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Wireless sensor and actuator networks for lighting energy efficiency and user satisfaction.

机译:无线传感器和执行器网络可提高照明的能源效率和用户满意度。

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Buildings consume more than one third of the primary energy generated in the U.S., and lighting alone accounts for approximately 30% of the energy usage in commercial buildings. As the largest electricity consumer of all building electrical systems, lighting harbors the greatest potential for energy savings in the commercial sector. Fifty percent of current energy consumption could be reduced with energy-efficient lighting management strategies. While commercial products do exist, they are poorly received due to exorbitant retrofitting cost and unsatisfactory performance. As a result, most commercial buildings, especially legacy buildings, have not taken advantage of the opportunity to generate savings from lighting. The emergence of wireless sensor and actuator network (WSAN) technologies presents an alternative that circumvents costly rewiring and promises better performance than existing commercial lighting systems.;The goal of this dissertation research is to develop a framework for wireless-networked lighting systems with increased cost effectiveness, energy efficiency, and user satisfaction. This research is realized through both theoretical developments and implementations. The theoretical research aims at developing techniques for harnessing WSAN technologies to lighting hardware and control strategies. Leveraging redundancy, a sensor validation and fusion algorithm is developed for extracting pertinent lighting information from the disturbance-prone desktop-mounted photosensors. An adaptive sensing strategy optimizes the timing of data acquisition and power-hungry wireless transmission of sensory feedback in real-time lighting control. Exploiting the individual addressability of wireless-enabled luminaires, a lighting optimization algorithm is developed to create the optimal lighting that minimizes energy usage while satisfying occupants' diverse lighting preferences.;The wireless-networked lighting system was implemented and tested in a number of real-life settings. A human subject study conducted in a private office concluded that the research system was competitive with the commercial lighting system with much fewer retrofitting requirements. The system implemented in a shared-space office realized a self-configuring mesh network with wireless photosensors and light actuators, and demonstrated a 50% energy savings and increased performance when harvesting daylight through windows is possible. The cost analysis revealed a reasonable payback period after the system is optimized for commercialization and confirms the marketing feasibility.
机译:建筑物消耗的能量超过了美国产生的一次能源的三分之一,仅照明就占了商业建筑物能耗的30%。作为所有建筑电气系统中最大的用电量,照明在商业领域具有最大的节能潜力。节能照明管理策略可以减少当前能源消耗的百分之五十。尽管确实存在商业产品,但由于改装成本过高和性能不理想,因此收货不佳。结果,大多数商业建筑,特别是传统建筑,都没有利用机会来节省照明。无线传感器和执行器网络(WSAN)技术的出现提出了一种替代方案,该方案可避免昂贵的重新布线,并有望提供比现有商用照明系统更好的性能。本研究的目标是开发一种成本增加的无线网络照明系统框架。效率,能源效率和用户满意度。该研究是通过理论发展和实施而实现的。理论研究旨在开发将WSAN技术用于照明硬件和控制策略的技术。利用冗余,开发了一种传感器验证和融合算法,用于从易受干扰的台式光电传感器中提取相关的照明信息。自适应感测策略可在实时照明控制中优化数据采集和感觉反馈的耗电无线传输的时序。利用无线照明设备的个性化可寻址性,开发了一种照明优化算法,以创建最佳照明,从而在满足乘员不同照明偏好的同时,最大限度地减少能源消耗。无线联网照明系统已在许多实际环境中进行了测试。生活设置。在私人办公室进行的一项人体研究得出的结论是,该研究系统与商业照明系统相比具有竞争优势,而改装需求却少得多。在共享空间办公室中实施的系统实现了带有无线光电传感器和光致动器的自配置网状网络,并且在可以通过窗户采光的情况下,实现了50%的节能并提高了性能。成本分析显示,在针对系统进行商业化优化之后,投资回收期合理,并确认了市场可行性。

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