Energy autonomous automation of Smart Home applications using the example of a wireless Indoor Smart Gardening system

E. Mackensen, Julius Klose, Axel Rombach, Aaron Spitznagel
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引用次数: 5

Abstract

Smart Home or Smart Building applications are a growing market. An increasing challenge is to design energy efficient Smart Home applications to achieve sustainable and green homes. Using the example of the development of an Indoor Smart Gardening system with wireless monitoring and automated watering this paper is discussing in particular the design issue of energy autonomous working sensors and actuators for home automation. Most important part of the presented Smart Gardening system is a 3D printed smart flower pot for single plants. The smart flower pot has integrated a water reservoir for automated plant irrigation and an electronic for monitoring important plant parameters and the water level of the water reservoir. Energy harvesting with solar cells enables energy autonomous working of the flower pot. A low-power wireless interface also integrated in the flowerpot and an external gateway based on a Raspberry Pi 3 enables wireless networking of multiple of those flower pots. The gateway is used for evaluating the plant parameters and as a user interface. Particularly the architecture of the energy autonomous wireless flower pot will be considered, because fully energy autonomous sensors and actuators for home automation could not be implemented without special concepts for the energy supply and the overall electronic.
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能源自主自动化的智能家居应用,以无线室内智能园艺系统为例
智能家居或智能建筑应用是一个不断增长的市场。设计节能智能家居应用以实现可持续发展和绿色家居是一个日益严峻的挑战。本文以具有无线监控和自动浇水功能的室内智能园艺系统的开发为例,重点讨论了用于家庭自动化的能源自主工作传感器和执行器的设计问题。智能园艺系统最重要的部分是一个3D打印的智能花盆,用于种植单株植物。智能花盆集成了一个用于植物自动灌溉的蓄水池和一个用于监测重要植物参数和蓄水池水位的电子设备。太阳能电池的能量收集使花盆能够自主工作。花盆中还集成了一个低功耗无线接口,基于树莓派3的外部网关使多个花盆能够无线联网。网关用于评估工厂参数并作为用户界面。特别是能源自主无线花盆的架构将被考虑,因为完全能源自主传感器和执行器的家庭自动化无法实现没有特殊的概念,能源供应和整体电子。
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