Development of a Pilot Smart Irrigation System for Peruvian Highlands

Santiago Guevara, Yogang Singh, Austin Shores, Juan Mercado, Mauricio Postigo, Jose Garcia, Brittany Newell
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引用次数: 2

Abstract

With growing developments in the technology of cloud storage and the Internet of Things, smart systems have become the latest trend in major agricultural regions of the world. The Arequipa and Caylloma provinces of Peru are highly productive agricultural areas that could benefit from these technologies. This region has low precipitation, generally less than 100 mm per year. Electricity is not available in most of the agricultural fields, limiting the types of irrigation methods and technologies that can be supported. Currently, 20 ponds supplied by water runoff from the Andean glaciers are used for irrigating approximately 545 hectares of land in the Majes district (Caylloma province). In order to develop optimal techniques for water irrigation in Arequipa and improve the infrastructure, there is a need for development of a smart water irrigation system applicable to the existing conditions in the region. The current study proposes a pilot smart water irrigation framework comprised of a drip irrigation module, wireless communication module, and a sensor network for intelligently regulating water flow from the cloud. In this study, a TEROS 12 soil moisture sensor is connected to a Digi XBee wireless module for collecting measurements of volumetric water content, temperature, and electrical conductivity, which are sent through a secure IP gateway to the cloud. A user-friendly web interface is available for end-users to access and analyze real-time data. The proposed framework is easily implementable, low-cost, and is predicted to conserve water through optimization of irrigation cycles based on a set moisture threshold.

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秘鲁高地智能灌溉试点系统的开发
随着云存储和物联网技术的不断发展,智能系统已成为世界主要农业地区的最新趋势。秘鲁的阿雷基帕省和卡略马省是高产农业区,可以从这些技术中受益。这个地区降水少,一般每年少于100毫米。大多数农业领域没有电力供应,限制了可以支持的灌溉方法和技术类型。目前,由安第斯冰川径流提供的20个池塘用于灌溉Majes地区(卡约洛马省)约545公顷的土地。为了在阿雷基帕开发最佳的灌溉技术并改善基础设施,需要开发适用于该地区现有条件的智能灌溉系统。目前的研究提出了一个试点智能灌溉框架,该框架由滴灌模块、无线通信模块和传感器网络组成,用于智能调节来自云的水流。在这项研究中,TEROS 12土壤湿度传感器连接到Digi XBee无线模块,用于收集体积含水量、温度和电导率的测量数据,这些数据通过安全IP网关发送到云端。提供一个友好的web界面,供最终用户访问和分析实时数据。所提出的框架易于实施,成本低,并且预计通过基于设定的湿度阈值优化灌溉周期来节约用水。
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