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Adaptive IoT-Based HVAC Control System for Smart Buildings

机译:基于Adaptive IoT的HVAC控制系统,用于智能建筑

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The article studies the experience of automation of heating, ventilation, and air conditioning (HVAC) systems of buildings with regard to the technical capacities of the Internet of Things (IoT). Using the data from IoT devices maintains the set quality parameters throughout the entire operation period, which is achieved with the compensatory and predictive control algorithms. The objective of the research is to increase the HVAC control efficiency in smart buildings using the control system with the adaptation circuit, which proactively compensates any disturbances. The proper operation of the circuit requires accumulation of information of the venue during the operation period, which is used for building the transfer functions of the HVAC of the building. Continuous adaptation of the control system model to reality is a way to continuously optimize the adjustments of the regulation algorithm, ensuring effective operation of the local temperature regulation circuits. The capacities of the IoT controller-based control system and the generation of a compensatory-predictive control signal with the placement of the control algorithm in a "cloud" on a server are demonstrated with the indoor temperature control model. The simulation models of the indoor temperature changing processes are studied: the indoor temperature changing process model without a control system; model with a PI-regulator and disturbance compensation; the disturbance compensation model for the IoT controller-based control system. The structural and parametric identification of the model is carried out with the active experiment method
机译:本文研究了关于物联网的技术能力(物联网)的建筑物的加热,通风和空调(HVAC)系统的自动化经验。使用来自物联网设备的数据在整个操作周期中维护集合质量参数,这是通过补偿和预测控制算法实现的。该研究的目的是利用带有适应电路的控制系统提高智能建筑的HVAC控制效率,自适应电路主动补偿任何干扰。电路的适当操作需要在操作时段期间累积场景的信息,其用于构建建筑物HVAC的传递函数。控制系统模型对现实的连续调整是一种不断优化调节算法调整的方法,确保了局部温度调节电路的有效操作。利用室内温度控制模型对基于IOT控制器的控制系统和使用控制算法放置的补偿预测控制信号的生成的能量。研究了室内温度变化工艺的仿真模型:室内温度变化工艺模型没有控制系统;模型采用PI-稳压器和干扰补偿;基于IOT控制器的控制系统的扰动补偿模型。使用主动实验方法进行模型的结构和参数识别

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