[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"item-2510":3},{"id":4,"title":5,"url":6,"summary":7,"summary_zh":8,"content":9,"source_name":10,"source_url":6,"published_at":11,"category":12,"cover_url":9,"hotness":13,"is_selected":14,"score":15,"score_detail":16,"sources":23,"tags":25,"view_count":31,"doi":32,"paper":33,"created_at":52},2510,"A Low-Power, IP68-Compliant, BLE-Based Multi-Station Smart Irrigation Control Unit for Agricultural Applications","https:\u002F\u002Fdoi.org\u002F10.47115\u002Fbsagriculture.2004639","This study designs, develops, and evaluates the performance of a low-power, Bluetooth Low Energy (BLE) based, IP68 protection-rated, multi-station smart irrigation control unit for agricultural irrigation applications. The system is built on an STM32F103 microcontroller-based electronic control board and can manage 6 independent irrigation stations. Irrigation is automatically controlled by evaluating environmental data obtained from rain, frost, and wind sensors, and it is designed to be compatible with different types of rain sensors. Thanks to the user-definable cycle & soak algorithm, irrigation is performed in specific cycles, and a waiting period is applied after each cycle to allow the soil to absorb the water, aiming to increase water use efficiency. The control unit can be managed remotely from mobile devices compatible with common mobile operating systems via a mobile application using BLE technology, up to approximately 15 m; irrigation schedules can be created, past irrigation records can be viewed, and manual control operations can be performed remotely. The system is designed to operate with a 9V alkaline battery (550 mAh), offering approximately 6 months of continuous operation with a single battery and approximately 1 year with two batteries. The improved control unit, with its IP68 protection class housing, provides high durability against harsh environmental conditions. Its multi-station structure, low power consumption, and user-friendly features offer an integrated solution for smart irrigation applications.","本研究设计、开发并评估了一种用于农业灌溉应用的低功耗、基于低功耗蓝牙（BLE）、具有IP68防护等级的多站智能灌溉控制单元的性能。该系统构建于基于STM32F103微控制器的电子控制板上，可管理6个独立的灌溉站。通过评估来自雨量、霜冻和风速传感器的环境数据来自动控制灌溉，并设计为兼容不同类型的雨量传感器。借助用户可定义的循环与浸润算法，灌溉按特定周期进行，每个周期后设置等待期以使土壤吸收水分，旨在提高水资源利用效率。该控制单元可通过使用BLE技术的移动应用程序，从兼容常见移动操作系统的移动设备上进行远程管理，通信距离可达约15米；可创建灌溉计划、查看历史灌溉记录，并远程执行手动控制操作。该系统设计为使用9V碱性电池（550 mAh）运行，单节电池可连续运行约6个月，两节电池可连续运行约1年。改进后的控制单元采用IP68防护等级外壳，对恶劣环境条件具有高耐久性。其多站结构、低功耗和用户友好特性为智能灌溉应用提供了一体化解决方案。",null,"Black Sea Journal of Agriculture","2026-09-14T00:00:00Z","论文",10,false,67,{"impact":17,"substance":18,"depth":19,"authority":17,"freshness":20,"relevant":21,"comment":22},12,18,16,9,1,"面向农业灌溉的低功耗BLE多站控制单元，方法完整、指标具体，但属细分技术方案，产业影响有限。",[24],{"name":10,"url":6},[26,27,28,29,30],"智慧农业","智能灌溉","农业传感器","节水农业","低功耗物联网",0,"10.47115\u002Fbsagriculture.2004639",{"doi":32,"openalex_id":34,"authors":35,"venue":10,"cited_by_count":31,"oa_url":9,"card":45,"direction":49,"ingested_from":51},"W7212619308",[36,39,42],{"name":37,"orcid":38},"Samet Eyicil","https:\u002F\u002Forcid.org\u002F0009-0003-4651-6897",{"name":40,"orcid":41},"Yavuz Turan","https:\u002F\u002Forcid.org\u002F0000-0001-8537-3989",{"name":43,"orcid":44},"İbrahim Keleş","https:\u002F\u002Forcid.org\u002F0000-0001-8252-2635",{"tldr":46,"method":47,"finding":48,"direction":49,"opportunity":50},"设计并评估了一款低功耗、IP68防护、基于BLE的六站智能灌溉控制单元。","基于STM32F103与BLE，结合雨霜风传感器及循环浸泡算法，用9V电池供电。","单电池续航约6个月，双电池约1年，BLE控制距离约15米，IP68外壳耐恶劣环境。","智慧农业 \u002F 农业物联网","可探索多传感器融合的灌溉决策与太阳能供电，延长野外部署寿命并提升节水效率。","openalex","2026-09-15T23:30:08.453960Z"]