The mid-transition in the electricity sector: impacts of growing wind and solar electricity on generation costs and natural gas generation in Alberta

Kristina M E Pearson, Sara Hastings-Simon
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Abstract

Abstract In response to climate change, electricity grids are decreasing their carbon intensity with the addition of wind and solar variable generation (VREN). This leads to a mid-transition period, where renewable energy is unable satisfy electricity demand without contributions from other fossil sources such as natural gas , but also generates sufficiently to constrain conventional generation—changing their operating and market conditions. We use a simplified copper plate model, which scales up and down historical wind and solar generation, to examine how and when the patterns and generation costs for fossil fuel power could change by the increasing capacities of VREN on the relatively isolated Alberta electricity grid. We find that beginning at 20% VREN an increasingly diverse range and reduced hours of dispatched capacity is necessitated from the existing generation. However, even as capacity factors for fossil fuel generation decrease their costs remain reasonable and we found this to be a low-cost pathway for achieving moderate to deep emission reduction goals. A full 86% of demand could be met with VREN before generation costs exceeded 100$/MWh, allowing for an emissions reduction of 28.4 to 9 million tonnes/year of CO2eq, on a lifecycle basis. In order to capture and use the renewable generation, new and existing fossil fuel units require market incentives both for flexibility and to ensure they remain in place throughout the transitionary period as they are crucial to backstop variable renewable generation.
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电力部门的中期转型:阿尔伯塔省风能和太阳能发电增长对发电成本和天然气发电的影响
为了应对气候变化,电网正在通过增加风能和太阳能可变发电(VREN)来降低其碳强度。这导致了一个中期过渡时期,在此期间,如果没有天然气等其他化石能源的贡献,可再生能源将无法满足电力需求,但也会产生足够的电力来限制传统发电,从而改变其运营和市场状况。我们使用一个简化的铜板模型,将历史上的风能和太阳能发电按比例放大和缩小,来研究化石燃料发电的模式和发电成本如何以及何时会因相对孤立的阿尔伯塔省电网上VREN容量的增加而发生变化。我们发现,从20%的VREN开始,现有发电机组需要越来越多样化的范围和减少的调度容量小时数。然而,即使化石燃料发电的容量因素降低,其成本仍然合理,我们发现这是实现中度到深度减排目标的低成本途径。在发电成本超过100美元/兆瓦时之前,VREN可以满足86%的需求,从而在生命周期的基础上每年减少2840万至900万吨二氧化碳当量的排放量。为了捕获和使用可再生能源发电,新的和现有的化石燃料装置需要市场激励,以提高灵活性,并确保它们在整个过渡时期保持到位,因为它们对支持可变的可再生能源发电至关重要。
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