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Designing Real-Time Prices to Reduce Load Variability with HVAC

机译:设计实时价格以减少HVAC的负载变化

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Utilities use demand response to shift or reduce electricity usage of flexible loads, to better match electricity demand to power generation. A common mechanism is peak pricing (PP), where consumers pay reduced (increased) prices for electricity during periods of low (high) demand, and its simplicity allows consumers to understand how their consumption affects costs. However, new consumer technologies like internet-connected smart thermostats simplify real-time pricing (RP), because such devices can automate the tradeoff between costs and consumption. These devices enable consumer choice under RP by abstracting this tradeoff into a question of quality of service (e.g., comfort) versus price. This paper uses a principal-agent framework to design PP and RP rates for heating, ventilation, and air-conditioning (HVAC) to address adverse selection due to variations in consumer comfort preferences. We formulate the pricing problem as a stochastic bilevel program, and numerically solve it by reformulation as a mixed integer program (MIP). Last, we compare the effectiveness of different pricing schemes on reductions of peak load or load variability. We find that PP induces HVAC consumption to spike high (before), spike low (during), and spike high (after) the PP event, whereas RP achieves reductions in peak loads and load variability while preventing large spikes in electricity usage.
机译:公用事业使用需求响应来改变或减少柔性负载的用电量,以更好地使电力需求与发电相匹配。常见的机制是峰值定价(PP),在此期间,消费者在需求低(高)期间为电力支付降低的价格(增加的价格),其简单性使消费者能够了解其消费如何影响成本。但是,诸如互联网连接的智能恒温器之类的新型消费技术简化了实时定价(RP),因为此类设备可以自动在成本和消耗之间进行权衡。这些设备通过将这种权衡抽象为服务质量(例如舒适度)与价格的问题,从而使消费者能够在RP下进行选择。本文使用委托代理框架来设计用于采暖,通风和空调(HVAC)的PP和RP比率,以解决由于消费者舒适性偏好变化而引起的不利选择。我们将定价问题表述为随机的双层程序,然后通过重新公式化为混合整数程序(MIP)对其进行数值求解。最后,我们比较了不同定价方案对降低峰值负荷或负荷变化性的有效性。我们发现,PP引起的HVAC消耗在PP事件中呈高峰值(之前),低峰值(期间)和高峰值(之后),而RP实现了峰值负载和负载可变性的降低,同时防止了用电量的大峰值。

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