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Distributed model predictive control for thermal house comfort with auction of available energy

机译:拍卖可用能量的分布式模型预测控制,用于房屋保暖

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This paper presents a distributed model predictive control (DMPC) for indoor thermal comfort that simultaneously optimizes the consumption of a limited shared energy resource. The control objective of each subsystem is to minimize the heating/cooling energy cost while maintaining the indoor temperature and used power inside bounds. In a distributed coordinated environment, the control uses multiple dynamically decoupled agents (one for each subsystem/house) aiming to achieve satisfaction of coupling constraints. The limited energy resource is shared by a fixed order established from a previously done auction wherein the bids are made by each agent based on the energy price that they are willing to pay each day. The developed system is applied and simulated with three houses.
机译:本文提出了一种用于室内热舒适度的分布式模型预测控制(DMPC),该模型同时优化了有限共享能源的消耗。每个子系统的控制目标是在保持室内温度和限制范围内使用的电能的同时,最大程度地减少供暖/制冷能耗。在分布式协调环境中,控件使用多个动态解耦的代理(每个子系统/房屋一个),旨在满足耦合约束。有限的能源由先前完成的拍卖中建立的固定订单共享,其中每个代理商根据他们每天愿意支付的能源价格进行投标。所开发的系统应用于三个房屋并进行了仿真。

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