability.;Environmental education.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 178 p.
  • 总页数 178
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:43:16

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